Communication device, base station, communication method, and integrated circuit

By controlling uplink signal transmission in non-terrestrial networks to maintain power and phase continuity, the method addresses orthogonality loss in NTN systems, enhancing reception performance and reducing interference.

WO2026028704A1PCT designated stage Publication Date: 2026-02-05PANASONIC INTELLECTUAL PROPERTY CORP OF AMERICA
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Patent Information

Application Number
PCT/JP2025/023799
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-08-02
Filing Date
2025-07-02
Publication Date
2026-02-05

AI Technical Summary

Technical Problem

In non-terrestrial networks (NTNs) like satellite communications, the long distance between satellites and terminals leads to significant propagation attenuation, necessitating repetition transmission of data, which can result in loss of orthogonality between uplink signals due to discontinuous transmission, causing degradation of reception performance.

Method used

A communication device and method that controls the stopping or postponing of uplink signal transmission in specific time resources when discontinuity occurs, maintaining power and phase continuity to prevent loss of orthogonality between terminals using orthogonal cover codes (OCCs).

Benefits of technology

This approach reduces inter-terminal interference and maintains reception quality by ensuring orthogonality and continuity of uplink signals, even in the presence of PRACH resources, DL slots, or other events that disrupt continuous transmission.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention appropriately transmits an uplink signal. This terminal comprises: a control circuit that controls a transmission stop of an uplink signal in at least part of a plurality of time resources in a section, an orthogonally coded uplink signal being allocated to the time resources, if transmission of the uplink signal becomes discontinuous due to another signal or another channel, or if an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section; and a transmission circuit that transmits the uplink signal in accordance with the control of the transmission stop.
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Description

Communication device, base station, communication method, and integrated circuit

[0001] The present disclosure relates to a communication device, a base station, a communication method, and an integrated circuit.

[0002] New Radio access technology (NR) for 5G has been specified by 3GPP, and specifications up to Release 18 (Rel.18) of NR have been published.

[0003] 3GPP, TR 38.821, V16.1.0 “Solutions for NR to support non-terrestrial networks (NTN) (Release 16)”3GPP, TS 38.214, V18.1.0 “NR; Physical layer procedures for data (Release 18)”

[0004] However, there is room for further consideration regarding the method of transmitting the upstream signal.

[0005] Non-limiting embodiments of the present disclosure contribute to providing a communication device, a base station, a communication method, and an integrated circuit that can appropriately transmit an uplink signal.

[0006] A terminal according to one embodiment of the present disclosure comprises a control circuit that controls the stopping of transmission of an uplink signal in at least some of the time resources in a section including multiple time resources to which an uplink signal to which an orthogonal code is applied is assigned, when transmission of the uplink signal becomes discontinuous due to other signals or other channels, or when an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section, and a transmission circuit that transmits the uplink signal in accordance with the control of the stopping of transmission.

[0007] These comprehensive or specific aspects may be realized as a system, an apparatus, a method, an integrated circuit, a computer program, or a recording medium, or may be realized as any combination of a system, an apparatus, a method, an integrated circuit, a computer program, and a recording medium.

[0008] According to an embodiment of the present disclosure, uplink signals can be transmitted appropriately.

[0009] Further advantages and benefits of an embodiment of the present disclosure will become apparent from the specification and drawings. Such advantages and / or benefits may be provided by some of the embodiments and features described in the specification and drawings, respectively, but not necessarily all of them may be provided to obtain one or more identical features.

[0010] 1. Block diagram showing an example of the configuration of a portion of a terminal. 2. Block diagram showing an example of the configuration of a portion of a base station. 3. Block diagram showing an example of the configuration of a terminal. 4. Block diagram showing an example of the configuration of a base station. 5. Diagram showing an example of a transmission method for PUSCH (Physical Uplink Shared Channel). 6. Diagram showing an example of a transmission method for PUSCH. 7. Diagram showing an example of a transmission method for PUSCH. 8. Diagram showing an example of a relationship between the sequence length of OCC (Orthogonal Cover Code) and φ. 9. Diagram of an exemplary architecture of a 3GPP NR system. 10. Diagram of an exemplary functional division in 5G O-RAN.

[0011] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings.

[0012] <Regarding Non-Terrestrial Networks (NTNs)> NR Rel. 15 is specified as a radio access technology for terrestrial networks. On the other hand, NR is being considered for extension to non-terrestrial networks (NTNs), such as communications using satellites or high-altitude platform stations (HAPSs) (see, for example, Non-Patent Document 1).

[0013] In the case of communications via satellite, the distance between the satellite and the terminal (also called user equipment (UE)) is long, which means that propagation attenuation is likely to be large. To achieve a sufficiently high reception quality at the satellite, it is expected that the terminal will use a method such as repeatedly transmitting multiple pieces of data (e.g., repetition transmission).

[0014] In an NTN environment, satellite coverage areas (e.g., one or more cells) for terminals located on the ground, in the sky, such as aircraft or drones, or at sea are formed by beams from the satellite (also called satellite beams). The size of a single beam on the Earth's surface can be, for example, 50 to 1,000 km in diameter. For this reason, NTNs are expected to accommodate a large number of terminals.

[0015] Therefore, for example, for the Physical Uplink Shared Channel (PUSCH) used for uplink data transmission, studies are being conducted to increase the number of terminals that can be accommodated by multiplying repeatedly transmitted data by orthogonal codes (e.g., orthogonal cover codes (OCCs)) that differ between terminals and multiplexing the data onto the same time-frequency resources.

[0016] Three methods of applying OCC are under consideration: (1) "Inter-slot OCC," (2) "Inter-symbol OCC," and (3) "Intra-symbol OCC."

[0017] In inter-slot OCC, PUSCHs between terminals are made orthogonal in units of multiple slots by multiplying by OCC when repetition is performed in units of slots.

[0018] Inter-symbol OCC makes PUSCHs between terminals orthogonal in units of multiple symbols by multiplying by OCC when repetition is performed between OFDM (Orthogonal Frequency Division Multiplexing) symbols.

[0019] Intra-symbol OCC, the modulation symbols before DFT spreading are replicated in the DFT (Discrete Fourier Transform)-S (spread)-OFDM signal generation process and multiplied by OCC, thereby orthogonalizing the PUSCHs between terminals in units of multiple modulation symbols.

[0020] In NR, when PUSCH repetition transmission is performed, a terminal does not transmit PUSCH in PRACH (Physical Random Access Channel) resources or DL ​​(Downlink) slots, but performs repetition transmission in slots where PUSCH transmission is possible. In the case of a PUSCH to which OCC is applied, in a time interval in which one OCC sequence is applied (e.g., also referred to as an "OCC application interval" or "OCC interval"), it is expected that power and phase continuity is maintained (or limited to a predetermined error range) in order to maintain orthogonality between terminals. For example, in an OCC interval, PUSCH transmission may be discontinuous on either side of a PRACH resource or DL ​​slot. In this case, power and phase continuity may not be maintained between the PUSCH transmission timing after the PRACH resource or DL ​​slot and the PUSCH transmission timing before the PRACH resource or DL ​​slot. This may result in a loss of orthogonality between terminals transmitting OCC-applied PUSCHs, resulting in degradation of reception performance.

[0021] Therefore, in a non-limiting embodiment of the present disclosure, a method for suppressing a loss of orthogonality between terminals transmitting PUSCHs to which OCC is applied and suppressing degradation of reception performance will be described. For example, in a non-limiting embodiment of the present disclosure, when PUSCH transmission to which OCC is applied becomes discontinuous due to another channel or another signal, or an event in which power and phase continuity is not maintained, a terminal stops (e.g., drops or postpones) PUSCH transmission in the discontinuous OCC interval. This makes it possible to reduce the loss of orthogonality between terminals transmitting PUSCHs to which OCC is applied.

[0022] [Overview of Communication System] A communication system according to an embodiment of the present disclosure includes a terminal 100 and a base station 200.

[0023] 1 is a block diagram showing a partial configuration example of a terminal 100. In the terminal 100 shown in FIG. 1, a control unit (e.g., corresponding to a control circuit) controls the stop (e.g., dropping or postponing) of transmission of the uplink signal in at least some of the time resources in a section (e.g., an OCC section) including a plurality of time resources (e.g., slots) to which an uplink signal (e.g., a PUSCH) to which an orthogonal code (e.g., OCC) is applied is allocated, when some of the time resources cannot be used for transmitting the uplink signal, or when an event occurs in which power and phase continuity cannot be maintained in the section. A communication unit (e.g., corresponding to a transmission circuit) transmits the uplink signal in accordance with the transmission stop control.

[0024] 2 is a block diagram showing a partial configuration example of a base station 200. In the base station 200 shown in FIG. 2, a control unit (e.g., corresponding to a control circuit) performs reception control of an uplink signal, assuming that transmission of the uplink signal in at least some of the time resources in a section (e.g., an OCC section) including a plurality of time resources (e.g., slots) to which an uplink signal (e.g., a PUSCH) to which an orthogonal code (e.g., OCC) is applied is stopped (e.g., dropped or postponed) if some time resources cannot be used for transmitting the uplink signal, or if an event occurs in the section that makes it impossible to maintain power and phase continuity. A communication unit (e.g., corresponding to a receiving circuit) receives the uplink signal according to the reception control.

[0025] (Embodiment 1) In this embodiment, when transmitting a PUSCH to which OCC is applied, if there is a slot in which the PUSCH cannot be transmitted within the interval to which OCC is applied (OCC interval), terminal 100 stops (e.g., drops or postpones) the PUSCH transmission in the OCC interval including the slot in which the PUSCH cannot be transmitted.

[0026] 3 is a block diagram showing an example of the configuration of terminal 100 according to embodiment 1. Terminal 100 has radio receiving section 101, data reception processing section 102, control section 103, data transmission processing section 104, and radio transmitting section 105.

[0027] At least one of the data reception processing unit 102, the control unit 103, and the data transmission processing unit 104 shown in Fig. 3 may be included in the control unit shown in Fig. 1. Also, at least one of the wireless reception unit 101 and the wireless transmission unit 105 shown in Fig. 3 may be included in the communication unit shown in Fig. 1.

[0028] The radio receiving section 101 performs analog receiving processing and digital receiving processing such as down-conversion, A / D conversion, and filtering on a signal received from the base station 200 via an antenna, and outputs the processed signal to the data receiving processing section 102 .

[0029] The data reception processing unit 102 demodulates and decodes downlink signals such as SSB (Synchronization Signal (SS) / Physical Broadcast Channel (PBCH) Block), downlink control channels (e.g., PDCCH: Physical Downlink Control Channel), and downlink shared channels (e.g., PDSCH: Physical Downlink Shared Channel) output from the radio reception unit 101.

[0030] The SSB includes, for example, a synchronization signal and broadcast information to the entire cell.

[0031] The PDSCH may include, in addition to user data, broadcast information such as system information, RRC (Radio Resource Control) control information, MAC CE (Medium Access Control Control Element) control information, RACH (Random Access Channel) responses (e.g., Msg2), TA (Timing Advance) commands, and the like. Furthermore, the data reception processing unit 102 performs reception processing of RRC control information (e.g., an RRC Reconfiguration message, etc.), and outputs the RRC control information to the control unit 103. The RRC control information may include, for example, information regarding the number of slots, or information regarding DMRS bundling. The information regarding the number of slots may be, for example, at least one of the number of slots to be transmitted in repetition, the number of repetitions, and the number of slots to which one TB (Transport Block) is mapped (e.g., the number of slots to be transmitted in TBoMS (Transport Block processing over Multiple Slots)). Furthermore, the information regarding DMRS bundling may include, for example, information regarding TDW (Time Domain Window). Furthermore, the information may be included in MAC CE or Msg.2 transmitted in the PDSCH. The system information may also include information related to time / frequency synchronization such as satellite ephemeris, common TA parameters, Epoch time, etc. The data reception processing unit 102 may output this control information included in the PDSCH to the control unit 103.

[0032] The PDCCH includes, for example, resource allocation information for the PDSCH, resource allocation information for the PUSCH, and resource allocation information for an uplink control channel (for example, PUCCH: Physical Uplink Control Channel) used for HARQ-ACK transmission for the PDSCH.

[0033] The PDSCH or PDCCH may include, for example, information regarding an OCC sequence length, an OCC sequence, or a port of a demodulation reference signal (e.g., a DMRS port) for a demodulation reference signal. The PDSCH or PDCCH may include, for example, information regarding the transmission timing of uplink control information (e.g., Uplink Control Information (UCI)). The UCI may include, for example, a HARQ-ACK, a Scheduling Request (SR), or Channel State Information (CSI) feedback. The PDSCH or PDCCH may include, for example, information regarding PRACH resources (e.g., information regarding PRACH transmission slots or resource blocks) or information regarding DL slots. The information regarding PRACH resources (slots or resource blocks) or DL ​​slots may be information broadcast individually to cells, such as a System Information Block (SIB). The PDSCH or PDCCH may also include, for example, information regarding a transmission request, transmission period, and resources of a Sounding Reference Signal (SRS). Furthermore, the PDSCH or PDCCH may include, for example, information relating to transmission power control (such as a TPC command).

[0034] The control unit 103 may acquire location information of the terminal 100 from a Global Navigation Satellite System (GNSS) or the like. The control unit 103 may also calculate the orbit and position of a satellite based on information such as satellite ephemeris and epoch time input from the data reception processing unit 102. The control unit 103 may calculate a timing adjustment value (TA value) using a round-trip delay time between the terminal 100 and the satellite calculated from the location information, a round-trip delay time between the satellite and the base station calculated from common TA parameters, and information on a TA command notified from the base station 200, and output the TA value to the wireless transmission unit 105.

[0035] The control unit 103 may calculate the Doppler shift based on the satellite orbit information and the terminal position information of the terminal 100 and output it to the radio transmission unit 105 .

[0036] Here, in a time interval (OCC interval) in which multiplication by a certain OCC sequence is applied, it may be desirable to maintain continuity of phase and amplitude (or power) in order to maintain orthogonality of the OCC-applied signal. For this reason, the control unit 103 may adjust the transmission timing or frequency at timings other than the time interval in which multiplication by a certain OCC sequence is applied.

[0037] Control unit 103 outputs information related to the OCC, information related to the number of slots, and information related to the OCC sequence number or DMRS port input from data reception processing unit 102 to data transmission processing unit 104. Control unit 103 also outputs information related to the time / frequency resources for PUSCH transmission notified from base station 200 (input from data reception processing unit 102 to control unit 103) to data transmission processing unit 104.

[0038] In addition, based on the information on the PRACH resource or DL ​​slot input from the data reception processing unit 102, the control unit 103 outputs information on slots in which PUSCH transmission cannot be performed, and information on the SRS transmission slot or SRS resource to the data transmission processing unit 104.

[0039] In addition, the control unit 103 may, for example, take into consideration the corresponding functions or performance of the data transmission processing unit 104 and the radio transmission unit 105 of the terminal 100, output information on OCC-related capabilities (UE capability) such as the corresponding OCC sequence length or capabilities related to maintaining power and phase during discontinuous transmission to the data transmission processing unit 104 (transmitting this as UE capability via an RRC message).

[0040] Furthermore, the control unit 103 generates UCI and outputs it to the data transmission processing unit 104 at a timing based on information about the UCI transmission timing notified from the base station 200 .

[0041] The data transmission processing unit 104 may perform coding such as LDPC (Low Density Parity Check) on the transmission data, modulation such as QPSK and 16QAM (Quadrature Amplitude Modulation), DFT-s-OFDM modulation processing, and mapping to time / frequency resources based on information about the PUSCH resource, OCC sequence length, OCC sequence number information, or slot number information input from the control unit 103. Furthermore, the data transmission processing unit 104 may perform data repetition and OCC multiplication based on information about the OCC and information about the slot number. Furthermore, the data transmission processing unit 104 may multiplex UCI and data and transmit the PUSCH at the UCI transmission timing.

[0042] However, if an OCC interval includes a slot in which PUSCH transmission cannot be performed, such as a PRACH slot or a DL slot, the data transmission processing unit 104 does not perform PUSCH transmission in that OCC interval (for example, determines to stop transmission). Also, if SRS transmission is performed in the OCC interval, the data transmission processing unit 104 does not perform PUSCH transmission in that OCC interval (for example, determines to stop transmission). For example, the data transmission processing unit 104 performs transmission (for example, PUSCH transmission) in the OCC interval while maintaining continuity of power and phase (or maintaining them below a specified fluctuation amount).

[0043] An example of the operation of PUSCH transmission in the OCC section will be described later.

[0044] Furthermore, the data transmission processing unit 104 may generate a DMRS based on information relating to the antenna port or DMRS port input from the control unit 103 and output the DMRS to the radio transmission unit 105 .

[0045] The radio transmitting unit 105 performs analog transmission processing and digital transmission processing such as D / A conversion, filtering, up-conversion, and amplification on the signal input from the data transmission processing unit 104, and transmits the radio signal from an antenna. The radio transmitting unit 105 may perform either or both of timing adjustment and frequency correction based on timing information (e.g., TA information) and a frequency correction value input from the control unit 103.

[0046] 4 is a block diagram showing an example of the configuration of base station 200 according to this embodiment. Base station 200 has radio receiving section 201, data reception processing section 202, control section 203, data transmission processing section 204, and radio transmitting section 205.

[0047] At least one of the data reception processing unit 202, the control unit 203, and the data transmission processing unit 204 shown in Fig. 4 may be included in the control unit shown in Fig. 2. Also, at least one of the wireless reception unit 201 and the wireless transmission unit 205 shown in Fig. 4 may be included in the communication unit shown in Fig. 2.

[0048] The radio receiving section 201 performs analog and digital receiving processes such as down-conversion, A / D conversion, and filtering on the signal received from the terminal 100 via the antenna, and outputs the processed signal to the data receiving processing section 202 .

[0049] The data reception processing unit 202 performs channel estimation and demodulation / decoding processing on uplink signals such as the PUSCH, PUCCH, and PRACH input from the radio receiving unit 201 to obtain a received data sequence. When receiving a PUSCH to which OCC is applied, the data reception processing unit 202 may perform despreading processing (e.g., adding signals multiplied by the complex conjugate or reciprocal of the OCC sequence) in accordance with the OCC sequence or OCC sequence number set by the control unit 203. When the despreading interval of one OCC sequence spans multiple slots, the data reception processing unit 202 may perform joint channel estimation using DMRSs of multiple slots.

[0050] Furthermore, when receiving a PUSCH to which OCC is applied, if a PRACH resource or a DL slot is within an OCC interval, the data reception processing unit 202 does not receive the PUSCH in that OCC interval (for example, performs reception control assuming that PUSCH transmission in the terminal 100 is stopped). The data reception processing unit 202 may perform reception according to a PUSCH transmission method, which will be described later, for example.

[0051] Furthermore, the data reception processing unit 202 outputs the RRC message and MAC CE data included in the PUSCH to the control unit 203. The RRC message may include, for example, information on terminal capabilities related to OCC or terminal capabilities related to maintaining power and phase continuity during discontinuous transmission.

[0052] The control unit 203 generates system information (broadcast information) such as a master information block (MIB) and a system information block (SIB), and control information such as terminal-specific control information (RRC message). The system information may include, for example, information for the NTN, such as satellite ephemeris information, common TA parameters used for terminal TA, and epoch time. The system information may also include, for example, information on PRACH resources or DL ​​slots. The RRC message may include, for example, information on OCC, such as an OCC sequence length or an OCC number, information on the number of slots to be transmitted in repetition or the number of TBoMS slots, information on DMRS bundling, and information on UCI transmission timing. The RRC message may also include, for example, information on an SRS transmission period or resources.

[0053] The control unit 203 generates downlink control information (DCI) or a PDCCH associated with PDSCH transmission. The DCI may include, for example, information related to PDSCH retransmission control such as a new data indicator (NDI) and a redundancy version (RV), information related to the modulation and coding scheme (MCS) of the PDSCH and the PUSCH, resource allocation information for the PDSCH and the PUSCH, resource allocation information for the PUCCH used for HARQ-ACK transmission for the PDSCH, or information related to the transmission timing of the UCI. The DCI may also include a TA command or information related to transmission power control. The DCI may also include, for example, information related to OCC such as an OCC sequence length and an OCC sequence number, or information related to the antenna port or DMRS port used for transmitting the PUSCH and the PUCCH.

[0054] The control unit 203 outputs, for example, this control information to the data transmission processing unit 204, and also outputs setting values ​​based on the control information (e.g., PUSCH and PUCCH resources, OCC sequence length, OCC sequence number, number of TBoMS slots, number of repetitions, TDW of DMRS bundling, etc.) to the data reception processing unit 202.

[0055] The data transmission processing unit 204 performs coding such as LDPC on the transmission data and control information input from the control unit 203 , performs modulation such as QPSK and 16QAM, and outputs the result to the radio transmission unit 205 .

[0056] The radio transmitting section 205 performs transmission processing such as D / A conversion, filtering, up-conversion, and amplification on the signal input from the data transmission processing section 204, and transmits the radio signal from the antenna.

[0057] [Example of operation of terminal and base station] The following describes an example of operation of terminal 100 and base station 200 in a case where a slot in which PUSCH transmission is not possible, such as a PRACH resource or DL ​​slot, exists in the OCC interval during PUSCH transmission to which OCC is applied, or where PUSCH cannot be transmitted continuously in the OCC interval due to SRS transmission or the like, for example, when PUSCH transmission becomes discontinuous in the OCC interval.

[0058] <Method 1> In method 1, terminal 100 drops the PUSCH in the OCC interval. For example, terminal 100 determines not to transmit (e.g., drop) the PUSCH in the OCC interval when another signal (e.g., SRS) different from the PUSCH or another channel (e.g., PRACH or DL ​​channel) is arranged in the OCC interval.

[0059] For example, when transmitting a PUSCH to which OCC is applied, if a slot in which PUSCH cannot be transmitted, such as a PRACH resource or DL ​​slot, is placed within the OCC interval, or if PUSCH transmission becomes discontinuous in the OCC interval due to SRS transmission, etc., terminal 100 does not transmit a PUSCH to which OCC is applied (for example, decides to stop transmitting PUSCH).

[0060] At this time, terminal 100 does not transmit the PUSCH in any slot of the OCC interval in which the PUSCH cannot be transmitted continuously, and does not postpone the PUSCH transmission to another slot. In other words, terminal 100 determines not to transmit (drop) the PUSCH.

[0061] Fig. 5 shows, as an example, an operation example when the number of repetitions is 8 and the OCC sequence length is 4. The example on the left side of Fig. 5 shows a case where SRS transmission is performed in the first half of the OCC interval, and the example on the right side of Fig. 5 shows a case where a PRACH resource (slot) is included in the first half of the OCC interval. In these cases, as shown in Fig. 5, terminal 100 drops PUSCH (e.g., PUSCH transmission) in the OCC interval.

[0062] The same operation is performed when a DL slot is included in the OCC section.

[0063] Method 1 enables PUSCH transmission avoiding PRACH resources or DL ​​slots while reducing inter-code interference between terminals transmitting PUSCHs to which OCC is applied. Furthermore, even when multiplexed transmission between terminals is not performed, there is also an effect of reducing inter-slot interference due to power or phase fluctuations when despreading multiple slots to which OCC is applied in terminal 100.

[0064] Furthermore, in method 1, the dropped PUSCH is not postponed to another slot for transmission, and therefore does not overlap with the transmission of another terminal 100 whose transmission of a PUSCH or PUCCH is separately scheduled.

[0065] <Method 2> In method 2, terminal 100 shifts the PUSCH for each OCC interval by an OCC grid (e.g., in units of OCC intervals). For example, terminal 100 stops PUSCH transmission in an OCC interval in which a signal different from the PUSCH (e.g., SRS) or another channel (e.g., PRACH or DL ​​channel) is arranged, and determines PUSCH transmission in an OCC interval after the OCC interval (e.g., the next OCC interval).

[0066] For example, when transmitting a PUSCH to which OCC is applied, if a slot in which PUSCH cannot be transmitted, such as a PRACH resource or DL ​​slot, is placed within the OCC interval, or if PUSCH transmission becomes discontinuous in the OCC interval due to SRS transmission, etc., terminal 100 does not transmit a PUSCH to which OCC is applied within the OCC interval (for example, determines to stop transmitting PUSCH).

[0067] At this time, terminal 100 does not transmit PUSCHs in all slots of the OCC interval in which PUSCHs cannot be transmitted continuously, and transmits the PUSCHs that were scheduled to be transmitted in these slots in a later OCC interval (for example, the next OCC interval). That is, terminal 100 postpones (or shifts or delays) PUSCH transmission by a time equivalent to the OCC interval.

[0068] As an example, Fig. 6 shows an operation example in which the repetition count is 8 and the OCC sequence length is 4. The example on the left side of Fig. 6 shows a case in which SRS transmission is performed within a certain OCC interval, and the example on the right side of Fig. 6 shows a case in which a PRACH resource (slot) is included within a certain OCC interval. In these cases, as shown in Fig. 6, terminal 100 transmits a PUSCH in 8 slots including the OCC interval next to the OCC interval. That is, terminal 100 postpones the OCC interval in which the PUSCH is transmitted by the number of slots corresponding to the OCC interval (e.g., 4 slots).

[0069] The same operation is performed when a DL slot is included in the OCC section.

[0070] Method 2 enables PUSCH transmission avoiding PRACH resources or DL ​​slots while reducing the loss of orthogonality (or inter-code interference) between terminals transmitting PUSCHs to which OCC is applied. Furthermore, even when multiplexed transmission is not performed between terminals, there is also an effect of reducing inter-slot interference due to power or phase fluctuations when despreading multiple slots to which OCC is applied in terminal 100.

[0071] Furthermore, in method 2, the PUSCH to which OCC is applied is postponed and transmitted, so that PUSCH transmission can be performed while maintaining the amount of PUSCH resources (e.g., slots) allocated by the PDCCH, and degradation of PUSCH reception performance can be suppressed.

[0072] Furthermore, for example, since it is assumed that the SRS transmission timing is set individually (independently) for each terminal 100, it is possible that PUSCH transmission will be postponed due to SRS transmission in some terminals 100 among the terminals performing multiplex transmission (PUSCH transmission will not be postponed in other terminals 100). Even in this case, since PUSCH transmission is postponed in units of OCC intervals (OCC grids), it is possible to match the OCC interval in which a terminal 100 that postpones PUSCH transmission performs PUSCH transmission with the OCC interval in which other terminals 100 (terminals 100 that do not postpone PUSCH transmission) perform PUSCH transmission. This makes it possible to prevent orthogonality between terminals from being lost.

[0073] The period during which PUSCH transmission is postponed (or shifted) is not limited to the OCC interval next (immediately after) the OCC interval during which PUSCH transmission is not possible, but may be, for example, a period in OCC interval units (e.g., OCC grids).

[0074] <Method 3> In method 3, terminal 100 postpones (shifts) PUSCH to the next slot for each OCC interval. For example, when a signal other than PUSCH (e.g., SRS) or another channel (e.g., PRACH or DL ​​channel) is arranged in the OCC interval, terminal 100 stops PUSCH transmission from the first slot in the OCC interval to the slot in which the SRS, PRACH, or DL ​​channel is arranged, and determines PUSCH transmission in a plurality of slots corresponding to the OCC interval length after the slot in which the SRS, PRACH, or DL ​​channel is arranged.

[0075] For example, when transmitting a PUSCH to which OCC is applied, if a slot in which PUSCH cannot be transmitted, such as a PRACH resource or DL ​​slot, is placed within the OCC interval, or if PUSCH transmission becomes discontinuous in the OCC interval due to SRS transmission, etc., terminal 100 does not transmit a PUSCH to which OCC is applied within the OCC interval (for example, determines to stop transmitting PUSCH).

[0076] In this case, terminal 100 does not transmit the PUSCH in the period from the first slot to the slot in which the PRACH resource, the DL slot, or the SRS is allocated in the OCC interval in which the PUSCH cannot be transmitted continuously, and transmits the PUSCH that was scheduled to be transmitted in these slots in the OCC interval whose first slot is a slot after the slot in which the PRACH resource, the DL slot, or the SRS is allocated (for example, the next slot). That is, terminal 100 postpones (or shifts) the PUSCH transmission by a time equivalent to the number of slots between the start of the OCC interval and the slot in which an event (for example, PRACH transmission or SRS transmission) has occurred.

[0077] Fig. 7 shows, as an example, an operation example when the number of repetitions is 8 and the OCC sequence length is 4. The example on the left side of Fig. 7 shows a case where SRS transmission is performed within a certain OCC interval, and the example on the right side of Fig. 7 shows a case where a PRACH resource (slot) is included within the OCC interval.

[0078] For example, as shown on the left side of Fig. 7, terminal 100 transmits the PUSCH in eight slots including an OCC interval (for example, four slots) beginning with the slot next to the slot in which SRS transmission is performed. In other words, terminal 100 postpones the OCC interval in which PUSCH transmission is performed by two slots.

[0079] Similarly, for example, as shown on the right side of Fig. 7, terminal 100 transmits the PUSCH in eight slots including an OCC interval (for example, four slots) starting from the slot next to the slot including the PRACH resource. That is, terminal 100 postpones the OCC interval in which the PUSCH is transmitted by three slots.

[0080] The same operation is performed when a DL slot is included in the OCC section.

[0081] Method 3 enables PUSCH transmission avoiding PRACH resources or DL ​​slots while reducing the loss of orthogonality (or inter-code interference) between terminals transmitting PUSCHs to which OCC is applied. Even when multiplexed transmission is not performed between terminals, there is also an effect of reducing inter-slot interference due to power or phase fluctuations when despreading multiple slots to which OCC is applied in terminal 100.

[0082] Furthermore, in Method 3, the PUSCH to which OCC is applied is postponed and transmitted, so that PUSCH transmission can be performed while maintaining the amount of PUSCH resources (slots) allocated by the PDCCH, and degradation of PUSCH reception performance can be suppressed.

[0083] Furthermore, in method 3, for example, compared to method 2, the amount of delay by which PUSCH transmission is postponed can be kept small, thereby enabling PUSCH transmission with reduced data transmission delay. For example, it is assumed that the configuration of PRACH resources or DL ​​slots is a cell-by-cell configuration notified by SIB. Therefore, the configuration of PRACH resources or DL ​​slots is known to multiple terminals 100 in a cell. Therefore, for example, in PUSCH transmission using OCC, multiple multiplexed terminals 100 perform the same operation (e.g., an operation of delaying while avoiding PRACH resources or DL ​​slots), thereby enabling PUSCH transmission with aligned OCC intervals between terminals. This makes it possible to minimize PUSCH transmission delay while preventing the orthogonality between terminals from being lost.

[0084] Methods 1 to 3 have been described above.

[0085] The base station 200 may perform PUSCH reception control, for example, assuming that the terminal 100 will stop (drop or postpone) PUSCH transmission based on any of the above-described methods 1 to 3.

[0086] In this manner, in this embodiment, when PUSCH transmission becomes discontinuous due to PRACH resources, DL slots, or SRS in an OCC interval including multiple slots to which OCC-applied PUSCHs are allocated, terminal 100 controls the suspension (e.g., dropping or postponing) of PUSCH transmission in at least some slots of the OCC interval, and transmits the PUSCH in accordance with the control of the suspension of PUSCH transmission.

[0087] As a result, even if PUSCH transmission is discontinuous in an OCC period, terminal 100 can control PUSCH transmission so that the continuity of power and phase in the PUSCH to which OCC is applied is maintained. This makes it possible to suppress the loss of orthogonality between terminals transmitting PUSCHs to which OCC is applied, and suppress degradation of reception performance.

[0088] Therefore, according to this embodiment, the upstream signal can be transmitted appropriately.

[0089] Note that, when PUSCH transmission to which OCC is applied becomes discontinuous, base station 200 may notify terminal 100 of information regarding which operation terminal 100 will perform, dropping PUSCH transmission (method 1) or postponing PUSCH transmission (method 2 or method 3), or information regarding which operation of method 1, method 2, or method 3 will be performed. Terminal 100 may perform PUSCH transmission operation in accordance with the notification from base station 200.

[0090] Furthermore, terminal 100 may vary the control method (e.g., methods 1 to 3) for stopping PUSCH transmission depending on the type of channel or signal that causes discontinuity in PUSCH transmission in the OCC interval. For example, method 2 may be applied when SRS transmission causes discontinuity in PUSCH transmission in the OCC interval, and method 3 may be applied when PRACH resources or DL ​​slots cause discontinuity in PUSCH transmission in the OCC interval. Furthermore, for example, terminal 100 may vary the control method (e.g., methods 1 to 3) for stopping PUSCH transmission depending on whether the cause of discontinuity in PUSCH transmission is due to terminal-specific (UE-specific) settings or cell-specific settings. For example, method 2 may be applied when the cause of discontinuity in PUSCH transmission in the OCC interval is due to terminal-specific (UE-specific) settings, and method 3 may be applied when the cause of discontinuity in PUSCH transmission is due to cell-specific settings.

[0091] Furthermore, for example, terminal 100 may vary the control method (e.g., methods 1 to 3) for stopping PUSCH transmission depending on the OCC sequence length. For example, the operation of dropping PUSCH transmission (method 1) or postponing PUSCH transmission (method 2 or method 3) may be set (e.g., switched) depending on the OCC sequence length. For example, when the OCC sequence length is equal to or less than a predetermined value, the effect of delay is small, so transmission postponement (e.g., method 2 or method 3) may be applied, and when the OCC sequence length is greater than the predetermined value, dropping (e.g., method 1) may be applied because the number of PUSCH slots to be dropped is small and the effect on PUSCH reception performance is small when the OCC sequence length is equal to or less than a predetermined value, so dropping (e.g., method 1) may be applied, and when the OCC sequence length is greater than the predetermined value, transmission postponement (e.g., method 2 or method 3) may be applied.

[0092] Although the PUSCH transmission method applying OCC has been described in the case where the PUSCH cannot be transmitted continuously or where the PUSCH is transmitted discontinuously (i.e., where there is a non-transmission period between PUSCH transmissions), the present embodiment may also be applied to a case where there is a non-transmission period of a predetermined time or more within an OCC interval. For example, the predetermined time may be a time during which terminal 100 is unable to transmit the PUSCH while maintaining power and phase continuity (or maintaining it within a certain error range) if a non-transmission period of that length is inserted between PUSCH transmissions. In other words, the predetermined time may be the maximum non-transmission time during which terminal 100 can maintain power and phase continuity (or maintain it within a certain error range) before and after a non-transmission period. In this case, if terminal 100 is unable to transmit the PUSCH while maintaining power and phase continuity (or maintaining it within a certain error range) during a period that is shorter than (or equal to or shorter than) the non-transmission period, terminal 100 may transmit the PUSCH to which OCC is applied.

[0093] Although an example in which an SRS transmission is included in an OCC interval has been described, the present invention is not limited to this, and for example, an SRS resource may be included in the OCC interval. For example, an SRS may or may not be transmitted in the SRS resource.

[0094] Furthermore, when SRS transmission overlaps with an OCC interval, terminal 100 may cancel SRS transmission and transmit a PUSCH to which OCC is applied. In other words, a PUSCH to which OCC is applied may be transmitted with priority over an SRS.

[0095] Furthermore, as an example of discontinuous transmission of a PUSCH to which OCC is applied, a case where an SRS transmission, a PRACH resource, or a DL slot is included in the OCC interval has been described. However, this embodiment may also be applied to a case where discontinuous transmission of a PUSCH occurs due to collision (e.g., overlap) with another channel or signal. For example, when a PUCCH transmission overlaps with a PUSCH transmission to which OCC is applied, terminal 100 may perform PUCCH transmission without performing PUSCH transmission in the overlapping OCC interval, and drop the PUSCH transmission (Method 1), or may postpone the PUSCH transmission (Method 2 or Method 3). Alternatively, this embodiment may also be applied to a case where another PUSCH transmission with a higher priority overlaps with a PUSCH transmission to which OCC is applied, a slot for which transmission cancellation is specified by DCI overlaps with a PUSCH transmission to which OCC is applied, or a slot for which downlink reception is prioritized in HD (Half Duplex)-FDD (Frequency Division Duplex) overlaps with a PUSCH transmission to which OCC is applied.

[0096] (Embodiment 2) In Embodiment 1, a PUSCH transmission operation has been described in a case where PUSCH transmission to which OCC is applied is discontinuous in an OCC interval. In the present embodiment, a PUSCH transmission operation (e.g., dropping or postponing) will be described in a case where an event occurs (or is predicted to occur) in which the continuity of the power and phase of PUSCH transmission is not maintained in an OCC interval in which PUSCH transmission to which OCC is applied is performed.

[0097] The configurations of the terminal 100 and the base station 200 are the same as those in embodiment 1. The operations of the data transmission processing unit 104 of the terminal 100 and the data reception processing unit 202 of the base station 200 are different from those in embodiment 1.

[0098] In the terminal 100, when an event occurs in which the continuity of power and phase is not maintained in the OCC interval, the data transmission processing unit 104 does not perform (for example, stops) PUSCH transmission in the OCC interval. Note that an example of the PUSCH transmission operation will be described later.

[0099] In the base station 200, when receiving a PUSCH to which OCC is applied, if an event occurs in which power and phase continuity is not maintained in the OCC interval, the data reception processing unit 202 does not receive the PUSCH in the OCC interval. For example, the data reception processing unit 202 receives the PUSCH according to a PUSCH transmission method described later (for example, assuming the operation of the terminal 100).

[0100] [Example of operation of terminal and base station] Below, an example of operation of terminal 100 and base station 200 when an event occurs in which the continuity of the power and phase of PUSCH transmission is not maintained in an OCC section in which PUSCH transmission is performed using OCC will be described.

[0101] Here, examples of events in which the continuity of the power and phase of PUSCH transmission is not maintained include SRS transmission, PUCCH transmission, timing adjustment (for example, timing adjustment according to a TA command or autonomous timing adjustment by terminal 100), transmission power adjustment (for example, transmission power change according to a TPC command or autonomous transmission power change by terminal 100), PRACH resources or slots, DL slots, SBFD (Subband non-overlapping full duplex) slots, etc. Note that these are merely examples, and other events in which the continuity of the power and phase of PUSCH transmission is not maintained may also be used. Furthermore, the events may also be events in which the continuity of the power and phase specified for DMRS Bundling is not maintained.

[0102] <Method 1> In method 1, the terminal 100 drops the PUSCH in the OCC interval. For example, when an event occurs in which the power and phase continuity of the PUSCH transmission is not maintained within the OCC interval, the terminal 100 determines not to transmit (e.g., drop) the PUSCH in the OCC interval.

[0103] For example, if an event occurs in which power and phase continuity is not maintained during PUSCH transmission to which OCC is applied, terminal 100 does not transmit PUSCH to which OCC is applied in the OCC interval in which the event occurred (or the OCC interval in which the event is predicted to occur) (for example, it decides to stop transmitting PUSCH).

[0104] At this time, terminal 100 does not transmit the PUSCH in any slot of the OCC interval in which the PUSCH cannot be transmitted continuously, and does not postpone the PUSCH transmission to another slot. In other words, terminal 100 determines not to transmit (drop) the PUSCH.

[0105] Method 1 enables reduction of inter-code interference between terminals transmitting PUSCHs to which OCC is applied, even when an event occurs in which the continuity of power and phase of PUSCH transmission is not maintained. Also, even when multiplexed transmission is not performed between terminals, there is an effect of reducing inter-slot interference due to power or phase fluctuations when despreading multiple slots to which OCC is applied in terminal 100.

[0106] Furthermore, in method 1, the dropped PUSCH is not postponed to another slot for transmission, and therefore does not overlap with the transmission of another terminal 100 whose transmission of a PUSCH or PUCCH is separately scheduled.

[0107] <Method 2> In method 2, terminal 100 shifts the PUSCH for each OCC interval by an OCC grid (e.g., in units of OCC intervals). For example, terminal 100 stops PUSCH transmission in an OCC interval in which an event occurs in which the continuity of the power and phase of PUSCH transmission is not maintained within the OCC interval, and determines PUSCH transmission in an OCC interval after the OCC interval (e.g., the next OCC interval).

[0108] For example, if an event occurs in which power and phase continuity is not maintained during PUSCH transmission to which OCC is applied, terminal 100 does not transmit PUSCH to which OCC is applied within the OCC interval in which the event occurred (or the OCC interval in which the event is predicted to occur) (for example, it decides to stop transmitting PUSCH).

[0109] At this time, terminal 100 does not transmit PUSCHs in all slots of the OCC interval in which PUSCHs cannot be transmitted continuously, and transmits the PUSCHs that were scheduled to be transmitted in these slots in a later OCC interval (for example, the next OCC interval). That is, terminal 100 postpones (or shifts) PUSCH transmission by a time equivalent to the OCC interval.

[0110] Method 2 enables PUSCH transmission while reducing the loss of orthogonality (or inter-code interference) between terminals transmitting OCC-applied PUSCHs, even when an event occurs in which the power and phase continuity of PUSCH transmission is not maintained. Furthermore, even when multiplexed transmission is not performed between terminals, there is also the effect of reducing inter-slot interference due to power or phase fluctuations when despreading multiple slots to which OCC is applied in terminal 100.

[0111] Furthermore, in method 2, the PUSCH to which OCC is applied is postponed and transmitted, so that PUSCH transmission can be performed while maintaining the amount of PUSCH resources (e.g., slots) allocated by the PDCCH, and degradation of PUSCH reception performance can be suppressed.

[0112] Furthermore, for example, in the case of an event (e.g., SRS transmission or PUCCH transmission) that occurs individually (independently) in terminals 100, PUSCH transmission may be postponed in some terminals 100 among the terminals performing multiplex transmission (PUSCH transmission may not be postponed in other terminals 100). Even in this case, since PUSCH transmission is postponed in units of OCC intervals (OCC grids), it is possible to match the OCC interval in which a terminal 100 that postpones PUSCH transmission performs PUSCH transmission with the OCC interval in which other terminals 100 (terminals 100 that do not postpone PUSCH transmission) perform PUSCH transmission. This makes it possible to prevent orthogonality between terminals from being lost.

[0113] The period during which PUSCH transmission is postponed (or shifted) is not limited to the OCC interval next (immediately after) the OCC interval during which PUSCH transmission is not possible, but may be, for example, a period in OCC interval units (e.g., OCC grids).

[0114] <Method 3> In method 3, terminal 100 postpones (shifts) PUSCH to the next slot for each OCC interval. For example, when an event occurs in the OCC interval that prevents the continuity of the power and phase of PUSCH transmission from being maintained, terminal 100 stops PUSCH transmission from the first slot to the slot in which the event occurs in the OCC interval, and determines PUSCH transmission in a plurality of slots corresponding to the length of the OCC interval after the slot in which the event occurs.

[0115] For example, if an event occurs in which power and phase continuity is not maintained during PUSCH transmission to which OCC is applied, terminal 100 does not transmit PUSCH to which OCC is applied within the OCC interval in which the event occurred (or the OCC interval in which the event is predicted to occur) (for example, it decides to stop transmitting PUSCH).

[0116] At this time, terminal 100 does not transmit the PUSCH in the period from the first slot to the slot in which the event occurs in the OCC interval in which the PUSCH cannot be transmitted continuously, and transmits the PUSCH that was scheduled to be transmitted in these slots in an OCC interval whose first slot is a slot after the slot in which the event occurs (for example, the next slot).In other words, terminal 100 postpones (or shifts) the PUSCH transmission by a time equivalent to the number of slots between the start of the OCC interval and the slot in which the event occurs.

[0117] Method 3 enables PUSCH transmission while reducing the loss of orthogonality (or inter-code interference) between terminals transmitting OCC-applied PUSCHs, even when an event occurs in which the power and phase continuity of PUSCH transmission is not maintained. Furthermore, even when multiplexed transmission is not performed between terminals, there is also the effect of reducing inter-slot interference due to power or phase fluctuations when despreading multiple slots to which OCC is applied in terminal 100.

[0118] Furthermore, in Method 3, the PUSCH to which OCC is applied is postponed and transmitted, so that PUSCH transmission can be performed while maintaining the amount of PUSCH resources (slots) allocated by the PDCCH, and degradation of PUSCH reception performance can be suppressed.

[0119] Furthermore, in method 3, for example, compared to method 2, the amount of delay by which PUSCH transmission is postponed can be reduced, thereby enabling PUSCH transmission with reduced data transmission delay. For example, in the case of a cell-specific event (e.g., an event that occurs due to cell-unit settings notified by an SIB, such as a PRACH slot or DL ​​slot), the event may occur simultaneously for multiple terminals 100 in the cell. Therefore, for example, in PUSCH transmission to which OCC is applied, multiple multiplexed terminals 100 perform the same operation (e.g., an operation to postpone PUSCH transmission when an event occurs), so PUSCH transmission with aligned OCC intervals between terminals is possible. This makes it possible to prevent orthogonality between terminals from being lost while minimizing PUSCH transmission delay.

[0120] Methods 1 to 3 have been described above.

[0121] The base station 200 may perform PUSCH reception control, for example, assuming that the terminal 100 will stop (drop or postpone) PUSCH transmission based on any of the above-described methods 1 to 3.

[0122] In this manner, in this embodiment, when an event occurs in which the continuity of the power and phase of the PUSCH cannot be maintained in an OCC interval including multiple slots to which a PUSCH with OCC applied is allocated, terminal 100 controls the suspension (e.g., dropping or postponing) of transmission of the PUSCH in at least some slots in the OCC interval, and transmits the PUSCH in accordance with the control of the suspension of PUSCH transmission.

[0123] As a result, even if an event occurs in which the power and phase continuity of the PUSCH cannot be maintained in the OCC period, terminal 100 can control PUSCH transmission so that the power and phase continuity of the PUSCH to which OCC is applied is maintained. This makes it possible to suppress the loss of orthogonality between terminals transmitting PUSCHs to which OCC is applied, and suppress degradation of reception performance.

[0124] Therefore, according to this embodiment, the upstream signal can be transmitted appropriately.

[0125] Note that, when an event occurs in which power and phase continuity is not maintained in PUSCH transmission to which OCC is applied, base station 200 may notify terminal 100 of information regarding which operation terminal 100 will perform, dropping PUSCH transmission (method 1) or postponing PUSCH transmission (method 2 or method 3), or information regarding which operation of method 1, method 2, or method 3 will be performed. Terminal 100 may perform PUSCH transmission operation in accordance with the notification from base station 200.

[0126] Furthermore, terminal 100 may use different control methods (e.g., methods 1 to 3) for stopping PUSCH transmission depending on whether the cause of an event in which power and phase continuity is not maintained in the OCC interval is due to a UE-specific setting or a cell-specific setting. For example, as shown in FIG. 8 , method 2 may be applied when the cause of an event in which power and phase continuity is not maintained in the OCC interval is due to a UE-specific setting, and method 3 may be applied when the cause of an event in which power and phase continuity is not maintained in the OCC interval is due to a cell-specific setting.

[0127] Here, examples of terminal-specific events include SRS transmission, timing adjustment (e.g., timing adjustment according to a TA command or autonomous timing adjustment of terminal 100), transmission power adjustment (e.g., transmission power change according to a TPC command or autonomous transmission power change of terminal 100), UCI or PUCCH transmission, etc. Furthermore, examples of cell-specific events include PRACH resources or slots, DL slots, SBFD slots, etc. Note that terminal-specific events and cell-specific events are not limited to the above examples, and may be other events.

[0128] The above describes each embodiment.

[0129] Note that Method 2 and Method 3 described in Embodiment 1 are methods for postponing PUSCH transmission to which OCC is applied. However, if PUSCH transmission is discontinuous even in the postponed OCC interval due to SRS transmission, PRACH resources, or DL ​​slots, PUSCH transmission may be further postponed or dropped (non-transmitted). Dropping can prevent an increase in delay. Furthermore, whether to postpone or drop may be determined, for example, based on the maximum number of postponements (or the number of slots to be delayed) or a timer that starts when a postponement is performed. For example, postponement may be applied if the number of postponements is equal to or less than the maximum number of postponements or if the timer has not yet expired, and dropping may be applied if the number of postponements is greater than the maximum number of postponements or if the timer has expired. The maximum number of postponements and the timer setting values ​​may be notified to terminal 100 from base station 200.

[0130] Similarly, in methods 2 and 3 described in embodiment 2, a similar operation (applying either drop or postponement) may be performed when an event occurs in which power and phase continuity is not maintained in the postponed OCC section.

[0131] Terminal 100 may notify base station 200, as terminal capability, whether or not dropping or postponing PUSCH transmission to which OCC described in Embodiments 1 and 2 is applied is supported. Base station 200 may perform settings in accordance with the notification from terminal 100, and terminal 100 may operate in accordance with the settings.

[0132] Furthermore, if the PRACH resource or DL ​​slot is the first slot of the OCC interval, or if an event that makes it impossible to maintain power and phase continuity occurs in the first slot of the OCC interval, the terminal 100 may not transmit a PUSCH in that slot, but may start the OCC interval from the next slot (for example, transmit a PUSCH). However, since SRS transmission and PUCCH transmission are transmitted at the end of a slot (for example, after PUSCH transmission), it is necessary to maintain power and phase continuity for the PUSCH to which OCC is applied, and therefore an operation of dropping the PUSCH in the OCC interval or postponing the transmission of the PUSCH may be applied.

[0133] Furthermore, when SRS transmission is performed in the last slot of an OCC interval, the SRS transmission occurs after PUSCH transmission in the OCC interval, and therefore terminal 100 may transmit the PUSCH in the OCC interval as is. For example, when an event in which power and phase continuity is not maintained for a PUSCH to which OCC is applied occurs after the last PUSCH transmission in the OCC interval, terminal 100 may transmit the PUSCH in the OCC interval as is.

[0134] In addition, when an OCC interval includes a slot in which PUSCH transmission is not possible, such as a PRACH slot or a DL slot, the operation of postponing PUSCH transmission without transmitting PUSCH in the OCC interval may be an operation of setting a new OCC interval instead of the initially set OCC interval.

[0135] Furthermore, "continuity" of power or phase may be read as "consistency."

[0136] Moreover, the first and second embodiments may be applied in combination.

[0137] Additionally, information regarding DL slots or SBFD slots may be included in information in TDD format.

[0138] Alternatively, the OCC interval may be a time period of the PUSCH multiplied by one OCC sequence, may be expressed in slot units, or may be expressed in symbol units, or may be referred to as an OCC group.

[0139] Although the OCC application method has been described using an example of a method of multiplying an OCC by multiple slots to be repeated (inter-slot OCC), the unit of applying the OCC is not limited to slot units and may be a different time unit. For example, the first and second embodiments may be applied to a method of multiplying an OCC by multiple OFDM symbols (inter-symbol OCC).

[0140] Furthermore, the uplink PUSCH may be modulated by DFT-s-OFDM, CP (Cyclic Prefix)-OFDM, or another modulation method.

[0141] Furthermore, OCC sequences include Walsh sequences, DFT sequences, and cyclic shift sequences, and the first and second embodiments can be applied to any of these sequences.

[0142] For example, the sequence described below may be used.

[0143] sequence length n OCC The OCC sequence m is expressed by the following equation (see, for example, TS38.211 V15.10.0 Table 6.3.2.4.1-2):

[0144] However, ψ(m) may be set to a value in the table shown in FIG. OCC When =4, there are four OCC sequences: [1 1 1 1], [1 -1 1 -1], [1 1 -1 -1], and [1 -1 -1 1].

[0145] ​Furthermore, OCC may be interpreted as an orthogonal code, a spreading code, a spreading sequence, a spreading code, etc. Furthermore, OCC sequence length may be interpreted as a spreading factor, a spreading code length, etc. Furthermore, the code used for multiplexing signals between terminals is not limited to OCC, and other orthogonal codes may be used. Furthermore, the OCC sequence may be a sequence such as a cyclic shift sequence.

[0146] Furthermore, the loss of orthogonality may be interpreted as inter-code interference.

[0147] The transmission unit may be a slot, a frame, or a symbol. When TBoMS is applied, a TBoMS slot, which is a group of multiple slots, may be used as the transmission unit instead of a slot.

[0148] The OCC sequence length may be interpreted as the time interval (OCC application interval) during which multiplication by one OCC sequence is applied.

[0149] An embodiment of the present disclosure can be applied to both mapping type A, which is allocation in slot units, and mapping type B, which is allocation in symbol units. Also, the repetition can be applied to both type A and type B.

[0150] The control information regarding the OCC may include information regarding the OCC application method (inter-slot, inter-symbol, intra-symbol).

[0151] Furthermore, the present disclosure is not limited to the case where OCC is applied to PUSCH, and may also be applied to the case where OCC is applied to DMRS.

[0152] Furthermore, the base station may be read as a network or a RAN (Radio Access Network).

[0153] Furthermore, the above embodiment may be applied to networks other than NTN.

[0154] An embodiment of the present disclosure can be used for different types of satellite communications, such as Low Earth Orbit satellites (LEO), Medium Earth Orbit satellites (MEO), Highly Elliptical Orbit satellites (HEO), or Geostationary Earth Orbit satellites (GEO), which are located at different altitudes above the Earth's surface.

[0155] In each of the above-described embodiments, satellite ephemeris information, which is information related to satellite positions, may be reported by system information or may be stored in advance by the terminal 100. Furthermore, the satellite ephemeris information may be updated when communication is possible. Furthermore, the terminal 100 may identify satellite positions using information other than the satellite ephemeris information.

[0156] In the above-described embodiments, examples have been described in which GNSS such as GPS (for example, position detection using satellite signals) is used, but the present invention is not limited to this. For example, position detection may be performed using a terrestrial cellular base station, a Wi-Fi (registered trademark) signal or a Bluetooth (registered trademark) signal, an acceleration sensor, or a combination of these detection methods. Furthermore, altitude information may be obtained from a barometric pressure sensor, etc.

[0157] In the above-described embodiments, "report" may be read as "notification," and "notification" may be read as "report." "Calculation" may be read as "determination" or "generation."

[0158] Furthermore, in each of the above-described embodiments, the transmission of an uplink signal from a terminal to a base station has been described, but the present invention may also be applied to the transmission of a downlink signal from a base station to a terminal.

[0159] An embodiment of the present disclosure may be applied regardless of the type of satellite, such as GEO, MEO, LEO, or HEO. Furthermore, an embodiment of the present disclosure may be applied to non-terrestrial communications, such as HAPS or drone base stations.

[0160] Although the above-described embodiment has been described using an NTN environment (e.g., a satellite communication environment) as an example, the present disclosure is not limited thereto. The present disclosure may be applied to other communication environments (e.g., a terrestrial cellular environment of at least one of LTE and NR). For example, one embodiment of the present disclosure may be applied to terrestrial communications in an environment where the cell size is large and the propagation delay between the base station 200 and the terminal 100 is longer (e.g., above a threshold).

[0161] In the above-described embodiment, the satellite communication may be in the form of a configuration in which the base station functions are located on a satellite (e.g., a "regenerative satellite"), or a configuration in which the base station functions are located on the ground and a satellite relays communication between the base station and a terminal (e.g., a "transparent satellite"). For example, in one embodiment of the present disclosure, the downlink and the uplink may be links between a terminal and a satellite, or links via a satellite.

[0162] The method of notifying the control information from the base station 200 to the terminal 100 is not limited to the above-mentioned example, and may be notified (or reported, indicated, or set) by at least one of system information such as MIB and SIB, RRC control information, MAC control information, and downlink control information (DCI), or may be pre-set in the terminal 100 or may be pre-defined in a standard.

[0163] The base station may be referred to as a gNodeB or a gNB, and the terminal may be referred to as a UE.

[0164] The time resource units such as symbols and slots may be replaced with system frames, time slots, minislots, frames, subframes, and the like.

[0165] Furthermore, parameters such as the OCC sequence length, the time interval to which OCC is applied (for example, the number of slots), and the number of repetitions are not limited to the above examples, and other values ​​may be used.

[0166] Furthermore, the notation "... section" in the above-described embodiments may be replaced with other notations such as "... circuitry," "... device," "... unit," or "... module."

[0167] (Supplementary Note) Information indicating whether the terminal 100 supports the functions, operations, or processes described in the above-described embodiments may be transmitted (or notified) from the terminal 100 to the base station 200, for example, as capability information or capability parameters of the terminal 100.

[0168] The capability information may include an information element (IE) that individually indicates whether or not the terminal 100 supports at least one of the functions, operations, or processes described in the above-described embodiments. Alternatively, the capability information may include an information element that indicates whether or not the terminal 100 supports a combination of any two or more of the functions, operations, or processes described in the above-described embodiments.

[0169] For example, the base station 200 may determine (or decide or assume) the functions, operations, or processes that the terminal 100 that transmitted the capability information supports (or does not support) based on the capability information received from the terminal 100. The base station 200 may perform operations, processes, or controls according to the determination result based on the capability information. For example, the base station 200 may control communications based on the capability information received from the terminal 100.

[0170] Note that the fact that the terminal 100 does not support some of the functions, operations, or processes described in the above-described embodiments may be interpreted as meaning that such some of the functions, operations, or processes are restricted in the terminal 100. For example, information or a request regarding such restrictions may be notified to the base station 200.

[0171] Information regarding the capabilities or limitations of terminal 100 may, for example, be defined in a standard, or may be implicitly notified to base station 200 in association with information known at base station 200 or information transmitted to base station 200.

[0172] (Control Signal) In the present disclosure, a downlink control signal (or downlink control information) related to an embodiment of the present disclosure may be, for example, a signal (or information) transmitted in a Physical Downlink Control Channel (PDCCH) of a physical layer, or a signal (or information) transmitted in a Medium Access Control Control Element (MAC CE) or Radio Resource Control (RRC) of a higher layer. Furthermore, the signal (or information) is not limited to being notified by a downlink control signal, but may be predefined in a specification (or standard) or preconfigured in a base station and a terminal.

[0173] In the present disclosure, an uplink control signal (or uplink control information) related to an embodiment of the present disclosure may be, for example, a signal (or information) transmitted in a PUCCH of a physical layer, or a signal (or information) transmitted in a MAC CE or RRC of a higher layer. Furthermore, the signal (or information) is not limited to being notified by an uplink control signal, but may be predefined in a specification (or standard) or preconfigured in a base station and a terminal. Furthermore, the uplink control signal may be replaced with, for example, uplink control information (UCI), 1st stage sidelink control information (SCI), or 2nd stage SCI.

[0174] (Base Station) In an embodiment of the present disclosure, the base station may be a Transmission Reception Point (TRP), a cluster head, an access point, a Remote Radio Head (RRH), an eNodeB (eNB), a gNodeB (gNB), a Base Station (BS), a Base Transceiver Station (BTS), a parent device, a gateway, or the like. In sidelink communication, a terminal may play the role of a base station. Instead of a base station, a relay device that relays communication between an upper node and a terminal may be used. Alternatively, a roadside unit may be used.

[0175] (Uplink / Downlink / Sidelink) An embodiment of the present disclosure may be applied to, for example, any of the uplink, downlink, and sidelink. For example, an embodiment of the present disclosure may be applied to a Physical Uplink Shared Channel (PUSCH), a Physical Uplink Control Channel (PUCCH), or a Physical Random Access Channel (PRACH) in the uplink, a Physical Downlink Shared Channel (PDSCH), a PDCCH, or a Physical Broadcast Channel (PBCH) in the downlink, or a Physical Sidelink Shared Channel (PSSCH), a Physical Sidelink Control Channel (PSCCH), or a Physical Sidelink Broadcast Channel (PSBCH) in the sidelink.

[0176] The PDCCH, PDSCH, PUSCH, and PUCCH are examples of a downlink control channel, a downlink data channel, an uplink data channel, and an uplink control channel, respectively. The PSCCH and PSSCH are examples of a sidelink control channel and a sidelink data channel. The PBCH and PSBCH are examples of a broadcast channel, and the PRACH is an example of a random access channel.

[0177] (Data Channel / Control Channel) An embodiment of the present disclosure may be applied to, for example, either a data channel or a control channel. For example, the channel in an embodiment of the present disclosure may be replaced with any of the data channels PDSCH, PUSCH, and PSSCH, or the control channels PDCCH, PUCCH, PBCH, PSCCH, and PSBCH.

[0178] (Reference Signal) In one embodiment of the present disclosure, a reference signal is, for example, a signal known by both a base station and a mobile station, and may also be called a Reference Signal (RS) or a pilot signal. The reference signal may be any of a Demodulation Reference Signal (DMRS), a Channel State Information - Reference Signal (CSI-RS), a Tracking Reference Signal (TRS), a Phase Tracking Reference Signal (PTRS), a Cell-specific Reference Signal (CRS), or a Sounding Reference Signal (SRS).

[0179] (Time Interval) In one embodiment of the present disclosure, the unit of time resource is not limited to one or a combination of slots and symbols, but may be, for example, a time resource unit such as a frame, a superframe, a subframe, a slot, a time slot, a subslot, a minislot, a symbol, an Orthogonal Frequency Division Multiplexing (OFDM) symbol, a Single Carrier-Frequency Division Multiplexing Access (SC-FDMA) symbol, or another time resource unit. Furthermore, the number of symbols included in one slot is not limited to the number of symbols exemplified in the above-mentioned embodiment, and may be another number of symbols.

[0180] (Frequency Band) An embodiment of the present disclosure may be applied to either a licensed band or an unlicensed band.

[0181] (Communication) An embodiment of the present disclosure may be applied to communication between a base station and a terminal (Uu link communication), communication between terminals (Sidelink communication), or Vehicle to Everything (V2X) communication. For example, the channel in an embodiment of the present disclosure may be replaced with any of PSCCH, PSSCH, Physical Sidelink Feedback Channel (PSFCH), PSBCH, PDCCH, PUCCH, PDSCH, PUSCH, or PBCH.

[0182] An embodiment of the present disclosure may be applied to a terrestrial network, a non-terrestrial network (NTN) using a satellite or a high altitude pseudo satellite (HAPS), or a terrestrial network in which transmission delay is large compared to the symbol length or slot length, such as a network with a large cell size or an ultra-wideband transmission network.

[0183] (SBFD) In ​​one embodiment of the present disclosure, operations on uplink, downlink, and sidelink symbols may be applied to symbols (e.g., SBFD symbols) on which SBFD (Subband Non-Overlapping Full Duplex, Subband Full Duplex) operations or controls are performed. In SBFD symbols, a frequency domain (or frequency resource, frequency band) is divided into multiple frequency domains (e.g., subbands, RB sets, subbands, or sub-BWPs (Bandwidth Parts)). A terminal transmits and receives in different directions (e.g., downlink or uplink) in units of subbands, which are the divided domains. In SBFD symbols, a terminal may transmit and receive in one direction, either uplink or downlink, but not in the other direction. On the other hand, a base station may be capable of transmitting and receiving on both the uplink and downlink simultaneously. SBFD symbols may have a smaller frequency domain available for downlink transmission than symbols that transmit and receive only downlink transmission. Also, SBFD symbols may have a smaller frequency domain available for uplink transmission than symbols that transmit and receive only uplink transmission.

[0184] In addition, in the SBFD symbol, a terminal may transmit and receive uplink and downlink simultaneously. In this case, the frequency domain in which the terminal transmits and the frequency domain in which the terminal receives may not be adjacent, but may be separated by a frequency interval (also called a frequency gap).

[0185] In addition, different transmission and reception directions in subband units, which are divided areas, may include transmission and reception of side links.

[0186] (XDD: Cross Division Duplex) In one embodiment of the present disclosure, the operation for uplink, downlink, and sidelink symbols may be applied to symbols (e.g., full duplex symbols) where full duplex operation or control is performed. In a full duplex symbol, both the terminal and the base station can simultaneously transmit and receive on the uplink and downlink. In a full duplex symbol, the terminal and the base station may simultaneously transmit and receive in an available frequency region (or frequency resource, frequency band), or may simultaneously transmit and receive in a partial frequency region (i.e., transmission or reception may be performed in other frequency regions). In this case, the frequency region in which the base station or terminal transmits and receives may not be adjacent, but may have a frequency interval (also called a frequency gap). Furthermore, for the purpose of, for example, reducing interference, either the terminal or the base station may simultaneously transmit and receive (i.e., the other may transmit or receive).

[0187] In addition, full duplex operation may be applied to an operation in which a terminal can simultaneously transmit and receive sidelinks, or to an operation in which a terminal can simultaneously transmit and receive sidelinks and uplinks or downlinks.

[0188] (Antenna Port) In one embodiment of the present disclosure, an antenna port refers to a logical antenna (antenna group) consisting of one or more physical antennas. For example, an antenna port does not necessarily refer to a single physical antenna, but may refer to an array antenna consisting of multiple antennas. For example, the number of physical antennas that an antenna port is composed of is not specified, and the antenna port may be specified as the smallest unit by which a terminal station can transmit a reference signal. Furthermore, an antenna port may also be specified as the smallest unit by which a weighting of a precoding vector is multiplied.

[0189] <5G NR System Architecture and Protocol Stack> The 5G NR system architecture generally assumes an NG-RAN (Next Generation - Radio Access Network) including gNBs. The gNBs provide UE-side termination of the NG radio access user plane (SDAP / PDCP / RLC / MAC / PHY) and control plane (RRC) protocols. The gNBs are connected to each other via an Xn interface. The gNBs are also connected to a Next Generation Core (NGC) via a Next Generation (NG) interface, more specifically to an Access and Mobility Management Function (AMF) (e.g., a specific core entity that performs AMF) via an NG-C interface, and to a User Plane Function (UPF) (e.g., a specific core entity that performs UPF) via an NG-U interface. The NG-RAN architecture is shown in Figure 10 (see, for example, 3GPP TS 38.300 v15.6.0, section 4).

[0190] <RRC connection setup and reconfiguration procedure> This shows the NAS part of the interaction between the UE, gNB, and AMF (5GC entity) when the UE transitions from RRC_IDLE to RRC_CONNECTED (see TS 38.300 v15.6.0).

[0191] RRC is a higher layer signaling protocol used to configure the UE and gNB. The AMF prepares UE context data (including, for example, PDU session context, security keys, UE radio capabilities, UE security capabilities, etc.) and sends it to the gNB along with an INITIAL CONTEXT SETUP REQUEST. The gNB then activates AS security together with the UE. This is done by the gNB sending a SecurityModeCommand message to the UE, and the UE responding with a SecurityModeComplete message to the gNB. The gNB then sends an RRCReconfiguration message to the UE, and upon receiving an RRCReconfigurationComplete from the UE, the gNB performs reconfiguration to set up Signaling Radio Bearer 2 (SRB2) and Data Radio Bearer (DRB). For signaling-only connections, the steps related to RRCReconfiguration are omitted because SRB2 and DRB are not set up. Finally, the gNB notifies the AMF that the setup procedure is complete with an INITIAL CONTEXT SETUP RESPONSE.

[0192] Therefore, the present disclosure provides a 5th Generation Core (5GC) entity (e.g., AMF, SMF, etc.) that includes: a control circuit that, upon operation, establishes a Next Generation (NG) connection with a gNodeB; and a transmitter that, upon operation, transmits an initial context setup message to the gNodeB via the NG connection so that a signaling radio bearer between the gNodeB and a user equipment (UE) is set up. Specifically, the gNodeB transmits Radio Resource Control (RRC) signaling, including a resource allocation configuration information element (IE), to the UE via the signaling radio bearer. The UE then transmits in uplink or receives in downlink based on the resource allocation configuration.

[0193] <QoS Control> The 5G Quality of Service (QoS) model is based on QoS flows and supports both QoS flows that require a guaranteed flow bit rate (Guaranteed Bit Rate QoS flows (GBR)) and QoS flows that do not require a guaranteed flow bit rate (non-GBR QoS flows). Thus, at the NAS level, a QoS flow is the finest granularity of QoS classification in a PDU session. A QoS flow is identified within a PDU session by a QoS Flow ID (QFI) carried in an encapsulation header over the NG-U interface.

[0194] For each UE, 5GC establishes one or more PDU sessions. For each UE, the NG-RAN establishes, for example, at least one Data Radio Bearer (DRB) for each PDU session. Additional DRBs for the QoS flows of that PDU session can be configured later (when this is up to the NG-RAN). The NG-RAN maps packets belonging to different PDU sessions to different DRBs. NAS-level packet filters in the UE and 5GC associate UL and DL packets with QoS flows, while AS-level mapping rules in the UE and NG-RAN associate UL and DL QoS flows with DRBs.

[0195] (Open-RAN) The base station described in each embodiment (for example, a 5G NR base station called a gNB) may be configured with three functional modules: a Centralized Unit (CU), a Distributed Unit (DU), and a Radio Unit (RU).

[0196] A CU may be referred to as a centralized node, aggregation node, central station, aggregation station, or centralized unit. A DU may be referred to as an O-RAN Distributed Unit (O-DU), distributed node, distributed station, or distributed unit. An RU may be referred to as an O-RAN Radio Unit (O-RU), radio equipment, radio node, radio station, antenna unit, or radio unit.

[0197] There are several split options for the functional split configuration (or functional split point) between CU, DU, and RU. The term "functional split point" is sometimes referred to as "split," "option," or "split option."

[0198] Examples of "division options" include the following division options 1 to 8. The functions of the base station described in each embodiment may be divided into a CU, a DU, and an RU by any of the following division options 1 to 8. For example, the CU, DU, and RU may be functionally divided, or the functions may be divided only between the CU and DU or only between the DU and RU. (1) Segmentation option 1: Between RRC (radio resource control) and PDCP (2) Segmentation option 2: Between PDCP and RLC (High-RLC) (3) Segmentation option 3: Between High-RLC and Low-RLC (4) Segmentation option 4: Between RLC (Low-RLC) and MAC (High-MAC) (5) Segmentation option 5: Between High-MAC and Low-MAC (6) Segmentation option 6: Between MAC (Low-MAC) and PHY (High-PHY) (7) Segmentation option 7: Between High-PHY and Low-PHY (8) Segmentation option 8: Between PHY (Low-PHY) and RF

[0199] The functional split point between the CU and O-DU may be split option 2. The section between the CU and O-DU is called midhaul, and the F1 interface is specified by 3GPP. The section between the O-DU and O-RU is called fronthaul, and the functional split point may be split option 7-2x, which is adopted as the O-RAN fronthaul specification.

[0200] Figure 11 shows an example of functional division of the gNB base station functions into CU, O-DU, and O-RU using Split Option 2 and Split Option 7-2x.

[0201] The CU may have, for example, a radio resource control (RRC) function, a service data adaptation protocol (SDAP) function, and a packet data convergence protocol (PDCP) function.

[0202] The O-DU may include, for example, a radio link control (RLC) function, a MAC function, and a higher physical layer (HIGH-PHY) function. The HIGH-PHY function may include an encoding function, a scrambling function, a modulation function, a layer mapping function, a precoding function, and a resource element (RE) mapping function for downlink (DL) transmission. The HIGH-PHY function may also include a decoding function, a descrambling function, a demodulation function, a layer demapping function, and a resource element (RE) demapping function for uplink (UL) reception.

[0203] The O-RU may have, for example, a LOW-PHY function and an RF function. The LOW-PHY function may also have, for downlink transmission, a beamforming function, an IFFT (Inverse First Fourier Transform) + CP (Cyclic Prefix) assignment function, and a D / A (Digital to Analog) conversion function. The LOW-PHY function may also have, for uplink reception, an A / D (Analog to Digital) conversion function, a CP removal + FFT (First Fourier Transform) function, and a beamforming function.

[0204] In addition, if the O-DU does not have a precoding function, the O-RU may have a precoding function.

[0205] The O-RU may have a function related to LBT (listen before talk). The evolving common public radio interface (eCPRI) is specified as the communication method between the O-DU and the O-RU in Split Option 7-2x. In Split Option 7-2x, eCPRI transmits and receives sampling sequences of the in-phase (I) and quadrature (Q) components of the OFDM signal in the frequency domain, as well as information used for beamforming in the antenna and time synchronization signals.

[0206] Information transmitted by the signals described in each embodiment (PDCCH, PUCCH, PDSCH, PUSCH, MAC CE, RRC, etc.) may be transmitted between the O-DU and the O-RU via the eCPRI User Plane (U-Plane) or Control Plane (C-Plane).

[0207] When the functions described in each embodiment are performed in the O-RU by functional division, the O-DU may control the O-RU by transmitting information for controlling the functions via a control signal (e.g., eCPRI) between the O-DU and the O-RU.

[0208] When the functions described in each embodiment are performed in the O-DU by functional division, the O-RU may receive the results of the functions performed in the O-DU via a control signal (e.g., eCPRI) and control the O-RU based on the received results.

[0209] The CU, O-DU, and O-RU may be deployed in physically different devices with their respective functions connected by optical fiber or the like, or some or all of their functions may be deployed in the same physical device.

[0210] The CU and O-DU may be logical entities implemented as software running on a server in the cloud or the like as a virtualized RAN (virtual Radio Access Network: vRAN). Also, some or all of the functions of the CU and O-DU may be provided as a virtualized network function (Network Functions Virtualization: NFV) service.

[0211] The transceiver does not have to be a radio transceiver, but may be, for example, a network transceiver, an optical transceiver, etc. The radio resources allocated by the O-DU may be resources for wireless communication between the O-RU and the UE.

[0212] The present disclosure can be realized in software, hardware, or software in conjunction with hardware.

[0213] Each functional block used in the description of the above embodiments may be partially or entirely realized as an LSI, which is an integrated circuit, and each process described in the above embodiments may be partially or entirely controlled by a single LSI or a combination of LSIs. The LSI may be composed of individual chips, or may be composed of a single chip that includes some or all of the functional blocks. The LSI may have data input and output. Depending on the degree of integration, the LSI may also be called an IC, system LSI, super LSI, or ultra LSI.

[0214] The integrated circuit method is not limited to LSI, and may be realized by a dedicated circuit, a general-purpose processor, or a dedicated processor. Also, a field programmable gate array (FPGA) that can be programmed after LSI manufacturing, or a reconfigurable processor that can reconfigure the connections and settings of circuit cells within the LSI, may be used. The present disclosure may be realized as digital processing or analog processing.

[0215] Furthermore, if an integrated circuit technology that can replace LSI emerges due to advances in semiconductor technology or other derivative technologies, it is natural that such technology may be used to integrate functional blocks. The application of biotechnology, etc. is also a possibility.

[0216] The present disclosure may be implemented in any type of apparatus, device, or system (collectively referred to as a communications apparatus) that has a communications function. The communications apparatus may include a radio transceiver and processing / control circuitry. The radio transceiver may include a receiver and a transmitter, or both functions. The radio transceiver (transmitter and receiver) may include a radio frequency (RF) module and one or more antennas. The RF module may include an amplifier, an RF modulator / demodulator, or the like. Non-limiting examples of communication devices include telephones (e.g., cell phones, smartphones), tablets, personal computers (PCs) (e.g., laptops, desktops, notebooks), cameras (e.g., digital still / video cameras), digital players (e.g., digital audio / video players), wearable devices (e.g., wearable cameras, smartwatches, tracking devices), game consoles, digital book readers, telehealth / telemedicine devices, communication-enabled vehicles or mobile transportation (e.g., cars, airplanes, ships), and combinations of the above devices.

[0217] The communication devices are not limited to portable or mobile devices, but also include any kind of non-portable or fixed equipment, devices, and systems, such as smart home devices (such as home appliances, lighting equipment, smart meters or measuring devices, control panels, etc.), vending machines, and any other "things" that may exist on an IoT (Internet of Things) network.

[0218] Communications include data communications via cellular systems, wireless LAN systems, communication satellite systems, and the like, as well as data communications via combinations of these.

[0219] A communications apparatus also includes devices such as controllers and sensors connected or coupled to a communications device that performs the communications functions described in this disclosure, such as controllers and sensors that generate control and data signals used by the communications device to perform the communications functions of the communications apparatus.

[0220] The communication apparatus also includes infrastructure facilities, such as base stations, access points, and any other apparatus, device, or system that communicates with or controls the various apparatuses listed above, but are not limited to these.

[0221] A terminal according to one embodiment of the present disclosure comprises: a control circuit that controls the stopping of transmission of an uplink signal in at least some of the time resources in a section including multiple time resources to which an uplink signal to which an orthogonal code is applied is assigned, when transmission of the uplink signal becomes discontinuous due to other signals or other channels, or when an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section; and a transmission circuit that transmits the uplink signal in accordance with the control of the stopping of transmission.

[0222] In one embodiment of the present disclosure, the control circuit determines not to transmit the upstream signal in the section when another signal or another channel different from the upstream signal is arranged in the section.

[0223] In one embodiment of the present disclosure, the control circuit stops transmitting the uplink signal in a first section in which a signal or channel different from the uplink signal is assigned, and determines to transmit the uplink signal in a second section after the first section.

[0224] In one embodiment of the present disclosure, when another signal or another channel different from the uplink signal is placed within the section, the control circuit stops transmitting the uplink signal from the first time resource of the section to a first time resource in which the other signal or the other channel is placed, and determines to transmit the uplink signal in multiple time resources corresponding to the length of the section after the first time resource.

[0225] In one embodiment of the present disclosure, the control circuit determines not to transmit the upstream signal in the section when the event occurs in the section.

[0226] In one embodiment of the present disclosure, the control circuit stops transmission of the upstream signal in a first interval in which the event occurs, and determines to transmit the upstream signal in a second interval after the first interval.

[0227] In one embodiment of the present disclosure, when the event occurs within the section, the control circuit stops transmitting the uplink signal from the first time resource of the section to the first time resource in which the event occurs, and determines to transmit the uplink signal in multiple time resources corresponding to the length of the section after the first time resource.

[0228] In one embodiment of the present disclosure, the control circuit varies the control method for stopping transmission depending on the type of other signal or other channel.

[0229] In one embodiment of the present disclosure, the control circuit differs the control method for stopping the transmission depending on whether the cause of discontinuity in the transmission of the uplink signal or the cause of the event is due to a terminal-specific setting or a cell-specific setting.

[0230] In one embodiment of the present disclosure, the control circuit varies the control method for stopping the transmission depending on the sequence length of the orthogonal code.

[0231] A base station according to one embodiment of the present disclosure comprises: a control circuit that controls reception of an uplink signal, assuming that transmission of the uplink signal will be stopped in at least some of the time resources in a section including multiple time resources to which an orthogonal code is applied is stopped in the event that transmission of the uplink signal becomes discontinuous due to other signals or other channels, or that an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section; and a receiving circuit that receives the uplink signal in accordance with the receiving control.

[0232] In a communication method according to one embodiment of the present disclosure, when transmission of an uplink signal to which an orthogonal code is applied becomes discontinuous due to other signals or other channels in a section including multiple time resources to which the uplink signal is assigned, or when an event occurs that makes it impossible to maintain the continuity of the power and phase of the uplink signal in the section, a terminal controls the suspension of transmission of the uplink signal in at least some of the time resources in the section, and transmits the uplink signal in accordance with the control of the suspension of transmission.

[0233] In a communication method according to one embodiment of the present disclosure, when transmission of an uplink signal to which an orthogonal code is applied becomes discontinuous due to other signals or other channels in a section including multiple time resources to which the uplink signal is assigned, or when an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section, a base station performs reception control of the uplink signal, assuming that transmission of the uplink signal will be stopped in at least some of the time resources in the section, and receives the uplink signal in accordance with the reception control.

[0234] The disclosures of the specification, drawings and abstract contained in Japanese Patent Application No. 2024-127689, filed on August 2, 2024, are incorporated herein by reference in their entirety.

[0235] One aspect of the present disclosure is useful in wireless communication systems.

[0236] 100 Terminal 101, 201 Radio receiving unit 102, 202 Data receiving processing unit 103, 203 Control unit 104, 204 Data transmitting processing unit 105, 205 Radio transmitting unit 200 Base station

Claims

1. A communication device comprising: a control circuit that controls the suspension of transmission of an uplink signal in at least some of the time resources in a section including multiple time resources to which an uplink signal to which an orthogonal code is applied is assigned, when transmission of the uplink signal becomes discontinuous due to other signals or other channels, or when an event occurs in the section that makes it impossible to maintain the continuity of the power and phase of the uplink signal; and a transmission circuit that transmits the uplink signal in accordance with the control of the suspension of transmission.

2. The communication device according to claim 1, wherein the control circuit determines not to transmit the upstream signal in the section when a signal or channel different from the upstream signal is allocated in the section.

3. The communication device according to claim 1, wherein the control circuit stops transmission of the uplink signal in a first section in which a signal or channel different from the uplink signal is allocated, and determines to transmit the uplink signal in a second section after the first section.

4. The communication device of claim 1, wherein, when another signal or another channel different from the uplink signal is placed within the section, the control circuit stops transmitting the uplink signal from the first time resource of the section to a first time resource in which the other signal or other channel is placed, and determines to transmit the uplink signal in multiple time resources corresponding to the length of the section after the first time resource.

5. The communication device according to claim 1, wherein the control circuit determines not to transmit the upstream signal in the section when the event occurs in the section.

6. The communication device according to claim 1, wherein the control circuit stops transmission of the uplink signal in a first interval in which the event occurs, and determines to transmit the uplink signal in a second interval following the first interval.

7. The communication device of claim 1, wherein, when the event occurs within the section, the control circuit stops transmitting the uplink signal from the first time resource of the section to the first time resource in which the event occurs, and determines to transmit the uplink signal in multiple time resources corresponding to the length of the section after the first time resource.

8. The communication device according to claim 1, wherein the control circuit changes the control method for stopping transmission depending on the type of other signal or other channel.

9. The communication device according to claim 1, wherein the control circuit changes the control method for stopping the transmission depending on whether the cause of discontinuity in the transmission of the uplink signal or the cause of the occurrence of the event is due to a terminal-specific setting or a cell-specific setting.

10. The communication device according to claim 1, wherein the control circuit changes the control method for stopping transmission depending on the sequence length of the orthogonal code.

11. A base station comprising: a control circuit that controls reception of an uplink signal, assuming that transmission of the uplink signal will be stopped in at least some of the time resources in a section including multiple time resources to which an orthogonal code is applied is stopped in the event that transmission of the uplink signal becomes discontinuous due to other signals or other channels, or when an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section; and a receiving circuit that receives the uplink signal in accordance with the receiving control.

12. A communication method in which a communication device controls the suspension of transmission of an uplink signal in at least some of the time resources in a section including multiple time resources to which an uplink signal to which an orthogonal code is applied is assigned, when transmission of the uplink signal becomes discontinuous due to other signals or other channels, or when an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section, and transmits the uplink signal in accordance with the control of the suspension of transmission.

13. A communication method in which a base station, in a section including multiple time resources to which an uplink signal to which an orthogonal code is applied is assigned, performs reception control of the uplink signal, assuming that transmission of the uplink signal will be stopped in at least some of the time resources in the section, when transmission of the uplink signal becomes discontinuous due to other signals or other channels, or when an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section, and receives the uplink signal in accordance with the reception control.

14. An integrated circuit that controls the processing of a communication device, the processing including: a process of controlling the stop of transmission of an uplink signal in at least some of the time resources in a section including multiple time resources to which an uplink signal to which an orthogonal code is applied is assigned, when transmission of the uplink signal becomes discontinuous due to another signal or other channel, or when an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section; and a process of transmitting the uplink signal in accordance with the control of the stop of transmission.

15. An integrated circuit that controls the processing of a base station, the processing including: a process of controlling reception of an uplink signal, assuming that transmission of the uplink signal will be stopped in at least some of the time resources in a section including multiple time resources to which an uplink signal to which an orthogonal code is applied is stopped in the case where transmission of the uplink signal becomes discontinuous due to another signal or another channel in the section, or when an event occurs in which the continuity of the power and phase of the uplink signal cannot be maintained in the section; and a process of receiving the uplink signal in accordance with the reception control.

Citation Information

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