Base stations, communication methods, and integrated circuits

By using cell and subcell-specific information to determine PUCCH sequences and cyclic shifts, interference in 5G NR PUCCH is minimized, enhancing system performance and resource efficiency.

JP7836377B2Active Publication Date: 2026-03-26PANASONIC INTELLECTUAL PROPERTY CORP OF AMERICA
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-12-11
Publication Date
2026-03-26

AI Technical Summary

Technical Problem

Existing methods for controlling interference in the Physical Uplink Control Channel (PUCCH) with 1-2 bit Uplink Control Information (UCI) in 5G NR have not been sufficiently investigated.

Method used

A terminal and communication method that determines PUCCH sequences using cell identification information and subcell-specific information, limits the maximum number of sequences per resource block, and separates cyclic shifts for ACK and NACK, reducing interference by randomizing sequences and cyclic shifts.

Benefits of technology

Effectively controls interference in PUCCH transmissions, improving system performance by reducing interference and optimizing resource utilization in environments with multiple TRPs within a cell.

✦ Generated by Eureka AI based on patent content.

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Abstract

To appropriately control interference in an uplink control channel that includes 1-2 bits of uplink control information.SOLUTION: In a terminal 200, a control unit 209 determines a sequence to be used for an uplink control channel in response to uplink control information, and a transmission unit 214 transmits the uplink control information using the sequence. Here, the sequence is calculated using cell identification information that identifies a cell to which the terminal 200 belongs, and sub-cell specific information related to at least one sub-cell included in the cell.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] This disclosure relates to terminals and communication methods. [Background technology]

[0002] With the recent proliferation of mobile broadband services, data traffic in mobile communications has been increasing exponentially, making the expansion of data transmission capacity an urgent necessity for the future. Furthermore, the Internet of Things (IoT), where all kinds of "things" are connected via the internet, is expected to develop dramatically in the future. To support the diversification of services through IoT, not only data transmission capacity but also various other requirements such as low latency and communication area (coverage) need to be dramatically improved. Against this backdrop, the technological development and standardization of 5G, which will significantly improve performance and functionality compared to 4G, is progressing.

[0003] 3GPP (Third Generation Partnership Project) is developing new radio access technologies (NR: New Radio) for 5G standardization, which are not necessarily backward compatible with LTE (Long Term Evolution)-Advanced (see, for example, Non-Patent Documents 1-3).

[0004] In NR, it is being considered that the terminal (UE: User Equipment) will use the uplink control channel (PUCCH: Physical Uplink Control Channel) to transmit uplink control information (UCI: Uplink Control Information) to the base station (eNG or gNB), including response signals indicating the result of error detection of downlink data (ACK / NACK: Acknowledgement / Negative Acknowledgment or HARQ-ACK), downlink channel state information (CSI: Channel State Information), and uplink radio resource allocation requests (SR: Scheduling Request).

[0005] Furthermore, in NR, it is being considered to include 1-2 bits of UCI in the PUCCH when transmitting.

[0006] Furthermore, NR supports "Short PUCCH," which sends a PUCCH using one or two symbols in a single slot, and "Long PUCCH," which sends a PUCCH using three or more symbols (for example, the minimum number of symbols may be four). [Prior art documents] [Non-patent literature]

[0007] [Non-Patent Document 1] 3GPP TS 36.211 V13.4.0, "Evolved Universal Terrestrial Radio Access (E-UTRA); Physical channels and modulation (Release 13),"December 2016. [Non-Patent Document 2] 3GPP TS 36.212 V13.4.0, “Evolved Universal Terrestrial Radio Access (E-UTRA); Multiplexing and channel coding (Release 13),” December 2016. [Non-Patent Document 3] 3GPP TS 36.213 V13.4.0, "Evolved Universal Terrestrial Radio Access (E-UTRA); Physical layer procedures (Release 13),"December 2016. [Non-Patent Document 4] R1-1612228, "Proposal of subcell," Panasonic, RAN1#87, Nov. 2016. [Overview of the project] [Problems that the invention aims to solve]

[0008] However, methods for controlling interference in PUCCH, including 1-2 bit UCIs, have not been sufficiently investigated.

[0009] One aspect of this disclosure contributes to providing a terminal and communication method that can appropriately control interference in a PUCCH including 1-2 bit UCI. [Means for solving the problem]

[0010] A terminal according to one aspect of the present disclosure comprises a circuit that determines a sequence to be used for an uplink control channel in accordance with uplink control information, and a transmitter that transmits the uplink control information using the sequence, wherein the sequence is determined using cell identification information that identifies the cell to which the terminal belongs, and subcell-specific information relating to at least one subcell contained in the cell.

[0011] A terminal according to one aspect of the present disclosure comprises a circuit that determines a sequence to be used for an uplink control channel in accordance with uplink control information, and a transmitter that transmits the uplink control information using the sequence, wherein the maximum number of sequences that can be allocated within one resource block of the uplink control channel is limited.

[0012] A terminal according to one aspect of the present disclosure comprises a circuit that determines a sequence to be used for an uplink control channel in accordance with uplink control information, and a transmitter that transmits the uplink control information using the sequence, wherein the uplink control information includes at least ACK and NACK, and the cyclic shift used for the sequence is separated into a first region including a cyclic shift assigned to the ACK and a second region including a cyclic shift assigned to the NACK.

[0013] A communication method according to one aspect of the present disclosure determines a sequence to be used for an uplink control channel in accordance with uplink control information, transmits the uplink control information using the sequence, and determines the sequence using cell identification information that identifies the cell to which the terminal belongs, and subcell-specific information relating to at least one subcell contained in the cell.

[0014] A communication method according to one aspect of the present disclosure determines a sequence to be used for an uplink control channel in accordance with uplink control information, transmits the uplink control information using the sequence, and limits the maximum number of sequences that can be allocated within one resource block of the uplink control channel.

[0015] A communication method according to one aspect of the present disclosure determines a sequence to be used for an uplink control channel in accordance with uplink control information, transmits the uplink control information using the sequence, the uplink control information includes at least ACK and NACK, and the cyclic shift used for the sequence is separated into a first region including a cyclic shift assigned to the ACK and a second region including a cyclic shift assigned to the NACK.

[0016] These comprehensive or specific embodiments may be implemented as a system, method, integrated circuit, computer program, or recording medium, or as any combination of a system, device, method, integrated circuit, computer program, and recording medium. [Effects of the Invention]

[0017] According to one aspect of this disclosure, interference can be appropriately controlled in a PUCCH including 1-2 bit UCI.

[0018] Further advantages and effects of one aspect of this disclosure will be made apparent from the specification and drawings. Such advantages and / or effects are provided by several embodiments and features described in the specification and drawings, respectively, but not all of them are necessarily provided in order to obtain one or more identical features. [Brief explanation of the drawing]

[0019] [Figure 1] Figure 1 shows an example of a sequence selection method. [Figure 2] Figure 2 shows a partial configuration of the terminal according to Embodiment 1. [Figure 3] Figure 3 shows the configuration of the base station according to Embodiment 1. [Figure 4] Figure 4 shows the configuration of the terminal according to Embodiment 1. [Figure 5] Figure 5 shows the terminal processing according to Embodiment 1. [Figure 6] Figure 6 shows an example of a method for determining a series ID using a subcell ID according to Embodiment 1. [Figure 7] Figure 7 shows an example of a method for determining a series ID using the beam ID according to Embodiment 1. [Figure 8] Figure 8 shows an example of a method for determining a sequence ID using a random access resource according to Embodiment 1. [Figure 9]Figure 9 shows an example of determining the cyclic shift pattern of a 1-bit UCI according to Embodiment 2. [Figure 10] Figure 10 shows an example of determining the cyclic shift pattern of a 2-bit UCI according to Embodiment 2. [Figure 11A] Figure 11A shows an example of determining the cyclic shift pattern of a 1-bit UCI according to Embodiment 3. [Figure 11B] Figure 11B shows an example of determining the cyclic shift pattern of a 2-bit UCI according to Embodiment 3. [Figure 12A] Figure 12A shows an example of UCI mapping according to Embodiment 4. [Figure 12B] Figure 12B shows an example of UCI mapping according to Embodiment 4. [Figure 13] Figure 13 shows an example of a 1-bit UCI mapping according to Embodiment 4. [Figure 14] Figure 14 shows an example of a 2-bit UCI mapping according to Embodiment 4. [Figure 15] Figure 15 shows an example of a 1-bit UCI mapping according to Embodiment 5. [Figure 16] Figure 16 shows an example of a 2-bit UCI mapping according to Embodiment 5. [Modes for carrying out the invention]

[0020] Embodiments of this disclosure will be described in detail below with reference to the drawings.

[0021] As shown in Figure 1, Short PUCCH is considering a method for selecting the sequence used for Short PUCCH transmission based on a 1-bit or 2-bit UCI and the presence or absence of SR (hereinafter referred to as the Sequence selection method). In Figure 1, the combination of ACK / NACK and the presence or absence of SR is associated with a cyclic shift (cyclic shift amount). For example, as shown in Figure 1, the cyclic shift of a CAZAC (Constant Amplitude Zero Auto Correlation) code sequence or a CG (Computer Generated) sequence can be used for sequence selection.

[0022] When using Short PUCCH consisting of a CAZAC code sequence or a CG sequence, even if the sequences used for PUCCH transmitted from different terminals (sometimes called PUCCH sequences) are different from each other, interference occurs due to the cross-correlation characteristics between sequences because the PUCCH transmissions from those terminals are not perfectly orthogonal. For example, interference that occurs when different sequences are assigned between cells is called "inter-cell interference."

[0023] Furthermore, if the sequence used for PUCCH transmissions from different terminals is the same, but the cyclic shifts used for those PUCCH transmissions are different, then the PUCCH transmissions from those terminals will be perfectly orthogonal, provided that the time and frequency of the PUCCH transmissions are synchronized between those terminals. On the other hand, if there is a timing difference in transmissions between terminals or an influence from frequency-selective fading channels, interference will occur even if the sequence used for the PUCCH transmissions from each terminal is the same and the cyclic shifts are different.

[0024] For short pushes, it is advisable to consider the interference effects described above.

[0025] In LTE, 30 CG sequences are defined. Furthermore, PUCCH for each cell is distinguished by identification information that identifies the cell (hereinafter referred to as "cell ID"). Different cell IDs result in different CG sequences being used for PUCCH.

[0026] Furthermore, in LTE, to randomize the effects of interference, the allocation of CG sequences for PUCCH or the determination of cyclic shift patterns for PUCCH based on hopping patterns is applied. Different cell IDs result in different initial values ​​for the random sequences that determine the hopping patterns. In addition, in LTE, interference control can be performed when cells are synchronized, such as in CoMP (Coordinated Multiple Point transmission and reception), by setting the same cell ID across different cells using a virtual cell ID for generating PUCCH signal sequences (see, for example, Non-Patent Document 1).

[0027] Incidentally, in NR, it is assumed that there may be multiple TRPs (Transmission and Reception Points) within the same cell. In this case, PUCCHs transmitted from terminals communicating with different TRPs within the same cell must be distinguished from each other by using different PUCCH resources (cyclic shift, time, or frequency resources).

[0028] However, the allocation of PUCCH sequences based on cell IDs as described above increases the PUCCH resources required for PUCCH transmissions by terminals communicating with different TRPs, and reduces the frequency utilization efficiency of the uplink within the cell.

[0029] Furthermore, by assigning different cell IDs to terminals communicating with different TRPs using the virtual cell IDs described above, it is possible to distribute PUCCH resources within a cell to different CG sequences. However, the virtual cell ID is notified using terminal-specific higher-layer signals after the initial access is completed. Therefore, for PUCCH transmissions during the initial access phase (e.g., ACK / NACK response to message4), it is necessary to assign a PUCCH sequence based on the cell ID, rather than the virtual cell ID.

[0030] One aspect of this disclosure describes a method for reducing the effects of interference in a wireless communication system that transmits Short PUCCH.

[0031] The following describes each embodiment in detail.

[0032] (Embodiment 1) [Overview of the communication system] Each embodiment of the communication system according to this disclosure comprises a base station 100 and a terminal 200.

[0033] Figure 2 is a block diagram showing some of the configurations of terminal 200 according to each embodiment of the present disclosure. In terminal 200 shown in Figure 2, the control unit 209 determines a sequence (PUCCH sequence) to be used for the uplink control channel (PUCCH) according to the uplink control information (UCI), and the transmission unit 214 transmits the uplink control information using the above sequence. Here, the above sequence is calculated using cell identification information (cell ID) that identifies the cell to which terminal 200 belongs, and subcell-specific information relating to at least one subcell contained in the cell.

[0034] [Base station configuration] Figure 3 is a block diagram showing the configuration of a base station 100 according to Embodiment 1 of the present disclosure. In Figure 3, the base station 100 includes a control unit 101, a data generation unit 102, an encoding unit 103, a retransmission control unit 104, a modulation unit 105, a higher-level control signal generation unit 106, an encoding unit 107, a modulation unit 108, a downlink control signal generation unit 109, an encoding unit 110, a modulation unit 111, a signal allocation unit 112, an IFFT (Inverse Fast Fourier Transform) unit 113, a transmission unit 114, an antenna 115, a receiving unit 116, an FFT (Fast Fourier Transform) unit 117, an extraction unit 118, an SR detection unit 119, a PUCCH demodulation / decoding unit 120, and a determination unit 121.

[0035] The control unit 101 determines the wireless resource allocation for the downlink signal (e.g., PDSCH: Physical Downlink Shared Channel) and outputs downlink resource allocation information instructing the allocation of resources for the downlink signal to the downlink control signal generation unit 109 and the signal allocation unit 112.

[0036] Furthermore, the control unit 101 determines the allocation of PUCCH resources (time, frequency, sequence, etc.) to the downlink signal according to the presence or absence of the HARQ-ACK signal and SR, and outputs information regarding the PUCCH resource allocation (PUCCH resource allocation information) to the higher-level control signal generation unit 106 (or downlink control signal generation unit 109) and the extraction unit 118.

[0037] At this time, the control unit 101 determines either the PUCCH series number or the cyclic shift pattern as the PUCCH resource. Details of how the PUCCH resource is determined will be described later.

[0038] The data generation unit 102 generates downlink data for the terminal 200 and outputs it to the encoding unit 103.

[0039] The encoding unit 103 performs error correction encoding on the downlink data input from the data generation unit 102 and outputs the encoded data signal to the retransmission control unit 104.

[0040] The retransmission control unit 104, upon initial transmission, retains the encoded data signal input from the encoding unit 103 and outputs it to the modulation unit 105. Furthermore, when the retransmission control unit 104 receives a NACK for the transmitted data signal from the determination unit 121 (described later), it outputs the corresponding retained data to the modulation unit 105. Conversely, when the retransmission control unit 104 receives an ACK for the transmitted data signal from the determination unit 121, it deletes the corresponding retained data.

[0041] The modulation unit 105 modulates the data signal input from the retransmission control unit 104 and outputs the modulated data signal to the signal assignment unit 112.

[0042] The higher-level control signal generation unit 106 generates a control information bit sequence using the control information input from the control unit 101 (for example, PUCCH resource allocation information, etc.) and outputs the generated control information bit sequence to the encoding unit 107.

[0043] The encoding unit 107 performs error correction encoding on the control information bit sequence input from the higher-level control signal generation unit 106, and outputs the encoded control signal to the modulation unit 108.

[0044] The modulation unit 108 modulates the control signal input from the encoding unit 107 and outputs the modulated control signal to the signal assignment unit 112.

[0045] The downlink control signal generation unit 109 generates a downlink control information bit sequence (e.g., DCI: Downlink Control Information) using the control information input from the control unit 101 (e.g., downlink resource allocation information, PUCCH resource allocation information, etc.), and outputs the generated control information bit sequence to the encoding unit 110. Since control information may be transmitted to multiple terminals, the downlink control signal generation unit 109 may generate a bit sequence that includes the terminal ID of each terminal in the control information for each terminal.

[0046] The encoding unit 110 performs error correction encoding on the control information bit sequence input from the downlink control signal generation unit 109, and outputs the encoded control signal to the modulation unit 111.

[0047] The modulation unit 111 modulates the control signal input from the code unit 110 and outputs the modulated control signal to the signal assignment unit 112.

[0048] The signal assignment unit 112 maps the data signal input from the modulation unit 105 to the wireless resource indicated in the downlink resource assignment information input from the control unit 101. The signal assignment unit 112 also maps the control signal input from the modulation unit 108 or modulation unit 111 to the wireless resource. The signal assignment unit 112 outputs the downlink signal to the IFFT unit 113.

[0049] The IFFT unit 113 performs transmission waveform generation processing, such as OFDM, on the signal input from the signal assignment unit 112. In the case of OFDM transmission that adds a CP (Cyclic Prefix), the IFFT unit 113 adds the CP (not shown). The IFFT unit 113 outputs the generated transmission waveform to the transmission unit 114.

[0050] The transmitting unit 114 performs RF (Radio Frequency) processing such as D / A (Digital-to-Analog) conversion and upconversion on the signal input from the IFFT unit 113, and transmits the wireless signal to the terminal 200 via the antenna 115.

[0051] The receiving unit 116 performs RF processing, such as down-conversion or A / D (Analog-to-Digital) conversion, on the uplink signal waveform received from the terminal 200 via the antenna 115, and outputs the processed uplink signal waveform to the FFT unit 117.

[0052] The FFT unit 117 performs an FFT (Fast-Fast Transform) process on the uplink signal waveform input from the receiving unit 116 to convert the time-domain signal into a frequency-domain signal. The FFT unit 117 outputs the frequency-domain signal obtained by the FFT process to the extraction unit 118.

[0053] Based on the information received from the control unit 101 (such as PUCCH resource allocation information), the extraction unit 118 extracts the PUCCH radio resource portion for SR or HARQ-ACK from the signal input from the FFT unit 117, and outputs the extracted radio resource components to the SR detection unit 119 and the PUCCH demodulation / decoding unit 120, respectively.

[0054] The SR detection unit 119 performs power detection on the signal input from the extraction unit 118 to detect the presence or absence of SR. Furthermore, if the SR detection unit 119 detects that SR is present and that HARQ-ACK is being transmitted using the SR resource, it outputs the signal input from the extraction unit 118 to the PUCCH demodulation / decoding unit 120.

[0055] The PUCCH demodulation / decoding unit 120 performs equalization, demodulation, decoding, or power detection on the PUCCH signal input from the extraction unit 118 or the SR detection unit 119, and outputs the decoded bit sequence or the signal after power detection to the determination unit 121.

[0056] The determination unit 121 determines, based on the bit sequence or signal after power detection input from the PUCCH demodulation / decoding unit 120, whether the HARQ-ACK signal transmitted from the terminal 200 indicates an ACK or a NACK with respect to the transmitted data signal. The determination unit 121 outputs the determination result to the retransmission control unit 104.

[0057] [Device Configuration] Figure 4 is a block diagram showing the configuration of terminal 200 according to Embodiment 1 of the present disclosure. In Figure 40, terminal 200 includes an antenna 201, a receiving unit 202, an FFT unit 203, an extraction unit 204, a downlink control signal demodulation unit 205, a higher-level control signal demodulation unit 206, a downlink data signal demodulation unit 207, an error detection unit 208, a control unit 209, an SR generation unit 210, a HARQ-ACK generation unit 211, a signal assignment unit 212, an IFFT unit 213, and a transmission unit 214.

[0058] The receiving unit 202 performs RF processing, such as down-conversion or A / D (Analog-to-Digital) conversion, on the signal waveform of the downlink signal (data signal and control signal) received from the base station 100 via the antenna 201, and outputs the resulting received signal (baseband signal) to the FFT unit 203.

[0059] The FFT unit 203 performs an FFT (Fast-Fast Transform) operation on the signal (time-domain signal) input from the receiving unit 202 to convert the time-domain signal into a frequency-domain signal. The FFT unit 203 outputs the frequency-domain signal obtained by the FFT operation to the extraction unit 204.

[0060] The extraction unit 204 extracts the downlink control signal from the signal input from the FFT unit 203 based on the control information input from the control unit 209 and outputs it to the downlink control signal demodulation unit 205. The extraction unit 204 also extracts the higher-level control signal and the downlink data signal based on the control information input from the control unit 209, outputs the higher-level control signal to the higher-level control signal demodulation unit 206, and outputs the downlink data signal to the downlink data signal demodulation unit 207.

[0061] The downlink control signal demodulation unit 205 blind decodes the downlink control signal input from the extraction unit 204, and if it determines that the control signal is intended for the unit itself, it demodulates the control signal and outputs it to the control unit 209.

[0062] The higher-level control signal demodulation unit 206 demodulates the higher-level control signal input from the extraction unit 204 and outputs the demodulated higher-level control signal to the control unit 209.

[0063] The downlink data signal demodulation unit 207 demodulates and decodes the downlink data signal input from the extraction unit 204, and outputs the decoded downlink link data to the error detection unit 208.

[0064] The error detection unit 208 performs error detection on the downlink data input from the downlink data signal demodulation unit 207 and outputs the error detection results to the HARQ-ACK generation unit 211. The error detection unit 208 also outputs downlink data that it determines to be error-free as received data.

[0065] The control unit 209 calculates the wireless resource allocation for the downlink data signal based on the downlink resource allocation information indicated in the control signal input from the downlink control signal demodulation unit 205, and outputs information indicating the calculated wireless resource allocation to the extraction unit 204.

[0066] Furthermore, the control unit 209 calculates the PUCCH resources to transmit SR and HARQ-ACK based on the PUCCH resource allocation information regarding the allocation of PUCCH resources for SR and HARQ-ACK, which is indicated in the higher-level control signal input from the higher-level control signal demodulation unit 206 or the lower-level control signal demodulation unit 205. The control unit 209 then outputs the calculated PUCCH resource information to the signal allocation unit 212.

[0067] Furthermore, the control unit 209 determines the time and frequency resources and sequence for the PUCCH to which the terminal 200 actually transmits SR and HARQ-ACK, using a method described later, and outputs the determined information to the signal allocation unit 212 and the transmission unit 214.

[0068] The SR generation unit 210 generates an SR when the terminal 200 requests the base station 100 to allocate wireless resources for uplink transmission, and outputs the generated SR signal to the signal allocation unit 212.

[0069] The HARQ-ACK generation unit 211 generates a HARQ-ACK signal (ACK or NACK) for the received downlink data based on the error detection result input from the error detection unit 208. The HARQ-ACK generation unit 211 outputs the generated HARQ-ACK signal (bit sequence) to the signal assignment unit 212.

[0070] The signal assignment unit 212 maps the SR signal input from the SR generation unit 210, or the HARQ-ACK signal input from the HARQ-ACK generation unit 211, to the radio resource instructed by the control unit 209. The signal assignment unit 212 outputs the uplink signal (e.g., uplink control information (UCI)) to the IFFT unit 213.

[0071] The IFFT unit 213 applies a transmission waveform generation process, such as OFDM, to the signal input from the signal assignment unit 212. In the case of OFDM transmission with added CP (Cyclic Prefix), the IFFT unit 213 adds CP (not shown). Alternatively, if the IFFT unit 213 generates a single-carrier waveform, a DFT (Discrete Fourier Transform) unit may be added before the signal assignment unit 212 (not shown). The IFFT unit 213 outputs the generated transmission waveform to the transmission unit 214.

[0072] The transmitting unit 214 performs RF (Radio Frequency) processing such as transmit power control, D / A (Digital-to-Analog) conversion, and upconversion on the signal input from the IFFT unit 213 based on information input from the control unit 209, and transmits the radio signal to the base station 100 via the antenna 201.

[0073] [Operation of base station 100 and terminal 200] The operation of the base station 100 and terminal 200 having the above configuration will be described in detail below.

[0074] Figure 5 shows the processing flow of terminal 200 according to this embodiment.

[0075] In this embodiment, the series number (series ID) of a PUCCH series (for example, a CG series) is determined using additional identification information (identification ID) in addition to the cell ID.

[0076] For example, additional identification information may include information related to the subcell (e.g., a subcell ID to identify the subcell), information about the beam in a wireless communication system applying beamforming (e.g., a beam ID to identify the beam), or information related to initial access (random access). Hereinafter, additional identification information will be referred to as "subcell-specific information," which is information unique to the subcell.

[0077] A "subcell" is, as shown in Figure 6 below, for example, a cell formed for each of one or more TRPs within a single cell (see, for example, Non-Patent Document 4). A subcell can also be a cell formed for each of one or more beams formed within a single cell (or TRP). Furthermore, if a single cell (or TRP) forms subbands with multiple subbands having different numerologies within the system bandwidth, a subcell can be a cell formed for each subband. A subcell can also be a cell configured according to the coverage within the cell.

[0078] Furthermore, information related to random access may include, for example, information about random access resources notified by a "PDCCH order" in which the network requests random access from terminal 200, or, if a random access procedure is initiated from terminal 200, information about the random access resources (time, frequency, code sequence) actually used by terminal 200.

[0079] Terminal 200 identifies the cell ID of the cell (base station 100) to which terminal 200 belongs, and subcell-specific information (ST101). For example, terminal 200 identifies at least one of the following: the subcell ID corresponding to the TRP with which terminal 200 communicates (the subcell ID of the subcell to which terminal 200 is connected), the beam ID of the beam used by terminal 200 for communication, and information indicating the random access resource used by terminal 200 for communication.

[0080] Next, terminal 200 uses the cell ID and subcell-specific information to calculate identification information (hereinafter referred to as the identification ID used for PUCCH) for calculating the series number of the PUCCH series (ST102). Then, terminal 200 determines the PUCCH resource (series number of the PUCCH series) based on the calculated identification ID used for PUCCH.

[0081] Then, terminal 200 assigns a UCI (HARQ-ACK, SR, etc.) to the determined PUCCH resource (ST103) and transmits the PUCCH to base station 100 (ST104).

[0082] As mentioned above, in LTE, different cell IDs result in different initial values ​​for the random sequence that determines the hopping pattern of the PUCCH sequence. In this embodiment as well, similar to LTE, if the identification ID used for PUCCH, which is determined based on the cell ID and subcell-specific information, is different, the initial values ​​for the random sequence that determines the hopping pattern of the PUCCH sequence will be different, and the PUCCH sequence will be different.

[0083] In other words, if the subcell-specific information corresponding to different TRPs within the same cell (i.e., when using the same cell ID) is different from each other, then the identification IDs (values ​​determined based on the cell ID and subcell-specific information) used to determine the PUCCH sequence number used in communication with these different TRPs will be different, and thus the PUCCH sequence numbers can be made different.

[0084] Therefore, even in environments where multiple TRPs are operating within the same cell, PUCCH sequences can be assigned between terminals 200 communicating with different TRPs based on different hopping patterns (different sequence numbers). This prevents consecutive collisions of the same PUCCH sequence in PUCCHs transmitted from each terminal 200, and prevents interference bias due to multiple collision sequences always being the same. In other words, interference can be randomized in the transmission of Short PUCCHs, and system performance can be improved by reducing the impact of interference.

[0085] Next, we will specifically explain an example of how to determine the sequence number i of a PUCCH sequence assigned in a given time unit n.

[0086] Here, for example, the sequence number i of the PUCCH sequence is determined according to equation (1). i = f(n) mod N sequence (1)

[0087] In equation (1), f(n) is a hopping pattern. f(n) is generated using a pseudo-random sequence, for example, as shown in section 5.5.1.3 of Non-Patent Document 1. Also, N sequence This is the number of sequences allocated for PUCCH (for example, 30 for LTE).

[0088] Furthermore, the method for generating the pseudorandom sequence used to generate f(n) is specified, for example, in Section 7.2 of Non-Patent Document 1. The pseudorandom sequence is, for example, the initial value c in equation (2). int It is initialized at regular intervals according to the following equation (2). int If the parameters are different, the resulting pseudo-random sequences will be different.

number

[0089] In equation (2), n IDis the identification ID used for the above-mentioned PUCCH. The identification ID (n ID ) used for PUCCH may be notified to the terminal 200 by a higher-layer signal unique to the terminal, and may be set in the terminal 200 using at least one of the cell ID (n ID cell ) and sub-cell specific information (n ID subcell , n ID beam , n order RA , and n index RA ) as follows. n ID = n ID cell + n ID subcell n ID = n ID cell + n ID beam n ID = n ID cell + n order RA n ID = n ID cell + n index RA

[0090] n ID subcell indicates the sub-cell ID, n ID beam indicates the beam ID, n order RA indicates information regarding the random access resource notified in the PDCCH order in which the network requests random access from the terminal 200, and n index RA indicates the number of the random access resource (time, frequency, code sequence) actually used by the terminal 200. Also, the identification ID used for PUCCH may be set using a plurality of the above-mentioned sub-cell specific information.

[0091] Furthermore, examples of time units n for hopping the PUCCH sequence include symbol units, slot units, subframe units, etc. Also, examples of time intervals for initializing the pseudo-random sequence include multiple symbol units, slot units, multiple slot units, subframe units, multiple subclaim units, wireless frame units, etc.

[0092] Figures 6, 7, and 8 show, as an example, how identification IDs used for PUCCH are set by subcells, beams, and random access resources (RA resources), respectively.

[0093] As shown in Figures 6, 7, and 8, the identification ID (n) used for PUCCH to terminal 200 ID The cell ID used in setting ) is always the cell ID of cell A (n ID cell A )

[0094] For example, as shown in Figure 6, terminal 200 is subcell 1 (subcell ID: n ID subcell 1 ) TRP corresponding to subcell 2 (subcell ID: n ID subcell 2 ) corresponding TRP, and subcell 3 (subcell ID: n ID subcell 3 Among the TRPs corresponding to ), the identification ID (n ID Set n in Figure 6. ID (subcell1), n ID (subcell2), n ID (subcell3) has different values ​​from each other.

[0095] Furthermore, as shown in Figure 7, for example, terminal 200 is beam 1 (beam ID: n ID beam 1 ), Beam 2 (Beam ID: n ID beam 2 ), and beam 3 (beam ID: n ID beam 3) Among them, depending on the beam used in communication between terminal 200 and TRP, the identification ID (n ID Set n in Figure 7. ID (beam1), n ID (beam2), n ID (beam3) has different values ​​from each other.

[0096] Also, for example, as shown in Figure 8, terminal 200 is RA resource 1(n ID RA1 ), RA Resource 2 (n ID RA2 ), and RA Resource 3(n ID RA3 ) Among these, the identification ID (n) used for PUCCH is determined according to the random access resources actually used between terminal 200 and the TRP with which it communicates. ID Set ). In Figure 8, n ID (RA1), n ID (RA2), n ID (RA3) are different values ​​from each other.

[0097] Furthermore, similar to the terminal 200, the base station 100 uses subcell-specific information corresponding to the TRP that the terminal 200 communicates with to identify the PUCCH resource (series number of the PUCCH series) to which the PUCCH transmitted from the terminal 200 will be assigned. Then, the base station 100 receives the PUCCH (UCI) transmitted using the determined PUCCH resource.

[0098] Thus, in this embodiment, terminal 200 determines the sequence to be used for PUCCH (PUCCH sequence) in response to the UCI (ACK, NACK, or SR, etc.), and transmits the UCI using the PUCCH sequence. At this time, the PUCCH sequence is calculated using the cell ID of the cell to which terminal 200 belongs, and subcell-specific information. Specifically, the subcell-specific information is used to calculate the initial value of the pseudo-random sequence used for the hopping pattern of the sequence number of the PUCCH sequence.

[0099] For example, as shown in Figures 6, 7, and 8, within the same cell (same cell ID (n ID cell A Even in this case, terminal 200 can determine the PUCCH sequence using subcell-specific information unique to the TRP (or subcell) with which terminal 200 communicates, thereby assigning different PUCCH resources to PUCCHs transmitted from terminals 200 communicating with different TRPs within the same cell and distinguishing them from one another.

[0100] Therefore, according to this embodiment, even in environments where multiple TRPs are operating within the same cell, interference can be randomized during Short PUCCH transmission, thereby reducing the effects of interference. In other words, according to this embodiment, interference can be appropriately controlled in PUCCHs that include 1 to 2 bits of UCI.

[0101] (Embodiment 2) Since the base station and terminal according to this embodiment share the same basic configuration as the base station 100 and terminal 200 according to Embodiment 1, they will be explained with reference to Figures 3 and 4.

[0102] In Embodiment 1, the method for setting the sequence number i of the PUCCH sequence as a PUCCH resource determined based on subcell-specific information was described. In contrast, in this embodiment, the method for setting the cyclic shift pattern of PUCCH (PUCCH sequence) as a PUCCH resource (i.e., the mapping between each UCI (ACK / NACK, SR) and the sequence (cyclic shift) is described.

[0103] In this embodiment, similar to Embodiment 1, the PUCCH cyclic shift pattern is determined using subcell-specific information in addition to the cell ID.

[0104] Similar to Embodiment 1, the subcell-specific information may include, for example, a subcell ID, a beam ID, or information related to initial access (random access). Also, similar to Embodiment 1, the information related to random access may include, for example, information about random access resources notified by a "PDCCH order" in which the network requests random access from terminal 200, or information about the random access resources (time, frequency, code sequence) actually used by terminal 200.

[0105] Specifically, terminal 200 identifies the cell ID of the cell (base station 100) to which terminal 200 belongs, and subcell-specific information (ST101 shown in Figure 5). Using the cell ID and subcell-specific information, terminal 200 calculates identification information (identification ID used for PUCCH) for calculating the PUCCH sequence (cyclic shift pattern) (ST102 shown in Figure 5). Based on the calculated identification ID used for PUCCH, terminal 200 determines the PUCCH resource (cyclic shift pattern of PUCCH). Then, terminal 200 assigns UCI (HARQ-ACK and / or SR) to the determined PUCCH resource (ST103 shown in Figure 5) and transmits the PUCCH to base station 100 (ST104 shown in Figure 5).

[0106] As described above, in LTE, different cell IDs result in different initial values ​​for the random sequence used to determine the hopping pattern in the PUCCH cyclic shift pattern. In this embodiment as well, similar to LTE, different identification IDs used for PUCCH, which are determined based on the cell ID and subcell-specific information, result in different initial values ​​for the random sequence used to determine the hopping pattern, and thus different cyclic shift patterns.

[0107] In other words, terminal 200 shifts the cyclic shift pattern used for PUCCH according to the subcell-specific information corresponding to the TRP it is communicating with. As a result, if the subcell-specific information corresponding to different TRPs within the same cell (i.e., when using the same cell ID) is different, the identification ID (a value determined based on the cell ID and subcell-specific information) used to determine the cyclic shift pattern of PUCCH used in communication with these different TRPs will be different, and thus the cyclic shift patterns can be made different.

[0108] Therefore, even in environments where multiple TRPs are operating within the same cell, PUCCH sequences can be assigned between terminals 200 communicating with different TRPs based on different hopping patterns (different cyclic shift patterns). This prevents consecutive collisions of the same cyclic shift pattern in PUCCHs transmitted from each terminal 200, and prevents interference bias due to multiple colliding cyclic shift patterns always being the same. In other words, interference can be randomized in the transmission of Short PUCCHs, and system performance can be improved by reducing the impact of interference.

[0109] Next, we will specifically explain an example of a method for determining the cyclic shift pattern of PUCCH assigned in a given time unit n.

[0110] The cyclic shift pattern may also be given as an offset of the cyclic shift, for example, as shown in Figure 9 (for a 1-bit UCI) and Figure 10 (for a 2-bit UCI). For example, the cyclic shift pattern on the right in Figure 9 is the same as the cyclic shift pattern on the left in Figure 9 with an offset of 2 added. Similarly, the cyclic shift pattern on the right in Figure 10 is the same as the cyclic shift pattern on the left in Figure 10 with an offset of 7 added.

[0111] The cyclic shift pattern of PUCCH is generated using a pseudo-random sequence, as shown in Section 5.4 of Non-Patent Document 1, for example. The method for generating the pseudo-random sequence is defined in Section 7.2 of Non-Patent Document 1, for example. Specifically, the pseudo-random sequence is initialized for each time interval according to the initial value c int in Equation (3). In Equation (3), if the initial value c int is different, the generated pseudo-random sequence is different. c int = n ID (3)

[0112] In Equation (3), n ID is the identification information used for the above-described PUCCH. In Equation (3), the identification ID (n ID ) used for PUCCH may be notified to the terminal 200 by a higher-layer signal specific to the terminal, or may be set in the terminal 200 using the cell ID (n ID cell ) and at least one of the sub-cell specific information (n ID subcell , n ID beam , n order RA , and n index RA ) as shown below. n ID = n ID cell + n ID subcell n ID = n ID cell + n ID beam n ID = n ID cell + n order RA n ID = n ID cell + n index RA

[0113] n IDsubcell indicates the subcell ID, n ID beam indicates the beam ID, n order RA This indicates information about random access resources that are notified in a PDCCH order in which the network requests random access to terminal 200, n index RA This indicates the number of the random access resource (time, frequency, code sequence) actually used by terminal 200. Furthermore, the identification ID used for PUCCH may be set using multiple subcell-specific pieces of information as described above.

[0114] Furthermore, examples of time units n for hopping PUCCH's cyclic shift patterns include symbol units, slot units, subframe units, etc. Also, examples of time intervals for initializing pseudo-random sequences include multiple symbol units, slot units, multiple slot units, subframe units, multiple subclaim units, wireless frame units, etc.

[0115] In this embodiment, terminal 200 determines a sequence (PUCCH sequence) to be used for PUCCH in response to a UCI (ACK, NACK, or SR, etc.), and transmits the UCI using the PUCCH sequence. At this time, the PUCCH sequence is calculated using the cell ID of the cell to which terminal 200 belongs, and subcell-specific information. Specifically, the subcell-specific information is used to calculate the initial value of the pseudo-random sequence used for hopping the cyclic shift pattern used in the PUCCH sequence.

[0116] For example, even within the same cell (same cell ID), terminal 200 can randomize interference to PUCCHs transmitted from terminals 200 communicating with different TRPs within the same cell by determining the cyclic shift pattern of the PUCCH sequence using subcell-specific information unique to the TRP (or subcell) with which terminal 200 communicates. This reduces the impact of interference. In other words, according to this embodiment, interference can be appropriately controlled in PUCCHs containing 1 to 2 bits of UCI.

[0117] Furthermore, the cyclic shift pattern hopping described in this embodiment may be used in combination with the PUCCH sequence hopping (sequence hopping) described in Embodiment 1. When cyclic shift pattern hopping and sequence hopping are used in combination, the time units to which sequence hopping is applied and the time units to which cyclic shift hopping is applied may be the same or different. For example, sequence hopping may be performed on a slot basis, and cyclic shift hopping may be performed on a symbol basis. Also, the time interval for initializing the pseudo-random sequence may be the same or different for sequence hopping and cyclic shift hopping. In addition, the identification ID (n) used for PUCCH may be used. ID The same or different serial numbers may be used for both serial hopping and cyclic shift hopping. This allows different serial numbers or cyclic shift patterns to be assigned to PUCCHs transmitted from terminals 200 communicating with different TRPs within the same cell, thereby reducing the effects of interference.

[0118] (Embodiment 3) In the Sequence Selection method, for 1-bit UCI, each terminal has a PUCCH resource (cyclic shift sequence) reserved in advance for sending ACK without SR, NACK without SR, ACK with SR, and NACK with SR. If sequences to be assigned to the same terminal exist within the same PRB, then four of the twelve PUCCH resources (cyclic shift sequences) that can be assigned to one PRB will be assigned to that single terminal.

[0119] Similarly, in the case of 2-bit UCI, each terminal is allocated a PUCCH resource (cyclic shift sequence) for sending ACK / ACK without SR, ACK / NACK without SR, NACK / ACK without SR, NACK / NACK without SR, and ACK / ACK with SR, ACK / NACK with SR, NACK / ACK with SR, and NACK / NACK with SR. Therefore, of the 12 PUCCH resources (cyclic shift sequences) that can be allocated to 1PRB, 8 PUCCH resources are allocated per terminal.

[0120] In other words, theoretically, within one PRB, up to 12 cyclic shift sequences can be used to multiplex up to 3 UEs, for example, in the case of a 1-bit UCI. However, in this case, all 12 cyclic shift sequences are used, so even if the aforementioned cyclic shift hopping is applied, the effect of randomizing interference becomes low.

[0121] Therefore, in this embodiment, a method for reducing the effects of interference will be described by limiting the maximum number of sequences (cyclic shifts) that can be assigned within 1PRB.

[0122] Since the base station and terminal according to this embodiment share the same basic configuration as the base station 100 and terminal 200 according to embodiments 1 and 2, they will be explained with reference to Figures 3 and 4.

[0123] Figures 11A (for 1-bit UCI) and 11B (for 2-bit UCI) show examples of cyclic shift patterns when the maximum number of sequences (cyclic shifts) that can be assigned within one PRB is limited to eight.

[0124] As mentioned above, in the case of 1-bit UCI, 4 PUCCH resources are allocated per terminal 200, so in Figure 11A, a maximum of 2 terminals are multiplexed within 1 PRB. Also, as mentioned above, in the case of 2-bit UCI, 8 PUCCH resources are allocated per terminal 200, so in Figure 11B, a maximum of 1 terminal is multiplexed within 1 PRB.

[0125] In other words, in Figures 11A and 11B, four of the twelve cyclic shift sequences within one PRB are not used for the PUCCH sequence. This allows for spacing out the cyclic shift sequences used for the PUCCH sequence in the cyclic shift patterns shown in Figures 11A and 11B. Therefore, in this case, the cyclic shift hopping described above is applied, increasing the likelihood that different cyclic shift sequences will be assigned to PUCCH signals transmitted from terminals 200 using different cyclic shift patterns, thereby achieving the effect of randomizing interference.

[0126] Alternatively, instead of limiting the maximum number of sequences that can be assigned to one PRB (8 in Figures 11A and 11B), the number of terminals that can be assigned to one PRB may be limited. For example, in Figure 11A, the maximum number of terminals that can be assigned to one PRB is limited to 2, while in Figure 11B, the maximum number of terminals that can be assigned to one PRB is limited to 1.

[0127] Furthermore, the maximum number of sequences (cyclic shifts) that can be allocated within one PRB is not limited to 8; for example, the number of terminal multiplexers may be limited to 1 terminal. In the case of a 1-bit UCI, the maximum number of sequences (cyclic shifts) that can be allocated within one PRB is 4, and in the case of a 2-bit UCI, the maximum number of sequences (cyclic shifts) that can be allocated within one PRB is 8.

[0128] Thus, according to this embodiment, by limiting the maximum number of sequences (cyclic shifts) (or number of terminals) that can be assigned within one PRB in a cyclic shift pattern, some of the cyclic shifts within one PRB are not used as PUCCH sequences. Cyclic shifts that are not used as PUCCH sequences can be used for PUCCH sequences in different cyclic shift patterns. Therefore, the number of PUCCH sequences that use the same cyclic shift pattern as PUCCH resources can be reduced. As a result, according to this embodiment, the effect of randomizing interference can be made greater.

[0129] (Embodiment 4) In this embodiment, we will examine the mapping design between uplink control signals such as ACK, NACK, and SR, and PUCCH (cyclic shift).

[0130] Furthermore, this embodiment focuses on the differences in the occurrence probabilities of ACK, NACK, and SR.

[0131] The target error rate for the initial packet transmission in a downlink HARQ is, for example, around 10%. This means that, probabilistically, ACK transmissions (probability of occurrence) are more frequent, and NACK transmissions (probability of occurrence) are less frequent. Therefore, NACKs are probabilistically susceptible to adverse effects from ACKs sent from other multiplexed terminals.

[0132] For example, in the mapping method shown in Figure 11A, based on the probability of ACK and NACK occurrences, if terminal 1 (UE1) sends a NACK, there is a high probability that terminal 2 (UE2) is also sending an ACK. Therefore, the base station has a high probability of mistakenly receiving the NACK sent from terminal 1 as an ACK mapped to an adjacent cyclic shift (i.e., corresponding to an ACK) that terminal 2 is likely to send.

[0133] With this mapping method, even if a shift of the cyclic shift pattern described in Embodiment 2 is applied, it is not possible to randomize the effects of interference between multiple terminals within a cell.

[0134] Therefore, in this embodiment, the mapping between ACK, NACK, and SR and PUCCH (cyclic shift) is made different between terminals where ACK / NACK or SR is multiplexed. By doing so, the influence of interference from multiplexed terminals occurring between cyclic shifts can be randomized.

[0135] Since the base station and terminal according to this embodiment share the same basic configuration as the base station 100 and terminal 200 according to Embodiment 1, they will be explained with reference to Figures 3 and 4.

[0136] Figures 12A and 12B show an example of a mapping method between ACK, NACK, and SR and PUCCH (cyclic shift) in each of terminals 1 and 2 (UE1 and 2) where ACK / NACK or SR is multiplexed.

[0137] Specifically, in Figures 12A and 12B, the mapping for terminal 1 is the same as the mapping shown in Figure 11A.

[0138] On the other hand, Figure 12A shows a cyclic shift pattern for terminal 2 shown in Figure 11A, with ACK with SR, ACK without SR, NACK with SR, and NACK without SR, plus an offset of 3. Figure 12B also shows a cyclic shift pattern for terminal 2 shown in Figure 11A, with ACK with SR, ACK without SR, NACK with SR, and NACK without SR, plus an offset of 6 (i.e., the cyclic shift pattern shown in Figure 12A plus an offset of 3).

[0139] This increases the likelihood that high-probability ACKs will be mapped to cyclic shifts adjacent to those mapped to low-probability NACKs. As a result, even when terminal 1 (UE1) sends a NACK, the base station is less likely to mistakenly receive the NACK sent from terminal 1 as an ACK due to a high-probability ACK sent by terminal 2.

[0140] Next, we will describe another mapping method that takes into account the differences in the occurrence probabilities of ACK, NACK, and SR. Specifically, we will apply the hopping of the cyclic shift pattern described in Embodiment 2 above, taking into account the differences in the occurrence probabilities of ACK, NACK, and SR.

[0141] For example, as shown in Figure 13 or Figure 14, the region containing the cyclic shift assigned to ACK (ACK region) and the region containing the cyclic shift assigned to NACK (NACK region) may be separated.

[0142] In this case, hopping of cyclic shift patterns is performed for both ACK and NACK. That is, the cyclic shifts that can be taken for ACK are cyclic shifts within the ACK area, and the cyclic shifts that can be taken for NACK are cyclic shifts within the NACK area.

[0143] Furthermore, as shown in Figure 13 or Figure 14, in the 12 cyclic shifts (0 to 11) that can be assigned within 1PRB, the proportion of the ACK area may be set higher compared to the proportion of the NACK area.

[0144] By increasing the proportion of cyclic shifts that can be assigned to ACKs within a single PRB, the number of cyclic shift patterns available for ACKs increases. This reduces the probability that ACKs with a high probability of being transmitted are sent with the same cyclic shift pattern across multiple terminals 200.

[0145] On the other hand, if the proportion of cyclic shifts that can be assigned to NACK within a single PRB is reduced, the number of cyclic shift patterns for NACK decreases. However, since the probability of NACK transmission is low, the probability of multiple terminals 200 simultaneously transmitting NACKs with the same cyclic shift pattern is low, and the probability of PUCCHs containing NACKs colliding is low, so the impact on system performance is small.

[0146] Thus, according to this embodiment, by setting the mapping of the PUCCH sequence (cyclic shift) according to the probability of ACK and NACK transmission using PUCCH, interference can be randomized in the transmission of Short PUCCH, and the impact of interference can be reduced, thereby improving system performance.

[0147] (Embodiment 5) In this embodiment, we will describe the case where the hopping of the cyclic shift pattern described in Embodiment 2 is applied, taking into account the differences in the target error rates of ACK, NACK, and SR.

[0148] Since the base station and terminal according to this embodiment share the same basic configuration as the base station 100 and terminal 200 according to Embodiment 1, they will be explained with reference to Figures 3 and 4.

[0149] For example, as shown in Figures 15 and 16, the region containing the cyclic shift assigned to ACK (ACK region) and the region containing the cyclic shift assigned to NACK (NACK region) are separated.

[0150] In this case, hopping of cyclic shift patterns is performed for both ACK and NACK. That is, the cyclic shifts that can be taken for ACK are cyclic shifts within the ACK area, and the cyclic shifts that can be taken for NACK are cyclic shifts within the NACK area.

[0151] Furthermore, as shown in Figures 15 and 16, in the 12 cyclic shifts (0 to 11) that can be assigned within 1PRB, the proportion of the NACK area is set higher compared to the proportion of the ACK area.

[0152] By increasing the proportion of cyclic shifts that can be assigned to NACK within a single PRB, the number of cyclic shift patterns available for NACK increases. This reduces the probability that NACKs with high target error rate requirements are transmitted with the same cyclic shift pattern across multiple terminals 200.

[0153] On the other hand, if the proportion of cyclic shifts that can be assigned to ACKs within a single PRB is reduced, the number of cyclic shift patterns available for ACKs decreases. However, even if ACKs with low target error rate requirements are transmitted with the same cyclic shift pattern by multiple terminals 200, and collisions occur between PUCCHs containing ACKs, the impact on the system is less compared to NACKs.

[0154] Thus, according to this embodiment, by setting the mapping of the PUCCH sequence (cyclic shift) according to the target error rate (transmission reliability) of ACK and NACK transmitted using PUCCH, interference can be randomized in the transmission of Short PUCCH, and the impact of interference can be reduced, thereby improving system performance.

[0155] The embodiments of this disclosure have been described above.

[0156] [Other embodiments] (1) In the above embodiment, SR and HARQ-ACK were described as the uplink control information (UCI) transmitted by terminal 200. However, the uplink control information transmitted by terminal 200 is not limited to SR and HARQ-ACK, and may be other uplink control information (for example, CSI).

[0157] (2) In the above embodiment, the identification ID used for PUCCH is (n ID The explanation described an example where the identification information (subcell-specific information) used in addition to the cell ID when calculating the identification ID for PUCCH includes the subcell ID, beam ID, and information related to random access. However, the identification information used in addition to the cell ID when calculating the identification ID for PUCCH is not limited to this information, and other information that can take different values ​​for each TRP may also be used. Furthermore, the identification information used in addition to the cell ID when calculating the identification ID for PUCCH may also be the information set for terminal 200 at the initial access (random access) stage.

[0158] (3) In the above embodiments, Short PUCCH has been described, but one aspect of the present disclosure described above may be applied when 1 to 2 bits of UCI are transmitted in Long PUCCH.

[0159] (4) The disclosure can be implemented as software, hardware, or software in conjunction with hardware. Each functional block used in the description of the above embodiments may be implemented in part or in whole as an integrated circuit (LSI), and each process described in the above embodiments may be controlled in part or in whole by a single LSI or a combination of LSIs. An LSI may consist of individual chips, or it may consist of a single chip that includes some or all of the functional blocks. An LSI may have data inputs and outputs. Depending on the degree of integration, LSIs may be called ICs, system LSIs, super LSIs, or ultra LSIs. The method of integrated circuit implementation is not limited to LSIs, and may be implemented with dedicated circuits, general-purpose processors, or dedicated processors. Alternatively, an FPGA (Field Programmable Gate Array) that can be programmed after LSI manufacturing, or a reconfigurable processor that can reconfigure the connections and settings of circuit cells inside the LSI may be used. The disclosure may be implemented as digital processing or analog processing. Furthermore, if advancements in semiconductor technology or derivative technologies lead to the emergence of integrated circuit technologies that replace LSIs, then naturally, these technologies can be used to integrate functional blocks. The application of biotechnology, for example, is a possibility.

[0160] The terminal of this disclosure comprises a circuit that determines a sequence to be used for an uplink control channel in accordance with uplink control information, and a transmitter that transmits the uplink control information using the sequence, wherein the sequence is determined using cell identification information that identifies the cell to which the terminal belongs, and subcell-specific information relating to at least one subcell contained in the cell.

[0161] In the terminal of this disclosure, the subcell-specific information includes at least one of the following: information identifying the subcell to which the terminal is connected; information identifying the beam used by the terminal for communication; and information indicating the random access resource used by the terminal for communication.

[0162] In the terminal of this disclosure, the subcell-specific information is used to calculate the initial value of a pseudo-random sequence used for hopping between sequence numbers of the sequence.

[0163] In the terminal of this disclosure, the subcell-specific information is used to calculate the initial value of a pseudo-random sequence used for hopping the cyclic shift pattern used in the sequence.

[0164] In the terminals of this disclosure, the cyclic shift pattern differs for each terminal.

[0165] The terminal of this disclosure comprises a circuit that determines a sequence to be used for an uplink control channel in accordance with uplink control information, and a transmitter that transmits the uplink control information using the sequence, wherein the maximum number of sequences that can be allocated within one resource block of the uplink control channel is limited.

[0166] In the terminal of this disclosure, the one resource block consists of 12 subcarriers, and the maximum number is 8.

[0167] In the terminal of this disclosure, one resource block consists of 12 subcarriers, and the maximum number is 4 when the uplink control information is 1 bit, and 8 when the uplink control information is 2 bits.

[0168] The terminal of this disclosure comprises a circuit that determines a sequence to be used for an uplink control channel in accordance with uplink control information, and a transmitter that transmits the uplink control information using the sequence, wherein the uplink control information includes at least ACK and NACK, and the cyclic shift used for the sequence is separated into a first region including a cyclic shift assigned to the ACK and a second region including a cyclic shift assigned to the NACK.

[0169] In the terminal of this disclosure, the number of cyclic shifts included in the first region is greater than the number of cyclic shifts included in the second region.

[0170] In the terminal of this disclosure, the number of cyclic shifts included in the second region is greater than the number of cyclic shifts included in the first region.

[0171] In the terminal of this disclosure, hopping of cyclic shift patterns for the ACK is performed using cyclic shifts included in the first region, and hopping of cyclic shift patterns for the NACK is performed using cyclic shifts included in the second region.

[0172] The communication method of this disclosure determines a sequence to be used for the uplink control channel in accordance with uplink control information, transmits the uplink control information using the sequence, and determines the sequence using cell identification information that identifies the cell to which the terminal belongs, and subcell-specific information relating to at least one subcell contained in the cell.

[0173] The communication method of this disclosure determines a sequence to be used for the uplink control channel in accordance with uplink control information, transmits the uplink control information using the sequence, and limits the maximum number of sequences that can be allocated within one resource block of the uplink control channel.

[0174] The communication method of this disclosure determines a sequence to be used for an uplink control channel in accordance with uplink control information, transmits the uplink control information using the sequence, the uplink control information includes at least ACK and NACK, and the cyclic shift used for the sequence is separated into a first region including a cyclic shift assigned to the ACK and a second region including a cyclic shift assigned to the NACK. [Industrial applicability]

[0175] One aspect of this disclosure is useful for mobile communication systems. [Explanation of Symbols]

[0176] 100 base stations 101,209 Control Unit 102 Data Generation Unit 103,107,110 Encoding section 104 Retransmission Control Unit 105, 108, 111 Modulation section 106 Higher-level control signal generation unit 109 Downlink Control Signal Generation Unit 112,212 Signal assignment section 113,213 IFFT section 114,214 Transmitter 115,201 antennas 116,202 Receiving Unit 117,203 FFT section 118,204 Extraction part 119 SR detection unit 120 PUCCH Demodulation / Decoding Unit 121 Judgment section 200 terminals 205 Downlink Control Signal Demodulation Unit 206 Higher-level control signal demodulation unit 207 Downstream data signal demodulation section 208 Error detection unit 210 SR generation section 211 HARQ-ACK generation section

Claims

1. A transmitter that sends information about PUCCH resources to a terminal, A receiver that receives the uplink control information transmitted from the terminals during the initial access phase, using a cyclic shift determined based on terminal-specific information set during the initial access phase, from among multiple cyclic shifts assignable to two terminals, limited to a portion of the 12 cyclic shift sequences, based on information about the PUCCH resource, according to the uplink control information. Equipped with, Base station.

2. The number of assignable cyclic shifts is less than 12. The base station according to claim 1.

3. The aforementioned uplink control information is 1 bit. The base station according to claim 1 or 2.

4. The aforementioned uplink control information is transmitted in a short PUCCH of one or two symbols. A base station according to any one of claims 1 to 3.

5. The aforementioned uplink control information includes at least one of ACK and NACK, and the cyclic shift is determined according to at least one of ACK and NACK. A base station according to any one of claims 1 to 4.

6. Each of the above assignable cyclic shifts is associated with at least one of ACK and NACK, Of the multiple assignable cyclic shifts, the ACK is associated with one of two adjacent cyclic shifts, and the NACK is associated with the other. A base station according to any one of claims 1 to 5.

7. Of the multiple assignable rotational shifts, the rotational shift assigned to one terminal is obtained by adding a predetermined offset to the rotational shifts assigned to other terminals. A base station according to any one of claims 1 to 6.

8. The rotation shift is determined based on the information relating to the PUCCH resource, A base station according to any one of claims 1 to 7.

9. A base station transmits information regarding PUCCH resources to a terminal, The process involves the base station receiving the uplink control information transmitted from the terminals during the initial access phase, using a cyclic shift determined based on terminal-specific information set during the initial access phase, in accordance with the uplink control information, from among multiple cyclic shifts assignable to two terminals, limited to a portion of the 12 cyclic shift sequences, based on information about the PUCCH resource; Equipped with, Communication method.

10. A base station transmits information regarding PUCCH resources to a terminal, The process involves the base station receiving the uplink control information transmitted from the terminals during the initial access phase, using a cyclic shift determined based on terminal-specific information set during the initial access phase, in accordance with the uplink control information, from among multiple cyclic shifts assignable to two terminals, limited to a portion of the 12 cyclic shift sequences, based on information about the PUCCH resource; control Integrated circuit.

Citation Information

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