Terminal device, base station device, and communication method

By determining SS/PBCH block timing through slot numbers and frames, the system addresses inefficiencies in wireless communication, enhancing communication efficiency and secondary cell performance in diverse scenarios.

WO2025210965A1PCT designated stage Publication Date: 2025-10-09SHARP KK
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Patent Information

Application Number
PCT/JP2024/044218
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-04-04
Filing Date
2024-12-13
Publication Date
2025-10-09

AI Technical Summary

Technical Problem

Existing wireless communication systems face inefficiencies in managing communication between terminal devices and base station devices, particularly in handling the timing and transmission of SS/PBCH blocks, which affect the performance of secondary cells in scenarios like eMBB, mMTC, and URLLC.

Method used

The system introduces a mechanism for determining the timing of SS/PBCH block reception and transmission based on information indicating whether to stop or continue transmission, using slot numbers, subframes, or frames, and incorporates upper layer processing units in both terminal and base station devices to manage this timing effectively.

Benefits of technology

This approach enhances communication efficiency by optimizing the handling of SS/PBCH blocks, thereby improving the performance of secondary cells and overall communication efficiency in diverse scenarios.

✦ Generated by Eureka AI based on patent content.

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Abstract

A terminal device that communicates with a base station device using a primary cell and at least one secondary cell, the terminal device comprising an upper layer processing unit that receives information relating to timing for terminating reception of an SS / PBCH block. The timing at which reception of the SS / PBCH block is terminated is determined on the basis of information indicating whether or not to stop transmission of the SS / PBCH block.
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Description

Terminal device, base station device, and communication method

[0001] The present invention relates to a terminal device, a base station device, and a communication method.This application claims priority to Japanese Patent Application No. 2024-060504, filed on April 4, 2024, the contents of which are incorporated herein by reference.

[0002] A radio access method and a radio network for cellular mobile communication (hereinafter referred to as "LTE (Long Term Evolution)" or "EUTRA (Evolved Universal Terrestrial Radio Access)") has been proposed by the Third Generation Partnership Project (3GPP). rd The LTE is being studied in the LTE Generation Partnership Project (registered trademark). In LTE, a base station device may also be called an eNodeB (evolved NodeB), and a terminal device may also be called a UE (User Equipment). LTE is a cellular communication system in which areas covered by a base station device are arranged in multiple cells. One base station device may manage one or multiple serving cells.

[0003] 3GPP is currently studying the next-generation wireless communication standard (NR: New Radio) to propose it to IMT (International Mobile Telecommunication)-2020, a standard for next-generation mobile communication systems formulated by the International Telecommunication Union (ITU) (Non-Patent Document 1). NR is required to meet the requirements of three scenarios: eMBB (enhanced Mobile BroadBand), mMTC (massive Machine Type Communication), and URLLC (Ultra Reliable and Low Latency Communication) within a single technology framework.

[0004] "New SID proposal: Study on New Radio Access Technology", RP-160671, NTT DOCOMO, 3GPP TSG RAN Meeting #71, Goteborg, Sweden, 7th - 10th March, 2016.

[0005] One aspect of the present invention provides a terminal device, a base station device, and a communication method used in the terminal device or the base station device that perform communication efficiently.

[0006] (1) A first aspect of this embodiment of the present invention is a terminal device that communicates with a base station device using a primary cell and at least one secondary cell, and is equipped with an upper layer processing unit that receives information regarding the timing for ending reception of an SS / PBCH block, and a radio receiving unit that receives the SS / PBCH block, and the timing for ending reception of the SS / PBCH block is determined based on information indicating whether or not to stop transmission of the SS / PBCH block.

[0007] (2) In a terminal device according to a first aspect of this embodiment of the present invention, the upper layer processing unit receives information regarding the timing for receiving the SS / PBCH block, the SS / PBCH block is an SS / PBCH block that is transmitted based on information regarding the timing for receiving the SS / PBCH block, and the timing for receiving the SS / PBCH block is determined based on information indicating whether to transmit the SS / PBCH block. (3) In a terminal device according to the first aspect of this embodiment of the present invention, the information regarding the timing for ending reception of the SS / PBCH block is indicated by a slot number.

[0008] (4) In a terminal device according to a first aspect of this embodiment of the present invention, information regarding the timing for ending reception of the SS / PBCH block is defined by information indicating a relative time from the timing of receiving information indicating whether or not to transmit the SS / PBCH block, and the information indicating the relative time is indicated by the number of slots, the number of subframes, or the number of frames.

[0009] (5) A terminal device according to a first aspect of this embodiment of the present invention, further comprising a transmitting unit for transmitting an uplink channel or signal, wherein the transmitting unit requests an SS / PBCH block of a secondary cell using an uplink channel or signal, and the timing for receiving information indicating whether to transmit the SS / PBCH block is the timing for the terminal device to receive a response thereto.

[0010] (6) In a terminal device according to the first aspect of this embodiment of the present invention, the timing at which information indicating whether to transmit the SS / PBCH block is received is the timing at which information to activate or turn on a secondary cell transmitted from the base station device is received.

[0011] (7) In a terminal device according to the first aspect of this embodiment of the present invention, the number of slots is calculated based on the subcarrier spacing of the primary cell.

[0012] (8) A base station device according to a second aspect of this embodiment of the present invention, which communicates with a terminal device using a primary cell and at least one secondary cell, includes an upper layer processing unit that transmits information regarding timing for ending reception of an SS / PBCH block, and a radio transmission unit that transmits the SS / PBCH block, wherein the timing for ending reception of the SS / PBCH block is determined based on information indicating whether to stop transmission of the SS / PBCH block. (9) A base station device according to the second aspect of this embodiment of the present invention, wherein the upper layer processing unit transmits information regarding timing for receiving the SS / PBCH block, the SS / PBCH block is an SS / PBCH block that is transmitted based on information regarding timing for receiving the SS / PBCH block, and the timing for receiving the SS / PBCH block is determined based on information indicating whether to transmit the SS / PBCH block.

[0013] (10) A third aspect of this embodiment of the present invention is a communication method for a terminal device that communicates with a base station device using a primary cell and at least one secondary cell, comprising receiving information regarding the timing for receiving an SS / PBCH block, information regarding the timing for ending reception of the SS / PBCH block, and the SS / PBCH block, the SS / PBCH block being an SS / PBCH block transmitted based on information regarding the timing for receiving the SS / PBCH block, the timing for receiving the SS / PBCH block being determined based on information indicating whether to transmit the SS / PBCH block, and the timing for ending reception of the SS / PBCH block being determined based on information indicating whether to stop transmission of the SS / PBCH block.

[0014] According to one aspect of the present invention, a terminal device can perform communication efficiently, and a base station device can perform communication efficiently.

[0015] 1 is a conceptual diagram of a wireless communication system according to an aspect of the present embodiment; slot symb 1 is an example showing the relationship between the SCS setting μ and the CP setting. FIG. 2 is a schematic diagram showing an example of a resource grid in a subframe according to one aspect of the present embodiment. FIG. 3 is a schematic block diagram showing the configuration of a terminal device 1 according to one aspect of the present embodiment. FIG. 4 is a schematic block diagram showing the configuration of a base station device 3 according to one aspect of the present embodiment. FIG. 5 is a diagram showing an example of processing in the terminal device according to the present embodiment. FIG. 6 is a diagram showing an example of processing in the base station device according to the present embodiment. FIG. 7 is a diagram showing an example of processing in the terminal device according to the present embodiment. FIG. 8 is a diagram showing an example of processing in the base station device according to the present embodiment.

[0016] Hereinafter, an embodiment of the present invention will be described.

[0017] "A and / or B" may be a term that includes "A", "B", or "A and B".

[0018] FIG. 1 is a conceptual diagram of a wireless communication system according to one aspect of the present embodiment. In FIG. 1, the wireless communication system includes terminal devices 1A to 1C and a base station device 3. Hereinafter, the terminal devices 1A to 1C may also be referred to as terminal devices 1. The base station device 3 may include some or all of a communication device, a node, an NB (Node B), an eNB, a gNB, a network device (core network, gateway), and an access point. The terminal device 1 may also be referred to as UE (User Equipment). An eNB is a node that provides EUTRA user plane and control plane protocol termination for one or more terminal devices 1, and an eNB connected to a fifth-generation core network (5GC) via an NG (Next Generation) interface is particularly referred to as an ng-eNB. A gNB is a node that provides NR user plane and control plane protocol termination for one or more terminal devices 1, and is connected to the 5GC via an NG interface.

[0019] The base station device 3 may configure one or both of an MCG (Master Cell Group) and an SCG (Secondary Cell Group). The MCG is a group of serving cells including at least a PCell (Primary Cell). The SCG is a group of serving cells including at least a PSCell (Primary Secondary Cell). The PCell may be a serving cell provided based on an initial connection. The MCG may be configured to include one or more SCells (Secondary Cells). The SCG may be configured to include one or more SCells. The PCell and the PSCell may be referred to as SpCells (Special Cells). Configuring one CG (Cell Group) using one SpCell and one or more SCells and performing communication may be referred to as carrier aggregation.

[0020] The MCG may be configured with one or more serving cells on EUTRA. The SCG may be configured with one or more serving cells on NR. The MCG may be configured with one or more serving cells on NR. The SCG may be configured with one or more serving cells on EUTRA. The MCG and SCG may be configured with one or more serving cells of either EUTRA or NR. Here, "on EUTRA" may mean that EUTRA RAT (Radio Access Technology) is applied. "on NR" may mean that NR RAT is applied.

[0021] Furthermore, the MCG may be configured by the first base station device. Furthermore, the SCG may be configured by the second base station device. That is, the PCell may be configured by the first base station device. The PSCell may be configured by the second base station device. The first base station device and the second base station device may each be the same as base station device 3.

[0022] The frame structure will be described below.

[0023] In a wireless communication system according to one aspect of the present embodiment, at least Orthogonal Frequency Division Multiplex (OFDM) is used. An OFDM symbol is a time domain unit of OFDM. The OFDM symbol includes at least one or more subcarriers. The OFDM symbol is converted into a time-continuous signal in baseband signal generation. In the downlink, at least Cyclic Prefix-Orthogonal Frequency Division Multiplex (CP-OFDM) is used. In the uplink, either CP-OFDM or Discrete Fourier Transform-spread-Orthogonal Frequency Division Multiplex (DFT-s-OFDM) is used. DFT-s-OFDM may be achieved by applying Transform precoding to CP-OFDM.

[0024] The subcarrier spacing (SCS) is Δf=2 μ For example, the SCS setting μ may be set to 0, 1, 2, 3, 4, and / or 5. For a given BWP (BandWidth Part), the SCS setting μ may be given by a higher layer parameter. That is, the value of μ may be set for each BWP (downlink BWP, uplink BWP) regardless of whether it is a downlink or uplink.

[0025] In the wireless communication system according to one aspect of this embodiment, a time unit T is used to express a length in the time domain. c The time unit T c Is T c = 1 / (Δf max ・N f ) may be given by Δf max may be the maximum value of the SCS supported in the wireless communication system according to one aspect of the present embodiment.max is Δf max = 480 kHz. f is N f = 4096. The constant κ may be expressed as κ = Δf max ・N f / (Δf ref N f,ref ) = 64. ref may be 15 kHz. f,ref may be 2048.

[0026] The constant κ is the ratio of the reference SCS to the T c The constant κ may be used for the length of the subframe. The number of slots included in the subframe may be determined based at least on the constant κ. ref is the reference SCS, and N f,ref is the value corresponding to the reference SCS.

[0027] Signal transmission in the downlink and / or signal transmission in the uplink is configured by a 10 ms frame. A frame is configured to include 10 subframes. The length of a subframe is 1 ms. The frame length may be given regardless of SCS Δf. That is, the frame setting may be given regardless of the value of μ. The subframe length may be given regardless of SCS Δf. That is, the subframe setting may be given regardless of μ.

[0028] For a certain SCS setting μ, the number and index of slots included in one subframe may be given. For example, slot number n μ s is a subframe from 0 to N subframe,μ slot The number of slots included in one frame and an index may be assigned to the SCS setting μ. μ s,f is a number from 0 to N in the frame frame,μ slot The numbers may be given in ascending order in the range of -1. slot symbN OFDM symbols may be included in one slot. slot symb and / or may be provided based at least on some or all of a cyclic prefix (CP) configuration. The CP configuration may be provided based at least on a higher layer parameter. The CP configuration may be provided based at least on dedicated RRC signaling. The slot number may also be referred to as a slot index.

[0029] FIG. 2 is a diagram illustrating an N slot symb 2A is an example showing the relationship between the SCS setting μ (also referred to as the subcarrier spacing setting u) and the CP setting. In FIG. 2A, for example, when the SCS setting μ is 2 and the CP setting is normal CP (NCP), N slot symb = 14, N frame,μ slot = 40, N subframe,μ slot 2B, for example, when the SCS setting μ is 2 and the CP setting is the extended CP (ECP), N slot symb = 12, N frame,μ slot = 40, N subframe,μ slot =4.

[0030] The physical resources according to this embodiment will be described below.

[0031] An antenna port is defined by whether the channel through which symbols are transmitted at one antenna port can be estimated from the channel through which other symbols are transmitted at the same antenna port. If the large-scale properties of the channel through which symbols are transmitted at one antenna port can be estimated from the channel through which symbols are transmitted at another antenna port, the two antenna ports may be referred to as being quasi-co-located (QCL). The large-scale properties may include at least long-range channel properties. The large-scale properties may include at least some or all of delay spread, Doppler spread, Doppler shift, average gain, average delay, and spatial Rx parameters. The first and second antenna ports being QCL with respect to beam parameters may be whether the receive beam assumed by the receiver for the first antenna port is the same as the receive beam assumed by the receiver for the second antenna port. The first antenna port and the second antenna port being QCL with respect to beam parameters may mean that the transmission beam assumed by the receiving side for the first antenna port and the transmission beam assumed by the receiving side for the second antenna port are the same. The terminal device 1 may assume that the two antenna ports are QCL if the large-scale characteristics of a channel through which symbols are transmitted at one antenna port can be estimated from the channel through which symbols are transmitted at another antenna port. The two antenna ports being QCL may mean that the two antenna ports are assumed to be QCL.

[0032] For the SCS configuration μ and the set of carriers, N size,μ grid,x N RB sc subcarriers and N subframe,μ symbGiven a resource grid defined by N OFDM symbols: size,μ grid,x may denote the number of resource blocks provided for SCS configuration μ for carrier x. size,μ grid,x may denote the bandwidth of the carrier. size,μ grid,x may correspond to the value of the higher layer parameter CarrierBandwidth. Carrier x may indicate either a downlink carrier or an uplink carrier. That is, x may be either "DL" or "UL". N RB sc may represent the number of subcarriers included in one resource block. RB sc may be 12. At least one resource grid may be provided for each antenna port p, and / or for each SCS setting μ, and / or for each transmission direction setting. The transmission direction includes at least a downlink (DL) and an uplink (UL). Hereinafter, a parameter set including at least the antenna port p, the SCS setting μ, and some or all of the transmission direction settings may also be referred to as a first radio parameter set. That is, one resource grid may be provided for each first radio parameter set. Note that the radio parameter set may be one or more sets including one or more radio parameters (physical layer parameters or higher layer parameters).

[0033] In the downlink, a carrier included in a serving cell is called a downlink carrier (or a downlink component carrier). In the uplink, a carrier included in a serving cell is called an uplink carrier (or an uplink component carrier). The downlink component carrier and the uplink component carrier may be collectively referred to as a component carrier (or a carrier).

[0034] The type of the serving cell may be any of PCell, PSCell, and SCell. The PCell may be a serving cell identified based at least on a cell ID (physical layer cell ID, physical cell ID) obtained from a synchronization signal / physical broadcast channel block (SSB) at initial connection. The SCell may be a serving cell used in carrier aggregation. The SCell may be a serving cell assigned based at least on dedicated RRC signaling. Furthermore, the SSB may be referred to as a synchronization signal / physical broadcast channel (SS / PBCH) block.

[0035] Each element in the resource grid provided for each first radio parameter set may be referred to as a resource element (RE). A resource element is a frequency domain index k sc and the time domain index l sym For a given first radio parameter set, the resource elements are identified by frequency domain index k sc and the time domain index l sym The frequency domain index k is specified by sc and the time domain index l sym The resource element identified by sc , l sym ) The frequency domain index k sc is from 0 to N μ RB N RB sc It indicates either a value of -1. μ RB may be the number of resource blocks provided for the SCS configuration μ. μ RB is N size,μ grid,x It may be N RB sc is the number of subcarriers contained in the resource block, and NRB sc = 12. Frequency domain index k sc is the subcarrier index k sc The time domain index l may correspond to sym is the OFDM symbol index l sym One or more resource elements may correspond to a physical resource and a complex value (a complex-valued modulation symbol). One or more information bits (information bits for control information, a transport block, or higher layer parameters) may be mapped to each of the one or more resource elements corresponding to the physical resource and / or the complex value.

[0036] 3 is a schematic diagram illustrating an example of a resource grid in a subframe according to one aspect of the present embodiment. In the resource grid of FIG. 3, the horizontal axis represents a time domain index l. sym and the vertical axis is the frequency domain index k sc In one subframe, the frequency domain of the resource grid is N μ RB N RB sc In one subframe, the time domain of the resource grid is 14.2 μ One resource block may contain N OFDM symbols. RB sc The resource block may include subcarriers. The time domain of the resource block may correspond to one OFDM symbol. The time domain of the resource block may correspond to 14 OFDM symbols. The time domain of the resource block may correspond to one or more slots. The time domain of the resource block may correspond to one subframe.

[0037] The terminal device 1 may be instructed to transmit and receive using only a subset of the resource grid. The subset of the resource grid may also be referred to as a BWP, and the BWP may be given based at least on higher layer parameters and / or part or all of the DCI. The BWP may also be referred to as a CBP (Carrier Bandwidth Part). The terminal device 1 may not be instructed to transmit and receive using the entire set of the resource grid. The terminal device 1 may be instructed to transmit and receive using some frequency resources within the resource grid. One BWP may be composed of multiple resource blocks in the frequency domain. One BWP may be composed of multiple contiguous resource blocks in the frequency domain. A BWP configured for a downlink carrier may also be referred to as a downlink BWP. A BWP configured for an uplink carrier may also be referred to as an uplink BWP. The BWP may be a subset of the carrier's band (a subset of the frequency domain of the carrier).

[0038] One or more downlink BWPs may be configured for each serving cell. One or more uplink BWPs may be configured for each serving cell.

[0039] Of one or more downlink BWPs configured for a serving cell, one downlink BWP may be configured as an active downlink BWP. A downlink BWP switch may be used to deactivate one active downlink BWP and activate inactive downlink BWPs other than the one active downlink BWP. Downlink BWP switching may be controlled by a BWP indication field included in downlink control information. Downlink BWP switching may be controlled based on higher layer parameters.

[0040] In an active downlink BWP, the DL-SCH may be received, the PDCCH may be monitored, and the PDSCH may be received.

[0041] In an inactive downlink BWP, the DL-SCH may not be received, the PDCCH may not be monitored, and CSI for the inactive downlink BWP may not be reported.

[0042] Of one or more downlink BWPs configured for a serving cell, two or more downlink BWPs may not be configured as active downlink BWPs.

[0043] Of one or more uplink BWPs configured for a serving cell, one uplink BWP may be configured as an active uplink BWP. An uplink BWP switch is used to deactivate one active uplink BWP and activate inactive uplink BWPs other than the one active uplink BWP. Uplink BWP switching may be controlled by a BWP indication field included in downlink control information. Uplink BWP switching may also be controlled based on higher layer parameters.

[0044] In an active uplink BWP, the UL-SCH may be transmitted. In an active uplink BWP, the PUCCH may be transmitted. In an active uplink BWP, the PRACH may be transmitted. In an active uplink BWP, the SRS may be transmitted.

[0045] In an inactive uplink BWP, the UL-SCH may not be transmitted. In an inactive uplink BWP, the PUCCH may not be transmitted. In an inactive uplink BWP, the PRACH may not be transmitted. In an inactive uplink BWP, the SRS may not be transmitted.

[0046] Of one or more uplink BWPs configured for one serving cell, two or more uplink BWPs may not be configured as active uplink BWPs, i.e., there only needs to be at least one active uplink BWP for the serving cell that includes the uplink BWP.

[0047] The upper layer parameters are parameters included in the upper layer signals. The upper layer signals may be RRC (Radio Resource Control) signaling or MAC CE (Medium Access Control Control Element). Here, the upper layer signals may be RRC layer signals or MAC layer signals. The upper layer signals may be signals of a layer higher than the physical layer. Note that the upper layer parameters provided by the RRC layer signals may be notified to and set in the terminal device 1 from the base station device 3. The upper layer parameters provided by the RRC layer signals may be referred to as RRC parameters or RRC information elements (IEs).

[0048] The higher layer signal may be common RRC signaling. The common RRC signaling may have at least some or all of the following features C1 to C3: C1) Mapped to the BCCH logical channel or the CCCH logical channel; C2) Includes at least the ReconfigurationWithSync information element; and C3) Mapped to the PBCH.

[0049] The ReconfigurationWithSync information element may include information indicating a configuration commonly used in serving cells. The configuration commonly used in serving cells may include at least a PRACH configuration. The PRACH configuration may at least indicate one or more random access preamble indices. The PRACH configuration may at least indicate time / frequency resources of the PRACH.

[0050] The common RRC signaling may include at least common RRC parameters, which may be parameters commonly used within a serving cell (cell-specific).

[0051] The higher layer signal may be dedicated RRC signaling. The dedicated RRC signaling may have at least some or all of the following features D1 to D2: D1) It is mapped to the DCCH logical channel; and D2) It does not include the ReconfigurationWithSync information element.

[0052] For example, a Master Information Block (MIB) and a System Information Block (SIB) may be included in the common RRC signaling. Furthermore, a higher layer message that is mapped to a DCCH logical channel and includes at least a ReconfigurationWithSync information element may be included in the common RRC signaling. Furthermore, a higher layer message that is mapped to a DCCH logical channel and does not include a ReconfigurationWithSync information element may be included in the dedicated RRC signaling. The MIB and SIB may be collectively referred to as system information.

[0053] Note that the upper layer parameters including one or more upper layer parameters may be referred to as information elements (IEs). Furthermore, the upper layer parameters including one or more upper layer parameters and / or one or more IEs may be referred to as messages (upper layer messages, RRC messages), information blocks (IBs), or system information.

[0054] The SIB may at least indicate a time index of the SSB, the SIB may include at least information related to PRACH resources, and the SIB may include at least information related to setting up an initial connection.

[0055] The ReconfigurationWithSync information element may include at least information related to PRACH resources. The ReconfigurationWithSync information element may include at least information related to setting up an initial connection.

[0056] The dedicated RRC signaling may include at least dedicated RRC parameters. The dedicated RRC parameters may be parameters (UE-specific) used exclusively for the terminal device 1. The dedicated RRC signaling may include at least common RRC parameters.

[0057] Common RRC parameters and dedicated RRC parameters may also be referred to as higher layer parameters.

[0058] The following describes physical channels and physical signals according to various aspects of the present embodiment.

[0059] An uplink physical channel may correspond to a set of resource elements carrying information generated in a higher layer. An uplink physical channel is a physical channel used in an uplink carrier. In a wireless communication system according to one aspect of the present embodiment, at least some or all of the following uplink physical channels are used: PUCCH (Physical Uplink Control CHannel), PUSCH (Physical Uplink Shared CHannel), and PRACH (Physical Random Access CHannel).

[0060] The PUCCH may be used to transmit uplink control information (UCI). The uplink control information includes some or all of channel state information (CSI), scheduling requests (SR), and hybrid automatic repeat request ACKnowledgement (HARQ-ACK) information corresponding to transport blocks (TBs). Note that TBs may also be referred to as MAC medium access control protocol data units (PDUs), downlink-shared channels (DL-SCHs), or physical downlink shared channels (PDSCHs).

[0061] One or more types of uplink control information may be multiplexed onto the PUCCH. The multiplexed PUCCH may be transmitted. That is, the PUCCH may be multiplexed with multiple HARQ-ACKs, multiple CSIs, multiple SRs, HARQ-ACKs and CSIs, HARQ-ACKs and SRs, or other types of UCI.

[0062] The HARQ-ACK information may include at least a HARQ-ACK bit corresponding to a TB. The HARQ-ACK bit may indicate an acknowledgement (ACK) or a negative acknowledgement (NACK) corresponding to the TB. The ACK may be a value indicating that decoding of the TB has been successfully completed. The NACK may be a value indicating that decoding of the TB has not been successfully completed. The HARQ-ACK information may include at least one HARQ-ACK codebook including one or more HARQ-ACK bits. The HARQ-ACK bit corresponding to one or more TBs may correspond to a PDSCH including the one or more TBs.

[0063] The HARQ-ACK bit may indicate an ACK or NACK corresponding to one Code Block Group (CBG) included in the TB. HARQ-ACK may also be referred to as HARQ feedback, HARQ information, or HARQ control information.

[0064] The SR may be used at least to request PUSCH resources for an initial transmission. The SR may also be used to request UL-SCH resources for a new transmission. The SR bit may be used to indicate either a positive SR or a negative SR. The SR bit indicating a positive SR may also be referred to as "a positive SR is transmitted." A positive SR may indicate that a PUSCH resource for the initial transmission is requested by the terminal device 1. A positive SR may indicate that an SR is triggered by a higher layer. A positive SR may be transmitted when an SR is instructed to be transmitted by a higher layer. The SR bit indicating a negative SR may also be referred to as "a negative SR is transmitted." A negative SR may indicate that a PUSCH resource for the initial transmission is not requested by the terminal device 1. A negative SR may indicate that an SR is not triggered by a higher layer. A negative SR may be transmitted if no higher layer indicates that an SR should be transmitted.

[0065] The SR bit may be used to indicate either a positive SR or a negative SR for one or more SR configurations. Each of the one or more SR configurations may correspond to one or more logical channels. A positive SR for a certain SR configuration may be a positive SR for any or all of the one or more logical channels corresponding to the certain SR configuration. A negative SR may not correspond to a specific SR configuration. An indication of a negative SR may mean an indication of a negative SR for all SR configurations.

[0066] The SR setting may be a Scheduling Request ID (SR-ID), which may be provided by a parameter of an upper layer.

[0067] The CSI may include at least some or all of a channel quality indicator (CQI), a precoder matrix index (PMI), and a rank index (RI). The CQI is an index related to the quality of the channel (e.g., propagation strength), the PMI is an index indicating the precoder, and the RI is an index indicating the transmission rank (or the number of transmission layers).

[0068] The CSI may be provided based at least on receiving a physical signal (e.g., a CSI-RS) used at least for channel measurement. The CSI may include a value selected by the terminal device 1. The CSI may be selected by the terminal device 1 based at least on receiving a physical signal used at least for channel measurement. The channel measurement may include interference measurement. Note that the CSI-RS may be set based on a CSI-RS configuration or an SSB configuration.

[0069] The CSI report is a report of CSI. The CSI report may include CSI Part 1 and / or CSI Part 2. CSI Part 1 may be configured to include at least a wideband channel quality information (wideband CQI), a wideband precoder matrix index (wideband PMI), and a part or all of the RI. The number of bits of CSI Part 1 multiplexed onto the PUCCH may be a predetermined value regardless of the RI value of the CSI report. The number of bits of CSI Part 2 multiplexed onto the PUCCH may be given based on the RI value of the CSI report. The rank index of the CSI report may be the value of the rank index used for calculating the CSI report. The RI of the CSI information may be a value indicated by an RI field included in the CSI report.

[0070] The set of RIs allowed in a CSI report may be some or all of 1 to 8. Also, the set of RIs allowed in a CSI report may be given based at least on a higher layer parameter RankRestriction. If the set of RIs allowed in a CSI report includes only one value, the RI of the CSI report may be the one value.

[0071] A priority may be set for a CSI report, which may be given based on at least some or all of a configuration regarding the time domain behavior (processing) of the CSI report, a content type of the CSI report, an index of the CSI report, and / or an index of a serving cell for which measurement of the CSI report is configured.

[0072] The setting regarding the time domain behavior (processing) of the CSI reporting may be a setting indicating whether the CSI reporting is performed aperiodic, semi-persistent, or quasi-static.

[0073] The content type of the CSI report may indicate whether the CSI report includes Layer 1 Reference Signals Received Power (RSRP).

[0074] Layer 1 refers to the physical layer and may be a layer that performs processing such as a physical layer processing unit, a radio transmitting unit, a transmitting unit, and / or a radio receiving unit, a receiving unit. Layers higher than Layer 1 include a MAC layer, an RRC layer, and an upper layer processing unit. For example, Layer 2 may refer to a MAC layer, an RLC layer, a PDCP layer, a MAC layer processing unit, an RLC layer processing unit, and a PDCP layer processing unit. Layer 3 may be an RRC layer and an RRC layer processing unit.

[0075] The PUSCH is used at least to transmit TBs (MAC PDUs, UL-SCH). The PUSCH may be used to transmit at least some or all of the TBs, HARQ-ACK information, CSI, and SRs. The PUSCH is used at least to transmit a random access message 3 (message 3 (Msg3)) corresponding to an RAR (Msg2) and / or an RAR grant in the random access procedure. Note that the TBs may correspond to both the uplink and the downlink. That is, the PUSCH may be used to transmit TBs for the uplink. The PDSCH may be used to transmit TBs for the downlink.

[0076] The PRACH is used at least to transmit a random access preamble (random access message 1, message 1 (Msg1)). The PRACH may be used at least to indicate some or all of an initial connection establishment procedure, a handover procedure, a connection re-establishment procedure, an initial access procedure, synchronization (timing adjustment) for PUSCH transmission, and a request for resources for PUSCH. The random access preamble may be used to notify the base station device 3 of an index (random access preamble index) provided by a higher layer of the terminal device 1.

[0077] The random access preamble may be generated by cyclically shifting a Zadoff-Chu sequence corresponding to a physical root sequence index u. The Zadoff-Chu sequence may be generated based on the physical root sequence index u. Multiple random access preambles may be defined in one serving cell. The random access preamble may be identified based at least on the index of the random access preamble. Different random access preambles corresponding to different indices of the random access preamble may correspond to different combinations of the physical root sequence index u and the cyclic shift. The physical root sequence index u and the cyclic shift may be determined based at least on information included in the system information. The physical root sequence index u may be an index that identifies a sequence included in the random access preamble. The random access preamble may be identified based at least on the physical root sequence index u.

[0078] In Fig. 1, the following uplink physical signals are used in uplink wireless communication. The uplink physical signals may not be used to transmit information output from a higher layer, but are used by the physical layer: UL DMRS (Uplink Demodulation Reference Signal) SRS (Sounding Reference Signal) UL PTRS (Uplink Phase Tracking Reference Signal)

[0079] The UL DMRS is related to the transmission of the PUSCH and / or the PUCCH. The UL DMRS is multiplexed with the PUSCH or the PUCCH. The base station device 3 may use the UL DMRS to perform propagation path correction for the PUSCH or the PUCCH. Hereinafter, transmitting the PUSCH and the UL DMRS related to the PUSCH together is simply referred to as transmitting the PUSCH. Hereinafter, transmitting the PUCCH and the UL DMRS related to the PUCCH together is simply referred to as transmitting the PUCCH. The UL DMRS related to the PUSCH is also referred to as the UL DMRS for the PUSCH. The UL DMRS related to the PUCCH is also referred to as the UL DMRS for the PUCCH.

[0080] The SRS may not be related to the transmission of the PUSCH or PUCCH. The base station device 3 may use the SRS to measure the channel condition. The SRS may be transmitted at the end of a subframe in an uplink slot or within a predetermined number of OFDM symbols from the end.

[0081] The UL PTRS may be a reference signal used at least for phase tracking. The UL PTRS may be associated with a UL DMRS group including at least antenna ports used for one or more UL DMRSs. The association of the UL PTRS with the UL DMRS group may be such that the antenna port of the UL PTRS and some or all of the antenna ports included in the UL DMRS group are at least QCL. The UL DMRS group may be identified based at least on the antenna port with the smallest index in the UL DMRS included in the UL DMRS group. The UL PTRS may be mapped to the antenna port with the smallest index among one or more antenna ports to which a codeword is mapped. When a codeword is mapped to at least the first and second layers, the UL PTRS may be mapped to the first layer. The UL PTRS may not be mapped to the second layer. The index of the antenna port to which the UL PTRS is mapped may be given based at least on the downlink control information.

[0082] In Fig. 1, the following downlink physical channels are used in downlink wireless communication from the base station device 3 to the terminal device 1. The downlink physical channels are used by the physical layer to transmit information output from a higher layer. PBCH (Physical Broadcast Channel) PDCCH (Physical Downlink Control Channel) PDSCH (Physical Downlink Shared Channel)

[0083] The PBCH is used at least to transmit the MIB and / or the PBCH payload. The PBCH payload may include at least information indicating an index related to the SSB transmission timing (SSB occasion). The PBCH payload may include information related to an SSB identifier (index). The PBCH may be transmitted based on a predetermined transmission interval. The PBCH may be transmitted at intervals of 80 milliseconds (ms). The PBCH may be transmitted at intervals of 160 ms. The content of the information included in the PBCH may be updated every 80 ms. Some or all of the information included in the PBCH may be updated every 160 ms. The PBCH may be configured with 288 subcarriers. The PBCH may be configured to include 2, 3, or 4 OFDM symbols. The MIB may include information related to an SSB identifier (index). The MIB may include information indicating at least a portion of the slot number, subframe number, and / or radio frame number in which the PBCH is transmitted.

[0084] The PDCCH is used at least for transmitting downlink control information (DCI). The PDCCH may be transmitted including at least the DCI. The PDCCH may be transmitted including the DCI. The DCI may also be referred to as a DCI format. The DCI may indicate at least either a downlink grant or an uplink grant. The DCI format used for scheduling the PDSCH may also be referred to as a downlink DCI format and / or a downlink grant. The DCI format used for scheduling the PUSCH may also be referred to as an uplink DCI format and / or an uplink grant. The downlink grant may also be referred to as a downlink assignment or a downlink allocation. The uplink DCI format includes at least one or both of DCI format 0_0 and DCI format 0_1.

[0085] The downlink DCI formats include at least one or both of DCI format 1_0 and DCI format 1_1.

[0086] DCI format 2 may include parameters used for transmission power control of the PUSCH or the PUCCH. DCI format 2 includes some or all of DCI format 2_0, DCI format 2_1, DCI format 2_2, DCI format 2_3, DCI format 2_4, DCI format 2_5, DCI format 2_6, DCI format 2_7, DCI format 2_8, and DCI format 2_9.

[0087] DCI format 2_9 may be used to activate or deactivate cell DTX / DRX configuration of one or more serving cells for one or more UEs. DCI format 2_9 may be transmitted with a CRC scrambled by the NES-RNTI. DCI format 2_9 includes some or all of the following information: Block number Cell DTX / DRX indication

[0088] In various aspects of this embodiment, unless otherwise specified, the number of resource blocks (RBs) refers to the number of resource blocks in the frequency domain. Furthermore, resource block indices are assigned in ascending order from resource blocks mapped to the lower frequency domain to resource blocks mapped to the higher frequency domain. Furthermore, resource blocks are a general term for common resource blocks and physical resource blocks.

[0089] One physical channel may be mapped to one serving cell, and one physical channel may be mapped to one CBP configured for one carrier included in one serving cell.

[0090] One or more control resource sets (CORESETs) are assigned to the terminal device 1. The terminal device 1 monitors the PDCCH in one or more CORESETs.

[0091] The CORESET may indicate a time-frequency region to which one or more PDCCHs may be mapped. The CORESET may be a region in which the terminal device 1 monitors the PDCCH. The CORESET may be configured with continuous resources (localized resources). The CORESET may be configured with discontinuous resources (distributed resources).

[0092] In the frequency domain, the unit of mapping of the CORESET may be a resource block (RB). For example, in the frequency domain, the unit of mapping of the CORESET may be six resource blocks. That is, the frequency domain mapping of the CORESET may be performed using 6RBs x n (n is 1, 2, ...). In the time domain, the unit of mapping of the CORESET may be an OFDM symbol. For example, in the time domain, the unit of mapping of the CORESET may be one OFDM symbol.

[0093] The frequency domain of the CORESET may be based at least on higher layer signaling and / or DCI.

[0094] The time domain of the CORESET may be based at least on higher layer signaling and / or DCI.

[0095] A certain CORESET may be a common CORESET. The common CORESET may be a CORESET commonly set for a plurality of terminal devices 1. The common CORESET may be provided based on at least some or all of the MIB, SIB, common RRC signaling, and cell ID. For example, the time resources and / or frequency resources of the CORESET configured to monitor the PDCCH used for scheduling the SIB may be provided based at least on the MIB.

[0096] A certain CORESET may be a dedicated CORESET. The dedicated CORESET may be a CORESET that is set to be used exclusively for the terminal device 1. The dedicated CORESET may be provided based at least on dedicated RRC signaling.

[0097] The set of PDCCH candidates monitored by the terminal device 1 may be defined in terms of a search space, i.e., the set of PDCCH candidates monitored by the terminal device 1 may be given by a search space.

[0098] The search space may be configured to include one or more PDCCH candidates of one or more aggregation levels (ALs). The aggregation level of the PDCCH candidates may indicate the number of CCEs that constitute the PDCCH.

[0099] The terminal device 1 may monitor at least one or more search space sets in slots where DRX (Discontinuous Reception) is not set. DRX may be provided based at least on parameters of a higher layer. The terminal device 1 may monitor at least one or more search space sets in slots where DRX is not set.

[0100] The search space set may include at least one or more search spaces, and the type of the search space set may be any of a Type 0 PDCCH common search space, a Type 0 APDCCH common search space, a Type 1 PDCCH common search space, a Type 2 PDCCH common search space, a Type 3 PDCCH common search space, and / or a UE-specific PDCCH search space.

[0101] The Type 0 PDCCH common search space, the Type 0 APDCCH common search space, the Type 1 PDCCH common search space, the Type 2 PDCCH common search space, and the Type 3 PDCCH common search space may also be referred to as a Common Search Space (CSS). The UE-specific PDCCH search space may also be referred to as a UE-specific Search Space (USS).

[0102] Each search space set may be associated with one control resource set, each search space set may be included in at least one control resource set, and each search space set may be given an index of the control resource set associated with that search space set.

[0103] The upper layer parameter SearchSpace may be used to set one or more search spaces as a set, and the one or more search spaces set by SearchSpace may be referred to as a search space set.

[0104] The Type 0 PDCCH common search space may be used at least for DCI formats with a CRC (Cyclic Redundancy Check) sequence scrambled by SI-RNTI (System Information-Radio Network Temporary Identifier). The configuration of the Type 0 PDCCH common search space may be based at least on the four least significant bits (LSBs) of the upper layer parameter PDCCH-ConfigSIB1. The upper layer parameter PDCCH-ConfigSIB1 may be included in the MIB. The configuration of the Type 0 PDCCH common search space may be based at least on the upper layer parameter SearchSpaceZero. The interpretation of the bits of the upper layer parameter SearchSpaceZero may be the same as the interpretation of the four least significant bits of the upper layer parameter PDCCH-ConfigSIB1. The configuration of the type-0 PDCCH common search space may be based at least on the higher layer parameter SearchSpaceSIB1. The higher layer parameter SearchSpaceSIB1 may be included in the higher layer parameter PDCCH-ConfigCommon. The PDCCH detected in the type-0 PDCCH common search space may be used at least for scheduling the PDSCH including SIB1 and transmitted. SIB1 is a type of SIB. SIB1 may include scheduling information of SIBs other than SIB1. The terminal device 1 may receive the higher layer parameter PDCCH-ConfigCommon in EUTRA. The terminal device 1 may receive the higher layer parameter PDCCH-ConfigCommon in MCG. These common search spaces may be referred to as a type-0 PDCCHCSS set.

[0105] The Type 0 APDCCH common search space may be used at least for DCI formats with a CRC (Cyclic Redundancy Check) sequence scrambled by SI-RNTI (System Information-Radio Network Temporary Identifier). Configuration of the Type 0a PDCCH common search space may be based at least on the higher layer parameter SearchSpaceOtherSystemInformation. The higher layer parameter SearchSpaceOtherSystemInformation may be included in SIB1. The higher layer parameter SearchSpaceOtherSystemInformation may be included in the higher layer parameter PDCCH-ConfigCommon. A PDCCH detected in the Type 0 PDCCH common search space may be used at least for scheduling a PDSCH transmitted including an SIB other than SIB1. These common search spaces may be referred to as Type 0 APDCCHCSS sets.

[0106] The Type 1 PDCCH common search space may be used at least for a DCI format with a CRC sequence scrambled by a Random Access-Radio Network Temporary Identifier (RA-RNTI) and / or a Temporary Common-Radio Network Temporary Identifier (TC-RNTI). The RA-RNTI may be provided based at least on the time / frequency resource of a random access preamble transmitted by the terminal device 1. The TC-RNTI may be provided by a PDSCH (also referred to as a Random Access Message 2, Message 2 (Msg2), or Random Access Response (RAR)) scheduled by a DCI format with a CRC sequence scrambled by the RA-RNTI. The Type 1 PDCCH common search space may be provided based at least on a higher layer parameter ra-SearchSpace. The higher layer parameter ra-SearchSpace may be included in SIB1. The higher layer parameter ra-SearchSpace may be included in the higher layer parameter PDCCH-ConfigCommon. These common search spaces may be referred to as Type 1 PDCCH CSS sets.

[0107] The Type 2 PDCCH common search space may be used for DCI formats with a CRC sequence scrambled by a Paging-Radio Network Temporary Identifier (P-RNTI). The P-RNTI may be used at least for transmission of DCI formats including information indicating changes to the SIB. The Type 2 PDCCH common search space may be determined based at least on the higher layer parameter PagingSearchSpace. The higher layer parameter PagingSearchSpace may be included in SIB1. The higher layer parameter PagingSearchSpace may be included in the higher layer parameter PDCCH-ConfigCommon. These common search spaces may be referred to as Type 2 PDCCH CSS sets.

[0108] The Type 3 PDCCH common search space may be used for a DCI format with a CRC sequence scrambled by a Cell-Radio Network Temporary Identifier (C-RNTI). The C-RNTI may be provided based at least on a PDSCH (which may also be referred to as a Random Access Message 4, Message 4 (Msg4), or Contention Resolution) scheduled by a DCI format with a CRC sequence scrambled by a Cell-Radio Network Temporary Identifier (TC-RNTI). The Type 3 PDCCH common search space may be a search space set provided when the higher layer parameter SearchSpaceType is set to common. These common search spaces may be referred to as a Type 3 PDCCH CSS set.

[0109] UE-specific PDCCH search spaces may be used at least for DCI formats with CRC sequences scrambled by the C-RNTI. These UE-specific search spaces may be referred to as PDCCHUSS sets.

[0110] When a C-RNTI is provided to the terminal device 1, a Type 0 PDCCH common search space, a Type 0 APDCCH common search space, a Type 1 PDCCH common search space, and / or a Type 2 PDCCH common search space may be used at least for a DCI format with a CRC sequence scrambled with the C-RNTI.

[0111] When a C-RNTI is provided to the terminal device 1, a search space set provided based at least on any of the upper layer parameter PDCCH-ConfigSIB1, the upper layer parameter SearchSpaceZero, the upper layer parameter SearchSpaceSIB1, the upper layer parameter SearchSpaceOtherSystemInformation, the upper layer parameter ra-SearchSpace, the upper layer parameter PagingSearchSpace, or the upper layer parameter SearchSpace may be used at least for a DCI format with a CRC sequence scrambled with the C-RNTI.

[0112] The common CORESET may include at least one or both of CSS and USS. The dedicated CORESET may include at least one or both of CSS and USS.

[0113] The physical resources of the search area are composed of control channel elements (CCEs). Each CCE is composed of six resource element groups (REGs). An REG may be composed of one OFDM symbol of one physical resource block (PRB). In other words, an REG may be composed of 12 resource elements (REs). A PRB may also be simply referred to as a resource block (RB).

[0114] The PDSCH is used at least to transmit TB, and may also be used at least to transmit Random Access Message 2 (RAR, Msg2), and may also be used at least to transmit system information including parameters used for initial access.

[0115] In FIG. 1, the following downlink physical signals are used in downlink wireless communication. The downlink physical signals do not have to be used to transmit information output from a higher layer, but are used by the physical layer. Synchronization signal DL DMRS (Downlink Demodulation Reference Signal) CSI-RS (Channel State Information-Reference Signal) DL PTRS (Downlink Phase Tracking Reference Signal) TRS (Tracking Reference Signal)

[0116] The synchronization signal is used for synchronization in the frequency domain and / or the time domain of the downlink by the terminal device 1. The synchronization signal includes a primary synchronization signal (PSS) and a secondary synchronization signal (SSS).

[0117] An SSB (SS / PBCH block) is configured to include at least some or all of a PSS, SSS, and PBCH. The antenna ports for some or all of the PSS, SSS, and PBCH included in an SS block may be the same. Some or all of the PSS, SSS, and PBCH included in an SSB may be mapped to consecutive OFDM symbols. The CP setting for some or all of the PSS, SSS, and PBCH included in an SSB may be the same. The same SCS setting μ may be applied to some or all of the PSS, SSS, and PBCH included in an SSB.

[0118] The DL DMRS is related to the transmission of the PBCH, the PDCCH, and / or the PDSCH. The DL DMRS is multiplexed onto the PBCH, the PDCCH, and / or the PDSCH. The terminal device 1 may use the DL DMRS corresponding to the PBCH, the PDCCH, or the PDSCH to perform propagation path correction for the PBCH, the PDCCH, or the PDSCH. Hereinafter, the transmission of the PBCH and the DL DMRS associated with the PBCH together may be referred to as the transmission of the PBCH. Furthermore, the transmission of the PDCCH and the DL DMRS associated with the PDCCH together may be simply referred to as the transmission of the PDCCH. Furthermore, the transmission of the PDSCH and the DL DMRS associated with the PDSCH together may be simply referred to as the transmission of the PDSCH. The DL DMRS associated with the PBCH may also be referred to as the DL DMRS for the PBCH. The DL DMRS associated with the PDSCH may also be referred to as a DL DMRS for the PDSCH. The DL DMRS associated with the PDCCH may also be referred to as a DL DMRS associated with the PDCCH.

[0119] The DL DMRS may be a reference signal that is individually configured for the terminal device 1. The sequence of the DL DMRS may be provided based at least on a parameter that is individually configured for the terminal device 1. The sequence of the DL DMRS may be provided based at least on a UE-specific value (e.g., C-RNTI, etc.). The DL DMRS may be transmitted individually for the PDCCH and / or the PDSCH.

[0120] The CSI-RS may be a signal used at least for calculating the CSI. The CSI-RS may also be used for measuring RSRP (Reference Signal Received Power) and RSRQ (Reference Signal Received Quality). The CSI-RS pattern assumed by the terminal device 1 may be given by at least a parameter of a higher layer.

[0121] The PTRS may be a signal used at least for phase noise compensation. The PTRS pattern assumed by the terminal device 1 may be based at least on higher layer parameters and / or DCI.

[0122] A DL PTRS may be associated with a DL DMRS group that includes at least antenna ports used for one or more DL DMRSs. The association of a DL PTRS with a DL DMRS group may be such that the antenna port of the DL PTRS and some or all of the antenna ports included in the DL DMRS group are at least QCL. The DL DMRS group may be identified based at least on the antenna port with the smallest index among the DL DMRSs included in the DL DMRS group.

[0123] The TRS may be a signal used at least for time and / or frequency synchronization. The pattern of the TRS assumed by the terminal device may be based at least on higher layer parameters and / or DCI.

[0124] The downlink physical channel and the downlink physical signal may also be referred to as a downlink signal. The uplink physical channel and the uplink physical signal may also be referred to as an uplink signal. The downlink signal and the uplink signal may be collectively referred to as a physical signal or a signal. The downlink physical channel and the uplink physical channel may also be collectively referred to as a physical channel. In the downlink, the physical signal may include some or all of SSB, PDCCH (CORESET), PDSCH, DL DMRS, CSI-RS, DL PTRS, and TRS. In the uplink, the physical signal may include some or all of PRACH, PUCCH, PUSCH, UL DMRS, UL PTRS, and SRS. The physical signal may be a signal other than the above-mentioned signals. In other words, the physical signal may include one or more types of physical channels and / or physical signals, or may include one or more physical channels and / or physical signals.

[0125] The BCH (Broadcast CHannel), UL-SCH (Uplink-Shared CHannel), and DL-SCH (Downlink-Shared CHannel) are transport channels. A channel used in the Medium Access Control (MAC) layer may also be called a transport channel. The unit of the transport channel used in the MAC layer may also be called a TB or MAC PDU. HARQ control is performed for each TB in the MAC layer. A TB is a unit of data that the MAC layer delivers to the physical layer. In the physical layer, a TB is mapped to a codeword, and modulation processing is performed for each codeword.

[0126] The base station device 3 and the terminal device 1 exchange (transmit and receive) higher layer signals in a higher layer. For example, the base station device 3 and the terminal device 1 may transmit and receive RRC signaling (RRC messages, RRC information, RRC parameters, RRC information elements) in a radio resource control (RRC) layer. Furthermore, the base station device 3 and the terminal device 1 may transmit and receive MAC control elements (CEs) in a MAC layer. Here, the RRC signaling and / or MAC CEs are also referred to as higher layer signaling.

[0127] The PUSCH and the PDSCH may be used at least for transmitting RRC signaling and / or MAC CE. Here, the RRC signaling transmitted from the base station device 3 on the PDSCH may be signaling common to multiple terminal devices 1 in the serving cell. The signaling common to multiple terminal devices 1 in the serving cell may also be referred to as common RRC signaling. The RRC signaling transmitted from the base station device 3 on the PDSCH may be signaling dedicated to a certain terminal device 1 (which may also be referred to as dedicated signaling or UE-specific signaling). The signaling dedicated to a terminal device 1 may also be referred to as dedicated RRC signaling. Upper layer parameters specific to a serving cell may be transmitted using signaling common to multiple terminal devices 1 in the serving cell or signaling dedicated to a certain terminal device 1. UE-specific higher layer parameters may be transmitted using dedicated signaling for a given terminal device 1.

[0128] The BCCH (Broadcast Control CHannel), CCCH (Common Control CHannel), and DCCH (Dedicated Control CHannel) are logical channels. For example, the BCCH is an upper layer channel used to transmit an MIB. The CCCH (Common Control CHannel) is an upper layer channel used to transmit information common to multiple terminal devices 1. Here, the CCCH may be used, for example, for terminal devices 1 that are not RRC-connected. The DCCH (Dedicated Control CHannel) is an upper layer channel that is used at least to transmit dedicated control information to the terminal device 1. Here, the DCCH may be used, for example, for terminal devices 1 that are RRC-connected.

[0129] The BCCH in the logical channel may be mapped to the BCH, DL-SCH, or UL-SCH in the transport channel. The CCCH in the logical channel may be mapped to the DL-SCH or UL-SCH in the transport channel. The DCCH in the logical channel may be mapped to the DL-SCH or UL-SCH in the transport channel.

[0130] The UL-SCH in the transport channel may be mapped to the PUSCH in the physical channel, the DL-SCH in the transport channel may be mapped to the PDSCH in the physical channel, and the BCH in the transport channel may be mapped to the PBCH in the physical channel.

[0131] An example of the configuration of the terminal device 1 according to one aspect of this embodiment will be described below.

[0132] 4 is a schematic block diagram showing the configuration of a terminal device 1 according to one aspect of the present embodiment. As shown in the figure, the terminal device 1 includes a radio transmission / reception unit 10 and an upper layer processing unit 14. The radio transmission / reception unit 10 includes at least an antenna unit 11, an RF (Radio Frequency) unit 12, and part or all of a baseband unit 13. The upper layer processing unit 14 includes at least a medium access control layer processing unit 15 and part or all of a radio resource control layer processing unit 16. The radio transmission / reception unit 10 may also be referred to as a transmitter, a receiver, a physical layer processing unit, and / or a lower layer processing unit.

[0133] The upper layer processing unit 14 outputs uplink data (TB, UL-SCH) generated by user operation or the like to the radio transceiver unit 10. The upper layer processing unit 14 performs processing of the MAC layer, Packet Data Convergence Protocol (PDCP) layer, Radio Link Control (RLC) layer, and RRC layer.

[0134] The medium access control layer processing unit 15 included in the upper layer processing unit 14 performs processing of the MAC layer.

[0135] The radio resource control layer processing unit 16 included in the upper layer processing unit 14 performs processing of the RRC layer. The radio resource control layer processing unit 16 manages various setting information / parameters of its own device. The radio resource control layer processing unit 16 sets various setting information / parameters based on upper layer signals received from the base station device 3. That is, the radio resource control layer processing unit 16 sets various setting information / parameters based on information indicating the various setting information / parameters received from the base station device 3. The parameters may be upper layer parameters and / or information elements.

[0136] The wireless transceiver unit 10 performs physical layer processing such as modulation, demodulation, encoding, and decoding. The wireless transceiver unit 10 separates, demodulates, and decodes the received physical signal, and outputs the decoded information to the upper layer processing unit 14. These processes may be referred to as reception processing. The wireless transceiver unit 10 generates a physical signal (uplink signal) by modulating and encoding data and generating a baseband signal (converting it into a time-continuous signal), and transmits the physical signal to the base station device 3. These processes may be referred to as transmission processing.

[0137] The RF unit 12 converts (down-converts) the signal received via the antenna unit 11 into a baseband signal by quadrature demodulation, removes unnecessary frequency components, and outputs the processed analog signal to the baseband unit.

[0138] The baseband unit 13 converts the analog signal input from the RF unit 12 into a digital signal, removes the portion corresponding to the CP from the converted digital signal, and performs a fast Fourier transform (FFT) on the CP-removed signal to extract a frequency domain signal.

[0139] The baseband unit 13 performs an inverse fast Fourier transform (IFFT) on the data to generate OFDM symbols, adds a CP to the generated OFDM symbols, generates baseband digital signals, and converts the baseband digital signals into analog signals. The baseband unit 13 outputs the converted analog signals to the RF unit 12.

[0140] The RF unit 12 uses a low-pass filter to remove unnecessary frequency components from the analog signal input from the baseband unit 13, up-converts the analog signal to a carrier frequency, and transmits the up-converted signal via the antenna unit 11. The RF unit 12 also amplifies power. The RF unit 12 may also have a function to control transmission power. The RF unit 12 is also referred to as a transmission power control unit.

[0141] An example of the configuration of the base station device 3 according to one aspect of this embodiment will be described below.

[0142] 5 is a schematic block diagram showing the configuration of a base station device 3 according to one aspect of the present embodiment. As shown in the figure, the base station device 3 includes a radio transmission / reception unit 30 and an upper layer processing unit 34. The radio transmission / reception unit 30 includes an antenna unit 31, an RF unit 32, and a baseband unit 33. The upper layer processing unit 34 includes a medium access control layer processing unit 35 and a radio resource control layer processing unit 36. The radio transmission / reception unit 30 is also referred to as a transmitter, a receiver, or a physical layer processing unit.

[0143] The upper layer processing unit 34 performs processing of the MAC layer, the PDCP layer, the RLC layer, and the RRC layer.

[0144] The medium access control layer processing unit 35 included in the upper layer processing unit 34 performs processing of the MAC layer.

[0145] The radio resource control layer processing unit 36 ​​included in the upper layer processing unit 34 performs processing of the RRC layer. The radio resource control layer processing unit 36 ​​generates downlink data (TB, DL-SCH) to be allocated to the PDSCH, system information, RRC messages, MAC CE, etc., or acquires them from an upper node and outputs them to the radio transceiver unit 30. The radio resource control layer processing unit 36 ​​also manages various setting information / parameters for each terminal device 1. The radio resource control layer processing unit 36 ​​may set various setting information / parameters for each terminal device 1 via upper layer signals. That is, the radio resource control layer processing unit 36 ​​transmits / reports information indicating the various setting information / parameters.

[0146] The basic functions of the wireless transceiver unit 30 are the same as those of the wireless transceiver unit 10, and therefore will not be described here. The wireless transceiver unit 30 transmits the physical signal generated in the wireless transceiver unit 30 to the terminal device 1 (i.e., performs transmission processing). The wireless transceiver unit 30 also performs reception processing on the received physical signal.

[0147] The medium access control layer processing units 15 and / or 35 may be referred to as MAC entities.

[0148] Each of the units numbered 10 to 16 included in the terminal device 1 may be configured as a circuit. Each of the units numbered 30 to 36 included in the base station device 3 may be configured as a circuit. Some or all of the units numbered 10 to 16 included in the terminal device 1 may be configured as a memory and a processor connected to the memory. Some or all of the units numbered 30 to 36 included in the base station device 3 may be configured as a memory and a processor connected to the memory. Various aspects (operations, processing) according to this embodiment may be realized (performed) in a memory included in the terminal device 1 and / or the base station device 3 and a processor connected to the memory.

[0149] In carrier aggregation (CA), two or more component carriers (CCs) are aggregated. A UE may simultaneously receive or transmit on one or multiple CCs depending on its capabilities. A UE with one timing advance capability for CA may simultaneously receive and / or transmit on multiple CCs corresponding to multiple serving cells (multiple serving cells grouped into one TAG) that share the same timing advance. A UE with multiple timing advance capabilities for CA may simultaneously receive and / or transmit on multiple CCs corresponding to multiple serving cells (multiple serving cells grouped into multiple TAGs) with different timing advances. The NG-RAN ensures that each TAG contains at least one serving cell. A UE that does not support CA may receive on one CC and transmit on one CC corresponding to only one serving cell (one serving cell in one TAG).

[0150] When CA is configured, the UE has only one RRC connection with the network. During RRC connection establishment / re-establishment / handover, one serving cell provides NAS mobility information, and during RRC connection re-establishment / handover, one serving cell provides security input. This cell is called the Primary Cell (PCell). According to UE capabilities, Secondary Cells (SCells) may be configured to form a set of serving cells with the PCell. The set of serving cells configured for the UE consists of one PCell and one or more SCells. Reconfiguration, addition, and deletion of SCells are performed by RRC. In the case of Intra-NR handover and connection resumption from RRC_INACTIVE, the network may also add, delete, retain, or reconfigure SCells for use with the target PCell. When adding a new SCell, dedicated RRC signaling is used to transmit all system information required for the SCell. That is, while in connected mode, the UE does not need to obtain broadcast system information directly from the SCell.

[0151] The RRC may support the states RRC_IDLE, RRC_INACTIVE, and RRC_CONNECTED.

[0152] SSBs may be classified into Always-on SSBs and On-demand SSBs. In Always-on SSBs, SSBs may be transmitted periodically from a base station device. In On-demand SSBs, SSBs may be transmitted from a base station device when SSB transmission is requested. Always-on SSBs and On-demand SSBs may be referred to as SSBs without distinction between them.

[0153] A transmission request for an SSB in on-demand SSB may be made using a UE uplink wake-up signal (WUS), a cell on / off indication via the backhaul, or Scell ​​activation / deactivation signaling. A method for a transmission request for an SSB may be referred to as a triggering method. A transmission request for an SSB in on-demand SSB may be referred to as an SSB transmission request, an SS / PBCH block request, an SSB trigger, or an on-demand SSB trigger. On-demand SSB may be an operation in an SCell.

[0154] SSB transmission (SSB burst) triggered by an on-demand SSB on an SCell may operate as follows: The UE may assume that on-demand SSBs are transmitted periodically from a first timing. The UE may assume that on-demand SSBs are transmitted periodically from the first timing until the gNB turns off on-demand SSB transmission. The UE may assume that on-demand SSBs are transmitted between the first timing and a second timing, and that no on-demand SSBs are transmitted after the second timing. The UE may assume that on-demand SSBs are transmitted N times after the first timing, and that no on-demand SSBs are transmitted after the N on-demand SSBs are transmitted. The UE may assume that on-demand SSBs are transmitted periodically from the first timing to a second timing, and that on-demand SSBs are transmitted at another transmission period after the second timing. Note that an SSB transmission (SSB burst) may include one or more SS / PBCH blocks.

[0155] In a cell that supports on-demand SSB in an SCell, always-on SSB may not be transmitted. In a cell that supports on-demand SSB in an SCell, always-on SSB may be transmitted periodically.

[0156] In this embodiment, the wireless transceiver 10 may be configured to include a wireless receiving unit, a wireless transmitting unit, and a processing unit. For example, the wireless receiving unit may perform signal reception processing, and the wireless transmitting unit may perform signal transmission processing. For example, the processing unit may determine or set information, and the processing unit may include processing in the upper layer processing unit 14.

[0157] Fig. 6 is a diagram showing an example of processing by a terminal device according to this embodiment. Fig. 6 shows an example in which a first cell and a second cell form a CG, and the terminal device 1 communicates with a base station device 3. For example, the first cell may be a PCell, and the second cell may be an SCell, and the second cell may be one or more SCells. The first cell may be a serving cell identified based at least on a cell ID acquired from an SSB during initial connection. The second cell may be a serving cell used in carrier aggregation.

[0158] In FIG. 6, the terminal device may assume that on-demand SSBs are transmitted periodically from the first timing.

[0159] In FIG. 6 , the timing of the process of S601 may be defined as the third timing, the timing of the process of S602 as the fourth timing, and the timing of the process of S603 as the first timing. The third timing may be the timing when an SSB used in on-demand SSB is configured. The fourth timing may be the timing when an SSB transmission request is made. The first timing may be the timing when the first on-demand SSB is transmitted from the base station device to the terminal device. The first timing may be the timing when the terminal device receives the first SS / PBCH block. The second timing may be the timing when the last on-demand SSB is transmitted from the base station device to the terminal device. The second timing may be the timing when the terminal device finishes receiving the SS / PBCH block or the timing when the terminal device receives the last SS / PBCH block. Between the first timing and the second timing, the on-demand SSB transmitted from the base station device may be transmitted at the same period.

[0160] Before S601, the terminal device 1 establishes an initial connection with the base station device 3, and the terminal device 1 is in a state (RRC_CONNECTED) in which the RRC connection with the base station device 3 is completed. Also, before S601, the terminal device 1 recognizes the existence of a second cell and recognizes that the second cell is a cell that supports transmission of on-demand SSBs.

[0161] In S601, the terminal device receives information regarding the configuration of SSBs used in on-demand SSBs. The information regarding the configuration of on-demand SSBs may include some or all of the following: an on-demand SSB transmission cycle; information indicating the on-demand SSB transmission duration; information indicating whether to stop on-demand SSB transmission; and information regarding when to change the on-demand SSB transmission cycle. The information indicating the on-demand SSB transmission duration may be information regarding the timing for receiving SS / PBCH blocks.

[0162] The SSB settings used for on-demand SSB may include an SSB transmission cycle. On-demand SSB may actually be transmitted periodically after an SSB transmission request is made according to the procedure of S602 described below. The terminal device may receive on-demand SSB based on the cycle set according to this procedure.

[0163] The SSB transmission period may be the SSB transmission start timing and the SSB transmission end timing. The SSB transmission start timing may be information regarding the timing for the terminal device to receive the SS / PBCH block. The SSB transmission end timing may be information regarding the timing for the terminal device to end reception of the SS / PBCH block.

[0164] The SSB transmission start timing may be a frame number, a subframe number, a slot number, an OFDM symbol number, or an SSB index. The SSB start timing may be a relative time. For example, the relative time may be defined by information indicating a relative time from the timing (fourth timing) at which information indicating whether to transmit an SS / PBCH block is received. Furthermore, the information indicating the relative time may be defined by a frame number, a subframe number, a slot number, an OFDM symbol number, the number of frames, the number of subframes, the number of slots, the number of OFDM symbols, or an SSB index.

[0165] The SSB transmission start timing may be referred to as the first timing. In the terminal device, the timing at which the first on-demand SSB is received may be defined as the first timing. The SSB transmission start timing may be based on a candidate time position predefined in the specifications.

[0166] The timing to start transmission of SSB may be determined based on the subcarrier spacing.

[0167] The slot number and / or number of slots at the SSB transmission start timing may be determined based on the subcarrier spacing of the first cell. For example, if the timing of the SSB transmission request is the mth slot of the active DL BWP of the first cell, the timing of the first on-demand SSB transmission from the base station device to the terminal device connecting to the second cell is the m+dth slot of the active DL BWP of the second cell. Here, d is a time gap value, and d may be set based on the number of slots. d may be set based on the subcarrier spacing of the first cell. d may increase as the subcarrier spacing value increases. d may be proportional to the subcarrier spacing value. For example, d may be 3 slots when the subcarrier spacing is 15 kHz, 6 slots when the subcarrier spacing is 30 kHz, and 9 slots when the subcarrier spacing is 60 kHz. The first cell may be the base station device that sets the SSB transmission request or may be a primary cell. The second cell may be a secondary cell.

[0168] The SSB transmission end timing may be a frame number, a subframe number, a slot number, an OFDM symbol number, or an SSB index. The SSB transmission end timing may be a relative time. For example, the relative time may be defined by information indicating a relative time from the timing (fourth timing) at which information indicating whether to transmit an SS / PBCH block is received. For example, the relative time may be defined by information indicating a relative time from the SSB transmission start timing (first timing). Furthermore, the information indicating the relative time may be defined by a frame number, a subframe number, a slot number, an OFDM symbol number, the number of frames, the number of subframes, the number of slots, the number of OFDM symbols, or an SSB index.

[0169] The timing for ending SSB transmission may be set using the number of times the SSB is transmitted. For example, the number of times the SSB is transmitted may be included in information indicating the transmission period of the on-demand SSB or information indicating whether to stop the on-demand SSB transmission. For example, if the number of times the SSB is transmitted is four, the SSB is transmitted four times between the first timing and the second timing.

[0170] The SSB transmission end timing may be referred to as the second timing. In addition, in the terminal device, the timing of receiving the last on-demand SSB may be defined as the second timing. In addition, the SSB transmission end timing may be based on a candidate time position defined in advance in the specifications.

[0171] The SSB transmission end timing may be determined based on the subcarrier spacing. The slot number and / or the number of slots at the SSB transmission end timing may be determined based on the subcarrier spacing of the first cell. The method of determining the SSB transmission end timing based on the subcarrier spacing of the first cell may be the same as the method for determining the SSB transmission start timing.

[0172] If the information indicating whether to stop transmitting on-demand SSBs indicates that transmission of on-demand SSBs should be stopped, transmission of on-demand SSBs is stopped at the second timing. If the information indicating whether to stop transmitting on-demand SSBs indicates that transmission of on-demand SSBs should be stopped and a transmission period from the first timing onwards is set, on-demand SSBs are transmitted periodically between the first timing and the second timing, and on-demand SSBs are transmitted at a different transmission period from the second timing onwards. In this case, the transmission period of on-demand SSBs from the second timing onwards may be set using information for changing the transmission period of on-demand SSBs.

[0173] S601 may be performed at a timing different from the timing at which the SSB used in Always-on SSB is configured.

[0174] S601 may be performed at the same timing as when the SSB used in Always-on SSB is configured. The SSB-related configuration used in On-demand SSB may be the same as some or all of the SSB-related configuration used in Always-on SSB. The SSB-related configuration used in On-demand SSB may be configured using the same configuration method as Always-on SSB. For example, the SSB-related configuration used in On-demand SSB may be configured using the same IE as the SSB-related configuration used in Always-on SSB, or may be configured using an IE different from the IE for Always-on SSB.

[0175] In S602, the terminal device receives information indicating whether or not to transmit an on-demand SSB.

[0176] In S602, the terminal device may request the SS / PBCH block of the secondary cell using an uplink channel or signal. The uplink channel may be a PUSCH, a PUCCH, or a PRACH. The uplink signal may be an SRS. The request may also be made using a MAC CE. The terminal device may also request the SS / PBCH block of the secondary cell using the primary cell.

[0177] In addition, in S602, on-demand SSB transmission may be performed by the base station apparatus transmitting information to the terminal apparatus to activate a cell (e.g., a secondary cell). In addition, in S602, on-demand SSB transmission may be performed by the base station apparatus transmitting information to the terminal apparatus to turn on (make available) a cell (e.g., a secondary cell). In addition, on-demand SSB transmission may be performed by the base station apparatus using the primary cell to transmit information to the terminal apparatus to activate a cell (e.g., a secondary cell).

[0178] In step S603, the terminal device receives the on-demand SSB transmitted from the base station device. The on-demand SSB is transmitted periodically at a transmission period set as the on-demand SSB transmission period.

[0179] In S603, the terminal device may start receiving the on-demand SSB after receiving a response (e.g., ACK, PDCCH) from the base station device to the signal requesting the SSB of the secondary cell using an uplink channel or signal. Note that the timing of receiving the on-demand SSB after receiving the response may be defined in the specifications, may be set in advance in the RRC layer, or may be included in the on-demand SSB setting.

[0180] In S603, the terminal device may start receiving SSBs at the timing of the first SSB after X slots from the timing when the terminal device correctly receives information regarding the activation of a cell (e.g., a secondary cell). The information regarding the activation of a cell (e.g., a secondary cell) may be received via MAC CE or system information (SI). It may also be received via PDCCH or PDSCH. Note that although the SSB reception timing is defined by the number of slots, it may also be implemented additionally or alternatively using information indicating other time positions, such as seconds or the number of symbols.

[0181] In S603, the terminal device may start receiving SSBs at the timing of the first SSB after X slots from the timing when the terminal device correctly receives information about the cell (e.g., secondary cell) being on. The information about the cell (e.g., secondary cell) being on may be received via MAC CE, PDCCH, or PDSCH. Note that although the SSB reception timing is defined by the number of slots, it may also be implemented additionally or alternatively using information indicating other time positions, such as seconds or the number of symbols.

[0182] Fig. 7 is a diagram showing an example of processing by the base station device according to this embodiment. Here, differences between Fig. 6 and Fig. 7 will be mainly described. In Fig. 7, on-demand SSBs may be transmitted periodically from a first timing.

[0183] In step S701, the base station device sets information related to the configuration of an SSB used in on-demand SSB. For example, the base station device sets up the SSB by transmitting an RRC message including information related to the SSB to the terminal device.

[0184] In S702, the base station device sets information indicating whether to transmit an on-demand SSB. For example, the base station device may transmit an RRC message including information indicating whether to transmit an SSB to the terminal device. Alternatively, the base station device may set the information indicating whether to transmit an on-demand SSB using the method described in S602.

[0185] In S703, the base station apparatus transmits an on-demand SSB to the terminal apparatus. The on-demand SSB is set based on the information set in S701 and S702, and is transmitted periodically.

[0186] Fig. 8 is a diagram showing an example of processing by a terminal device according to this embodiment. Here, differences between Fig. 6 and Fig. 8 will be mainly described. In Fig. 8, the terminal device may assume that an on-demand SSB is transmitted between a first timing and a second timing, and that no on-demand SSB is transmitted after the second timing. The method of determining the second timing may be based on a setting in the base station device for turning off on-demand SSB transmission, or may be based on information indicating whether or not to stop on-demand SSB transmission set in S601.

[0187] In step S801, the terminal device receives the last on-demand SSB transmitted from the base station device. The timing of the process in step S801 may be defined as the second timing.

[0188] Fig. 9 is a diagram showing an example of processing by the base station apparatus according to this embodiment. Here, differences between Fig. 7 and Fig. 9 will be mainly described. In Fig. 9, an on-demand SSB is transmitted between the first timing and the second timing, and an on-demand SSB does not need to be transmitted after the second timing.

[0189] In step S901, the base station device transmits the last on-demand SSB to the terminal device. The on-demand SSB may be set based on the information set in steps S701 and S702.

[0190] Fig. 10 is a diagram showing an example of processing by a terminal device according to this embodiment. Here, differences between Fig. 8 and Fig. 10 will be mainly described. In Fig. 10, the terminal device may assume that on-demand SSBs are transmitted periodically between a first timing and a second timing, and that on-demand SSBs are transmitted at another transmission period after the second timing.

[0191] In S1001, the terminal device receives an SSB with a different transmission period from the base station device. Here, the different transmission period is a transmission period different from the transmission period of the on-demand SSB received in S603. The different transmission period may be set by information indicating the transmission period of the on-demand SSB.

[0192] Fig. 11 is a diagram showing an example of processing by the base station apparatus according to this embodiment. Here, differences between Fig. 9 and Fig. 11 will be mainly described. In Fig. 11, on-demand SSBs are transmitted periodically between a first timing and a second timing, and on-demand SSBs are transmitted at other transmission intervals after the second timing.

[0193] In step S1101, the base station transmits SSBs with different transmission cycles to the terminal device. The different transmission cycles may be set by information indicating the transmission period of the on-demand SSBs.

[0194] The programs running on the base station device 3 and the terminal device 1 according to one aspect of the present invention may be programs (programs that cause a computer to function) that control a CPU (Central Processing Unit) or the like so as to realize the functions of the above-described embodiment according to one aspect of the present invention. Information handled by these devices is temporarily stored in RAM (Random Access Memory) during processing, and then stored in various ROMs such as Flash ROM (Read Only Memory) or HDD (Hard Disk Drive), and is read, modified, and written by the CPU as needed.

[0195] Note that the terminal device 1 and part of the base station device 3 in the above-described embodiment may be realized by a computer. In this case, a program for realizing this control function may be recorded on a computer-readable recording medium, and the program recorded on this recording medium may be read into a computer system and executed to realize the control function.

[0196] The "computer system" referred to here is a computer system built into the terminal device 1 or base station device 3, and includes hardware such as the OS and peripheral devices. Also, the "computer-readable recording medium" refers to portable media such as flexible disks, optical magnetic disks, ROMs, CD-ROMs, and storage devices such as hard disks built into the computer system.

[0197] Furthermore, the term "computer-readable recording medium" may include a medium that dynamically stores a program for a short period of time, such as a communication line when transmitting a program via a network such as the Internet or a communication line such as a telephone line, or a medium that stores a program for a certain period of time, such as a volatile memory within a computer system that serves as a server or client in such a case. The program may also be one that realizes part of the above-mentioned functions, or one that can realize the above-mentioned functions in combination with a program already recorded in the computer system.

[0198] Furthermore, the base station device 3 in the above-described embodiment can also be realized as a collection (device group) consisting of multiple devices. Each of the devices constituting the device group may have some or all of the functions or functional blocks of the base station device 3 according to the above-described embodiment. It is sufficient for the device group to have all of the functions or functional blocks of the base station device 3. Furthermore, the terminal device 1 according to the above-described embodiment can also communicate with the base station device as a collection.

[0199] Furthermore, the base station device 3 in the above-described embodiment may be an EUTRAN (Evolved Universal Terrestrial Radio Access Network) and / or an NG-RAN (NextGen RAN, NR RAN). Furthermore, the base station device 3 in the above-described embodiment may have some or all of the functions of an upper node for an eNodeB and / or a gNB.

[0200] Furthermore, some or all of the terminal device 1 and base station device 3 in the above-described embodiments may be realized as an LSI, which is typically an integrated circuit, or as a chipset. Each functional block of the terminal device 1 and base station device 3 may be individually formed into a chip, or some or all of them may be integrated into a chip. Furthermore, the integrated circuit method is not limited to LSI, and may be realized using a dedicated circuit or a general-purpose processor. Furthermore, if an integrated circuit technology that can replace LSI emerges due to advances in semiconductor technology, it is also possible to use an integrated circuit based on that technology.

[0201] Furthermore, in the above-described embodiment, a terminal device is described as an example of a communication device, but the present invention is not limited to this and can also be applied to terminal devices or communication devices such as stationary or non-movable electronic devices installed indoors or outdoors, for example, AV equipment, kitchen equipment, cleaning / washing equipment, air conditioning equipment, office equipment, vending machines, and other household appliances.

[0202] Although the embodiments of the present invention have been described in detail above with reference to the drawings, the specific configuration is not limited to this embodiment, and design modifications and the like are also included within the scope of the gist of the present invention. Furthermore, various modifications of one aspect of the present invention are possible within the scope of the claims, and embodiments obtained by appropriately combining the technical means disclosed in different embodiments are also included in the technical scope of the present invention. Furthermore, configurations in which elements described in the above embodiments are substituted with elements that achieve the same effect are also included.

[0203] One aspect of the present invention can be used, for example, in a communication system, a communication device (e.g., a mobile phone device, a base station device, a wireless LAN device, or a sensor device), an integrated circuit (e.g., a communication chip), or a program.

[0204] 1 (1A, 1B, 1C) Terminal device 3 Base station device 10, 30 Radio transmission / reception unit 11, 31 Antenna unit 12, 32 RF unit 13, 33 Baseband unit 14, 34 Upper layer processing unit 15, 35 Medium access control layer processing unit 16, 36 Radio resource control layer processing unit

Claims

1. A terminal device that communicates with a base station device using a primary cell and at least one secondary cell, comprising: an upper layer processing unit that receives information regarding the timing for ending reception of an SS / PBCH block; and a radio receiving unit that receives the SS / PBCH block, wherein the timing for ending reception of the SS / PBCH block is determined based on information indicating whether or not to stop transmission of the SS / PBCH block.

2. The terminal device according to claim 1, wherein the upper layer processing unit receives information regarding the timing for receiving the SS / PBCH block, the SS / PBCH block is an SS / PBCH block that is transmitted based on information regarding the timing for receiving the SS / PBCH block, and the timing for receiving the SS / PBCH block is determined based on information indicating whether or not to transmit the SS / PBCH block.

3. The terminal device according to claim 1, wherein the information regarding the timing for ending reception of the SS / PBCH block is indicated by a slot number.

4. The terminal device of claim 1, wherein the information regarding the timing for ending reception of the SS / PBCH block is defined by information indicating a relative time from the timing of receiving information indicating whether or not to transmit the SS / PBCH block, and the information indicating the relative time is indicated by the number of slots, the number of subframes, or the number of frames.

5. The terminal device according to claim 1, further comprising a transmitting unit that transmits an uplink channel or signal, the transmitting unit requests an SS / PBCH block of a secondary cell using an uplink channel or signal, and the timing for receiving information indicating whether to transmit the SS / PBCH block is the timing for receiving a response from the terminal device.

6. The terminal device according to claim 1, wherein the timing for receiving information indicating whether or not to transmit the SS / PBCH block is the timing for receiving information transmitted from the base station device to activate a secondary cell or turn on a secondary cell.

7. The terminal device according to claim 4, wherein the number of slots is calculated based on the subcarrier spacing of the primary cell.

8. A base station device that communicates with a terminal device using a primary cell and at least one secondary cell, comprising: an upper layer processing unit that transmits information regarding the timing for ending reception of an SS / PBCH block; and a radio transmission unit that transmits the SS / PBCH block, wherein the timing for ending reception of the SS / PBCH block is determined based on information indicating whether or not to stop transmission of the SS / PBCH block.

9. The base station apparatus according to claim 8, wherein the upper layer processing unit transmits information regarding the timing for receiving the SS / PBCH block, the SS / PBCH block is an SS / PBCH block that is transmitted based on information regarding the timing for receiving the SS / PBCH block, and the timing for receiving the SS / PBCH block is determined based on information indicating whether or not to transmit the SS / PBCH block.

10. A communication method for a terminal device that communicates with a base station device using a primary cell and at least one secondary cell, comprising: receiving information regarding the timing for receiving an SS / PBCH block, information regarding the timing for ending reception of the SS / PBCH block, and the SS / PBCH block; the SS / PBCH block is an SS / PBCH block that is transmitted based on information regarding the timing for receiving the SS / PBCH block; the timing for receiving the SS / PBCH block is determined based on information indicating whether to transmit the SS / PBCH block; and the timing for ending reception of the SS / PBCH block is determined based on information indicating whether to stop transmission of the SS / PBCH block.