Terminal and wireless communication method

The proposed solution allows for the appropriate activation of the TCI state in wireless communication systems by selecting transmission settings for SBFD and non-SBFD symbols, addressing the challenge of improper beam configuration in SBFD environments.

WO2026028455A1PCT designated stage Publication Date: 2026-02-05NTT DOCOMO INC
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Patent Information

Application Number
PCT/JP2024/027798
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-08-02
Publication Date
2026-02-05

AI Technical Summary

Technical Problem

The challenge in wireless communication systems is the inability to properly activate the Transmission Configuration Indication (TCI) state when separate UL/DL beams are set for Sub-Band Full Duplex (SBFD) symbols and non-SBFD symbols, leading to improper beam configuration.

Method used

A terminal and wireless communication method that includes a control unit capable of selecting and determining the transmission setting instructions for SBFD and non-SBFD symbols based on received bit information, allowing appropriate activation of the Unified TCI state even when separate UL/DL beams are used.

Benefits of technology

Enables effective beam management and proper activation of the TCI state in SBFD environments, ensuring efficient and coordinated duplex operation.

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Abstract

This terminal transmits and receives a radio signal via a beam in accordance with a sub-band full-duplex communication method in which an uplink sub-band and a downlink sub-band are allocated in a non-overlapping manner in a frequency direction within a prescribed time based on time division duplex, and receives a command indicating activation of a single transmission configuration indication state for the radio signal. The terminal selects, on the basis of the command, bit information indicating the position of a transmission configuration indication corresponding to at least one among a first time unit to which the sub-band full-duplex communication method is applied and a second time unit to which the sub-band full-duplex communication method is not applied, and determines a transmission configuration indication to be applied to the first time unit and the second time unit.
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Description

Terminal and wireless communication method

[0001] The present disclosure relates to a terminal and a wireless communication method that supports SBFD.

[0002] The 3rd Generation Partnership Project (3GPP: registered trademark) is developing specifications for the 5th generation mobile communication system (5G, also known as New Radio (NR) or Next Generation (NG)), and is also developing specifications for the next generation, known as Beyond 5G, 5G Evolution, or 6G.

[0003] In 3GPP Release 19, an extension of the duplex method is being considered (Non-Patent Document 1). For example, with regard to Sub-Band non-overlapping Full Duplex (SBFD), a duplex method that enables simultaneous use of downlink (DL) and uplink (UL) within a carrier of a time division duplex (TDD) band, it has been agreed to consider a method of indicating to a terminal (User Equipment, UE) the positions (time positions) of UL sub-bands and DL sub-bands (which may also be called SBFD sub-bands) in the time direction (e.g., symbols), beam (spatial relation) control applied to physical channels or reference signals (RS) assigned to SBFD symbols and non-SBFD symbols, and the like.

[0004] Furthermore, it has been agreed to consider supporting separate beam configurations for SBFD and non-SBFD symbols (Non-Patent Document 2).

[0005] In addition, 3GPP Release-17 specifies a method (Unified TCI state) for setting a single (common) Transmission Configuration Indication (TCI) state for multiple UL / DL channels (which may be read as radio signals) (Non-Patent Document 3).

[0006] “New WID: Evolution of NR duplex operation: Sub-band full duplex (SBFD)”, RP-234035, 3GPP TSG RAN Meeting #102, 3GPP, December 2023 “Draft Report of 3GPP TSG RAN WG1 #117 v0.2.0”, 3GPP, May 2024 “3GPP TS 38.213 V18.2.0”, 3GPP, March 2024

[0007] However, when the Unified TCI state is set and UL / DL beams are set separately for SBFD symbols and non-SBFD symbols, the UE cannot determine the relationship between the Unified TCI state and the UL / DL beams, which results in a problem in which the TCI cannot be activated properly.

[0008] Therefore, the following disclosure has been made in consideration of this situation, and aims to provide a terminal and a wireless communication method that can appropriately activate TCI even when a Unified TCI state is set and UL / DL beams are set separately for SBFD symbols and non-SBFD symbols.

[0009] One aspect of the present disclosure is a terminal (UE200) that includes: a communication unit (radio signal transceiver unit 210) that transmits and receives radio signals via beams according to a subband full-duplex communication method in which uplink subbands and downlink subbands are allocated non-overlapping in the frequency direction within a specified time period based on time division duplex; a receiving unit (control signal / reference signal processing unit 240) that receives a command instructing activation of a single transmission setting instruction state for the radio signals; and a control unit (control unit 270) that selects, based on the command, bit information indicating the position of a transmission setting instruction that corresponds to at least one of a first time unit to which the subband full-duplex communication method is applied and a second time unit to which the subband full-duplex communication method is not applied, and determines the transmission setting instruction to be applied to the first time unit and the second time unit.

[0010] FIG. 1 is a diagram illustrating an overall schematic configuration of a wireless communication system 10. FIG. 2 is a diagram illustrating an example configuration of a radio frame, a subframe, and a slot used in the wireless communication system 10. FIG. 3 is a diagram illustrating an example configuration of TDD and XDD / SBFD. FIG. 4 is a functional block configuration diagram of a gNB 100 and a UE 200. FIG. 5 is a diagram illustrating an application example of TCI-State (Joint TCI-State, Separate TCI-State). FIG. 6 is a diagram illustrating an example configuration of TCI-State (Joint TCI-State, Separate TCI-State). FIG. 7 is a diagram illustrating an overall overview of operations related to TCI-State. FIG. 8 is a diagram illustrating an example mapping of TCI codepoints according to Operation Examples 1 to 4. FIG. 9 is a diagram illustrating an example mapping of TCI codepoints according to Operation Example 1-2 (Option 1). FIG. 10 is a diagram illustrating an example mapping of TCI codepoints according to Operation Example 1-2 (Option 2). FIG. 11 is a diagram illustrating an example mapping of TCI codepoints according to Operation Example 2-2 (Option 1). FIG. 12 is a diagram showing an example of TCI codepoint mapping according to operation example 2-2 (option 2). FIG. 13 is a diagram showing an example of the configuration of a MAC CE according to operation example 3-1. FIG. 14 is a diagram showing an example of TCI codepoint mapping according to operation example 3-2 (option 1). FIG. 15 is a diagram showing an example of TCI codepoint mapping according to operation example 3-2 (option 2). FIG. 16 is a diagram showing an example of the configuration of a MAC CE according to operation example 4-1. FIG. 17 is a diagram showing an example of TCI codepoint mapping according to operation example 4-2 (option 1). FIG. 18 is a diagram showing an example of TCI codepoint mapping according to operation example 4-2 (option 2). FIG. 19 is a diagram showing an example of the hardware configuration of the gNB 100 and the UE 200. FIG. 20 is a diagram showing an example of the configuration of a vehicle 2001.

[0011] Hereinafter, embodiments will be described with reference to the drawings. Note that the same or similar reference numerals are used to designate the same functions or configurations, and descriptions thereof will be omitted as appropriate.

[0012] (1) Overall Schematic Configuration of Wireless Communication System Fig. 1 is an overall schematic configuration diagram of a wireless communication system 10 according to this embodiment. The wireless communication system 10 is a wireless communication system conforming to 5G New Radio (NR) and includes a Next Generation-Radio Access Network 20 (hereinafter, NG-RAN 20) and a terminal 200 (hereinafter, UE 200, User Equipment, UE). Note that the wireless communication system 10 may also be a wireless communication system conforming to a scheme called Beyond 5G, 5G Evolution, or 6G.

[0013] The NG-RAN 20 includes a radio base station 100 (hereinafter, gNB 100). Note that the specific configuration of the radio communication system 10, including the number of gNBs and UEs, is not limited to the example shown in FIG. 1 .

[0014] The NG-RAN 20 actually includes a plurality of NG-RAN nodes, specifically, gNBs (or ng-eNBs), and is connected to a 5G core network (5GC, not shown). The NG-RAN 20 and the 5GC may also be simply referred to as a "network."

[0015] The gNB 100 is a 5G-compliant radio base station that performs 5G-compliant radio communication with the UE 200. The gNB 100 and the UE 200 are capable of supporting Massive MIMO (Multiple-Input Multiple-Output), which generates a more directional antenna beam (hereinafter referred to as beam BM) by controlling radio signals transmitted from multiple antenna elements, Carrier Aggregation (CA), which aggregates multiple component carriers (CCs), and Dual Connectivity (DC), which simultaneously communicates between the UE and two NG-RAN nodes.

[0016] The type of DC may be Multi-RAT Dual Connectivity (MR-DC), which uses multiple radio access technologies, or NR-NR Dual Connectivity (NR-DC), which uses only NR. MR-DC may also be E-UTRA-NR Dual Connectivity (EN-DC), in which the eNB constitutes the master node (MN) and the gNB constitutes the secondary node (SN), or NR-E-UTRA Dual Connectivity (NE-DC), which is the reverse.

[0017] The gNB 100 can transmit multiple beams BM with different transmission directions (which may also be simply referred to as directions, or radiation directions, or coverages) in a space- and time-division manner. Note that the gNB 100 may transmit multiple beams BM simultaneously.

[0018] The wireless communication system 10 may also support multiple frequency ranges (FR). Specifically, the wireless communication system 10 may support the following frequency ranges:

[0019] ・FR1: 410 MHz to 7.125 GHz ・FR2-1: 24.25 GHz to 52.6 GHz FR1 may use a sub-carrier spacing (SCS) of 15, 30, or 60 kHz and a bandwidth (BW) of 5 to 100 MHz. FR2-1 is a higher frequency than FR1 and may use a sub-carrier spacing (SCS) of 60 or 120 kHz (including 240 kHz) and a bandwidth (BW) of 50 to 400 MHz.

[0020] Note that SCS may be interpreted as numerology, which is defined in 3GPP TS38.300 and corresponds to one subcarrier spacing in the frequency domain.

[0021] Furthermore, the wireless communication system 10 also supports a frequency band higher than the FR2-1 frequency band. Specifically, the wireless communication system 10 supports a frequency band exceeding 52.6 GHz up to 71 GHz. Such a high frequency band may be referred to as FR2-2.

[0022] When using bands above 52.6 GHz, Cyclic Prefix-Orthogonal Frequency Division Multiplexing (CP-OFDM) / Discrete Fourier Transform - Spread (DFT-S-OFDM) with larger Sub-Carrier Spacing (SCS) may be applied.

[0023] Additionally, as mentioned above, in high frequency bands such as FR2-2, increased inter-carrier phase noise becomes an issue, which may necessitate the application of a larger (wider) SCS or a single-carrier waveform.

[0024] The larger the SCS, the shorter the symbol / cyclic prefix (CP) period and slot period (assuming a 14 symbol / slot configuration is maintained). Figure 2 shows an example of the configuration of radio frames, subframes, and slots used in the wireless communication system 10.

[0025] If the 14-symbol / slot configuration is maintained, the larger (wider) the SCS, the shorter the symbol period (and slot period). The time direction may be referred to as the time domain, symbol period, symbol length, or symbol time. The frequency direction may be referred to as the frequency domain, resource block, subcarrier, or BWP (Bandwidth part).

[0026] The frequency resources may include component carriers, subcarriers, resource blocks (RBs), resource block groups (RBGs), bandwidth parts (BWPs), etc. The time resources may include symbols, slots, minislots, subframes, radio frames, discontinuous reception (DRX) periods, etc.

[0027] The number of symbols constituting one slot does not necessarily have to be 14 (for example, 28 or 56 symbols). Also, the number of slots per subframe may differ depending on the SCS.

[0028] The wireless communication system 10 may use an SSB (SS / PBCH Block) that is configured from a synchronization signal (SS) and a downlink physical broadcast channel (PBCH).

[0029] SSBs are transmitted periodically from the network mainly to allow UE 200 to detect cell IDs and reception timings when starting communication. In NR, SSBs are also used to measure the reception quality of each cell. The SSB transmission periodicity may be specified as 5, 10, 20, 40, 80, 160 milliseconds, etc. Note that the initial access UE 200 may assume a transmission period of 20 milliseconds.

[0030] Furthermore, multiple duplexing methods may be used in the wireless communication system 10. Specifically, time division duplexing (TDD) and frequency division duplexing (FDD) may be used. The duplexing method may be interpreted as a method for realizing simultaneous transmission and reception (duplex communication) of downlink (DL) and uplink (UL).

[0031] Furthermore, the wireless communication system 10 may use another duplexing method that enables simultaneous use of DL and UL, specifically, XDD (Cross Division Duplex) / SBFD (Sub-Band non-overlapping Full Duplex).

[0032] Figure 3 shows an example of the configuration of TDD and XDD / SBFD. As shown in Figure 3, in TDD defined in 3GPP Releases 15 to 17, DL, UL, or F (flexible: can be set to DL or UL) can be set for each symbol and instructed to UE 200.

[0033] On the other hand, in XDD / SBFD, gNB100 can configure specific frequency resources (e.g., subbands) as DL and other frequency resources as UL at a specified time T, such as a symbol, and instruct UE200 accordingly.

[0034] XDD / SBFD allows simultaneous use of DL and UL within a carrier (CC) in the TDD band. Using the central portion of the frequency resources within the DL and UL carriers can avoid or mitigate potential cross-link interference (CLI) with adjacent carriers. XDD / SBFD may also be referred to as a type of full duplex, or FDD full duplex, or as sub-band (DL / UL) full duplex, as abbreviated as SBFD.

[0035] In SBFD, frequency resources for DL ​​(DL band) and frequency resources for UL (UL band) are allocated in a non-overlapping manner to the same duplex band on the same time period.

[0036] Specifically, XDD / SBFD is a scheme in which DL bands and UL bands are allocated non-overlappingly in the frequency direction within a specified time T based on time division duplex. The DL band may be interpreted as a DL subband, and the UL band may be interpreted as a UL subband. In the following, XDD / SBFD will be abbreviated simply as SBFD where appropriate.

[0037] (2) Functional Block Configuration of Wireless Communication System Next, a functional block configuration of the wireless communication system 10 will be described. Specifically, a functional block configuration of the UE 200 will be described. Fig. 4 is a functional block configuration diagram of the gNB 100 and the UE 200.

[0038] As shown in FIG. 4 , the UE 200 includes a radio signal transmitting / receiving unit 210, an amplifier unit 220, a modulation / demodulation unit 230, a control signal / reference signal processing unit 240, an encoding / decoding unit 250, a data transmitting / receiving unit 260, and a control unit 270.

[0039] It should be noted that Fig. 4 shows only the main functional blocks relevant to the description of the embodiment, and that the UE 200 (gNB 100) has other functional blocks (e.g., a power supply unit, etc.). Fig. 4 shows the functional block configuration of the UE 200, and for the hardware configuration, please refer to Fig. 19.

[0040] The radio signal transmitting and receiving unit 210 transmits and receives radio signals conforming to NR. The radio signal transmitting and receiving unit 210 can support Massive MIMO, which generates a more directional beam by controlling radio (RF) signals transmitted from multiple antenna elements, Carrier Aggregation (CA), which aggregates and uses multiple component carriers (CCs), and Dual Connectivity (DC), which simultaneously communicates between a UE and two NG-RAN nodes.

[0041] Furthermore, the radio signal transceiver 210 can transmit and receive radio signals in accordance with SBFD, i.e., subband full-duplex (SBFD) in which uplink subbands (UL subbands) and downlink subbands (DL subbands) are allocated non-overlappingly in the frequency direction within a specified time based on time division duplex (TDD). Of course, the radio signal transceiver 210 may also support duplexing methods such as TDD and FDD (frequency division duplex).

[0042] In particular, in this embodiment, the radio signal transceiver 210 can transmit and receive radio signals via a beam BM (see FIG. 1 ) in accordance with SBFD, in which UL subbands or DL ​​subbands are allocated non-overlappingly in the frequency direction within a specified time (e.g., symbol) based on TDD. In this embodiment, the radio signal transceiver 210 may constitute a communication unit.

[0043] Specifically, the radio signal transceiver 210 can transmit and receive UL / DL channels and reference signals (RSs), etc., by separately using UL / DL beams for SBFD symbols and UL / DL beams for non-SBFD symbols. That is, the network (wireless communication system 10) including the UE 200 may support settings related to individual beams for SBFD symbols and non-SBFD symbols.

[0044] The radio signal transceiver 210 may transmit multiple UL / DL channels via a single transmission / reception point (TRP). A TRP may simply be interpreted as a transmitting antenna. A single TRP may mean that radio signals such as UL / DL channels are transmitted from a transmission point in one geographical location. Note that multiple TRPs may be used instead of a single TRP.

[0045] The amplifier unit 220 is configured by a PA (Power Amplifier) / LNA (Low Noise Amplifier), etc. The amplifier unit 220 amplifies the signal output from the modulation / demodulation unit 230 to a predetermined power level. The amplifier unit 220 also amplifies the RF signal output from the radio signal transmission / reception unit 210.

[0046] The modem unit 230 performs data modulation / demodulation, transmission power setting, resource block allocation, etc. for each predetermined communication destination (e.g., gNB 100). The modem unit 230 may apply Cyclic Prefix-Orthogonal Frequency Division Multiplexing (CP-OFDM) / Discrete Fourier Transform - Spread (DFT-S-OFDM). Furthermore, DFT-S-OFDM may be used not only for the uplink (UL) but also for the downlink (DL).

[0047] The control signal and reference signal processor 240 executes processing related to various control signals transmitted and received by the UE 200 and processing related to various reference signals transmitted and received by the UE 200 .

[0048] Specifically, the control signal / reference signal processing unit 240 receives various control signals, for example, control signals of a radio resource control layer (RRC), transmitted via a predetermined control channel from the gNB 100. In addition, the control signal / reference signal processing unit 240 transmits various control signals to the gNB 100 via a predetermined control channel.

[0049] The control signal / reference signal processor 240 performs processing using reference signals (RS) such as a Demodulation Reference Signal (DMRS) and a Phase Tracking Reference Signal (PTRS).

[0050] DMRS is a terminal-specific reference signal (pilot signal) known between the base station and the terminal to estimate the fading channel used for data demodulation, while PTRS is a terminal-specific reference signal intended to estimate phase noise, which is an issue in high frequency bands.

[0051] In addition to DMRS and PTRS, the reference signals may also include Channel State Information-Reference Signal (CSI-RS), Sounding Reference Signal (SRS), and Positioning Reference Signal (PRS) for position information.

[0052] The channels include a control channel and a data channel. The control channel may include a physical downlink control channel (PDCCH), a physical uplink control channel (PUCCH), a random access channel (RACH, downlink control information (DCI) including a random access radio network temporary identifier (RA-RNTI)), a physical broadcast channel (PBCH), etc.

[0053] Furthermore, the data channel includes a physical downlink shared channel (PDSCH) and a physical uplink shared channel (PUSCH), etc. Data may refer to data transmitted via a data channel.

[0054] In this embodiment, a single transmission configuration indication state (TCI-State) may be set for multiple UL / DL channels. Specifically, one TCI state (which may be called a Unified TCI state) may be set. The Unified TCI state is specified in 3GPP Release-17 and may be called a unified TCI, a joint TCI, or the like.

[0055] The control signal and reference signal processing unit 240 may receive a command instructing activation of a Unified TCI state for a radio signal including multiple UL / DL channels, etc. In this embodiment, the control signal and reference signal processing unit 240 may constitute a receiving unit.

[0056] Specifically, the control signal / reference signal processor 240 may receive a media access control layer control element (MAC CE) instructing activation of the Unified TCI state from the network (gNB). This MAC CE (command) may be called a TCI-State Activation MAC CE. A MAC CE instructing deactivation of the Unified TCI state (TCI-State Deactivation MAC CE) may be set.

[0057] The MAC CE may indicate bit information indicating the position of a transmission configuration indication (TCI) associated with at least one of an SBFD symbol and a non-SBFD symbol. The bit information may be referred to as a TCI codepoint. The TCI codepoint may be represented by multiple bits (e.g., 3 bits). In this manner, the control signal / reference signal processor 240 may receive a MAC CE including the bit information (TCI codepoint).

[0058] The control signal / reference signal processing unit 240 may receive bit information individually associated with SBFD symbols and non-SBFD symbols. The SBFD symbols may be referred to as first time units to which the subband full-duplex communication method (SBFD) is applied. The non-SBFD symbols may be referred to as second time units to which the subband full-duplex communication method is not applied. Note that the first time units and the second time units do not necessarily have to be based on symbols, and may be based on slots or the like.

[0059] The control signal and reference signal processor 240 may receive bit information (TCI codepoint) applied to both the first time unit (SBFD symbol) and the second time unit (non-SBFD symbol). Alternatively, the control signal and reference signal processor 240 may receive bit information (TCI codepoint) applied to either the first time unit (SBFD symbol) or the second time unit (non-SBFD symbol).

[0060] The control signal and reference signal processor 240 may transmit capability information (UE Capability Information) of the UE 200 to the network. In particular, in this embodiment, the control signal and reference signal processor 240 may transmit capability information related to SBFD. The capability information may include, for example, whether or not UL / DL beams individually set for SBFD symbols and non-SBFD symbols are supported, whether or not UL / DL beams individually set for SBFD symbols and non-SBFD symbols are supported when the Unified TCI state is applied, and whether or not TCI-State Activation MAC CE indicating a TCI codepoint associated with an SBFD symbol is supported.

[0061] The encoding / decoding unit 250 performs data division / concatenation and channel coding / decoding for each predetermined communication destination (gNB 100 or another gNB).

[0062] Specifically, the encoding / decoding unit 250 divides the data output from the data transmitting / receiving unit 260 into pieces of a predetermined size, performs channel coding on the divided data, decodes the data output from the modem unit 230, and concatenates the decoded data.

[0063] The data transmitter / receiver 260 transmits and receives Protocol Data Units (PDUs) and Service Data Units (SDUs). Specifically, the data transmitter / receiver 260 assembles and disassembles PDUs / SDUs in multiple layers (such as a Medium Access Control layer (MAC), a Radio Link Control layer (RLC), and a Packet Data Convergence Protocol layer (PDCP)). The data transmitter / receiver 260 also performs data error correction and retransmission control based on Hybrid Automatic Repeat Request (Hybrid ARQ).

[0064] The control unit 270 controls each functional block constituting the UE 200. In particular, in this embodiment, the control unit 270 can control UL / DL beams when SBFD is applied.

[0065] Specifically, when a single transmission setting instruction state (Unified TCI state) is set for a radio signal including multiple UL / DL channels, the control unit 270 may control the TCI applied to SBFD symbols and non-SBFD symbols based on a MAC CE (TCI-State Activation MAC CE) including bit information received by the control signal / reference signal processing unit 240.

[0066] The control unit 270 may control the direction of the UL / DL beams used (i.e., transmitted and received) in SBFD symbols and non-SBFD symbols according to the TCI-State (which may include the Unified TCI state).

[0067] Specifically, the control unit 270 may configure the TCI-State applied to the UL / DL beam based on the TCI-State instructed by the network (gNB). The control unit 270 may activate the TCI-State applied to the UL / DL beam in accordance with a TCI-State activation request from the network. Furthermore, the control unit 270 may control the TCI-State applied to the UL / DL beam in accordance with a specific TCI-State (which may include SBFD symbols and non-SBFD symbols) instructed by the DCI.

[0068] In particular, in this embodiment, the control unit 270 may select bit information (TCI codepoint) indicating the position of a transmission setting instruction (TCI) associated with at least one of an SBFD symbol and a non-SBFD symbol based on a command received by the control signal / reference signal processing unit 240, specifically, a TCI-State Activation MAC CE, and determine the transmission setting instruction to be applied to the SBFD symbol and the non-SBFD symbol.

[0069] The bit information may specify any TCI included in a list containing multiple TCI codepoints, i.e., a TCI codepoint (which may also be called a TCI field) may be associated with a specific TCI.

[0070] The TCI for SBFD symbols and the TCI for non-SBFD symbols (hereinafter abbreviated as SBFD and non-SBFD as appropriate) may be associated with each other individually or in common. Based on the bit information configured in this way, the control unit 270 may determine the TCI to be applied to the SBFD symbols and the non-SBFD symbols.

[0071] (3) Operation of the Wireless Communication System Next, we will explain the operation of the wireless communication system 10. Specifically, we will explain the operation of the UE 200 when the Unified TCI state is set and UL / DL beams are set separately for the SBFD symbol and the non-SBFD symbol.

[0072] (3.1) Assumptions and Issues As described above, in the wireless communication system 10, a single (common) TCI-State (Unified TCI state) may be set for multiple UL / DL channels (which may also be read as wireless signals).

[0073] Figure 5 shows an example of the application of TCI-State (Joint TCI-State, Separate TCI-State). The beam indication (TCI state / spatial relation / SRI (SRS resource indicator) indication) according to the 3GPP Release 15 specification is flexible but complex. In practical operation, a gNB often indicates a single optimal UL / DL beam for all DL / UL channels (CHs) and reference signals (RSs). The CH / RS-independent beam indication according to the 3GPP Release 15 specification is inefficient in terms of signaling, gNB operation, and UE implementation.

[0074] Therefore, 3GPP Release 17 specifies a TCI framework with an improved beam indication method. The gNB indicates a specified TCI-State by RRC / MAC CE / DCI, and the TCI-State is applied to multiple DL / UL CHs / RSs.

[0075] Figure 6 shows an example of the configuration of TCI-State (Joint TCI-State, Separate TCI-State). In the Unified TCI state, a DCI-based TCI-State indication can be used. Specifically, the TCI-State is indicated by the TCI state field (maximum 3 bits) of DCI format 1_1 / 1_2.

[0076] One TCI codepoint (which may also be called bit information) can be associated with one "joint TCI" or "DL TCI and / or UL TCI."

[0077] Additionally, SBFD can be utilized in the wireless communication system 10. One of the main motivations for supporting separate UL / DL beams for SBFD and non-SBFD symbols is to apply different transmit / receive (TX / RX) antenna configurations for SBFD and non-SBFD symbols at the gNB side.

[0078] The details of how to support separate UL / DL beams for SBFD symbols and non-SBFD symbols have not yet been considered. In particular, if the Unified TCI state is configured and separate UL / DL beams are configured for SBFD symbols and non-SBFD symbols, the UE may not be able to determine the relationship between the Unified TCI state and the UL / DL beam, which may result in an inability to configure an appropriate beam.

[0079] (3.2) Operational Overview Figure 7 shows an overall overview of operations related to the TCI-State. As shown in Figure 7, operations related to the TCI-State may be configured by the phases of TCI-State configuration, TCI-State activation, and TCI-State indication.

[0080] As described above, separate UL / DL beams (hereinafter referred to as separate UL / DL beams as appropriate) may be supported in SBFD symbols and non-SBFD symbols, and TCI-State configuration for the UE may be performed by RRC.

[0081] TCI-State activation may be performed by sending a MAC CE to the UE, which may include a TCI codepoint.

[0082] The TCI-State indication may be performed by sending a DCI to the UE, which may include a TCI state field.

[0083] Separate TCI-States (which may be read as TCIs) for SBFD and non-SBFD may be mapped to TCI codepoints. Specifically, the following operation examples may be performed.

[0084] (Operation Example 1): Individual TCI codepoints for SBFD and non-SBFD are indicated by individual activation commands (TCI-State Activation MAC CE) (similar to mDCI mTRP Unified TCI state, where m means multiple and s means single).

[0085] - (Operation example 2): One TCI codepoint is mapped to both SBFD and non-SBFD TCI-States, and one activation command is applied to the common TCI codepoint (similar to sDCI mTRP Unified TCI state).

[0086] (Operation example 3): One TCI codepoint is mapped to either the TCI-State for SBFD or the TCI-State for non-SBFD, and one activation command is applied to the common TCI codepoint.

[0087] (Operation Example 4): A combination of Operation Example 2 and Operation Example 3. One TCI codepoint is mapped to a TCI-State for SBFD or a TCI-State for non-SBFD, and one activation command is applied to the common TCI codepoint.

[0088] Fig. 8 shows examples of TCI codepoint mapping according to operation examples 1 to 4. As shown in Fig. 8, in operation example 1, separate TCI codepoints for SBFD and non-SBFD may be configured. The TCI codepoints may be interpreted as mapping between the TCI field and the Joint TCI (TCI-State).

[0089] In operation example 2, two Joint TCIs may be mapped to the TCI field, one of which may be used for SBFD. In operation example 3, two Joint TCIs may be mapped to the TCI field, one of which may be explicitly indicated as being used for SBFD. In operation example 4, two Joint TCIs may be mapped to the TCI field, one of which may be explicitly indicated as being used for SBFD and one of which may be used for non-SBFD.

[0090] (3.3) Operation Example 1 In this operation example, separate TCI codepoint mappings for SBFD and non-SBFD are indicated by separate activation commands.

[0091] (3.3.1) Operation Example 1-1 The UE may receive one activation command used to map the TCI-State to a TCI codepoint for SBFD and another activation command used to map the TCI-State to a TCI codepoint for non-SBFD.

[0092] The activation command for TCI codepoint mapping for SBFD may be via a new MAC CE, or the conventional MAC CE defined in the 3GPP specifications may be reused, as follows:

[0093] (Alt. 1): A new MAC CE is introduced to activate / indicate TCI-State to TCI codepoint mapping for SBFD.

[0094] A conventional MAC CE may be used to indicate the mapping from TCI-State to TCI codepoint for non-SBFD.

[0095] (Alt. 2): The conventional MAC CE for TCI-State activation (e.g., the Unified TCI States Activation / Deactivation MAC CE defined in TS 38.321 Section 6.1.3.47) is reused to activate / indicate the TCI-State to TCI codepoint mapping for SBFD or non-SBFD.

[0096] When a UE receives a command to activate a TCI-State to TCI codepoint mapping, whether the TCI-State to TCI codepoint mapping indicated by the activation command is for SBFD or non-SBFD may be determined as follows:

[0097] (Alt. 2-1): Indicated by the reserved bit of the conventional MAC CE.

[0098] (Alt. 2-2): Determined by reinterpreting existing fields. For example, the CORESET Pool ID field is reinterpreted to indicate whether the activated TCI codepoint is for SBFD or non-SBFD.

[0099] (Alt. 2-3): Determined based on the PDSCH symbol containing the activation command. For example, if the PDSCH carrying the activation command is an SBFD symbol / non-SBFD symbol, the mapping from the indicated TCI codepoint to the TCI-State is for SBFD / non-SBFD.

[0100] (Alt. 2-4): Determined based on the symbol of the HARQ (hybrid automatic repeat request)-ACK PUCCH corresponding to the PDSCH containing the activation command. For example, if the HARQ-ACK PUCCH corresponding to the PDSCH containing the activation command is an SBFD / non-SBFD symbol, the indicated mapping is for SBFD / non-SBFD.

[0101] (3.3.2) Operation Example 1-2 In the case of TCI codepoint mapping for SBFD, the indicated TCI-State may be a newly configured individual SBFD TCI-State or a TCI-State configured according to the conventional 3GPP specifications, and the following options may be applied:

[0102] (Option 1): In the case of TCI codepoint mapping for SBFD and non-SBFD, the indicated TCI-State may be the TCI-State set according to the conventional 3GPP specifications.

[0103] When the UE receives an activation command for TCI codepoint mapping for SBFD / non-SBFD, the activation command may indicate that up to X Joint TCI-States or up to X sets of TCI-States, where each set of TCI-States includes one DL TCI-State and one UL TCI-State, are to be mapped to the TCI codepoint of the DCI field "Transmission Configuration Indication".

[0104] The value of X may be equal to 8 or may be greater than or less than 8. Also, the value of X may be the same or different between the TCI codepoint mapping for SBFD and the TCI codepoint mapping for non-SBFD.

[0105] (Option 2): In the case of SBFD TCI codepoint mapping, the indicated TCI-State may follow the newly configured individual SBFD joint TCI-State or the SBFD DL and UL TCI-State. In the case of non-SBFD TCI codepoint mapping, the indicated TCI-State may follow the non-SBFD TCI-State.

[0106] If the UE determines that the received activation command is TCI codepoint mapping for SBFD (see Operation Example 1-1), the activation command may indicate that up to X joint TCI-states for SBFD or up to X sets of TCI-states, each set of TCI-states including one SBFD DL TCI-state and one SBFD UL TCI-state, are to be mapped to the TCI codepoint of the DCI field "Transmission Configuration Indication." The value of X may be equal to 8, or may be greater than / less than 8.

[0107] If the UE determines that the received activation command is a non-SBFD TCI codepoint mapping, the activation command may indicate that up to X non-SBFD joint TCI-states or up to X sets of TCI-states, each set of TCI-states including one non-SBFD DL TCI-state and one non-SBFD UL TCI-state, are to be mapped to the TCI codepoint of the DCI field "Transmission Configuration Indication". The value of X may be equal to, greater than, or less than 8.

[0108] Fig. 9 shows an example of TCI codepoint mapping according to operation example 1-2 (option 1), and Fig. 10 shows an example of TCI codepoint mapping according to operation example 1-2 (option 2).

[0109] (3.4) Operation Example 2 In this operation example, one activation command for common TCI codepoint mapping is applied, and one TCI codepoint may be mapped to both SBFD and non-SBFD TCI-States.

[0110] (3.4.1) Operation Example 2-1 The UE may receive an activation command used to map up to X sets of TCI-States, each set including two Joint TCI-States (one Joint TCI-State for SBFD and one Joint TCI-State for non-SBFD), or up to X sets of TCI-States, each set including two DL TCI-States (one DL TCI for SBFD and one DL TCI for non-SBFD) and / or two UL TCI-States (one UL TCI for SBFD and one UL TCI for non-SBFD), to TCI codepoints in the DCI field “Transmission Configuration Indication”.

[0111] The value of X may be equal to 8 or may be greater / less than 8. The activation command may be via a new MAC CE or the legacy MAC CE defined in the 3GPP specifications may be reused, as follows:

[0112] (Alt. 1): A new MAC CE is introduced to map TCI codepoints to SBFD and non-SBFD TCI-States.

[0113] (Alt. 2): To map SBFD and non-SBFD TCI-State to TCI codepoint, the conventional MAC CE for TCI-State activation (e.g., the MAC CE defined in TS 38.321 Section 6.1.3.70 / 6.1.3.71) is reused.

[0114] When the UE receives a conventional MAC CE (e.g., a MAC CE that activates / deactivates the Unified TCI state for Joint TCI-State defined in TS 38.321 Section 6.1.3.70 and / or a MAC CE that activates / deactivates the Unified TCI state for individual TCI-State defined in TS 38.321 Section 6.1.3.71), whether the TCI codepoint mapping indicated by the activation command is interpreted as per the conventional 3GPP specification or reinterpreted to map SBFD and non-SBFD TCI-States to TCI codepoints may be determined as follows:

[0115] (Alt. 2-1): Indicated by the reserved bit of the conventional MAC CE.

[0116] (Alt. 2-2): Determined based on RRC parameters for enabling / disabling separate TCI-States for SBFD and non-SBFD. For example, if the RRC parameters indicate that separate TCI-States are enabled for SBFD and non-SBFD, the UE may reinterpret the conventional MAC CE and map the TCI-States for SBFD and non-SBFD to each TCI codepoint.

[0117] (3.4.2) Operation Example 2-2 For each set of TCI-State for a TCI codepoint, the TCI-State for SBFD may be obtained from the newly configured individual TCI-State for SBFD or from the legacy TCI-State, and the following options may be applied:

[0118] (Option 1): For each set of TCI-State for a TCI codepoint, the TCI-State for SBFD may be derived from the conventional TCI-State.

[0119] (Option 2): For each set of TCI-States for a TCI codepoint, the TCI-State for SBFD may be obtained from the newly configured individual SBFD TCI-State.

[0120] Fig. 11 shows an example of TCI codepoint mapping according to operation example 2-2 (option 1), and Fig. 12 shows an example of TCI codepoint mapping according to operation example 2-2 (option 2).

[0121] (3.5) Operation Example 3 In this operation example, one activation command for common TCI codepoint mapping is applied, and one TCI codepoint may be mapped to either a TCI-State for SBFD or a TCI-State for non-SBFD.

[0122] (3.5.1) Operation Example 3-1 The UE may receive an activation command for mapping up to X Joint TCI-States, where each Joint TCI-State is either a Joint TCI-State for SBFD or a Joint TCI-State for non-SBFD, or up to X TCI-States (one DL TCI-State for SBFD and one UL TCI-State for SBFD) and / or TCI-State pairs to TCI codepoints in the DCI field (one DL TCI-State for non-SBFD and one UL TCI-State for non-SBFD).

[0123] The value of X may be equal to 8 or may be greater / less than 8. The activation command may be via a new MAC CE or the legacy MAC CE defined in the 3GPP specifications may be reused, as follows:

[0124] (Alt. 1): A new MAC CE is introduced to map the TCI codepoint to a TCI-State for SBFD or non-SBFD.

[0125] (Alt. 2): To map SBFD or non-SBFD TCI-State to TCI codepoint, the conventional MAC CE for TCI-State activation (e.g., Unified TCI States Activation / Deactivation MAC CE defined in TS 38.321 Section 6.1.3.47) is reused.

[0126] When the UE receives a conventional MAC CE (e.g., a MAC CE defined in TS 38.321 Section 6.1.3.47), whether the TCI codepoint mapping indicated by the activation command is interpreted as per the conventional 3GPP specification or reinterpreted to map the TCI-State for SBFD or non-SBFD to the TCI codepoint may be determined as follows:

[0127] (Alt. 2-1): Indicated by the reserved bit of the conventional MAC CE.

[0128] (Alt. 2-2): Determined by reinterpreting existing fields. For example, the "CORESET Pool ID" field is reinterpreted to indicate whether the activated TCI codepoint is for SBFD or non-SBFD.

[0129] (Alt. 2-3): Determined based on RRC parameters for enabling / disabling separate TCI-States for SBFD and non-SBFD. For example, if the RRC parameters indicate that separate TCI-States are enabled for SBFD and non-SBFD, the UE may reinterpret the conventional MAC CE defined in TS 38.321 Section 6.1.3.47 and map the TCI-State for SBFD or non-SBFD to each TCI codepoint.

[0130] 13 shows an example of the configuration of a MAC CE according to operation example 3-1. In the case of a TCI codepoint, the UE may determine whether the TCI codepoint is mapped to a TCI-State for SBFD or non-SBFD as follows.

[0131] (Opt-a): Indicated by bits per TCI codepoint.

[0132] If a legacy MAC CE (e.g., the Unified TCI States Activation / Deactivation MAC CE defined in TS 38.321 Section 6.1.3.47) is reused, the following options may apply:

[0133] (Opt a-1): Reuses reserved bits to indicate whether the TCI-State ID indicated by the TCI codepoint is for SBFD or non-SBFD.

[0134] ・(Opt a-2): "P i " field or "D / U" field is reinterpreted to indicate whether the TCI-State ID indicated by the TCI codepoint is for SBFD or non-SBFD.

[0135] (Opt a-3): The "D / U" field is reinterpreted to indicate whether the TCI-State ID indicated by the TCI codepoint is for SBFD or non-SBFD.

[0136] (Opt-b): The first Y TCI codepoints may be mapped to SBFD / non-SBFD TCI-States, and the remaining TCI codepoints may be mapped to non-SBFD / non-SBFD TCI-States. The value of Y may be determined based on the value of X (e.g., Y=X / 2). Alternatively, it may be set by RRC or indicated by a bit in MAC CE.

[0137] (3.5.2) Operation Example 3-2 For a TCI codepoint that is mapped to a TCI-State for SBFD, the TCI-State for SBFD may follow the newly configured individual TCI-State for SBFD or the conventional TCI-State, and the following options may be applied:

[0138] (Option 1): The TCI-State for SBFD may be obtained from the conventional TCI-State.

[0139] - (Option 2): The TCI-State for SBFD may be obtained from the newly configured individual SBFD TCI-State.

[0140] Fig. 14 shows an example of TCI codepoint mapping according to operation example 3-2 (option 1), and Fig. 15 shows an example of TCI codepoint mapping according to operation example 3-2 (option 2).

[0141] (3.6) Operation Example 4 In this operation example, one activation command for common TCI codepoint mapping is applied, and one TCI codepoint may be mapped to a TCI-State for SBFD and / or a TCI-State for non-SBFD.

[0142] (3.6.1) Operation Example 4-1 The UE may have up to X Joint TCI-States (each including either for SBFD or for non-SBFD), and / or pairs of Joint TCI-States, each pair including one Joint TCI-State for SBFD and one Joint TCI-State for non-SBFD, or each set including one DL TCI for SBFD or non-SBFD, one UL TCI for SBFD or non-SBFD, (one DL TCI for SBFD, one DL TCI for non-SBFD), (one UL TCI for SBFD, one UL TCI for non-SBFD), (one DL TCI (for non-SBFD), one UL TCI (for non-SBFD)), or (one DL TCI for SBFD, one UL TCI for SBFD, one DL TCI for non-SBFD, one UL TCI (for non-SBFD)), The UE may receive an activation command used to map up to X sets of TCI-States, including the TCI (Transmission Configuration Indication) to the TCI codepoint of the DCI field "Transmission Configuration Indication".

[0143] The value of X may be equal to 8 or may be greater / less than 8. The activation command may be via a new MAC CE or the legacy MAC CE defined in the 3GPP specifications may be reused, as follows:

[0144] (Alt. 1): A new MAC CE is introduced to map TCI codepoints to SBFD and non-SBFD TCI-States.

[0145] (Alt. 2): Conventional MAC CE for TCI-State activation (e.g., MAC CE defined in TS 38.321 Sections 6.1.3.47 / 6.1.3.70 / 6.1.3.71) is reused to map SBFD or non-SBFD TCI-State to TCI codepoint.

[0146] When the UE receives a conventional MAC CE (e.g., a MAC CE for activating / deactivating a Unified TCI state defined in TS 38.321 Section 6.1.3.47, a MAC CE for activating / deactivating a Unified TCI state for a Joint TCI-State defined in TS 38.321 Section 6.1.3.70, or a MAC CE for activating / deactivating a Unified TCI state for an individual TCI-State defined in TS 38.321 Section 6.1.3.71), whether the TCI codepoint mapping indicated by the activation command is interpreted as per the conventional 3GPP specification or reinterpreted to map SBFD / non-SBFD TCI-State to TCI codepoint may be determined as follows:

[0147] (Alt. 2-1): Indicated by the reserved bit of the conventional MAC CE.

[0148] (Alt. 2-2): Determined based on the RRC parameters for enabling / disabling separate TCI states for SBFD and non-SBFD. For example, if the RRC parameters indicate that separate TCI states are to be enabled for SBFD and non-SBFD, the UE may reinterpret the conventional MAC CE of TS 38.321 (e.g., the Unified TCI States Activation / Deactivation MAC CE defined in TS 38.321 Section 6.1.3.47 and / or the Enhanced Unified TCI States Activation / Deactivation MAC CE for Joint TCI States defined in TS 38.321 Section 6.1.3.70 and / or the Enhanced Unified TCI States Activation / Deactivation MAC CE for Separate TCI States defined in TS 38.321 Section 6.1.3.71) and map the SBFD or non-SBFD TCI states to each TCI codepoint.

[0149] 16 shows an example of the configuration of a MAC CE according to operation example 4-1. In the case of a TCI codepoint, the UE may determine whether the TCI codepoint is mapped to a TCI-State for SBFD / non-SBFD only, or whether the TCI codepoint is mapped to a TCI-State for SBFD and a TCI-State for non-SBFD, as follows.

[0150] (Opt-a): Indicated by bits per TCI codepoint.

[0151] For example, one bit may be used to indicate whether the TCI state is mapped to a TCI state for SBFD / non-SBFD only, or to a TCI state for SBFD and non-SBFD.

[0152] When a TCI codepoint is mapped to only SBFD / non-SBFD, another bit may be used to indicate whether it is mapped to an SBFD TCI-State or a non-SBFD TCI-State. For example, when a conventional MAC CE (e.g., the Unified TCI States Activation / Deactivation MAC CE defined in TS 38.321 Section 6.1.3.47) is reused, the "Pi" field or the "D / U" field may be reinterpreted to indicate whether the i-th TCI codepoint is mapped to an SBFD / non-SBFD TCI-State or to an SBFD and non-SBFD TCI-State.

[0153] "P i If the value of " is set to 0 / 1, the i-th TCI codepoint is mapped only for SBFD / non-SBFD, and the "D / U" field may be reused to indicate whether the i-th TCI codepoint is mapped to a TCI-State for SBFD or a TCI-State for non-SBFD.

[0154] "P i " is set to 1 / 0, the i-th TCI codepoint may be mapped to an SBFD TCI-State and a non-SBFD TCI-State. For example, two bits may indicate one of three possibilities for each TCI codepoint: (mapping to an SBFD TCI-State), (mapping to a non-SBFD TCI-State), or (mapping to an SBFD TCI-State and a non-SBFD TCI-State).

[0155] (Opt-b): The first / last Y1 TCI codepoint may be mapped to both SBFD and non-SBFD TCI-States, the subsequent / previous Y2 TCI codepoint may be mapped to non-SBFD / non-SBFD TCI-States, and the main TCI codepoint may be mapped to SBFD / non-SBFD TCI-States.

[0156] The value of Y1 / Y2 may be determined based on the value of X (e.g., Y1=X / 2), or may be set by RRC or indicated by a bit in MAC CE.

[0157] (3.6.2) Operation Example 4-2 In the case of TCI codepoint mapping to TCI-State for SBFD, the TCI-State for SBFD may follow the newly configured individual SBFD TCI-State or the conventional TCI-State, and the following options may be applied:

[0158] (Option 1): The TCI-State for SBFD may be obtained from the conventional TCI-State.

[0159] - (Option 2): The TCI-State for SBFD may be obtained from the newly configured individual SBFD TCI-State.

[0160] Fig. 17 shows an example of TCI codepoint mapping according to operation example 4-2 (option 1), and Fig. 18 shows an example of TCI codepoint mapping according to operation example 4-2 (option 2).

[0161] (3.7) UE Capability A UE may report the presence or absence of the following capabilities (UE Capability Information) regarding SBFD to the network. The UE Capability Information may be defined for each UE, frequency range (FR), frequency channel (FC), etc. Furthermore, RRC signaling and configuration for reporting the UE Capability Information may be defined.

[0162] Support for separate SBFD and non-SBFD TCI codepoints activated by separate activation commands; Support for MAC CE to indicate mapping of SBFD TCI states and non-SBFD TCI states to a single TCI codepoint; Support for MAC CE to indicate mapping of SBFD TCI states or non-SBFD TCI states to a single TCI codepoint; Support for MAC CE to indicate mapping of SBFD TCI states or non-SBFD TCI states (or both) to a single TCI codepoint. According to the above-described operational example, even when a Unified TCI state is configured and separate UL / DL beams are configured, the UE can determine the relationship between the Unified TCI state and the corresponding UL / DL beam and perform appropriate beam configuration. Specifically, the UE can receive SBFD and non-SBFD TCI codepoints (bit information) and configure the corresponding UL / DL beams based on the corresponding TCI codepoints. This enables transmission and reception of appropriate UL / DL beams using SBFD symbols and non-SBFD symbols while applying the Unified TCI state.

[0163] (4) Other Embodiments Although the embodiments have been described above, it will be obvious to those skilled in the art that the present invention is not limited to the description of the embodiments, and that various modifications and improvements are possible.

[0164] For example, in the above-described embodiment, the term "subband" is used, but the subband may simply be called a band, or may be called by other similar terms such as auxiliary band, spare band, etc. Furthermore, XDD / SBFD may be a provisional name, and may be called by other similar terms as described above.

[0165] Also, in the above description, configure, activate, update, indicate, enable, specify, and select may be interchangeable. Similarly, link, associate, correspond, and map may be interchangeable, and allocate, assign, monitor, and map may be interchangeable.

[0166] Furthermore, specific, dedicated, UE-specific, and UE-dedicated may be interchangeable. Similarly, common, shared, group-common, UE-common, and UE-shared may be interchangeable.

[0167] In the present disclosure, terms such as "precoding," "precoder," "weight (precoding weight)," "Quasi-Co-Location (QCL)," "Transmission Configuration Indication state (TCI state)," "spatial relation," "spatial domain filter," "transmit power," "phase rotation," "antenna port," "antenna port group," "layer," "number of layers," "rank," "resource," "resource set," "resource group," "beam," "beam width," "beam angle," "antenna," "antenna element," "panel," etc. may be used interchangeably.

[0168] The block diagram ( FIG. 4 ) used to explain the above-described embodiment shows functional blocks. These functional blocks (components) are realized by any combination of hardware and / or software. Furthermore, the method for realizing each functional block is not particularly limited. That is, each functional block may be realized using a single device that is physically or logically coupled, or may be realized using two or more physically or logically separated devices that are directly or indirectly connected (e.g., wired, wireless, etc.) and these multiple devices. The functional block may also be realized by combining software with the single device or multiple devices.

[0169] Functions include, but are not limited to, judgment, determination, judgment, calculation, computation, processing, derivation, investigation, search, confirmation, reception, transmission, output, access, resolution, selection, selection, establishment, comparison, assumption, expectation, consideration, broadcasting, notifying, communicating, forwarding, configuring, reconfiguring, allocating, mapping, and assignment. For example, a functional block (component) that performs transmission is called a transmitting unit or transmitter. As mentioned above, there are no particular limitations on how each is implemented.

[0170] Furthermore, the above-described gNB100 and UE200 (the devices) may function as a computer that performs processing of the wireless communication method of the present disclosure. Figure 19 is a diagram showing an example of the hardware configuration of the devices. As shown in Figure 19, the devices may be configured as a computer device including a processor 1001, a memory 1002, a storage 1003, a communication device 1004, an input device 1005, an output device 1006, a bus 1007, etc.

[0171] In the following description, the term "apparatus" can be interpreted as a circuit, a device, a unit, etc. The hardware configuration of the apparatus may be configured to include one or more of the apparatuses shown in the drawings, or may be configured to exclude some of the apparatuses.

[0172] Each functional block of the device (see FIG. 4) is realized by any hardware element of the computer device or a combination of the hardware elements.

[0173] In addition, each function of the device is realized by loading specified software (programs) onto hardware such as processor 1001 and memory 1002, causing processor 1001 to perform calculations, control communication via communication device 1004, and control at least one of reading and writing data in memory 1002 and storage 1003.

[0174] The processor 1001 controls the entire computer by running, for example, an operating system, and may be configured as a central processing unit (CPU) including an interface with peripheral devices, a control unit, an arithmetic unit, and registers.

[0175] The processor 1001 also reads programs (program codes), software modules, data, etc. from at least one of the storage 1003 and the communication device 1004 into the memory 1002 and executes various processes in accordance with these. The programs used are those that cause a computer to execute at least some of the operations described in the above-described embodiments. Furthermore, the various processes described above may be executed by a single processor 1001, or may be executed simultaneously or sequentially by two or more processors 1001. The processor 1001 may be implemented by one or more chips. The programs may be transmitted from a network via a telecommunications line.

[0176] The memory 1002 is a computer-readable recording medium and may be configured by at least one of, for example, a read-only memory (ROM), an erasable programmable ROM (EPROM), an electrically erasable programmable ROM (EEPROM), a random access memory (RAM), etc. The memory 1002 may also be called a register, a cache, a main memory (primary storage device), etc. The memory 1002 may store a program (program code), a software module, etc., capable of executing a method according to an embodiment of the present disclosure.

[0177] Storage 1003 is a computer-readable recording medium, and may be, for example, at least one of an optical disk such as a Compact Disc ROM (CD-ROM), a hard disk drive, a flexible disk, a magneto-optical disk (e.g., a compact disk, a digital versatile disk, a Blu-ray disc), a smart card, a flash memory (e.g., a card, a stick, a key drive), a floppy disk, a magnetic strip, etc. Storage 1003 may also be referred to as an auxiliary storage device. The above-mentioned recording medium may be, for example, a database, a server, or other suitable medium including at least one of memory 1002 and storage 1003.

[0178] The communication device 1004 is hardware (transmission / reception device) for communicating between computers via at least one of a wired network and a wireless network, and is also called, for example, a network device, a network controller, a network card, or a communication module.

[0179] The communication device 1004 may be configured to include a high-frequency switch, a duplexer, a filter, a frequency synthesizer, etc. to realize, for example, at least one of Frequency Division Duplex (FDD) and Time Division Duplex (TDD).

[0180] The input device 1005 is an input device (e.g., a keyboard, a mouse, a microphone, a switch, a button, a sensor, etc.) that receives input from the outside. The output device 1006 is an output device (e.g., a display, a speaker, an LED lamp, etc.) that outputs to the outside. Note that the input device 1005 and the output device 1006 may be integrated into one device (e.g., a touch panel).

[0181] Furthermore, each device such as the processor 1001 and the memory 1002 is connected to a bus 1007 for communicating information. The bus 1007 may be configured using a single bus, or may be configured using different buses between each device.

[0182] Furthermore, the device may be configured to include hardware such as a microprocessor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a programmable logic device (PLD), or a field programmable gate array (FPGA), and some or all of the functional blocks may be realized by the hardware. For example, the processor 1001 may be implemented using at least one of these pieces of hardware.

[0183] Furthermore, the notification of information is not limited to the aspects / embodiments described in the present disclosure, and may be performed using other methods. For example, the notification of information may be performed by physical layer signaling (e.g., Downlink Control Information (DCI), Uplink Control Information (UCI)), higher layer signaling (e.g., RRC signaling, Medium Access Control (MAC) signaling, broadcast information (Master Information Block (MIB), System Information Block (SIB))), other signals, or a combination thereof. Furthermore, the RRC signaling may be referred to as an RRC message, and may be, for example, an RRC Connection Setup message, an RRC Connection Reconfiguration message, or the like.

[0184] Each aspect / embodiment described in the present disclosure may be applied to at least one of a system using Long Term Evolution (LTE), LTE-Advanced (LTE-A), SUPER 3G, IMT-Advanced, a 4th generation mobile communication system (4G), a 5th generation mobile communication system (5G), a 6th generation mobile communication system (6G), an xth generation mobile communication system (xG) (where x is, for example, an integer or a decimal), Future Radio Access (FRA), New Radio (NR), W-CDMA (registered trademark), GSM (registered trademark), CDMA2000, Ultra Mobile Broadband (UMB), IEEE 802.11 (Wi-Fi (registered trademark)), IEEE 802.16 (WiMAX (registered trademark)), IEEE 802.20, Ultra-WideBand (UWB), Bluetooth (registered trademark), or other suitable system, and a next-generation system extended based on these. Furthermore, a combination of multiple systems (e.g., a combination of at least one of LTE and LTE-A with 5G) may also be applied.

[0185] The order of the procedures, sequences, flowcharts, etc. of each aspect / embodiment described in this disclosure may be changed unless it is consistent. For example, the methods described in this disclosure present elements of various steps using an example order, and are not limited to the particular order presented.

[0186] In the present disclosure, a specific operation described as being performed by a base station may also be performed by its upper node in some cases. In a network consisting of one or more network nodes having a base station, it is clear that various operations performed for communication with a terminal may be performed by at least one of the base station and another network node other than the base station (e.g., MME or S-GW, etc., but are not limited to these). Although the above example illustrates a case where there is one other network node other than the base station, a combination of multiple other network nodes (e.g., MME and S-GW) may also be used.

[0187] Information, signals (information, etc.) may be output from a higher layer (or a lower layer) to a lower layer (or a higher layer), or may be input and output via multiple network nodes.

[0188] The input and output information may be stored in a specific location (for example, a memory) or may be managed using a management table. The input and output information may be overwritten, updated, or added. The output information may be deleted. The input information may be transmitted to another device.

[0189] The determination may be made based on a value represented by one bit (0 or 1), a Boolean value (true or false), or a numerical comparison (e.g., comparison with a predetermined value).

[0190] The aspects / embodiments described in this disclosure may be used alone, in combination, or switched depending on the implementation. Notification of predetermined information (e.g., notification that "X is true") is not limited to explicit notification, but may be implicit (e.g., not notifying the predetermined information).

[0191] Software shall be construed broadly to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executable files, threads of execution, procedures, functions, etc., whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise.

[0192] Software, instructions, information, etc. may also be transmitted or received over a transmission medium. For example, if software is transmitted from a website, server, or other remote source using wired technologies (such as coaxial cable, fiber optic cable, twisted pair, Digital Subscriber Line (DSL)), and / or wireless technologies (such as infrared, microwave), then these wired and / or wireless technologies are included within the definition of transmission media.

[0193] The information, signals, etc. described in this disclosure may be represented using any of a variety of different technologies. For example, data, instructions, commands, information, signals, bits, symbols, chips, etc. that may be referred to throughout the above description may be represented by voltages, currents, electromagnetic waves, magnetic fields or magnetic particles, optical fields or photons, or any combination thereof.

[0194] Note that terms described in this disclosure and terms necessary for understanding this disclosure may be replaced with terms having the same or similar meanings. For example, at least one of a channel and a symbol may be a signal (signaling). Furthermore, a signal may be a message. Furthermore, a component carrier (CC) may be called a carrier frequency, a cell, a frequency carrier, etc.

[0195] As used in this disclosure, the terms "system" and "network" are used interchangeably.

[0196] Furthermore, the information, parameters, etc. described in the present disclosure may be expressed using absolute values, may be expressed using relative values ​​from a predetermined value, or may be expressed using other corresponding information. For example, a radio resource may be indicated by an index.

[0197] The names used for the above-described parameters are not intended to be limiting in any way. Furthermore, the mathematical expressions using these parameters may differ from those explicitly disclosed in this disclosure. The various channels (e.g., PUCCH, PDCCH, etc.) and information elements may be identified by any suitable names, and therefore the various names assigned to these various channels and information elements are not intended to be limiting in any way.

[0198] In this disclosure, terms such as "base station (BS)," "radio base station," "fixed station," "NodeB," "eNodeB (eNB)," "gNodeB (gNB)," "access point," "transmission point," "reception point," "transmission / reception point," "cell," "sector," "cell group," "carrier," and "component carrier" may be used interchangeably. Base stations may also be referred to by terms such as macrocell, small cell, femtocell, and picocell.

[0199] A base station can accommodate one or more (e.g., three) cells (also called sectors). When a base station accommodates multiple cells, the overall coverage area of ​​the base station can be divided into multiple smaller areas, and each smaller area can be provided with communication services by a base station subsystem (e.g., a small indoor base station (Remote Radio Head: RRH)).

[0200] The terms "cell" or "sector" refer to part or all of the coverage area of ​​a base station and / or base station subsystem that provides communication services within that coverage area.

[0201] In the present disclosure, the base station transmitting information to a terminal may be interpreted as the base station instructing the terminal to control or operate based on the information.

[0202] In this disclosure, the terms "Mobile Station (MS)," "user terminal," "User Equipment (UE)," "terminal," etc. may be used interchangeably.

[0203] A mobile station may also be referred to by those skilled in the art as a subscriber station, mobile unit, subscriber unit, wireless unit, remote unit, mobile device, wireless device, wireless communication device, remote device, mobile subscriber station, access terminal, mobile terminal, wireless terminal, remote terminal, handset, user agent, mobile client, client, or some other suitable terminology.

[0204] At least one of the base station and the mobile station may be referred to as a transmitting device, a receiving device, a communication device, etc. At least one of the base station and the mobile station may be a device mounted on a mobile object, the mobile object itself, etc. The mobile object may be a vehicle (e.g., a car, an airplane, etc.), an unmanned mobile object (e.g., a drone, an autonomous vehicle, etc.), or a robot (manned or unmanned). At least one of the base station and the mobile station may also include devices that do not necessarily move during communication operations. For example, at least one of the base station and the mobile station may be an Internet of Things (IoT) device such as a sensor.

[0205] Furthermore, a base station in the present disclosure may be read as a mobile station (user terminal, the same applies hereinafter). For example, the aspects / embodiments of the present disclosure may be applied to a configuration in which communication between a base station and a mobile station is replaced with communication between multiple mobile stations (which may be called, for example, Device-to-Device (D2D) or Vehicle-to-Everything (V2X)). In this case, the mobile station may be configured to have the functions of a base station. Furthermore, terms such as "uplink" and "downlink" may be read as terms corresponding to terminal-to-terminal communication (for example, "side"). For example, terms such as an uplink channel and a downlink channel may be read as a side channel (or sidelink).

[0206] Similarly, a mobile station in the present disclosure may be interpreted as a base station, in which case the base station may have the functions of a mobile station.

[0207] A radio frame may be composed of one or more frames in the time domain. Each of the one or more frames in the time domain may be called a subframe. A subframe may further be composed of one or more slots in the time domain. A subframe may have a fixed time length (e.g., 1 ms) that is independent of numerology.

[0208] Numerology may be communication parameters that apply to the transmission and / or reception of a signal or channel, such as subcarrier spacing (SCS), bandwidth, symbol length, cyclic prefix length, transmission time interval (TTI), number of symbols per TTI, radio frame structure, specific filtering operations performed by the transceiver in the frequency domain, and specific windowing operations performed by the transceiver in the time domain.

[0209] A slot may consist of one or more symbols in the time domain (such as an Orthogonal Frequency Division Multiplexing (OFDM) symbol, a Single Carrier Frequency Division Multiple Access (SC-FDMA) symbol, etc.) A slot may be a numerology-based time unit.

[0210] A slot may include multiple minislots. Each minislot may consist of one or more symbols in the time domain. A minislot may also be called a subslot. A minislot may consist of fewer symbols than a slot. A PDSCH (or PUSCH) transmitted in a time unit larger than a minislot may be called PDSCH (or PUSCH) mapping type A. A PDSCH (or PUSCH) transmitted using a minislot may be called PDSCH (or PUSCH) mapping type B.

[0211] The radio frame, subframe, slot, minislot, and symbol all represent time units for transmitting signals, and may be referred to by other names corresponding to the radio frame, subframe, slot, minislot, and symbol.

[0212] For example, one subframe may be referred to as a transmission time interval (TTI), multiple consecutive subframes may be referred to as a TTI, or one slot or one minislot may be referred to as a TTI. That is, at least one of the subframe and the TTI may be a subframe (1 ms) in existing LTE, a period shorter than 1 ms (e.g., 1-13 symbols), or a period longer than 1 ms. Note that the unit representing the TTI may be called a slot, minislot, etc., instead of a subframe.

[0213] Here, TTI refers to, for example, the smallest time unit for scheduling in wireless communication. For example, in an LTE system, a base station schedules each user terminal to allocate radio resources (such as frequency bandwidth and transmission power that can be used by each user terminal) in TTI units. Note that the definition of TTI is not limited to this.

[0214] The TTI may be a transmission time unit for a channel-encoded data packet (transport block), a code block, a code word, etc., or may be a processing unit for scheduling, link adaptation, etc. When a TTI is given, the time interval (e.g., the number of symbols) to which a transport block, a code block, a code word, etc. is actually mapped may be shorter than the TTI.

[0215] In addition, when one slot or one minislot is called a TTI, one or more TTIs (i.e., one or more slots or one or more minislots) may be the minimum time unit for scheduling, and the number of slots (minislots) constituting the minimum time unit for scheduling may be controlled.

[0216] A TTI having a time length of 1 ms may be referred to as a regular TTI (TTI in LTE Rel. 8-12), normal TTI, long TTI, regular subframe, normal subframe, long subframe, slot, etc. A TTI shorter than a regular TTI may be referred to as a shortened TTI, short TTI, partial or fractional TTI, shortened subframe, short subframe, minislot, subslot, slot, etc.

[0217] In addition, a long TTI (e.g., a normal TTI, a subframe, etc.) may be interpreted as a TTI having a time length of more than 1 ms, and a short TTI (e.g., a shortened TTI, etc.) may be interpreted as a TTI having a TTI length shorter than the TTI length of a long TTI and equal to or greater than 1 ms.

[0218] A resource block (RB) is a resource allocation unit in the time domain and the frequency domain, and may include one or more consecutive subcarriers in the frequency domain. The number of subcarriers included in an RB may be the same regardless of numerology, for example, 12. The number of subcarriers included in an RB may be determined based on numerology.

[0219] The time domain of an RB may include one or more symbols and may have a length of one slot, one minislot, one subframe, or one TTI, each of which may consist of one or more resource blocks.

[0220] Note that one or more RBs may also be called a physical resource block (PRB), a sub-carrier group (SCG), a resource element group (REG), a PRB pair, an RB pair, etc.

[0221] Furthermore, a resource block may be composed of one or more resource elements (REs). For example, one RE may be a radio resource region of one subcarrier and one symbol.

[0222] A Bandwidth Part (BWP) (which may also be referred to as a fractional bandwidth) may represent a subset of contiguous common resource blocks (RBs) for a given numerology on a given carrier, where the common RBs may be identified by their index relative to a common reference point of the carrier. PRBs may be defined in a given BWP and numbered within that BWP.

[0223] The BWP may include a BWP for UL (UL BWP) and a BWP for DL ​​(DL BWP). One or more BWPs may be configured for a UE within one carrier.

[0224] At least one of the configured BWPs may be active, and the UE may not expect to transmit or receive a given signal / channel outside the active BWP. Note that the terms "cell," "carrier," etc. in this disclosure may be read as "BWP."

[0225] The above-described structures of the radio frame, subframe, slot, minislot, and symbol are merely examples. For example, the number of subframes included in a radio frame, the number of slots per subframe or radio frame, the number of minislots included in a slot, the number of symbols and RBs included in a slot or minislot, the number of subcarriers included in an RB, the number of symbols in a TTI, the symbol length, the cyclic prefix (CP) length, and other configurations may be changed in various ways.

[0226] The terms "connected," "coupled," or any variation thereof, refer to any direct or indirect connection or coupling between two or more elements, and may include the presence of one or more intermediate elements between two elements that are "connected" or "coupled" to each other. The coupling or connection between elements may be physical, logical, or a combination thereof. For example, "connected" may be read as "access." As used in this disclosure, two elements may be considered to be "connected" or "coupled" to each other using one or more wires, cables, and / or printed electrical connections, as well as electromagnetic energy having wavelengths in the radio frequency range, microwave range, and optical (both visible and invisible) range, as some non-limiting and non-exhaustive examples.

[0227] The reference signal may also be abbreviated as Reference Signal (RS) and may be called a pilot depending on the applicable standard.

[0228] As used in this disclosure, the phrase "based on" does not mean "based only on," unless expressly stated otherwise. In other words, the phrase "based on" means both "based only on" and "based at least on."

[0229] The "means" in the configuration of each of the above devices may be replaced with "part," "circuit," "device," etc.

[0230] As used in this disclosure, any reference to an element using a designation such as "first," "second," etc. 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.

[0231] When the terms "include," "including," and variations thereof are used in this disclosure, these terms are intended to be inclusive, similar to the term "comprising." Furthermore, when the term "or" is used in this disclosure, it is not intended to be an exclusive or.

[0232] In this disclosure, where articles are added by translation, such as a, an, and the in English, the disclosure may include that the nouns following these articles are in the plural form.

[0233] As used in this disclosure, the terms "determining" and "determining" may encompass a wide variety of actions. "Determining" and "determining" may include, for example, judging, calculating, computing, processing, deriving, investigating, looking up, searching, inquiring (e.g., searching in a table, database, or other data structure), ascertaining, and the like. "Determining" and "determining" may also include receiving (e.g., receiving information), transmitting (e.g., sending information), input, output, accessing (e.g., accessing data in memory), and the like. Furthermore, "judgment" and "decision" can include regarding resolving, selecting, choosing, establishing, comparing, etc. as having been "judged" or "decided." In other words, "judgment" and "decision" can include regarding some action as having been "judged" or "decided." Furthermore, "judgment (decision)" can be interpreted as "assuming," "expecting," "considering," etc.

[0234] In the present disclosure, the term "A and B are different" may mean "A and B are different from each other." The term may also mean "A and B are each different from C." Terms such as "separate" and "coupled" may also be interpreted in the same way as "different."

[0235] 20 shows an example of the configuration of a vehicle 2001. As shown in Fig. 20, the vehicle 2001 includes a drive unit 2002, a steering unit 2003, an accelerator pedal 2004, a brake pedal 2005, a shift lever 2006, left and right front wheels 2007, left and right rear wheels 2008, an axle 2009, an electronic control unit 2010, various sensors 2021 to 2029, an information service unit 2012, and a communication module 2013.

[0236] The drive unit 2002 is composed of, for example, an engine, a motor, or a hybrid of an engine and a motor. The steering unit 2003 includes at least a steering wheel (also called a handle) and is configured to steer at least one of the front wheels and the rear wheels based on the operation of the steering wheel operated by the user. The electronic control unit 2010 is composed of a microprocessor 2031, memory (ROM, RAM) 2032, and a communication port (IO port) 2033. Signals from various sensors 2021 to 2027 provided in the vehicle are input to the electronic control unit 2010. The electronic control unit 2010 may also be called an ECU (Electronic Control Unit).

[0237] The signals from the various sensors 2021 to 2028 include a current signal from a current sensor 2021 that senses the current of the motor, a rotation speed signal of the front and rear wheels obtained by a rotation speed sensor 2022, an air pressure signal of the front and rear wheels obtained by an air pressure sensor 2023, a vehicle speed signal obtained by a vehicle speed sensor 2024, an acceleration signal obtained by an acceleration sensor 2025, an accelerator pedal depression amount signal obtained by an accelerator pedal sensor 2029, a brake pedal depression amount signal obtained by a brake pedal sensor 2026, a shift lever operation signal obtained by a shift lever sensor 2027, and a detection signal for detecting obstacles, vehicles, pedestrians, etc. obtained by an object detection sensor 2028.

[0238] The information service unit 2012 is composed of various devices, such as a car navigation system, an audio system, speakers, a television, and a radio, for providing various types of information such as driving information, traffic information, and entertainment information, and one or more ECUs for controlling these devices. The information service unit 2012 uses information obtained from external devices via the communication module 2013, etc., to provide various types of multimedia information and multimedia services to the occupants of the vehicle 1.

[0239] The driving assistance system unit 2030 is composed of various devices that provide functions for preventing accidents and reducing the driver's driving burden, such as millimeter-wave radar, LiDAR (Light Detection and Ranging), cameras, positioning locators (e.g., GNSS, etc.), map information (e.g., high-definition (HD) maps, autonomous vehicle (AV) maps, etc.), gyro systems (e.g., IMU (Inertial Measurement Unit), INS (Inertial Navigation System), etc.), AI (Artificial Intelligence) chips, and AI processors, as well as one or more ECUs that control these devices. The driving assistance system unit 2030 also transmits and receives various information via the communication module 2013 to realize driving assistance functions or autonomous driving functions.

[0240] The communication module 2013 can communicate with the microprocessor 2031 and components of the vehicle 1 via the communication port. For example, the communication module 2013 transmits and receives data via the communication port 2033 to and from a driving unit 2002, a steering unit 2003, an accelerator pedal 2004, a brake pedal 2005, a shift lever 2006, left and right front wheels 2007, left and right rear wheels 2008, an axle 2009, a microprocessor 2031 and memory (ROM, RAM) 2032 in the electronic control unit 2010, and sensors 2021 to 2028, which are provided in the vehicle 2001.

[0241] The communication module 2013 is a communication device that can be controlled by the microprocessor 2031 of the electronic control unit 2010 and can communicate with an external device. For example, it transmits and receives various information to and from the external device via wireless communication. The communication module 2013 may be located either inside or outside the electronic control unit 2010. The external device may be, for example, a base station, a mobile station, or the like.

[0242] The communication module 2013 transmits, via wireless communication to an external device, a current signal from the current sensor that is input to the electronic control unit 2010. The communication module 2013 also transmits, via wireless communication to an external device, the rotation speed signals of the front and rear wheels acquired by a rotation speed sensor 2022, the air pressure signals of the front and rear wheels acquired by an air pressure sensor 2023, the vehicle speed signal acquired by a vehicle speed sensor 2024, the acceleration signal acquired by an acceleration sensor 2025, the accelerator pedal depression amount signal acquired by an accelerator pedal sensor 2029, the brake pedal depression amount signal acquired by a brake pedal sensor 2026, the shift lever operation signal acquired by a shift lever sensor 2027, and the detection signals for detecting obstacles, vehicles, pedestrians, etc. acquired by an object detection sensor 2028, all of which are input to the electronic control unit 2010.

[0243] The communication module 2013 receives various information (traffic information, traffic signal information, vehicle distance information, etc.) transmitted from external devices and displays it on an information service unit 2012 provided in the vehicle. The communication module 2013 also stores the various information received from the external devices in a memory 2032 that can be used by the microprocessor 2031. Based on the information stored in the memory 2032, the microprocessor 2031 may control the drive unit 2002, steering unit 2003, accelerator pedal 2004, brake pedal 2005, shift lever 2006, left and right front wheels 2007, left and right rear wheels 2008, axle 2009, sensors 2021 to 2028, and the like provided in the vehicle 2001.

[0244] (Additional Note) The above disclosure may be expressed as follows: A first feature is a terminal including: a communication unit that transmits and receives radio signals via beams in accordance with a subband full-duplex communication scheme in which uplink subbands and downlink subbands are allocated non-overlappingly in a frequency direction within a specified time period based on time division duplexing, a receiving unit that receives a command instructing activation of a single transmission setting instruction state for the radio signals, and a control unit that selects, based on the command, bit information indicating a position of a transmission setting instruction associated with at least one of a first time unit to which the subband full-duplex communication scheme is applied and a second time unit to which the subband full-duplex communication scheme is not applied, and determines the transmission setting instruction to be applied to the first time unit and the second time unit.

[0245] In a second feature based on the first feature, the receiving unit receives the bit information individually associated with the first time unit and the second time unit.

[0246] A third feature is that, in the first or second feature, the receiving unit receives the bit information that is applied to both the first time unit and the second time unit, and the control unit determines the transmission setting instruction that is applied to the first time unit and the second time unit based on the bit information.

[0247] A fourth feature is that, in the first to third features, the receiving unit receives the bit information applied to either the first time unit or the second time unit, and the control unit determines the transmission setting instruction applied to the first time unit and the second time unit based on the bit information.

[0248] A fifth feature, in any one of the first to fourth features, is that the receiving unit receives a control element of a medium access control layer including the bit information.

[0249] 10 Wireless communication system 20 NG-RAN 100 gNB 200 UE 210 Wireless signal transceiver 220 Amplifier 230 Modulation / demodulation unit 240 Control signal / reference signal processing unit 250 Encoding / decoding unit 260 Data transceiver 270 Control unit 1001 Processor 1002 Memory 1003 Storage 1004 Communication device 1005 Input device 1006 Output device 1007 Bus 2001 Vehicle 2002 Drive unit 2003 Steering unit 2004 Accelerator pedal 2005 Brake pedal 2006 Shift lever 2007 Left and right front wheels 2008 Left and right rear wheels 2009 Axle 2010 Electronic control unit 2012 Information service unit 2013 Communication module 2021 Current sensor 2022 RPM sensor 2023 Air pressure sensor 2024 Vehicle speed sensor 2025 Acceleration sensor 2026 Brake pedal sensor 2027 Shift lever sensor 2028 Object detection sensor 2029 Accelerator pedal sensor 2030 Driving assistance system section 2031 Microprocessor 2032 Memory (ROM, RAM) 2033 Communication port

Claims

1. A terminal comprising: a communication unit that transmits and receives radio signals via beams in accordance with a subband full-duplex communication method in which uplink subbands and downlink subbands are assigned non-overlapping in the frequency direction within a specified time based on time division duplex; a receiving unit that receives a command instructing activation of a single transmission setting instruction state for the radio signals; and a control unit that selects, based on the command, bit information indicating the position of a transmission setting instruction that corresponds to at least one of a first time unit in which the subband full-duplex communication method is applied and a second time unit in which the subband full-duplex communication method is not applied, and determines the transmission setting instruction to be applied to the first time unit and the second time unit.

2. The terminal according to claim 1, wherein the receiving unit receives the bit information associated with the first time unit and the second time unit, respectively.

3. The terminal described in claim 1, wherein the receiving unit receives the bit information that applies to both the first time unit and the second time unit, and the control unit determines the transmission setting instruction that applies to the first time unit and the second time unit based on the bit information.

4. The terminal described in claim 1, wherein the receiving unit receives the bit information applied to either the first time unit or the second time unit, and the control unit determines the transmission setting instruction applied to the first time unit and the second time unit based on the bit information.

5. The terminal according to claim 1, wherein the receiver receives a control element of a medium access control layer including the bit information.

6. A wireless communication method in a terminal, comprising the steps of: transmitting and receiving wireless signals via a beam according to a subband full-duplex communication method in which uplink subbands and downlink subbands are assigned non-overlapping in the frequency direction within a specified time based on time division duplex; receiving a command instructing activation of a single transmission setting instruction state for the wireless signals; and selecting, based on the command, bit information indicating the position of a transmission setting instruction corresponding to at least one of a first time unit to which the subband full-duplex communication method is applied and a second time unit to which the subband full-duplex communication method is not applied, and determining the transmission setting instruction to be applied to the first time unit and the second time unit.