Communication device, base station, and communication method

The system allows Red Cap UEs to set a separate initial bandwidth portion using common signaling, addressing the challenge of initial access in 3GPP specifications and ensuring smooth communication setup with reduced interference.

JP7680559B2Active Publication Date: 2025-05-20DENSO CORP +1
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Patent Information

Application Number
JP2023558052
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-11-02
Filing Date
2022-11-02
Publication Date
2025-05-20
Estimated Expiration
2042-11-02

AI Technical Summary

Technical Problem

Red Cap UEs with reduced communication capabilities face challenges in performing initial access due to the existing 3GPP technical specifications, which require initial bandwidth portions to be set by dedicated signaling, preventing them from using separate initial bandwidth portions during initial access.

Method used

A communication device and base station system that allows Red Cap UEs to set a separate initial bandwidth portion using common signaling by specifying a predetermined bandwidth portion number through system information blocks, enabling them to perform a random access procedure during initial access.

Benefits of technology

Enables Red Cap UEs to utilize the separate initial bandwidth portion during initial access, facilitating seamless communication setup and reducing interference with general UEs.

✦ Generated by Eureka AI based on patent content.

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Abstract

This communication device (100, 100B) having reduced communication capacity compared to another communication device (100, 100A) comprises: a receiving unit (121) that designates a predetermined bandwidth part number other than a bandwidth part number for which an initial bandwidth part used for the other communication device (100, 100A) is configured, and receives, in a system information block, common configuration information for configuring a separate initial bandwidth part different from the initial bandwidth part, the common configuration information being received from a base station (200); and a control unit (140) that performs a random access procedure using the separate initial bandwidth part.
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Description

CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application is based on and claims the benefit of priority to patent application No. 2021-179781, filed November 2, 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 below) (3rd Generation Partnership Project), a standardization project for mobile communication systems, at least an initial bandwidth portion, which is a part of the total bandwidth of a cell and is used for initial access, is set in a communication device. As a method for setting the initial bandwidth portion, a method is specified in which the initial bandwidth portion is set by common signaling, not by dedicated signaling (see Non-Patent Document 1).

[0004] According to the above method, the initial bandwidth portion set by common signaling is set in the communication device as a bandwidth portion with a bandwidth portion number of 0 (specifically, BWP#0). BWP#0 is not considered to be a bandwidth portion set by radio resource control (RRC). On the other hand, the bandwidth portions with bandwidth portion numbers of 1 and onward (BWP#1 to BWP#4) are bandwidth portions set by dedicated signaling and are bandwidth portions set by RRC.

[0005] In recent years, 3GPP has been considering introducing communication devices (hereinafter referred to as Red Cap UE) having reduced communication capabilities compared to general communication devices (hereinafter referred to as general communication devices) into 5G systems. Red Cap UE is a communication device with mid-range performance and price for IoT (Internet of Things), and, for example, compared to general communication devices, the maximum bandwidth of the bandwidth portion used for wireless communication is set narrower and the number of receivers is smaller.

[0006] Here, when introducing red cap UE into a 3GPP mobile communication system, it has been agreed that the initial bandwidth portion for red cap UE, i.e., an initial bandwidth portion having a narrower bandwidth than the initial bandwidth portion for general communication devices (hereinafter referred to as a separate initial bandwidth portion), will be set independently from the initial bandwidth portion for general communication devices (see non-patent document 2). [Prior art documents] [Non-patent literature]

[0007] [Non-Patent Document 1] 3GPP Technical Specification: TS38.331 V16.6.0 [Non-Patent Document 2] 3GPP contribution: R1-2106213 Summary of the Invention

[0008] A communication device according to a first aspect has a reduced communication capability compared to other communication devices, and includes a receiving unit that receives common setting information from a base station in a system information block, the common setting information specifying a predetermined bandwidth portion number other than a bandwidth portion number to which an initial bandwidth portion used by the other communication devices is set, and setting a separate initial bandwidth portion different from the initial bandwidth portion, and a control unit that executes a random access procedure using the separate initial bandwidth portion.

[0009] A base station according to a second aspect is a base station that communicates with a communication device having a reduced communication capability compared to other communication devices, and includes a transmitter that transmits common setting information in a system information block, the common setting information specifying a predetermined bandwidth portion number other than a bandwidth portion number to which an initial bandwidth portion used by the other communication devices is set, and a controller that executes a random access procedure with the communication device using the separate initial bandwidth portion.

[0010] A communication method according to a third aspect is a communication method executed by a communication device having a reduced communication capability compared to other communication devices, and includes the steps of receiving common setting information from a base station in a system information block, the common setting information specifying a predetermined bandwidth portion number other than a bandwidth portion number to which an initial bandwidth portion used by the other communication devices is set, and setting a separate initial bandwidth portion different from the initial bandwidth portion, and executing a random access procedure using the separate initial bandwidth portion. [Brief description of the drawings]

[0011] The objects, features, and advantages 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. [Diagram 2] FIG. 2 is a diagram illustrating an example of the configuration of a protocol stack according to the embodiment. [Diagram 3] FIG. 3 is a diagram for explaining a method of setting an initial BWP to a UE. [Figure 4] FIG. 4 is a diagram showing a configuration of a UE according to the embodiment. [Diagram 5] FIG. 5 is a diagram showing a configuration of a base station according to the embodiment. [Figure 6] FIG. 6 is a sequence diagram for explaining an example of the operation of the mobile communication system according to the embodiment. [Figure 7]FIG. 7 is a diagram (part 1) for explaining a frequency domain according to a first operation example of the mobile communication system according to the embodiment. [Figure 8] FIG. 8 is a diagram (part 2) for explaining a frequency domain according to a first operation example of the mobile communication system according to the embodiment. [Figure 9] FIG. 9 is a diagram for explaining a method for setting an initial BWP to a UE in the mobile communication system according to the embodiment. [Figure 10] FIG. 10 is a diagram (part 1) for explaining information elements of the mobile communication system according to the embodiment. [Figure 11] FIG. 11 is a diagram (part 2) for explaining information elements of the mobile communication system according to the embodiment. [Figure 12] FIG. 12 is a diagram (part 3) for explaining information elements of the mobile communication system according to the embodiment. [Figure 13] FIG. 13 is a diagram for explaining a frequency domain according to a second operation example of the mobile communication system according to the embodiment. [Figure 14] FIG. 14 is a diagram for explaining a frequency domain according to a third operation example of the mobile communication system according to the embodiment. [Figure 15] FIG. 15 is a diagram for explaining a frequency domain according to a fourth operation example of the mobile communication system according to the embodiment. [Figure 16] FIG. 16 is a diagram for explaining a frequency domain according to a fifth operation example of the mobile communication system according to the embodiment. [Figure 17] FIG. 17 is a diagram for explaining a frequency domain according to a sixth operation example of the mobile communication system according to the embodiment. [Figure 18] FIG. 18 is a diagram (part 1) for explaining information elements of a mobile communication system according to another embodiment. [Figure 19] FIG. 19 is a diagram (part 2) for explaining information elements of a mobile communication system according to another embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[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] Since the redcap UE may perform initial access in the initial bandwidth portion used for general communication devices, it is assumed that a bandwidth portion with bandwidth portion number 0 (BWP#0) is set in the redcap UE by common signaling, and then a separate initial bandwidth portion is set in the redcap UE as a bandwidth portion set by RRC (i.e., a specified bandwidth portion with bandwidth portion number 1 or higher).

[0014] However, in the existing 3GPP technical specifications, the bandwidth portion configured by the RRC is configured by dedicated signaling, so that the red cap UE can use the separate initial bandwidth portion after the initial access. Therefore, there is a problem that the red cap UE cannot use the separate initial bandwidth portion to perform a random access procedure during the initial access. Therefore, one of the objectives of the present disclosure is to provide a communication device, a base station, and a communication method that enable the use of the separate initial bandwidth portion during the initial access when the initial bandwidth portion is configured as a bandwidth portion with a bandwidth portion number of 0 by common signaling.

[0015] (System Configuration) First, the configuration of a mobile communication system 1 according to this 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 by taking as an example a 3GPP standard 5th Generation System (5G system), that is, a mobile communication system based on NR (New Radio).

[0016] The mobile communication system 1 includes a network 10 and a 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.

[0017] 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 a user device defined in the technical specifications of 3GPP. The UE 100 is a mobile device such as a mobile phone terminal such as a smartphone, a tablet terminal, a notebook 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 another name 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.

[0018] In this embodiment, two types of UEs are assumed as the NR UE 100: a general UE (general user equipment: general UE) 100A and a red cap UE (red cap user equipment: red cap UE) 100B having reduced communication capabilities compared to the general UE 100A. The general UE 100A has advanced communication capabilities such as enhanced Mobile Broadband (eMBB) and ultra-reliable and low latency communications (URLLC), which are features of NR. Therefore, the general UE 100A has higher communication capabilities than the red cap UE 100B. The general UE 100A may be referred to as a non-Red Cap UE. The general UE 100A may be an existing UE, that is, a UE before Release 16 (so-called legacy UE).

[0019] The red cap UE 100B is a UE with reduced device cost and complexity compared to the general UE 100A. The red cap UE 100B is a UE 100 with a mid-range performance and price for IoT, and for example, compared to the general UE 100A, the maximum bandwidth used for wireless communication is set narrower and the number of receivers is smaller. The receiver may be called a receiving branch. The red cap UE 100B may be called a reduced capability NR device. Hereinafter, for clarity of explanation, it is also referred to as a general UE or a red cap UE, but the general UE or the red cap UE in this embodiment is a UE. That is, the general UE in this embodiment may be replaced with a UE. Also, the red cap UE in this embodiment may be replaced with a UE.

[0020] Specifically, the red cap UE 100B may be capable of communication at a communication speed equal to or higher than the communication speed specified in an LPWA (Low Power Wide Area) standard, for example, LTE Cat. (Long Term Evolution UE Category) 1 / 1bis, LTE Cat.M1 (LTE-M), and LTE Cat.NB1 (NB-IoT). The red cap UE 100B may be capable of communication at a bandwidth equal to or higher than the bandwidth specified in the LPWA standard. The red cap UE 100B may have a limited bandwidth for communication compared to a Rel-15 or Rel-16 UE. For example, for FR1 (Frequency Range 1), the maximum bandwidth (also referred to as UE maximum bandwidth) supported by the red cap UE 100B may be 20 MHz. Also, for FR2 (Frequency Range 2), the maximum bandwidth supported by the red cap UE 100B may be 100 MHz. The red cap UE 100B may have only one receiver for receiving a wireless signal. The red cap UE 100B may be, for example, a wearable device or a sensor device.

[0021] The NG-RAN 20 includes a plurality of base stations 200. Each base station 200 manages at least one cell. A cell constitutes the smallest unit of a communication area. One cell belongs to one frequency (carrier frequency). The term "cell" may represent a wireless communication resource, and may represent 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 protocol stack of the RAN. Details of the protocol stack will be described later. The base station 200 is connected to other base stations 200 (which may be referred to as adjacent base stations) via an Xn interface. The base station 200 communicates with the adjacent base stations via an Xn interface. The base station 200 provides NR user plane and control plane protocol terminations toward the UE 100, and is connected to the 5GC 30 via an NG interface. Such an NR base station 200 may be referred to as a gNodeB (gNB).

[0022] 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 of the UE 100. The UPF provides a function specialized for U-plane processing. The AMF and the UPF are connected to the base station 200 via an NG interface.

[0023] (Example of protocol stack configuration) Next, an example of the configuration of a protocol stack according to this embodiment will be described with reference to FIG.

[0024] The protocol for the wireless section between UE 100 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, and a radio resource control (RRC) layer.

[0025] 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.

[0026] 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 the UE 100 and the MAC layer of the base station 200 via a transport channel. The MAC layer of the 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 the UE 100.

[0027] The RLC layer transmits data to the RLC layer on the receiving side by using the functions of the MAC layer and the 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.

[0028] The PDCP layer performs header compression / decompression and encryption / decryption.

[0029] A Service Data Adaptation Protocol (SDAP) layer may be provided above the PDCP layer. The Service Data Adaptation Protocol (SDAP) layer 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 Access Stratum (AS).

[0030] 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.

[0031] The NAS layer, which is located above the RRC layer in the UE 100, 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.

[0032] In addition, the UE 100 has an application layer and the like in addition to the protocol of the radio interface.

[0033] (Radio frame structure) In the 5G system, downlink transmission and uplink transmission are configured within a radio frame of 10 ms duration. For example, a radio frame is configured with 10 subframes. For example, one subframe may be 1 ms. Also, one subframe may be configured with one or more slots. For example, the number of symbols constituting one slot is 14 in a normal CP (Cyclic Prefix) and 12 in an extended CP. Also, the number of slots constituting one subframe changes according to the set subcarrier interval. For example, for a normal CP, when the subcarrier interval is set to 15 kHz, the number of slots per subframe is 1 (i.e., 14 symbols), when the subcarrier interval is set to 30 kHz, the number of slots per subframe is 2 (i.e., 28 symbols), when the subcarrier interval is set to 60 kHz, the number of slots per subframe is 4 (i.e., 56 symbols), and when the subcarrier interval is set to 120 kHz, the number of slots per subframe is 8 (i.e., 128 symbols). Furthermore, when 60 kHz is set as the subcarrier spacing for the extended CP, the number of slots per subframe is 4 (i.e., 48 symbols). That is, the number of slots constituting one subframe is determined based on the subcarrier spacing set by base station 200. Also, the number of symbols constituting one subframe is determined based on the subcarrier spacing set by base station 200. That is, the number of symbols constituting a 1 ms subframe is determined based on the subcarrier spacing set by base station 200, and the length of each symbol (length in the time direction) changes.

[0034] (Bandwidth part) The UE 100 and the base station 200 communicate using a bandwidth portion (BWP) that is a part of the total bandwidth of the cell. Specifically, the base station 200 sets one or more BWPs to the UE 100. The base station 200 can notify the UE 100 of a BWP (i.e., an active BWP) to be used for communication with the base station 200 among the set one or more BWPs. Specifically, the base station 200 can transmit to the UE 100 an identifier indicating a BWP to be activated when setting is performed, that is, a BWP to be used first for communication with the base station 200. In addition, for control of switching from an active BWP to a BWP that is not an active BWP (hereinafter, an inactive BWP) and switching from an inactive BWP to an active BWP (so-called BWP switching), for example, a physical downlink control channel (e.g., a downlink assignment, an uplink assignment), a timer (i.e., a bwp-InactivityTimer), an RRC signaling, or a MAC entity is used.

[0035] Here, communication in a BWP (i.e., an active BWP) may include at least any of transmission on an uplink shared channel (UL-SCH) in the BWP, transmission on a random access channel (RACH) in the BWP (when a physical random access channel (PRACH) opportunity is configured), monitoring of a physical downlink control channel (PDCCH) in the BWP, transmission on a physical uplink control channel (PUCCH) in the BWP (when a PUCCH resource is configured), reporting of channel state information (CSI) for the BWP, and reception of a downlink shared channel (DL-SCH) in the BWP.

[0036] Here, the UL-SCH is a transport channel and is mapped to a physical uplink shared channel (PUSCH), which is a physical channel. Data transmitted on the UL-SCH is also referred to as UL-SCH data. For example, the UL-SCH data may correspond to uplink user data. The DL-SCH is a transport channel and is mapped to a physical downlink shared channel (PDSCH), which is a physical channel. Data transmitted on the DL-SCH is also referred to as DL-SCH data. For example, the DL-SCH data may correspond to downlink user data.

[0037] Moreover, the PUCCH is used to transmit uplink control information. For example, the uplink control information includes a Hybrid Automatic Repeat Request (HARQ-ACK), CSI, and / or a Scheduling Request (SR). The HARQ-ACK includes a Positive Acknowledgment or a Negative Acknowledgment. For example, the PUCCH is used to transmit a HARQ-ACK for a PDSCH (i.e., DL-SCH (DL-SCH data, downlink user data)). Here, the DL-SCH data and / or the downlink user data are also referred to as a downlink transport block.

[0038] The BWP includes an initial bandwidth portion (Initial BWP) and a bandwidth portion (dedicated BWP) set exclusively for each UE 100. The initial BWP is used for at least initial access of the UE 100. The initial BWP is used commonly for a plurality of UEs 100. For example, the initial BWP is set using parameters (cell-specific parameters) common to a plurality of UEs 100. The initial BWP includes an initial BWP for downlink communication (hereinafter, initial downlink BWP (Initial DL BWP)) and an initial BWP for uplink communication (hereinafter, initial uplink BWP (Initial UL BWP)). For example, the value of an identifier (i.e., bwp-id) indicating each of the initial downlink BWP and the initial uplink BWP may be 0.

[0039] The UE 100 can specify (set) an initial BWP (i.e., an initial downlink BWP and an initial uplink BWP) by, for example, two methods. In the first method, the UE 100 specifies the initial BWP based on CORESET#0 that is set using information included in a master information block (MIB) in a physical broadcast channel (PBCH). In the second method, the UE 100 specifies the initial BWP based on a position and a bandwidth in the frequency domain that are set using information included in a system information block (SIB). The UE 100 may apply the BWP specified by the first method to communication with the base station 200, for example, until reception of a message 4 (MSG4) in the random access procedure. The UE 100 may apply the BWP specified by the second method to communication with the base station 200, for example, after reception of the message 4. Here, the message 4 in the random access procedure may include an RRC setup message, an RRC resumption message, and / or an RRC (re)establishment message.

[0040] The dedicated BWP is set exclusively for the UE 100. The dedicated BWP includes a dedicated BWP for downlink communication (hereinafter, a dedicated downlink BWP (UE dedicated DL BWP)) and a dedicated BWP for uplink communication (hereinafter, a dedicated uplink BWP (UE dedicated UL BWP)). For example, the value of an identifier indicating each of the dedicated downlink BWP and the dedicated uplink BWP may be other than 0.

[0041] A dedicated BWP is set in the UE 100 based on, for example, information included in the RRC message (for example, information for a downlink BWP (i.e., BWP-Downlink) and information for an uplink BWP (i.e., BWP-Uplink)). For example, information indicating a location and a bandwidth in the frequency domain (for example, locationAndBa n dwidth), information indicating a subcarrier spacing (for example, subcarrierSpacing), and information indicating an extended cyclic prefix (for example, cyclicPrefix).

[0042] The UE 100 may monitor the PDCCH using the configured BWP. Monitoring the PDCCH may mean monitoring a set of PDCCH candidates in one or more control resource sets (CORESET(s)) in a DL BWP (e.g., an activated DL BWP) in a serving cell (e.g., an activated serving cell) in which PDCCH monitoring is configured according to a corresponding search space set. Monitoring the PDCCH may include decoding each of the PDCCH candidates according to a monitored downlink control information (DCI) format.

[0043] Furthermore, the UE 100 may monitor a DCI format to which a CRC (Cyclic Redundancy Check, also referred to as a CRC parity bit) scrambled by an RNTI (Radio Network Temporary Identifier) ​​set by the base station 200 is added. Here, the RNTI may include a System Information-RNTI (SI-RNTI), a Random Access RNTI (RA-RNTI), a Temporary C-RNTI (TC-RNTI), a Paging RNTI (P-RNTI), and / or a Cell-RNTI (C-RNTI).

[0044] A set of PDCCH candidates monitored by the UE 100 may be defined as a search space set of the PDCCH. The search space set may include a common search space set (CSS set(s)) and / or a UE specific search space set (USS set(s)). Thus, the base station 200 may configure the CORESET and / or the search space set for the UE 100, and the UE 100 may monitor the PDCCH in the configured CORESET and / or search space set. For example, the UE 100 may monitor the PDCCH candidates in at least one of a Type 0-PDCCH CSS set (Type 1-PDCCH CSS set), a Type 1-PDCCH CSS set (Type 2-PDCCH CSS set), a Type 2-PDCCH CSS set (Type 3-PDCCH CSS set), and a USS set (USS set).

[0045] The Type 0-PDCCH CSS set is configured in the UE 100 by pdcch-ConfigSIB1 in the Master Information Block (MIB), or by searchSpaceSIB1 in PDCCH-ConfigCommon, or by searchSpaceZero in PDCCH-ConfigCommon for a DCI format to which a CRC scrambled by an SI-RNTI is added. The Type 1-PDCCH CSS set is configured in the UE 100 by ra-SearchSpace in PDCCH-ConfigCommon for a DCI format to which a CRC scrambled by an RA-RNTI or a TC-RNTI is added. The Type 2-PDCCH CSS set is configured in the UE 100 by pagingSearchSpace in PDCCH-ConfigCommon for a DCI format to which a CRC scrambled by a P-RNTI is added. The USS set is configured in the UE 100 by SearchSpace in PDCCH-Config where searchSpaceType is ue-Specific for a DCI format to which a CRC scrambled by a C-RNTI is added.

[0046] The execution of SI (System Information) transmission and reception may include setting a corresponding CORESET and / or search space set (e.g., Type 1-PDCCH CSS set) in the UE 100. The execution of SI transmission and reception may also include monitoring a PDCCH (which may be in a DCI format with a CRC scrambled by the SI-RNTI) in the corresponding CORESET and / or search space set (Type 1-PDCCH CSS set).

[0047] The execution of the random access (RA) procedure may include configuring a corresponding CORESET and / or search space set (e.g., a type 1-PDCCH CSS set) in the UE 100. The execution of the RA procedure may also include monitoring a PDCCH (which may be a DCI format with a CRC scrambled by the RA-RNTI and / or TC-RNTI) in the corresponding CORESET and / or search space set (type 1-PDCCH CSS set).

[0048] The execution of paging may include configuring a corresponding CORESET and / or search space set (e.g., a type 2-PDCCH CSS set) in the UE 100. The execution of paging may also include monitoring a PDCCH (which may be a DCI format with a CRC scrambled by the P-RNTI) in the corresponding CORESET and / or search space set (type 2-PDCCH CSS set).

[0049] Incidentally, the 3GPP technical specifications prescribe a method of setting an initial BWP in the UE 100, in which the initial BWP is set by common signaling, not by dedicated signaling. According to this method, the initial BWP set by common signaling is set in the UE 100 as a BWP with a BWP number of 0 (specifically, BWP#0). As shown in FIG. 3, the initial BWP (BWP#0) is set by BWP-DownlinkCommon and BWP-UplinkCommon in ServingCellConfigCommon, but is not set by BWP-DownlinkDedicated or BWP-UplinkDedicated in ServingCellConfig. BWP#0 is not considered as a BWP set by radio resource control (RRC). On the other hand, BWPs with BWP numbers 1 and above (BWP#1 to BWP#4) are BWPs set by dedicated signaling (dedicated BWPs) and are BWPs set by RRC.

[0050] In recent years, when introducing a red cap UE 100B into a 3GPP mobile communication system 1, it has been agreed that an initial BWP for the red cap UE 100B, i.e., an initial BWP with a narrower bandwidth than the initial BWP for the general UE 100A (hereinafter referred to as a separate initial BWP), should be set independently from the initial BWP for the general UE 100A.

[0051] Here, since the redcap UE 100B may perform initial access in the initial BWP used for the general UE 100A, it is assumed that a BWP with BWP number 0 (BWP#0) is set in the redcap UE by common signaling, and then a separate initial BWP is set in the redcap UE 100B as a BWP set by RRC (i.e., a specified BWP with BWP number 1 or higher).

[0052] However, in the existing 3GPP technical specifications, the BWP set by the RRC is set by dedicated signaling, so the red cap UE 100B can use the separate initial BWP after the initial access. Therefore, there is a problem that the red cap UE 100B cannot use the separate initial BWP to perform the random access procedure during the initial access. In one embodiment described later, when the initial BWP is set as a BWP with a BWP number of 0 by common signaling, an operation for enabling the use of the separate initial BWP during the initial access will be described.

[0053] (Configuration of user device) Next, a configuration of the UE 100 according to this embodiment will be described with reference to Fig. 4. The UE 100 includes a communication unit 120 and a control unit 140.

[0054] The communication unit 120 performs wireless communication with the base station 200 by transmitting and receiving radio signals to and from the base station 200. The communication unit 120 has at least one receiving unit 121 and at least one transmitting unit 122. The receiving unit 121 and the transmitting unit 122 may be configured to include an antenna and an RF circuit. 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, and the like.

[0055] The receiving unit 121 may be referred to as a receiver (RX). The transmitting unit 122 may be referred to as a transmitter (TX). When the UE 100 is a general UE 100A, the number of receivers included in the communication unit 120 may be two to four. When the UE 100 is a redcap UE 100B, the number of receivers included in the communication unit 120 may be one or two.

[0056] The control unit 140 performs various controls in the UE 100. The control unit 140 controls communication with the base station 200 via the communication unit 120. The operation of the UE 100 described below may be an operation controlled by the control unit 140. The control unit 140 may include at least one processor capable of executing a program and a memory that stores the program. The processor may execute a program to perform the operation of the control unit 140. The control unit 140 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 a program executed by the processor, parameters related to the program, and data related to the program. The memory may include at least one of a ROM (Read Only Memory), an EPROM (Erasable Programmable Read Only Memory), an EEPROM (Electrically Erasable Programmable Read Only Memory), a RAM (Random Access Memory), and a flash memory. All or a part of the memory may be included in the processor.

[0057] In the UE 100 (red cap UE 100B) having communication capabilities reduced compared to the general UE 100A configured in this way, the receiver 121 receives common setting information from the base station 200 in the SIB, which specifies a predetermined BWP number other than the BWP number to which the initial BWP used for the general UE 100A is set, and sets a separate initial BWP different from the initial BWP. The controller 140 executes a random access procedure using the separate initial BWP. As a result, even if the BWP#0 used for the general UE 100A is set in the red cap UE 100B by common signaling, the separate initial BWP can be set in the red cap UE 100B as a BWP with a predetermined BWP number based on the common setting information received in the system information block. As a result, the red cap UE 100B can use the separate initial BWP during initial access.

[0058] Note that the operation of the functional units (specifically, at least one of communication unit 120 and control unit 140) included in UE 100 may be described as the operation of UE 100.

[0059] (Base station configuration) Next, the configuration of the base station 200 according to this embodiment will be described with reference to Fig. 5. The base station 200 has a wireless communication unit 220, a network communication unit 230, and a control unit 240.

[0060] The wireless communication unit 220 communicates with the UE 100 via an antenna under the control of the control unit 240. The wireless communication unit 220 has a receiving unit 221 and a transmitting unit 222. The receiving unit 221 converts a wireless signal received by the antenna into a received signal which is a baseband signal, performs signal processing on the received signal, and outputs the received signal to the control unit 240. The transmitting unit 222 performs signal processing on a transmission signal which is a baseband signal output by the control unit 240, converts the transmission signal into a wireless signal, and transmits the wireless signal from the antenna.

[0061] The network communication unit 230 transmits and receives signals to and from the network. For example, the network communication unit 230 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 communication unit 230 also receives signals from the core network device 300 connected via an NG interface, and transmits signals to the core network device 300.

[0062] The control unit 240 performs various controls in the base station 200. The control unit 240 controls, for example, communication with the UE 100 via the wireless communication unit 220. The control unit 240 also controls, for example, communication with a node (for example, an adjacent base station, a core network device 300) via the network communication unit 230. The operation of the base station 200 described below may be an operation under the control of the control unit 240.

[0063] The control unit 240 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 240. The control unit 240 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.

[0064] The base station 200 configured in this way communicates with a UE 100 (redcap UE 100B) having reduced communication capabilities compared to a general UE 100A. In the base station 200, the transmission unit 222 transmits common setting information in an SIB for setting a separate initial BWP different from the initial BWP by specifying a predetermined BWP number other than the BWP number for which the initial BWP used for the general UE 100A is set. The control unit 240 executes a random access procedure with the redcap UE 100B using the separate initial BWP. As a result, even if the BWP#0 used for the general UE 100A is set in the redcap UE 100B by common signaling, the separate initial BWP can be set in the redcap UE 100B as a BWP with a predetermined BWP number based on the common setting information received in the system information block. As a result, the redcap UE 100B can use the separate initial BWP during initial access.

[0065] The operation of the functional units (specifically, at least one of the wireless communication unit 220 (receiving unit 221 and / or transmitting unit 222), the network communication unit 230, and the control unit 240) included in the base station 200 may be described as the operation of the base station 200.

[0066] (System Operation) (1) First operation example A first operation example of the mobile communication system 1 will be described with reference to Fig. 6 to Fig. 12. In an initial state in Fig. 6, the redcap UE 100B may be in an RRC idle state or an RRC inactive state between the redcap UE 100B and the base station 200 (cell).

[0067] Step S101: The base station 200 (transmitter 222) transmits a synchronization signal and a physical broadcast channel block (hereinafter, SSB). The redcap UE 100B (receiver 121) receives the SSB from the base station 200.

[0068] An SSB consists of 4 Orthogonal Frequency Division Multiplexing (OFDM) symbols in the time domain and 240 consecutive subcarriers in the frequency domain. An SSB consists of a Primary Synchronization Signal (PSS), a Secondary Synchronization Signal (SSS), and a Physical Broadcast Channel (PBCH). Each of the PSS and SSS occupies one OFDM symbol and 127 subcarriers. The PBCH spans three OFDM symbols and 240 subcarriers. The location of the resource element to which the SSB is mapped is specified in the specification.

[0069] The PBCH transmits the Master Information Block (MIB). The MIB includes an information element (pdcch-ConfigSIB1) that determines the common control resource set (CORESET), the common search space, and the required PDCCH. The pdcch-ConfigSIB1 includes an information element (controlResourceSetZero) that is used to set CORESET#0 of the initial BWP. The controlResourceSetZero is represented by an integer value from 0 to 15.

[0070] As shown in Fig. 7, the base station 200 transmits multiple SSBs at different frequencies. In this operation example, the multiple SSBs are located in an initial BWP (SIB1-Configured initial DL BWP for general UE 100A) used for a general UE 100A configured by a system information block type 1 (SIB1) and an initial BWP (SIB1-Configured initial DL BWP for RedCap UE 100B) configured by SIB1. Of the multiple SSBs, the SSB (Pattern 1) is located in the initial BWP (MIB-Configured initial DL BWP) configured based on MIB1, and the SSB (Pattern 2 / 3) is located outside the initial BWP configured based on MIB1.

[0071] The redcap UE 100B (control unit 140) can receive (ie, detect) the SSB transmitted from the base station 200 and achieve time and / or frequency synchronization.

[0072] Moreover, the redcap UE 100B (control unit 140) acquires the MIB by receiving the SSB. The redcap UE 100B (control unit 140) configures an initial BWP based on CORESET#0 configured based on the MIB. The initial BWP (initial downlink BWP) configured based on CORESET#0 may be referred to as a "MIB Configured Initial DL BWP" or an "Initial DL BWP derived by MIB". Hereinafter, the initial BWP may be referred to as an MIB initial BWP. The redcap UE 100B (control unit 140) specifies a type 0-PDCCH CSS set (e.g., a bandwidth (24, 48, or 96 RB)) based on a setting value indicated by controlResourceSetZero in the MIB. As a result, the type 0-PDCCH CSS set is configured in the redcap UE 100B (control unit 140). The redcap UE 100B (control unit 140) monitors the system information block (specifically, SIB1) in the type 0-PDCCH CSS set using the MIB initial BWP.

[0073] Step S102: The base station 200 (transmitter 222) transmits SIB1. The redcap UE 100B (receiver 121) receives SIB1 from the base station 200. In this operation example, SIB1 is transmitted in "SIBs" in FIG. 7. Therefore, SIB1 is located in the MIB initial BWP. Note that in the area indicated by SIBs, not only SIB1 but also other SIBs may be transmitted.

[0074] The SIB1 includes first common setting information (for example, a parameter (locationAndBa ndwidth). Specifically, SIB1 includes an information element (ServingCellConfigCommonSIB) used to configure cell-specific parameters of a cell (serving cell) of the UE. The ServingCellConfigCommonSIB includes, as the first common configuration information, an information element (BWP-DownlinkCommon) used to configure common parameters of the downlink BWP and an information element (BWP-UplinkCommon) used to configure common parameters of the uplink BWP.

[0075] The UE 100 (control unit 140) sets an initial BWP based on BWP-DownlinkCommon and BWP-UplinkCommon in the ServingCellConfigCommonSIB. As shown in FIG. 9, the initial BWP is an initial BWP for the general UE 100A, and is set as a BWP (BWP#0) with a BWP number of 0. Although the BWP#0 is an initial BWP for the general UE 100A, the red cap UE 100B may be available for use. That is, the initial BWP for the general UE 100A may be an initial BWP that can be shared between the general UE 100A and the red cap UE 100B. In this way, the initial BWP for the general UE 100A is set as a BWP (BWP#0) with a BWP number of 0 in the UE 100 (control unit 140) by common signaling.

[0076] Moreover, the SIB1 includes second common setting information for setting a separate initial BWP different from the initial BWP used for the general UE 100A. Specifically, the SIB1 includes an information element (ServingCellConfigCommonSIB) used for setting a cell-specific parameter of a cell (serving cell) of the UE. As shown in FIG. 10, the ServingCellConfigCommonSIB includes an information element (DownlinkConfigCommonSIB) for providing a common downlink parameter of the cell. The DownlinkConfigCommonSIB includes second common setting information for specifying a predetermined BWP number other than the BWP number 0 (specifically, the BWP number 1) and setting a separate initial BWP different from the initial BWP for the general UE 100A. Specifically, the DownlinkConfigCommonSIB includes an information element (downlinkBWP-One-r17:BWP-DownlinkCommon) indicating the setting of the downlink BWP#1 for the primary cell (PCell) as the second common setting information. When the downlinkBWP-One-r17 field is set, the downlink BWP #1 may not include the entire CORESET #0 in the frequency domain. In this operation example, the downlink BWP #1 includes the entire CORESET #0 in the frequency domain. The downlinkBWP-One-r17 field may be optionally present when the method of setting the initial BWP to the red cap UE 100B supports access from the red cap UE by a method in which the initial BWP is set by common signaling rather than by dedicated signaling (so-called BWP setting option 1 described in Appendix B.2.). If not, the field does not need to be present.

[0077] In addition, as shown in Fig. 10, ServingCellConfigCommonSIB includes information elements (uplinkConfigCommon-r17, supplementaryUplinkConfig-r17) for setting a separate initial uplink BWP as second common setting information. uplinkConfigCommon-r17 indicates the setting of a separate initial uplink BWP for a normal uplink, and supplementaryUplinkConfig-r17 indicates the setting of a separate initial uplink BWP for an additional uplink. Each of uplinkConfigCommon-r17 and supplementaryUplinkConfig-r17 indicates the setting of a separate initial uplink BWP by an information element (UplinkConfigCommonSIB-r17) that provides common uplink parameters of the cell. As shown in FIG. 11, UplinkConfigCommon-r17 may include an information element (frequencyInfoUL-r17) indicating an absolute uplink frequency configuration and a subcarrier-specific virtual carrier, an information element (initialUplinkBWP-r17) indicating an initial uplink BWP configuration for a serving cell, an information element (timeAlignmentTimerCommon-r17) indicating a time alignment timer, and an information element (uplinkBWP-One-r17) indicating an uplink BWP#1 configuration for a primary cell. If the field of uplinkBWP-One-r17 is configured, the uplink BWP#1 may include a PRACH opportunity, a PUCCH, a PUSCH, and an SRS. The field of uplinkBWP-One-r17 may be optionally present if the UE supports access from a red-capped UE according to the BWP configuration option 1 described in Appendix B.2. as described above. Otherwise, the field may not be present.

[0078] In this way, the base station 200 (transmitter 222) transmits the second common setting information for setting the separate initial BWP (BWP#1) in SIB1. The redcap UE 100B (controller 140) sets the initial BWP based on the downlinkBWP-One-r17 and uplinkBWP-One-r17 in the ServingCellConfigCommonSIB. As shown in FIG. 9, the initial BWP is set as a BWP (BWP#1) with a BWP number of 1. The redcap UE 100B (controller 140) uses the BWP#1 based on this setting when in the RRC idle state or the RRC inactive state.

[0079] Step S103: The base station 200 and the red cap UE 100B may perform paging. The base station 200 (transmitter 222) transmits a PDCCH (DCI format (paging DCI) with a CRC scrambled by the P-RNTI added) in a corresponding CORESET and / or search space set (type 2-PDCCH CSS set). The base station 200 (transmitter 222) may transmit the paging DCI using a separate initial BWP or may transmit the paging DCI using an MIB initial BWP.

[0080] As shown in Fig. 7, in this operation example, the paging DCI is transmitted in an area located in the separate initial BWP and the MIB initial BWP (specifically, an area indicated by "Paging"). The paging DCI may include scheduling information indicating the scheduling of the PDSCH for transmitting the paging message. The base station 200 (transmitter 222) may transmit the paging message with the scheduling indicated by the scheduling information.

[0081] The redcap UE 100B (receiving unit 121) may monitor paging as execution of paging using a separate initial BWP (BWP#1). The redcap UE 100B (receiving unit 121) may monitor a PDCCH (paging DCI) in a type 2-PDCCH CSS set in the separate initial BWP (BWP#1). The redcap UE 100B (receiving unit 121) may receive a paging message based on scheduling information included in the paging DCI. The redcap UE 100B (control unit 140) determines whether or not its own unique identifier is included in the paging message. If its own identifier is included in the paging message, the redcap UE 100B (control unit 140) may assume that a call has been made, and may perform an operation of transitioning to an RRC connected state, for example.

[0082] Thereafter, the description will proceed on the assumption that a random access (RA) procedure is executed between the redcap UE 100B and the base station 200. In this operation example, the redcap UE 100B and the base station 200 execute the random access procedure using a separate initial BWP.

[0083] Step S111: The redcap UE 100B (transmitter 122) transmits a message 1 (hereinafter, MSG1) to the base station 200 using a separate initial BWP. The redcap UE 100B (transmitter 122) transmits MSG1 including a random access (RA) preamble on a physical random access channel (PRACH) in the separate initial BWP. The base station 200 (receiver 221) receives MSG1 from the redcap UE 100B.

[0084] As shown in FIG. 8, the PRACH is transmitted in a separate initial BWP (SIB1-Configured initial UL BWP for RedCap UE 100B). When the communication method is a time division duplex (TDD) method, the center frequency of the separate initial uplink BWP is the same as the center frequency of the separate initial downlink BWP. When the communication method is a frequency division duplex (FDD) method, the separate initial uplink BWP may be arranged at one end of the initial uplink BWP for the general UE 100A in the frequency direction. This prevents the initial uplink BWP for the general UE 100A from being divided by the separate initial uplink BWP in the frequency direction. As a result, a wide resource area can be secured as the initial uplink BWP for the general UE 100A, and time-frequency resources can be effectively utilized.

[0085] The redcap UE 100B (transmitting unit 122) may determine whether the frequency band of the separate initial BWP includes the frequency band of the MIB initial BWP. If the frequency band of the separate initial BWP includes the frequency band of the MIB initial BWP, the redcap UE 100B (transmitting unit 122) may execute a random access procedure using the separate initial BWP or the MIB initial BWP. That is, the redcap UE 100B (transmitting unit 122) may transmit MSG1 using the separate initial BWP or the MIB initial BWP. On the other hand, the redcap UE 100B (transmitting unit 122) may determine whether the frequency band of the separate initial BWP includes the frequency band of the MIB initial BWP. Contains If not, the random access procedure may be performed using the separate initial BWP. That is, the redcap UE 100B (transmitter 122) may transmit the MSG1 using the separate initial BWP without using the MIB initial BWP.

[0086] Step S112: The base station 200 (transmitter 222) transmits a message 2 (hereinafter, MSG2) to the redcap UE 100B. MSG2 is a random access (RA) response. The redcap UE 100B (receiver 121) receives MSG2 from the base station 200. As shown in FIG. 7, MSG2 is located in an area (specifically, an area indicated by "RA") located in the separate initial BWP and the MIB initial BWP.

[0087] The MSG2 includes, for example, preamble information indicating the RA preamble received from the red cap UE 100B, an uplink grant (UL grant) indicating a time-frequency resource used by the UE 100 to transmit the message 3, etc. The time-frequency resource may be located at a frequency within the separate initial BWP.

[0088] The redcap UE 100B (control unit 140) that has received the RA response executes the process of step S113 if the RA preamble it transmitted matches the RA preamble indicated by the preamble information received from the base station 200 in step S102.

[0089] Step S113: The redcap UE 100B (transmitter 122) transmits a message 3 (hereinafter, MSG3) to the base station 200. The redcap UE 100B (transmitter 122) transmits MSG3 to the base station 200 in the time-frequency resource allocated by the uplink grant. The base station 200 (receiver 221) receives MSG3 from the redcap UE 100B.

[0090] Step S114: The base station 200 (transmitter 222) transmits a message 4 (hereinafter, MSG4) to the redcap UE 100B. The base station 200 (transmitter 222) transmits MSG4 using a separate initial BWP. The redcap UE 100B (receiver 121) receives MSG4 from the base station 200 using the separate initial BWP.

[0091] MSG4 may include an RRC message, which is an RRC setup message, an RRC resumption message, or an RRC (re)establishment message. The RRC message may include an information element (ServingCellConfig) used to configure (add or change) the serving cell in the UE 100. As shown in FIG. 12, the ServingCellConfig may include an information element (downlinkBWP-One-r17) indicating a dedicated (UE-specific) configuration for the downlink BWP #1, and an information element (uplinkBWP-One-r17) indicating a dedicated (UE-specific) configuration for the uplink BWP #1. The downlinkBWP-One-r17 and the uplinkBWP-One-r17 may be dedicated configuration information that specifies a predetermined BWP number other than the BWP number 0 (specifically, the BWP number 1) and configures a dedicated BWP (BWP #1) used in the RRC connected state. Therefore, the base station 200 (transmitter 222) can transmit the dedicated configuration information by dedicated signaling during the random access procedure. The redcap UE 100B (receiving unit 121) can receive dedicated configuration information through dedicated signaling during the random access procedure.

[0092] The red cap UE 100B (control unit 140) configures a dedicated BWP based on downlinkBWP-One-r17 and uplinkBWP-One-r17 in the ServingCellConfig. As shown in Fig. 9, the dedicated BWP is configured as a BWP (BWP#1) with a BWP number of 1. When the red cap UE 100B (control unit 140) is in the RRC connected state, it uses the BWP#1 based on this configuration.

[0093] The redcap UE 100B (control unit 140) transitions from the RRC idle state or the RRC inactive state to the RRC connected state by the random access procedure. After that, the redcap UE 100B (control unit 140) in the RRC connected state communicates with the base station 200 using a dedicated BWP.

[0094] As described above, the base station 200 (control unit 240) transmits the second common setting information for setting the separate initial BWP in SIB1 by specifying a predetermined BWP number other than the BWP number (i.e., 0) to which the initial BWP used for the general UE 100A is set. The redcap UE 100B (receiving unit 121) receives the second common setting information from the base station 200 in SIB1. The base station 200 (control unit 240) and the redcap UE 100B (control unit 140) execute the random access procedure using the separate initial BWP. As a result, even if the BWP#0 used for the general UE 100A is set in the redcap UE 100B by common signaling, the separate initial BWP can be set as BWP#1 in the redcap UE 100B based on the second common setting information received in SIB1. As a result, the redcap UE 100B can use the separate initial BWP during initial access.

[0095] Also, the redcap UE 100B (receiving unit 121) may specify a predetermined BWP number during the random access procedure and receive dedicated setting information for setting a dedicated BWP to be used in the RRC connected state from the base station 200 by dedicated signaling. This allows the redcap UE 100B (receiving unit 121) to use the separate initial BWP immediately after the end of the random access procedure, that is, after receiving MSG4.

[0096] Furthermore, the redcap UE 100B (control unit 140) may monitor paging using a separate initial BWP. This allows the redcap UE 100B to use the separate initial BWP even before the execution of a random access procedure.

[0097] In addition, the redcap UE 100B (control unit 140) may execute the random access procedure using the separate initial BWP when the frequency band of the separate initial BWP does not include the frequency band of the MIB initial BWP, and may execute the random access procedure using the separate initial BWP or the MIB initial BWP when the frequency band of the separate initial BWP includes the frequency band of the MIB initial BWP. As a result, when the frequency band of the separate initial BWP does not include the frequency band of the MIB initial BWP, the redcap UE 100B (control unit 140) does not execute the random access procedure using the MIB initial BWP for the general UE 100A, and the occurrence of interference with the general UE 100A can be suppressed.

[0098] (2) Second operation example The second operation example will be described mainly with reference to Fig. 13, focusing on differences from the above operation examples. In the first operation example, the MIB initial BWP is common to the general UE 100A and the red cap UE 100B, but in this operation example, there is an MIB initial BWP for the red cap UE 100B.

[0099] As shown in Fig. 13, the separate initial BWP is arranged at one end of the initial BWP for the general UE 100A in the frequency direction. Specifically, the separate initial downlink BWP is arranged at one end of the initial downlink BWP for the general UE 100A in the frequency direction. Even if the communication method is the TDD method, the separate initial uplink BWP is arranged at one end of the initial uplink BWP for the general UE 100A in the frequency direction. Note that, when the communication method is the FDD method, the same as in the operation example 1.

[0100] In this operation example, an area in which an SSB is transmitted (hereinafter, SSB area), an area in which CORESET#0 and an SIB are transmitted (hereinafter, SIB area), an area in which paging (paging DCI) is transmitted (hereinafter, paging area), and an area in which an RA response (MSG2) is transmitted (hereinafter, RA area) are arranged in a separate initial BWP (SIB1-Configured initial DL BWP for RedCap UE100B) configured by SIB1. Therefore, settings related to SSB, CORESET#0, SIB, and random access procedure are made in UE100 so that the separate initial BWP is used. A cell in the separate initial BWP is considered to be a cell unique to the redcap UE100B.

[0101] On the other hand, within the initial uplink BWP for the general UE 100A and outside the separate initial BWP, an SSB area, a CORESET#0, an SIB area, a paging area, and an RA area are arranged for the general UE 100A. By arranging various areas for the red cap UE 100B in the separate initial BWP separately from various areas for the general UE 100A, the red cap UE 100B (control unit 140) can suppress the occurrence of interference with the general UE 100A by performing, for example, a random access procedure using the separate initial BWP.

[0102] Furthermore, when the redcap UE 100B (control unit 140) does not receive common setting information for setting a separate initial BWP, the redcap UE 100B (control unit 140) may execute a random access procedure using an MIB initial BWP that is an initial BWP set based on the MIB. As a result, for example, when the MIB initial BWP is an MIB initial BWP for the redcap UE 100B, the redcap UE 100B (control unit 140) can suppress the occurrence of interference with the general UE 100A by executing a random access procedure using the MIB initial BWP.

[0103] Even if the redcap UE 100B (control unit 140) has received the common setting information, if the setting based on the common setting information has not been completed, the redcap UE 100B may execute the random access procedure using the MIB initial BWP.

[0104] Furthermore, when the redcap UE 100B (control unit 140) has not received common setting information for setting a separate initial BWP, and the bandwidth of the initial BWP (i.e., BWP#0) for the general UE 100A set by SIB1 exceeds the maximum bandwidth (which may be referred to as UE maximum bandwidth) supported by the redcap UE 100B, the redcap UE 100B (control unit 140) may execute a random access procedure using the MIB initial BWP. On the other hand, when the redcap UE 100B (control unit 140) has not received common setting information, and the bandwidth of the initial BWP for the general UE 100A does not exceed the maximum bandwidth supported by the redcap UE 100B, the redcap UE 100B may execute a random access procedure using the initial BWP for the general UE 100A. The bandwidth of the MIB initial BWP is limited to any one of 24, 48, and 96 PRB, whereas the network 10 (base station 200) can set a bandwidth other than 24, 48, and 96 PRB as the bandwidth of the initial BWP set by SIB1, and the bandwidth of the initial BWP set by SIB1 is not limited to 24, 48, and 96 PRB. For this reason, for example, when the bandwidth of the initial BWP set by SIB1 for the general UE 100A is wider than the bandwidth of the MIB initial BWP, the random access procedure is performed using the initial BWP for the general UE 100A, thereby making it possible to suppress the occurrence of interference compared to the case where the MIB initial BWP is used.

[0105] Moreover, the redcap UE 100B (control unit 140) may monitor paging using a separate initial BWP. This allows the redcap UE 100B to use the separate initial BWP even before the random access procedure is executed. Furthermore, compared to a case where the redcap UE 100B (control unit 140) monitors paging using an initial BWP for the general UE 100A (specifically, an MIB initial BWP for the general UE 100A) as in a third operation example described later, the redcap UE 100B (control unit 140) can omit retuning between the MIB initial BWP for the general UE 100A and the separate initial BWP for each paging, which eliminates the need for processing time associated with retuning and reduces power consumption due to the retuning processing load.

[0106] (3) Third operation example With reference to Fig. 14, the third operation example will be described, focusing on differences from the above operation examples. In this operation example, unlike the second operation example, no SIB area is arranged in the separate initial BWP (SIB1-Configured initial DL BWP for RedCap UE100B). Other points are the same as the second operation example.

[0107] In order to obtain SIB1 and other SIBs, the redcap UE 100B (receiving unit 121) receives SIB1 and other SIBs using an initial BWP for the general UE 100A (specifically, an MIB initial BWP for the general UE 100A). The redcap UE 100B (receiving unit 121) may use the initial BWP for the general UE 100A only when receiving SIBs, and may use the initial BWP for the redcap UE 100B when receiving other information (e.g., SSB, paging DCI, etc.). Therefore, the redcap UE 100B may use the initial BWP for the general UE 100A only when it cannot execute communication processing using the initial BWP for the redcap UE 100B, and may use the initial BWP for the redcap UE 100B when it can execute communication processing using the initial BWP for the redcap UE 100B.

[0108] (4) Fourth operation example With reference to Fig. 15, the fourth operation example will be described, focusing on differences from the above operation examples. Unlike the third operation example, this operation example does not have a paging area in the separate initial BWP (SIB1-Configured initial DL BWP for RedCap UE100B). Other points are the same as the third operation example.

[0109] In order to execute paging, the redcap UE 100B (the receiving unit 121) monitors paging using the initial BWP for the general UE 100A.

[0110] (5) Fifth operation example With reference to Fig. 16, the fifth operation example will be described, focusing on differences from the above operation examples. In this operation example, a CORESET, a paging area, and an RA area are arranged in a separate initial BWP (SIB1-Configured initial DL BWP for RedCap UE100B). On the other hand, an SSB area, a CORESET#0, and an SIB area are not arranged in the separate initial BWP.

[0111] The redcap UE 100B (control unit 140) may use the separate initial BWP to monitor the set of PDCCH candidates in the CORESET, monitor paging, and execute the random access procedure. On the other hand, the redcap UE 100B (control unit 140) may use the MIB initial BWP for the general UE 100A when performing other processes (e.g., receiving SSB, receiving SIB, etc.). Therefore, the redcap UE 100B may use the initial BWP for the general UE 100A only when it cannot execute communication processes using the initial BWP for the redcap UE 100B, and may use the initial BWP for the redcap UE 100B when it can execute communication processes using the initial BWP for the redcap UE 100B.

[0112] In addition, as in this operation example, when the initial BWP for the red cap UE 100B (specifically, the downlink BWP #1) does not include the entire CORESET #0 of the frequency domain, the base station 200 (control unit 140) may set a field of an information element (downlinkBWP-One-r17) indicating the setting of the downlink BWP #1 in the DownlinkConfigCommonSIB, that is, the DownlinkConfigCommonSIB may include the downlinkBWP-One-r17. The red cap UE 100B (control unit 140) may determine that the initial BWP for the red cap UE 100B does not include the entire CORESET #0 of the frequency domain based on the downlinkBWP-One-r17. In this case, the red cap UE 100B (control unit 140) may receive, for example, an SSB, an SIB, etc., using the MIB initial BWP for the general UE 100A.

[0113] (6) Sixth operation example With reference to Fig. 17, the sixth operation example will be described, focusing mainly on the differences from the above operation examples. In this operation example, a CORESET and RA area are arranged in a separate initial BWP (SIB1-Configured initial DL BWP for RedCap UE100B). On the other hand, an SSB area, a CORESET#0, an SIB area, and a paging area are not arranged in the separate initial BWP.

[0114] The red cap UE 100B (control unit 140) may use the separate initial BWP to monitor the set of PDCCH candidates in the CORESET and to execute the random access procedure. On the other hand, the red cap UE 100B (control unit 140) may use the MIB initial BWP for the general UE 100A when performing other processes (for example, receiving SSB, monitoring paging, receiving SIB, etc.).

[0115] (Other embodiments) In each of the above-mentioned operation examples, the base station 200 (control unit 140) may specify a predetermined BWP number (for example, BWP number 1) other than the BWP number 0 and transmit an RRC message including dedicated setting information for setting a dedicated BWP (BWP#1) used in the RRC connected state in the target cell to be RRC connected after handover to the red cap UE 100B in the RRC connected state. The RRC message may include an information element (ServingCellConfigCommon) used to set a cell-specific parameter of the serving cell (target cell) of the UE 100. As shown in FIG. 18 and FIG. 19, the ServingCellConfigCommon may include an information element (downlinkBWP-One-r17) indicating a dedicated (UE common) setting for the downlink BWP#1 and an information element (uplinkBWP-One-r17) indicating a dedicated (UE common) setting for the uplink BWP#1. Therefore, the base station 200 (transmitter 222) can transmit the dedicated setting information by dedicated signaling before the handover procedure from the source cell (serving cell) to which the redcap UE 100B is RRC connected to the target cell is completed. The redcap UE 100B (receiver 121) can communicate with the target cell using the dedicated setting information and the BWP having a predetermined BWP number during or after the handover procedure.

[0116] In the above embodiment, the BWP number 1 is specified as a predetermined BWP number other than the BWP number 0, but this is not limited to this. Any number from the BWP number 2 to the maximum setting number supported by the red cap UE 100B (maximum 4 in the existing 3GPP technical specifications) may be specified.

[0117] In the above embodiment, when the SSB area, CORESET#0, SIB area, paging area, and RA area are arranged in the separate initial BWP (SIB1-Configured initial DL BWP for RedCap UE100B) for RedCap UE100B configured by SIB1 (in the case of the second operation example), the base station 200 (transmitting unit 222) may transmit an SIB (for example, SIB1) including common setting information for setting the separate initial BWP to the redcap UE100B by specifying BWP number 0 without specifying a predetermined BWP number other than BWP number 0. The common setting information may be, for example, BWP-DownlinkCommon and BWP-UplinkCommon in ServingCellConfigCommon. The redcap UE100B may set the separate initial BWP as BWP#0 based on the common setting information. In this case, even if the SIB includes the first common setting information, the redcap UE 100B does not need to set an initial BWP for the general UE 100A based on the first common setting information as BWP#0. In this case, the base station 200 (control unit 240) can set a BWP to the redcap UE 100B by the operation described in the existing 3GPP technical specifications.

[0118] In addition, if at least one of the SSB area, CORESET#0, SIB area, paging area, and RA area is not placed in the separate initial BWP for redcap UE 100B set by SIB1, the base station 200 (transmitter 222) may transmit a SIB including the first common setting information and the second common setting information, as in the above-mentioned embodiment.

[0119] In the above-described embodiment, a mobile communication system based on NR 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 conforming to a TS of any of LTE or other generation systems (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 toward the UE 100 in LTE. The mobile communication system 1 may be a system conforming to 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.

[0120] 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 that complies with a TS of any of LTE or other generation systems (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 toward the UE 100 in LTE. The mobile communication system 1 may be a system that complies with a TS of a standard other than the 3GPP standard.

[0121] The steps in the operations of the above-described embodiments do not necessarily have to be executed in chronological order according to the order described in the flow diagram or sequence diagram. For example, the steps in the operations may be executed in an order different from that described in the flow diagram or sequence diagram, or may be executed in parallel. Some of the steps in the operations may be deleted, and additional steps may be added to the process. Furthermore, each of the above-described operation flows is not limited to being executed separately and independently, but may be executed by combining two or more operation flows. For example, some steps of one operation flow may be added to another operation flow, or some steps of one operation flow may be replaced with some steps of another operation flow.

[0122] A program may be provided that causes a computer to execute each process performed by the UE 100 or the base station 200. The program may be recorded in a computer-readable medium. The computer-readable medium can be used to install the program in the computer. Here, the computer-readable medium on which the program is recorded may be a non-transient recording medium. The non-transient 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 Disc Read Only Memory). In addition, a circuit that executes each process performed by the UE 100 or the base station 200 may be integrated, and at least a part of the UE 100 or the base station 200 may be configured as a semiconductor integrated circuit (chip set, SoC (System On Chip)).

[0123] In the above embodiment, "transmit" may mean processing at least one layer in a protocol stack used for transmission, or may mean physically transmitting a signal wirelessly or wired. Alternatively, "transmit" may mean a combination of processing at least one layer and physically transmitting a signal wirelessly or wired. 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 wired. Alternatively, "receive" may mean a combination of processing at least one layer and physically receiving a signal wirelessly or wired. Similarly, "obtain / acquire" may mean obtaining information from stored information, obtaining information from information received from another node, or obtaining the 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 "based only on" and "based at least in part on." Similarly, "include" and "comprise" do not mean including only the recited items, but may include only the recited items, or may include additional items in addition to the recited items. Similarly, in this disclosure, "or" does not mean an exclusive or, but does mean an or. Furthermore, any reference to elements using designations such as "first," "second," etc., 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 way to distinguish 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 manner. In this disclosure, where articles are added by translation, such as, for example, a, an, and the in English, these articles are intended to include the plural unless the context clearly indicates otherwise.

[0124] Although the present disclosure has been described based on the embodiment, it is understood that the present disclosure is not limited to the embodiment or structure. The present disclosure also includes various modifications and modifications within the equivalent range. In addition, various combinations and forms, and other combinations and forms including only one element, more than one element, or less than one element, are also within the scope and concept of the present disclosure.

[0125] (Additional Note) The following additional features relate to the above-described embodiment.

[0126] (Appendix 1) A communication device (100, 100B) having a reduced communication capability compared to another communication device (100, 100A), a receiving unit (121) that receives common setting information from a base station (200) in a system information block, the common setting information specifying a predetermined bandwidth portion number other than a bandwidth portion number in which an initial bandwidth portion used in the other communication device (100, 100A) is set, and setting a separate initial bandwidth portion different from the initial bandwidth portion; A control unit (140) that executes a random access procedure using the separate initial bandwidth portion. Communication equipment (100, 100B).

[0127] (Appendix 2) The receiving unit (121) receives dedicated setting information for setting a dedicated bandwidth portion used in a radio resource control (RRC) connected state by designating the predetermined bandwidth portion number during the random access procedure from the base station (200) by dedicated signaling. 2. The communication device (100, 100B) according to claim 1.

[0128] (Appendix 3) The control unit (140) monitors paging using the separate initial bandwidth portion. A communication device (100, 100B) according to appendix 1 or 2.

[0129] (Appendix 4) The control unit (140) When the frequency band of the separate initial bandwidth portion does not include the frequency band of the MIB initial bandwidth portion, which is an initial bandwidth portion set based on a master information block, performing the random access procedure using the separate initial bandwidth portion; When the frequency band of the separate initial bandwidth portion includes the frequency band of the MIB initial bandwidth portion, the random access procedure is performed using the separate initial bandwidth portion or the MIB initial bandwidth portion. A communication device (100, 100B) according to any one of appendix 1 to 3.

[0130] (Appendix 5) When the control unit (140) has not received the common setting information, the control unit (140) executes the random access procedure using an MIB initial bandwidth portion that is an initial bandwidth portion that is set based on a master information block. A communication device (100, 100B) according to any one of appendix 1 to 4.

[0131] (Appendix 6) When the control unit (140) has not received the common setting information, If the bandwidth of the initial bandwidth portion exceeds the maximum bandwidth supported by the communication device (100, 100B), the random access procedure is performed using the MIB initial bandwidth portion; If the bandwidth of the initial bandwidth portion does not exceed the maximum bandwidth, the random access procedure is performed using the initial bandwidth portion. A communication device (100, 100B) according to appended claim 5.

[0132] (Appendix 7) A base station (200) that communicates with a communication device (100, 100B) having a reduced communication capability compared to other communication devices (100, 100A), A transmission unit (222) that transmits common setting information in a system information block, the common setting information setting a separate initial bandwidth portion different from the initial bandwidth portion by specifying a predetermined bandwidth portion number other than a bandwidth portion number in which an initial bandwidth portion used in the other communication device (100, 100A) is set; A control unit (240) that executes a random access procedure with the communication device (100, 100B) using the separate initial bandwidth portion. Base station (200).

[0133] (Appendix 8) A communication method executed in a communication device (100, 100B) having reduced communication capabilities compared to other communication devices (100, 100A), comprising: receiving common setting information from the base station (200) in a system information block, the common setting information specifying a predetermined bandwidth portion number other than a bandwidth portion number in which an initial bandwidth portion used in the other communication device (100, 100A) is set, and setting a separate initial bandwidth portion different from the initial bandwidth portion; performing a random access procedure using the separate initial bandwidth portion. Communication methods.

Claims

1. A receiving unit (121) that receives a master information block (MIB) including information for setting a bandwidth of a control resource set (CORESET) #0 from a base station (200) and receives a system information block (SIB) including first information indicating a position and a bandwidth of an initial downlink bandwidth portion in a frequency domain from the base station; A control unit (140) that executes a random access procedure for initial access, The control unit, when second information indicating a position and a bandwidth of an initial downlink bandwidth portion in a frequency domain and different from the first information is included in the SIB, and the initial downlink bandwidth portion based on the second information does not include the entire bandwidth of the CORESET #0, executes the random access procedure in the initial downlink bandwidth portion based on the second information; When the initial downlink bandwidth portion based on the second information includes the entire bandwidth of the CORESET #0 and the bandwidth of a synchronization signal and a physical broadcast channel block (SSB), a search space for paging of the initial downlink bandwidth portion based on the second information is set by the base station; The control unit monitors a physical downlink control channel (PDCCH) for the paging in the search space in the initial downlink bandwidth portion based on the second information. Communication device (100B).

2. When the initial downlink bandwidth portion based on the second information includes the entire bandwidth of the CORESET #0, the control unit executes the random access procedure in the bandwidth of the CORESET #0. The communication device according to claim 1 .

3. The receiving unit receives a message 2 and a message 4 in the random access procedure from the base station in the initial downlink bandwidth portion based on the second information.

3. A communication device according to claim 1 or 2.

4. When the second information is not included in the SIB and when the bandwidth indicated by the first information does not exceed a maximum bandwidth supported by the communication device, the receiving unit receives a message 2 and a message 4 in the random access procedure from the base station in the initial downlink bandwidth portion based on the first information.

3. A communication device according to claim 1 or 2.

5. The receiving unit receives the message 2 and the message 4 in the random access procedure from the base station in a bandwidth of the CORESET #0 of the initial downlink bandwidth portion based on the first information. The communication device according to claim 4.

6. The second information is information for a red cap user device.

3. A communication device according to claim 1 or 2.

7. a transmitter (222) for transmitting a master information block (MIB) including information for setting a bandwidth of a control resource set (CORESET) #0 to a communication device (100B) and transmitting a system information block (SIB) including first information indicating a position and a bandwidth of an initial downlink bandwidth portion in a frequency domain to the communication device; A control unit (240) that executes a random access procedure for an initial access of the communication device, The control unit includes second information indicating a position and a bandwidth of an initial downlink bandwidth portion in a frequency domain and different from the first information in the SIB, and when the initial downlink bandwidth portion based on the second information does not include the entire bandwidth of the CORESET #0, performs the random access procedure in the initial downlink bandwidth portion based on the second information; The control unit executes control to set a search space for paging of the initial downlink bandwidth portion based on the second information to the communication device when the initial downlink bandwidth portion based on the second information includes the entire bandwidth of the CORESET #0 and a bandwidth of a synchronization signal and a physical broadcast channel block (SSB); The transmitter transmits downlink control information for the paging to the communication device on a physical downlink control channel (PDCCH) of the search space in the initial downlink bandwidth portion based on the second information. Base station (200).

8. When the initial downlink bandwidth portion based on the second information includes the entire bandwidth of the CORESET #0, the control unit executes the random access procedure in the bandwidth of the CORESET #0. The base station according to claim 7.

9. The transmitting unit transmits a message 2 and a message 4 in the random access procedure to the communication device in the initial downlink bandwidth portion based on the second information. A base station as claimed in claim 7 or 8.

10. When the second information is not included in the SIB and when the bandwidth indicated by the first information does not exceed a maximum bandwidth supported by the communication device, the transmission unit transmits messages 2 and 4 in the random access procedure to the communication device in the initial downlink bandwidth portion based on the first information. A base station as claimed in claim 7 or 8.

11. The transmitting unit transmits the message 2 and the message 4 in the random access procedure to the communication device in a bandwidth of the CORESET #0 of the initial downlink bandwidth portion based on the first information. The base station according to claim 10.

12. The second information is information for a red cap user device. A communication device according to claim 7 or 8.

13. A communication method executed by a communication device (100B), receiving a master information block (MIB) including information for setting a bandwidth of a control resource set (CORESET) #0 from a base station (200), and receiving a system information block (SIB) including first information indicating a position and a bandwidth of an initial downlink bandwidth portion in a frequency domain from the base station; performing a random access procedure for initial access; The random access procedure is performed in the initial downlink bandwidth portion based on the second information when second information indicating a position and a bandwidth of an initial downlink bandwidth portion in a frequency domain and different from the first information is included in the SIB, and the initial downlink bandwidth portion based on the second information does not include the entire bandwidth of the CORESET #0; When the initial downlink bandwidth portion based on the second information includes the entire bandwidth of the CORESET #0, and a bandwidth of a synchronization signal and a physical broadcast channel block (SSB), a search space for paging of the initial downlink bandwidth portion based on the second information is set by the base station; and monitoring a Physical Downlink Control Channel (PDCCH) for the paging in the search space in the initial downlink bandwidth portion based on the second information. Communication methods.

14. The random access procedure is performed in a bandwidth of the CORESET #0 if the initial downlink bandwidth portion based on the second information includes the entire bandwidth of the CORESET #0. The communication method according to claim 13.

15. receiving a message 2 and a message 4 in the random access procedure from the base station in the initial downlink bandwidth portion based on the second information; A communication method according to claim 13 or 14.

16. If the second information is not included in the SIB and if the bandwidth indicated by the first information does not exceed a maximum bandwidth supported by the communication device, a message 2 and a message 4 in the random access procedure are received from the base station in the initial downlink bandwidth portion based on the first information. A communication method according to claim 13 or 14.

17. In a bandwidth of the CORESET #0 of the initial downlink bandwidth portion based on the first information, the message 2 and the message 4 in the random access procedure are received from the base station.

17. The communication method according to claim 16.

18. The second information is information for a red cap user device.

15. A communication device according to claim 13 or 14.