WO2020184209A1 - Dispositif terminal, dispositif station de base, et procédé de communication - Google Patents

Dispositif terminal, dispositif station de base, et procédé de communication Download PDF

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Publication number
WO2020184209A1
WO2020184209A1 PCT/JP2020/008212 JP2020008212W WO2020184209A1 WO 2020184209 A1 WO2020184209 A1 WO 2020184209A1 JP 2020008212 W JP2020008212 W JP 2020008212W WO 2020184209 A1 WO2020184209 A1 WO 2020184209A1
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WIPO (PCT)
Prior art keywords
harq
ack
ack codebook
transmitted
terminal device
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PCT/JP2020/008212
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English (en)
Japanese (ja)
Inventor
中嶋 大一郎
友樹 吉村
会発 林
智造 野上
渉 大内
翔一 鈴木
李 泰雨
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シャープ株式会社
鴻穎創新有限公司
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Publication of WO2020184209A1 publication Critical patent/WO2020184209A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W16/00Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/14Spectrum sharing arrangements between different networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W28/00Network traffic management; Network resource management
    • H04W28/02Traffic management, e.g. flow control or congestion control
    • H04W28/04Error control
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation

Definitions

  • the present invention relates to a terminal device, a base station device, and a communication method.
  • the present application claims priority based on Japanese Patent Application No. 2019-045694 filed in Japan on March 13, 2019, the contents of which are incorporated herein by reference.
  • LTE Long Term Evolution
  • the base station device is also called an eNodeB (evolved NodeB)
  • the terminal device is also called a UE (User Equipment).
  • LTE is a cellular communication system in which a plurality of areas covered by a base station apparatus are arranged in a cell shape.
  • a single base station device may manage multiple serving cells.
  • next-generation standard (NR: New Radio) will be examined in order to propose to IMT (International Mobile Telecommunication) -2020, which is a standard for next-generation mobile communication systems established by the International Telecommunication Union (ITU).
  • ITU International Telecommunication Union
  • Non-Patent Document 1 a single technical framework, NR is assumed to meet three scenarios: eMBB (enhanced Mobile Broadband), mMTC (massive Machine Type Communication), and URLLC (Ultra Reliable and Low Latency Communication). There is.
  • Non-Patent Document 2 the application of NR in the license-free frequency band (Unlicensed Spectrum) is being studied. It is being studied to apply NR supporting a wide band of 100 MHz to a carrier in an unlicensed frequency band to realize a data rate of several Gbps.
  • One aspect of the present invention provides a terminal device for efficient communication, a communication method used for the terminal device, a base station device for efficient communication, and a communication method used for the base station device.
  • the first aspect of the present invention is a terminal device including a processor and a memory for storing a computer program code, and when the computer program code is executed by the processor, the HARQ- Accumulate the retransmission of the HARQ-ACK codebook until the control information indicating that the ACK codebook is detected is received, the HARQ-ACK information of the newly transmitted HARQ-ACK codebook, and the HARQ of the retransmission of the HARQ-ACK codebook. -Select one or more stored retransmissions of the HARQ-ACK codebook so that the sum of the ACK information does not exceed the first value, newly transmit the HARQ-ACK codebook, and one or more selected.
  • the operation including the transmission of the HARQ-ACK codebook of the retransmission of the above with one PUCCH is executed.
  • the newly transmitted HARQ-ACK codebook and the remaining unselected HARQ-ACK codebook to be resent are Is transmitted by one PUCCH, and the operation including the transmission is performed.
  • a second aspect of the present invention is a base station apparatus including a processor and a memory for storing a computer program code, and when the computer program code is executed by the processor, an HARQ-ACK codebook Is transmitted, control information indicating that the transmitted HARQ-ACK codebook is not detected is transmitted, the newly transmitted HARQ-ACK codebook HARQ-ACK information, and the retransmission HARQ-ACK codebook HARQ- Performs an operation including receiving the HARQ-ACK codebook of one or more retransmissions selected so that the sum with the ACK information does not exceed the first value.
  • a third aspect of the present invention is the communication method used for the terminal device, in which the HARQ-ACK codebook is retransmitted until the control information indicating that the transmitted HARQ-ACK codebook is detected is received.
  • the sum of the HARQ-ACK information of the newly transmitted HARQ-ACK codebook and the HARQ-ACK information of the retransmission of the HARQ-ACK codebook of the retransmission does not exceed the first value.
  • the newly transmitted HARQ-ACK codebook and the remaining unselected retransmitted HARQ-ACK codebook Includes a step of transmitting in one PUCCH.
  • the fourth aspect of the present invention is the communication method used for the base station apparatus, and the control information indicating that the transmitted HARQ-ACK codebook is not detected until the HARQ-ACK codebook is detected. And one or more selected so that the sum of the HARQ-ACK information of the newly transmitted HARQ-ACK codebook and the HARQ-ACK information of the retransmission HARQ-ACK codebook does not exceed the first value.
  • the step of receiving the HARQ-ACK codebook of the retransmission of the above is included.
  • the step of receiving the HARQ-ACK codebook of the remaining unselected retransmissions is included.
  • the terminal device can efficiently communicate.
  • the base station device can efficiently perform communication.
  • This is an example showing the relationship between the N slot symb , the setting ⁇ of the subcarrier interval, the slot setting, and the CP setting according to one aspect of the present embodiment.
  • It is the schematic which shows an example of the resource grid in the subframe which concerns on one aspect of this Embodiment.
  • It is a schematic block diagram which shows the structure of the terminal apparatus 1 which concerns on one aspect of this Embodiment.
  • It is a figure explaining an example of retransmission of HARQ-ACK codebook in embodiment of this invention.
  • a and / or B may be a term including "A”, “B”, or "A and B”.
  • the parameter or information may include at least a parameter or information indicating the one or more values.
  • the upper layer parameter may be a single upper layer parameter.
  • the upper layer parameter may be an information element (IE: Information Element) including a plurality of parameters.
  • FIG. 1 is a conceptual diagram of a wireless communication system according to one aspect of the present embodiment.
  • the wireless communication system includes terminal devices 1A to 1C and a base station device 3 (gNB).
  • the terminal devices 1A to 1C are also referred to as a terminal device 1 (UE).
  • UE terminal device 1
  • the base station device 3 may be configured to include one or both of the MCG (Master Cell Group) and the SCG (Secondary Cell Group).
  • An MCG is a group of serving cells composed of at least PCell (Primary Cell).
  • An SCG is a group of serving cells composed of at least PSCell (Primary Secondary Cell).
  • the PCell may be a serving cell given based on the initial connection.
  • the MCG may be configured to include one or more SCells (Secondary Cells).
  • the SCG may be configured to include one or more SCells.
  • a serving cell identifier is a short identifier for identifying a serving cell. The serving cell identifier may be given by an upper layer parameter.
  • At least OFDM Orthogonal Frequency Division Multiplex
  • the OFDM symbol is a unit of the OFDM time domain.
  • the OFDM symbol comprises at least one or more subcarriers.
  • the OFDM symbol may be converted into a time-continuous signal in the baseband signal generation.
  • the subcarrier spacing configuration ⁇ may be set to any of 0, 1, 2, 3, 4, and / or 5.
  • the subcarrier spacing setting ⁇ may be given by the upper layer parameters.
  • a time unit (time unit) T c is used to express the length of the time domain.
  • ⁇ f max may be the maximum value of the subcarrier spacing supported in the wireless communication system according to one aspect of the present embodiment.
  • ⁇ f ref may be 15 kHz.
  • N f and ref may be 2048.
  • the constant ⁇ may be a value indicating the relationship between the reference subcarrier interval and T c .
  • the constant ⁇ may be used for the length of the subframe.
  • the number of slots contained in the subframe may be given, at least based on the constant ⁇ .
  • ⁇ f ref is the reference subcarrier interval
  • N f and ref are values corresponding to the reference subcarrier interval.
  • the transmission on the downlink and / or the transmission on the uplink is composed of a frame of 10 ms.
  • the frame is composed of 10 subframes.
  • the length of the subframe is 1 ms.
  • the length of the frame may be given regardless of the subcarrier spacing ⁇ f. That is, the frame setting may be given regardless of ⁇ .
  • the length of the subframe may be given regardless of the subcarrier spacing ⁇ f. That is, the subframe setting may be given regardless of ⁇ .
  • the number and index of slots contained in a subframe may be given for a given subcarrier spacing setting ⁇ .
  • the first slot number n ⁇ s may be given in ascending order in the range of 0 to N subframe, ⁇ slot -1 within the subframe .
  • the number and index of slots contained in the frame may be given for the setting ⁇ of the subcarrier spacing.
  • the second slot numbers n ⁇ s, f may be given in ascending order in the range of 0 to N frame, ⁇ slot -1 in the frame .
  • One slot may contain consecutive N slot symbs of OFDM symbols.
  • the N slot symb may be given at least based on some or all of the slot configuration and / or the CP (Cyclo Prefix) setting.
  • the slot setting may be given by at least the upper layer parameter tdd-UL-DL-ConfigurationCommon.
  • CP settings may be given at least based on upper layer parameters.
  • CP settings may be given at least based on dedicated RRC signaling.
  • the first slot number and the second slot number are also referred to as slot numbers (slot indexes).
  • FIG. 2 is an example showing the relationship between the N slot symb , the setting ⁇ of the subcarrier interval, the slot setting, and the CP setting according to one aspect of the present embodiment.
  • the subcarrier interval setting ⁇ 2
  • the CP setting is normal CP (normal cyclic prefix)
  • the subcarrier interval setting ⁇ 2
  • the CP setting is extended CP (extended cyclic prefix)
  • N slot symb 12
  • the N slot symb at slot setting 0 may correspond to twice the N slot symb at slot setting 1.
  • An antenna port is defined by the fact that the channel through which a symbol is transmitted in one antenna port can be estimated from the channel through which another symbol is transmitted in the same antenna port. If the large scale property of the channel on which the symbol is transmitted in one antenna port can be estimated from the channel in which the symbol is transmitted in the other antenna port, the two antenna ports are QCL (Quantum Co-Located). ) Is called.
  • Large-scale characteristics may include at least the long-interval characteristics of the channel. Large-scale characteristics are delay spread (delay spread), Doppler spread (Doppler spread), Doppler shift (Doppler shift), average gain (avatage gain), average delay (avatage gain), and beam parameters (spray). It may include at least some or all.
  • the fact that the first antenna port and the second antenna port are QCL with respect to the beam parameters means that the receiving beam assumed by the receiving side with respect to the first antenna port and the receiving beam assumed by the receiving side with respect to the second antenna port. May be the same.
  • the fact that the first antenna port and the second antenna port are QCL with respect to the beam parameters means that the transmitting beam assumed by the receiving side with respect to the first antenna port and the transmitting beam assumed by the receiving side with respect to the second antenna port. May be the same.
  • the terminal device 1 assumes that the two antenna ports are QCLs when the large-scale characteristics of the channel through which the symbol is transmitted in one antenna port can be estimated from the channel in which the symbol is transmitted in the other antenna port. May be done.
  • the fact that the two antenna ports are QCLs may mean that the two antenna ports are QCLs.
  • N ⁇ RB, x may indicate the number of resource blocks given for setting the subcarrier spacing ⁇ for carrier x.
  • N ⁇ RB, x may be the maximum number of resource blocks given for setting the subcarrier spacing ⁇ for carrier x.
  • the carrier x indicates either a downlink carrier or an uplink carrier. That is, x is "DL" or "UL".
  • N ⁇ RB is a name that includes N ⁇ RB, DL , and / or N ⁇ RB, UL .
  • NRB sc may indicate the number of subcarriers contained in one resource block.
  • At least one resource grid may be provided for each antenna port p and / or for each subcarrier spacing setting ⁇ and / or for each transmission direction setting.
  • the transmission direction includes at least a downlink (DL: DownLink) and an uplink (UL: UpLink).
  • DL: DownLink downlink
  • UL: UpLink uplink
  • a set of parameters including at least a part or all of the antenna port p, the subcarrier interval setting ⁇ , and the transmission direction setting is also referred to as a first radio parameter set. That is, one resource grid may be given for each first set of radio parameters.
  • the carrier included in the serving cell is referred to as a downlink carrier (or downlink component carrier).
  • the carrier included in the serving cell is referred to as an uplink carrier (uplink component carrier).
  • the downlink component carrier and the uplink component carrier are collectively referred to as a component carrier (or carrier).
  • Each element in the resource grid given for each first set of radio parameters is referred to as a resource element.
  • the resource element is specified by the frequency domain index k sc and the time domain index l sym .
  • resource elements are identified by a frequency domain index k sc and a time domain index l sym .
  • the resource element specified by the frequency domain index k sc and the time domain index l sym is also referred to as a resource element (k sc , l sym ).
  • the frequency domain index k sc indicates any value from 0 to N ⁇ RB N RB sc -1.
  • N ⁇ RB may be the number of resource blocks given for setting the subcarrier spacing ⁇ .
  • the frequency domain index k sc may correspond to the subcarrier index k sc .
  • the time domain index l sym may correspond to the OFDM symbol index l sym .
  • FIG. 3 is a schematic view showing an example of a resource grid in the subframe according to one aspect of the present embodiment.
  • the horizontal axis is the time domain index l sym
  • the vertical axis is the frequency domain index k sc .
  • the frequency domain of the resource grid contains N ⁇ RB N RB sc subcarriers.
  • the time domain of the resource grid may contain 14.2 ⁇ OFDM symbols.
  • One resource block is configured to include N RB sc subcarriers.
  • the time domain of the resource block may correspond to a 1 OFDM symbol.
  • the time domain of the resource block may correspond to 14 OFDM symbols.
  • the time domain of the resource block may correspond to one or more slots.
  • the time domain of the resource block may correspond to one subframe.
  • the terminal device 1 may be instructed to perform transmission / reception using only a subset of the resource grid.
  • a subset of the resource grid also referred to as the BWP, may be given based on at least some or all of the upper layer parameters and / or DCI.
  • BWP is also referred to as a band part (BP: Bandwidth Part). That is, the terminal device 1 may not be instructed to perform transmission / reception using all sets of resource grids. That is, the terminal device 1 may be instructed to perform transmission / reception using a part of the frequency resources in the resource grid.
  • One BWP may be composed of a plurality of resource blocks in the frequency domain.
  • One BWP may be composed of a plurality of continuous resource blocks in the frequency domain.
  • the BWP set for the downlink carrier is also referred to as the downlink BWP.
  • the BWP set for the uplink carrier is also referred to as the uplink BWP.
  • One or more downlink BWPs may be set for the terminal device 1.
  • the terminal device 1 may attempt to receive a physical channel (eg, PDCCH, PDSCH, SS / PBCH, etc.) on one downlink BWP of one or more downlink BWPs.
  • the one downlink BWP is also referred to as an activated downlink BWP.
  • One or more uplink BWPs may be set for the terminal device 1.
  • the terminal device 1 may attempt to transmit a physical channel (eg, PUCCH, PUSCH, PRACH, etc.) in one of the uplink BWPs of one or more uplinks BWP.
  • the one uplink BWP is also referred to as an activated uplink BWP.
  • a set of downlink BWP may be set for each of the serving cells.
  • a set of downlink BWPs may include one or more downlink BWPs.
  • a set of uplink BWPs may be set for each of the serving cells.
  • a set of uplink BWPs may include one or more uplink BWPs.
  • the upper layer parameter is a parameter included in the signal of the upper layer.
  • the signal of the upper layer may be RRC (Radio Access Control) signaling or MAC CE (Medium Access Control Control Element).
  • the signal of the upper layer may be a signal of the RRC layer or a signal of the MAC layer.
  • the signal of the upper layer may be common RRC signaling (comon RRC signaling).
  • the common RRC signaling may include at least some or all of the following features C1 to C3. Feature C1) Mapped to BCCH logical channel or CCCH logical channel Feature C2) Mapped to feature C3) PBCH containing at least the radioRelocationConfigCommon information element
  • the radioResourceConfigCommon information element may include information indicating a setting commonly used in the serving cell.
  • the settings commonly used in the serving cell may include at least the PRACH setting.
  • the PRACH setting may indicate at least one or more random access preamble indexes.
  • the PRACH setting may indicate at least the PRACH time / frequency resources.
  • the signal of the upper layer may be dedicated RRC signaling (dedicated RRC signaling).
  • Dedicated RRC signaling may include at least some or all of the following features D1 to D2.
  • Feature D1) Features mapped to DCCH logical channels
  • D2) Includes at least a radioRelocationControlDedicated information element
  • the radioResourceConfigDedicated information element may include at least information indicating a setting unique to the terminal device 1.
  • the radioResourceConfigDedicated information element may include at least information indicating the setting of the BWP.
  • the BWP settings may at least indicate the frequency resources of the BWP.
  • the MIB, the first system information, and the second system information may be included in the common RRC signaling.
  • upper layer messages that are mapped to the DCCH logical channel and that include at least the radioResourceConfigCommon may be included in the common RRC signaling.
  • the upper layer message that is mapped to the DCCH logical channel and does not include the radioResourceConfigCommon information element may be included in the dedicated RRC signaling.
  • an upper layer message that is mapped to a DCCH logical channel and contains at least a radioRelocationConfigdicated information element may be included in the dedicated RRC signaling.
  • the first system information may at least indicate the time index of the SS (Synchronization Signal) block.
  • the SS block (SS block) is also referred to as an SS / PBCH block (SS / PBCH block).
  • the SS / PBCH block is also referred to as SS / PBCH.
  • the first system information may include at least information related to the PRACH resource.
  • the first system information may include at least information related to the initial connection settings.
  • the second system information may be system information other than the first system information.
  • the radioResourceControlDedicated information element may include at least information related to the PRACH resource.
  • the radioResourceConfigDedicated information element may include at least information related to the initial connection settings.
  • the uplink physical channel may correspond to a set of resource elements that carry information that occurs in the upper layers.
  • the uplink physical channel is a physical channel used in the uplink carrier. In the wireless communication system according to one aspect of the present embodiment, at least some or all of the following uplink physical channels are used.
  • -PUCCH Physical Uplink Control Channel
  • PUSCH Physical Uplink Shared Channel
  • PRACH Physical Random Access Channel
  • Uplink control information may be used to transmit uplink control information (UCI: Uplink Control Information).
  • Uplink control information includes channel state information (CSI: Channel State Information), scheduling request (SR: Scheduling Request), transport block (TB: Transport block, MAC PDU: Medium Access Control, Digital Protocol Data Unit).
  • CSI Channel State Information
  • SR Scheduling Request
  • transport block TB: Transport block
  • MAC PDU Medium Access Control
  • PDSCH Physical Downlink Shared Channel.
  • the HARQ-ACK may include at least the HARQ-ACK bit (HARQ-ACK information) corresponding to one transport block.
  • the HARQ-ACK bit may indicate ACK (acknowledgement) or NACK (negative-acknowledgement) corresponding to one or more transport blocks.
  • the HARQ-ACK may include at least a HARQ-ACK codebook containing one or more HARQ-ACK bits.
  • the fact that the HARQ-ACK bit corresponds to one or more transport blocks may mean that the HARQ-ACK bit corresponds to a PDSCH containing the one or more transport blocks.
  • the HARQ-ACK bit may indicate ACK or NACK corresponding to one CBG (Code Block Group) included in the transport block.
  • CBG Code Block Group
  • a scheduling request may be at least used to request PUSCH resources for initial transmission.
  • the scheduling request bit may be used to indicate either a positive SR (positive SR) or a negative SR (negative SR).
  • the fact that the scheduling request bit indicates a positive SR is also referred to as "a positive SR is transmitted”.
  • a positive SR may indicate that the terminal device 1 requires PUSCH resources for initial transmission.
  • a positive SR may indicate that the scheduling request is Triggered by the upper layer.
  • a positive SR may be sent when the upper layer instructs it to send a scheduling request.
  • the fact that the scheduling request bit indicates a negative SR is also referred to as "a negative SR is transmitted”.
  • a negative SR may indicate that the terminal device 1 does not require PUSCH resources for initial transmission.
  • a negative SR may indicate that the scheduling request is not triggered by the upper layer. Negative SR may be transmitted if the upper layer does not instruct it to transmit the scheduling request.
  • the channel state information may include at least a part or all of a channel quality index (CQI: Channel Quality Indicator), a precoder matrix index (PMI: Precoder Matrix Indicator), and a rank index (RI: Rank Indicator).
  • CQI is an index related to channel quality (for example, propagation intensity)
  • PMI is an index indicating a precoder.
  • RI is an index that indicates the transmission rank (or the number of transmission layers).
  • PUCCH supports PUCCH format (PUCCH format 0 to PUCCH format 4).
  • the PUCCH format may be mapped to the PUCCH and transmitted.
  • the PUCCH format may be transmitted in PUCCH.
  • the transmission of the PUCCH format may mean that the PUCCH is transmitted.
  • PUSCH is at least used to transmit transport blocks (TB, MAC PDU, UL-SCH, PUSCH).
  • the PUSCH may be used to transmit at least some or all of the transport block, HARQ-ACK, channel state information, and scheduling requests.
  • PUSCH is at least used to send the random access message 3.
  • PRACH is at least used to send a random access preamble (random access message 1).
  • PRACH is part or all of the initial connection establishment procedure, handover procedure, connection re-station procedure, synchronization (timing adjustment) for PUSCH transmission, and resource request for PUSCH. At least may be used to indicate.
  • the random access preamble may be used to notify the base station device 3 of an index (random access preamble index) given by the upper layer of the terminal device 1.
  • the following uplink physical signals are used in the uplink wireless communication.
  • the uplink physical signal does not have to be used to transmit the information output from the upper layer, but it is used by the physical layer.
  • -UL DMRS UpLink Demodulation Reference Signal
  • SRS Sounding Reference Signal
  • -UL PTRS UpLink Phase Tracking Reference Signal
  • UL DMRS is associated with PUSCH and / or PUCCH transmission.
  • UL DMRS is multiplexed with PUSCH or PUCCH.
  • the base station apparatus 3 may use UL DMRS to correct the propagation path of PUSCH or PUCCH.
  • transmitting both PUSCH and UL DMRS related to the PUSCH is referred to simply as transmitting the PUSCH.
  • transmitting PUCCH and UL DMRS related to the PUCCH together is referred to simply as transmitting PUCCH.
  • UL DMRS related to PUSCH is also referred to as UL DMRS for PUSCH.
  • UL DMRS related to PUCCH is also referred to as UL DMRS for PUCCH.
  • the base station apparatus 3 may use SRS for measuring the channel state.
  • the SRS may be transmitted at the end of the subframe in the uplink slot, or at a predetermined number of OFDM symbols from the end.
  • the UL PTRS may be at least a reference signal used for phase tracking.
  • the UL PTRS may be associated with a UL DMRS group that includes at least the antenna ports used for one or more UL DMRSs.
  • the association between the UL PTRS and the UL DMRS group may be that the antenna port of the UL PTRS and a part or all of the antenna ports included in the UL DMRS group are at least QCL.
  • the UL DMRS group may be identified at least based on the antenna port with the smallest index in the UL DMRS included in the UL DMRS group.
  • UL PTRS may be mapped to the antenna port with the smallest index in one or more antenna ports to which one codeword is mapped.
  • UL PTRS may be mapped to the first layer if one codeword is at least mapped to the first layer and the second layer. UL PTRS does not have to be mapped to the second layer.
  • the index of the antenna port to which the UL PTRS is mapped may be given at least based on the downlink control information.
  • the following downlink physical channels are used in the downlink wireless communication from the base station device 3 to the terminal device 1.
  • the downlink physical channel is used by the physical layer to transmit the information output from the upper layer.
  • ⁇ PBCH Physical Broadcast Channel
  • -PDCCH Physical Downlink Control Channel
  • PDSCH Physical Downlink Sharp Channel
  • PBCH is at least used to transmit a master information block (MIB: Master Information Block, BCH, Broadcast Channel).
  • the PBCH may be transmitted based on a predetermined transmission interval.
  • PBCH may be transmitted at intervals of 80 ms.
  • PBCH may be transmitted at intervals of 160 ms.
  • the content of the information contained in the PBCH may be updated every 80 ms. Some or all of the information contained in the PBCH may be updated every 160 ms.
  • the PBCH may be composed of 288 subcarriers.
  • the PBCH may be configured to include 2, 3, or 4 OFDM symbols.
  • the MIB may include information related to the identifier (index) of the synchronization signal.
  • the MIB may include information indicating at least a portion of the slot number, subframe number, and / or radio frame number through which the PBCH is transmitted.
  • the PDCCH is at least used for transmitting downlink control information (DCI: Downlink Control Information).
  • the PDCCH may be transmitted including at least downlink control information.
  • the PDCCH may include downlink control information.
  • the downlink control information is also referred to as DCI format.
  • the downlink control information may include at least either a downlink grant or an uplink grant.
  • the DCI format used for PDSCH scheduling is also referred to as the downlink DCI format.
  • the DCI format used for PUSCH scheduling is also referred to as the uplink DCI format.
  • Downlink grants are also referred to as downlink assignments or downlink assignments.
  • the uplink DCI format includes at least one or both of DCI format 0_0 and DCI format 0_1.
  • DCI format 0_0 is configured to include at least part or all of 1A to 1F.
  • First CSI request field First CSI request field (First CSI request field)
  • the DCI format specific field may be at least used to indicate whether the DCI format including the DCI format specific field corresponds to one or more DCI formats.
  • the one or more DCI formats may be given at least on the basis of DCI format 1_1, DCI format 1-11, DCI format 0_0, and / or part or all of DCI format 0_1.
  • the frequency domain resource allocation field may at least be used to indicate the frequency resource allocation for the PUSCH scheduled by the DCI format that includes the frequency domain resource allocation field.
  • the frequency domain resource allocation field is also referred to as an FDRA (Frequency Domain Resource Allocation) field.
  • the time domain resource allocation field may at least be used to indicate the allocation of time resources for the PUSCH scheduled by the DCI format that includes the time domain resource allocation field.
  • the frequency hopping flag field may at least be used to indicate whether frequency hopping is applied to the PUSCH scheduled by the DCI format including the frequency hopping flag field.
  • the MCS field may be at least used to indicate a modulation scheme for PUSCH scheduled by the DCI format containing the MCS field and / or part or all of the target code rate.
  • the target code rate may be the target code rate for the transport block of the PUSCH.
  • the size of the transport block (TBS: Transport Block Size) may be given at least based on the target code rate.
  • the first CSI request field is at least used to direct CSI reporting.
  • the size of the first CSI request field may be a predetermined value.
  • the size of the first CSI request field may be 0, 1, may be 2, or may be 3.
  • DCI format 0-1 is configured to include at least part or all of 2A to 2G.
  • DCI format specific field 2B Frequency domain resource allocation field 2C) Time domain resource allocation field 2D) Frequency hopping flag field 2E) MCS field 2F) Second CSI request field (Second CSI request field) 2G) BWP field (BWP field)
  • the BWP field may be used to indicate the uplink BWP to which the PUSCH scheduled in DCI format 0_1 is mapped.
  • the second CSI request field is at least used to direct CSI reporting.
  • the size of the second CSI request field may be given at least based on the upper layer parameter ReportTriggerSize.
  • the downlink DCI format includes at least one or both of DCI format 1_0 and DCI format 1_1.
  • DCI format 1_0 is configured to include at least some or all of 3A to 3H.
  • MCS field MCS field: Modulation and Coding Scene field
  • First CSI request field First CSI request field (First CSI request field) 3G) PDSCH-to-HARQ feedback timing indicator field (PDSCH-to-HARQ feedback timing indicator field) 3H) PUCCH resource indicator field (PUCCH resource indicator field)
  • the timing instruction field from PDSCH to HARQ feedback may be a field indicating timing K1.
  • the index of the slot containing the last OFDM symbol of the PDSCH is slot n
  • the index of the PUCCH containing at least HARQ-ACK corresponding to the transport block contained in the PDSCH or the slot containing the PUSCH is n + K1. May be good.
  • the index of the slot containing the last OFDM symbol of the PDSCH is slot n
  • the index of the included slot may be n + K1.
  • the PDSCH-to-HARQ feedback timing indicator field (PDSCH-to-HARQ_feedback timing indicator field) may be referred to as a HARQ instruction field.
  • the PUCCH resource instruction field may be a field indicating the index of one or more PUCCH resources included in the PUCCH resource set.
  • the DCI format 1_1 is configured to include at least part or all of 4A to 4J.
  • MCS field MCS field: Modulation and Coding Scene field
  • 4F First CSI request field (First CSI request field) 4G) PDSCH-to-HARQ feedback timing indicator field (PDSCH-to-HARQ feedback timing indicator field) 4H) PUCCH resource indicator field (PUCCH resource indicator field) 4J) BWP field (BWP field)
  • the BWP field may be used to indicate the downlink BWP to which the PDSCH scheduled in DCI format 1-11 is mapped.
  • DCI format 2_0 may be configured to include at least one or more slot format indicators (SFI: Slot Form Indicator).
  • SFI Slot Form Indicator
  • the downlink control information may include common information for Unlicense access.
  • Unlicensed access common information is control information related to access, transmission and reception in the license-free frequency band.
  • the Unlicenseed access common information may be information on a downlink subframe configuration (Subframe configuration for Unlicensed Access) (slot configuration: Slot configuration).
  • the downlink subframe configuration (slot configuration) is the position of the OFDM symbol occupied in the subframe (slot) in which the PDCCH containing the information of the downlink subframe configuration (slot configuration) is arranged, and / or the downlink. Indicates the position of the OFDM symbol occupied in the next subframe (slot) of the subframe (slot) in which the PDCCH containing the information of the subframe configuration (slot configuration) of is arranged.
  • the downlink physical channel and the downlink physical signal are transmitted and received in the occupied OFDM symbol.
  • the Unlicenseed access common information may be the information of the uplink subframe configuration (UL duration and office) (slot configuration).
  • the uplink subframe configuration (slot configuration)
  • the uplink subframe (uplink slot) starts based on the subframe (slot) in which the PDCCH containing the information of the uplink subframe configuration (slot configuration) is arranged.
  • the position of the subframe (slot) to be formed and the number of subframes (slots) of the uplink subframe (uplink slot) are shown.
  • the terminal device 1 is not required to receive the downlink physical channel and the downlink physical signal in the subframe (slot) indicated by the information of the uplink subframe configuration (slot configuration).
  • downlink control information including a downlink grant or an uplink grant is transmitted and received by PDCCH including C-RNTI (Cell-Radio Network Temporary Identifier).
  • C-RNTI Cell-Radio Network Temporary Identifier
  • Unlicense access common information is transmitted and received by PDCCH including CC-RNTI (Common Control-Radio Network Identifier, Identifier).
  • the number of resource blocks indicates the number of resource blocks in the frequency domain.
  • the downlink grant is at least used for scheduling one PDSCH in one serving cell.
  • Uplink grants are at least used for scheduling one PUSCH in one serving cell.
  • One physical channel may be mapped to one serving cell.
  • One physical channel may be mapped to one BWP set for one carrier contained in one serving cell.
  • the terminal device 1 may be set with one or a plurality of control resource sets (CORESET: Control REsource SET).
  • the terminal device 1 monitors the PDCCH in one or more control resource sets (monitor).
  • monitoring PDCCH in one or more control resource sets may include monitoring one or more PDCCHs corresponding to each of one or more control resource sets.
  • the PDCCH may include one or more sets of PDCCH candidates and / or PDCCH candidates. Monitoring the PDCCH may also include monitoring and detecting the PDCCH and / or the DCI format transmitted via the PDCCH.
  • the control resource set may indicate a time frequency domain to which one or more PDCCHs can be mapped.
  • the control resource set may be an area in which the terminal device 1 monitors the PDCCH.
  • the control resource set may be composed of continuous resources (Located resources).
  • the control resource set may be composed of discontinuous resources (discontinuous resources).
  • the unit of mapping of the control resource set may be a resource block.
  • the unit of mapping of the control resource set may be 6 resource blocks.
  • the control resource set mapping unit may be an OFDM symbol.
  • the unit of mapping of the control resource set may be 1 OFDM symbol.
  • the mapping of the control resource set to the resource block may be given at least based on the upper layer parameters.
  • the upper layer parameter may include a bitmap for a group of resource blocks (RBG: Resource Block Group).
  • the group of resource blocks may be given by six consecutive resource blocks.
  • the number of OFDM symbols that make up the control resource set may be given at least based on the upper layer parameters.
  • a certain control resource set may be a common control resource set (Common control resource set).
  • the common control resource set may be a control resource set that is commonly set for a plurality of terminal devices 1.
  • the common control resource set may be given at least based on the MIB, the first system information, the second system information, the common RRC signaling, and some or all of the cell IDs.
  • the time and / or frequency resources of the control resource set set to monitor the PDCCH used for scheduling the first system information may be given at least based on the MIB.
  • CORESET # 0 may be a control resource set at index # 0.
  • a certain control resource set may be a dedicated control resource set (Dedicated control resource set).
  • the dedicated control resource set may be a control resource set that is set to be used exclusively for the terminal device 1.
  • the dedicated control resource set may be given based on at least some or all of the dedicated RRC signaling and C-RNTI values.
  • a plurality of control resource sets may be configured in the terminal device 1, and an index (control resource set index) may be assigned to each control resource set.
  • One or more control channel elements (CCE) may be configured in the control resource set, and an index (CCE index) may be assigned to each CCE.
  • the set of PDCCH candidates monitored by the terminal device 1 may be defined from the viewpoint of the search area (Search space). That is, the set of PDCCH candidates monitored by the terminal device 1 may be given by the search area.
  • the search area may be configured to include one or more PDCCH candidates of one or more aggregation levels (Aggression level).
  • the aggregation level of PDCCH candidates may indicate the number of CCEs constituting the PDCCH.
  • PDDCH candidates may be mapped to one or more CCEs.
  • the terminal device 1 may monitor at least one or a plurality of search areas in a slot in which DRX (Discontinuity reception) is not set. DRX may be given at least based on upper layer parameters.
  • the terminal device 1 may monitor at least one or a plurality of search area sets (Search paceset) in a slot in which DRX is not set.
  • a plurality of search area sets may be configured in the terminal device 1.
  • An index search area set index
  • the search area set may be configured to include at least one or a plurality of search areas.
  • An index search area index
  • search area index may be assigned to each search area.
  • Each of the search area sets may be associated with at least one control resource set. Each of the search area sets may be included in one control resource set. For each of the search area sets, an index of the control resource set associated with the search area set may be given.
  • the search area may have two types, CSS (Comon Search Space, common search area) and USS (UE-specific Search Space).
  • the CSS may be a search area that is commonly set for a plurality of terminal devices 1.
  • the USS may be a search area that includes settings that are used exclusively for the individual terminal device 1.
  • the CSS may be given at least based on the synchronization signal, MIB, first system information, second system information, common RRC signaling, dedicated RRC signaling, cell ID, and the like. USS may be given at least based on dedicated RRC signaling and / or C-RNTI values.
  • the CSS may be a search area set as a common resource (control resource element) for a plurality of terminal devices 1.
  • the USS may be a search area set in a resource (control resource element) for each individual terminal device 1.
  • the CSS is for type 0PDCCH CSS for SI-RNTI scrambled DCI format used to transmit system information in the primary cell, and for RA-RNTI, TC-RNTI scrambled DCI format used for initial access.
  • Type 1 PDCCH CSS may be used.
  • a PDCCH CSS of the type for the DCI format scrambled by CC-RNTI used for Unlicense access may be used.
  • the terminal device 1 can monitor PDCCH candidates in those search areas.
  • the DCI format scrambled by a predetermined RNTI may be a DCI format to which a CRC (Cyclic Redundancy Check) scrambled by a predetermined RNTI is added.
  • CRC Cyclic Redundancy Check
  • the information related to the reception of the PDCCH may include the information related to the ID indicating the destination of the PDCCH.
  • the ID indicating the destination of the PDCCH may be an ID used for scrambling the CRC bit added to the PDCCH.
  • the ID that indicates the destination of the PDCCH is also referred to as RNTI (Radio Network Temporary Identifier).
  • the information related to the reception of the PDCCH may include the information related to the ID used for scrambling the CRC bit added to the PDCCH.
  • the terminal device 1 can attempt to receive the PDCCH based on at least the information related to the ID contained in the PBCH.
  • RNTI is SI-RNTI (System Information-RNTI), P-RNTI (Paging-RNTI), C-RNTI (Common-RNTI), Temporary C-RNTI (TC-RNTI), RA-RNTI (Random) , CC-RNTI (Common Control-RNTI), INT-RNTI (Interruption-RNTI) may be included.
  • SI-RNTI is at least used for scheduling PDSCHs transmitted containing system information.
  • P-RNTI is at least used for scheduling PDSCH transmitted including paging information and / or information such as system information change notifications.
  • C-RNTI is at least used to schedule user data for the RRC-connected terminal device 1.
  • Temporary C-RNTI is at least used for scheduling random access message 4.
  • Temporary C-RNTI is at least used to schedule a PDSCH containing data that maps to CCCH in a logical channel.
  • RA-RNTI is at least used for scheduling random access message 2.
  • CC-RNTI is at least used for transmitting and receiving control information of Unlicense access.
  • INT-RNTI is at least used to indicate pre-emption on the downlink.
  • the PDCCH and / or DCI included in the CSS does not include a CIF (Carrier Indicator Field) indicating which serving cell (or which component carrier) the PDCCH / DCI schedules the PDSCH or PUSCH. You may.
  • CIF Carrier Indicator Field
  • carrier aggregation carrier aggregation
  • carrier aggregation carrier aggregation
  • the PDCCH and / or DCI included in the USS for a serving cell includes a CIF indicating which serving cell and / or which component carrier the PDCCH / DCI is scheduling a PDSCH or PUSCH for.
  • the PDCCH / DCI included in the USS includes which serving cell and / or the PDCCH / DCI.
  • a CIF indicating which component carrier the PDSCH or PUSCH is scheduled for may not be included.
  • the common control resource set may include CSS.
  • the common control resource set may include both CSS and USS.
  • the dedicated control resource set may include USS.
  • the dedicated control resource set may include CSS.
  • the physical resources in the search area are composed of control channel configuration units (CCE: Control Channel Elements).
  • CCE is composed of a predetermined number of resource element groups (REG: Resource Element Group).
  • REG Resource Element Group
  • CCE may consist of 6 REGs.
  • the REG may be composed of one PRB (Physical Resource Block) 1 OFDM symbol. That is, the REG may be configured to include 12 resource elements (RE: Resource Element).
  • PRB is also simply referred to as RB (Resource Block: resource block).
  • the PDSCH is at least used to send / receive transport blocks.
  • the PDSCH may at least be used to send / receive a random access message 2 (random access response).
  • the PDSCH may at least be used to transmit / receive system information, including parameters used for initial access.
  • the following downlink physical signals are used in downlink wireless communication.
  • the downlink physical signal does not have to be used to transmit the information output from the upper layer, but it is used by the physical layer.
  • SS Synchronization signal
  • DL DMRS DownLink Demodulation ReferenceSignal
  • CSI-RS Channel State Information-Reference Signal
  • DL PTRS DownLink Phase Tracking Reference Signal
  • the synchronization signal is used by the terminal device 1 to synchronize the downlink frequency domain and / or the time domain.
  • the synchronization signal includes PSS (Primary Synchronization Signal) and SSS (Synchronization Synchronization Signal).
  • the SS block (SS / PBCH block) is composed of PSS, SSS, and at least a part or all of PBCH.
  • DL DMRS is associated with the transmission of PBCH, PDCCH, and / or PDSCH.
  • DL DMRS is multiplexed on PBCH, PDCCH, and / or PDSCH.
  • the terminal device 1 may use the PBCH, the PDCCH, or the DL DMRS corresponding to the PDSCH to perform propagation path correction of the PBCH, PDCCH, or PDSCH.
  • CSI-RS may be at least a signal used to calculate channel state information.
  • the pattern of CSI-RS assumed by the terminal device may be given by at least the upper layer parameters.
  • the PTRS may be at least a signal used to compensate for phase noise.
  • the pattern of PTRS envisioned by the terminal device may be given at least based on the upper layer parameters and / or DCI.
  • the DL PTRS may be associated with a DL DMRS group that includes at least the antenna ports used for one or more DL DMRSs.
  • the downlink physical channel and the downlink physical signal are also referred to as a downlink physical signal.
  • Uplink physical channels and uplink physical signals are also referred to as uplink signals.
  • the downlink signal and the uplink signal are also collectively referred to as a physical signal.
  • the downlink signal and the uplink signal are also collectively referred to as a signal.
  • the downlink physical channel and the uplink physical channel are collectively referred to as a physical channel.
  • the downlink physical signal and the uplink physical signal are collectively referred to as a physical signal.
  • BCH Broadcast Channel
  • UL-SCH Uplink-Shared Channel
  • DL-SCH Downlink-Shared Channel
  • the channel used in the medium access control (MAC: Medium Access Control) layer is called a transport channel.
  • the unit of the transport channel used in the MAC layer is also called a transport block (TB) or MAC PDU.
  • HARQ Hybrid Automatic Repeat Request
  • a transport block is a unit of data that the MAC layer passes to the physical layer (deliver). In the physical layer, the transport block is mapped to a codeword, and modulation processing is performed for each codeword.
  • the base station device 3 and the terminal device 1 exchange (transmit / receive) signals of the upper layer in the upper layer (higher layer).
  • the base station device 3 and the terminal device 1 may perform RRC signaling (RRC message: Radio Response Control message; RRC information: Radio Response Control) layer in the radio resource control (RRC: Radio Resource Control) layer. ..
  • RRC Radio Resource Control
  • the base station device 3 and the terminal device 1 may transmit and receive MAC CE (Control Element) in the MAC layer.
  • RRC signaling and / or MAC CE is also referred to as an upper layer signal (higher layer signaling).
  • the PUSCH and PDSCH may at least be used to transmit RRC signaling and / or MAC CE.
  • the RRC signaling transmitted from the base station device 3 by PDSCH may be a signal common to a plurality of terminal devices 1 in the serving cell. Signaling common to a plurality of terminal devices 1 in a serving cell is also referred to as common RRC signaling.
  • the RRC signaling transmitted from the base station apparatus 3 by PDSCH may be a dedicated signaling (also referred to as dedicated signaling or UE specific signaling) for a certain terminal apparatus 1. Signaling dedicated to the terminal device 1 is also referred to as dedicated RRC signaling.
  • the upper layer parameters unique to the serving cell may be transmitted / received using common signaling to a plurality of terminal devices 1 in the serving cell or dedicated signaling to a certain terminal device 1.
  • UE-specific upper layer parameters may be transmitted / received to a terminal device 1 using dedicated signaling.
  • BCCH Broadcast Control Channel
  • CCCH Control Control Channel
  • DCCH Dedicated Control Channel
  • BCCH is an upper layer channel used to transmit / receive MIBs.
  • CCCH Common Control Channel
  • DCCH Dedicated Control Channel
  • BCCH is an upper layer channel used for transmitting / receiving common information in a plurality of terminal devices 1.
  • CCCH may be used, for example, for a terminal device 1 that is not RRC-connected.
  • the DCCH (Dedicated Control Channel) is at least an upper layer channel used for transmitting / receiving dedicated control information (dedicated control information) to the terminal device 1.
  • the DCCH may be used, for example, for the terminal device 1 connected by RRC.
  • BCCH in a logical channel may be mapped to BCH, DL-SCH, or UL-SCH in a transport channel.
  • CCCH in a logical channel may be mapped to DL-SCH or UL-SCH in a transport channel.
  • DCCH in a logical channel may be mapped to DL-SCH or UL-SCH in a transport channel.
  • UL-SCH in the transport channel may be mapped to PUSCH in the physical channel.
  • the DL-SCH in the transport channel may be mapped to the PDSCH in the physical channel.
  • BCH in the transport channel may be mapped to PBCH in the physical channel.
  • FIG. 4 is a schematic block diagram showing the configuration of the terminal device 1 according to one aspect of the present embodiment.
  • the terminal device 1 includes a wireless transmission / reception unit 10 and an upper layer processing unit 14.
  • the radio transmission / reception unit 10 includes at least a part or all of an antenna unit 11, an RF (Radio Frequency) unit 12, and a baseband unit 13.
  • the upper layer processing unit 14 includes at least a part or all of the medium access control layer processing unit 15 and the radio resource control layer processing unit 16.
  • the wireless transmission / reception unit 10 is also referred to as a transmission unit, a reception unit, or a physical layer processing unit.
  • the upper layer processing unit 14 outputs the uplink data (transport block) generated by the user's operation or the like to the wireless transmission / reception unit 10.
  • the upper layer processing unit 14 processes the MAC layer, the packet data integration protocol (PDCP: Packet Data Convergence Protocol) layer, the wireless link control (RLC: Radio Link Control) layer, and the RRC layer.
  • PDCP Packet Data Convergence Protocol
  • RLC Radio Link Control
  • the medium access control layer processing unit 15 included in the upper layer processing unit 14 processes the MAC layer.
  • the radio resource control layer processing unit 16 included in the upper layer processing unit 14 processes the RRC layer.
  • the wireless resource control layer processing unit 16 manages various setting information / parameters of its own device.
  • the radio resource control layer processing unit 16 sets various setting information / parameters based on the signal of the upper layer received from the base station apparatus 3. That is, the radio resource control layer processing unit 16 sets various setting information / parameters based on the information indicating various setting information / parameters received from the base station apparatus 3.
  • the setting information may include information related to processing or setting of a physical channel, a physical signal (that is, a physical layer), a MAC layer, a PDCP layer, an RLC layer, and an RRC layer.
  • the parameter may be an upper layer parameter.
  • the wireless transmission / reception unit 10 performs physical layer processing such as modulation, demodulation, coding, and decoding.
  • the wireless transmission / reception unit 10 separates, demodulates, and decodes the received physical signal, and outputs the decoded information to the upper layer processing unit 14.
  • the wireless transmission / reception unit 10 generates a physical signal by modulating, encoding, and generating a baseband signal (converting to a time continuous signal), and transmits the physical signal to the base station apparatus 3.
  • the RF unit 12 converts the signal received via the antenna unit 11 into a baseband signal by orthogonal demodulation (down conversion: down cover), and removes unnecessary frequency components.
  • the RF unit 12 outputs the processed analog signal to the baseband unit.
  • the baseband unit 13 converts the analog signal input from the RF unit 12 into a digital signal.
  • the baseband unit 13 removes a portion corresponding to CP (Cyclic Prefix) from the converted digital signal, performs a fast Fourier transform (FFT: Fast Fourier Transform) on the signal from which the CP has been removed, and outputs a signal in the frequency domain. Extract.
  • FFT Fast Fourier Transform
  • the baseband unit 13 performs inverse fast Fourier transform (IFFT) on the data to generate an OFDM symbol, adds CP to the generated OFDM symbol, generates a baseband digital signal, and basebands the data. Converts a band digital signal into an analog signal.
  • the baseband unit 13 outputs the converted analog signal to the RF unit 12.
  • IFFT inverse fast Fourier transform
  • the RF unit 12 uses a low-pass filter to remove excess frequency components from the analog signal input from the baseband unit 13, upconverts the analog signal to the carrier frequency, and transmits the analog signal via the antenna unit 11. To do. Further, the RF unit 12 amplifies the electric power. Further, the RF unit 12 may have a function of controlling the transmission power.
  • the RF unit 12 is also referred to as a transmission power control unit.
  • FIG. 5 is a schematic block diagram showing the configuration of the base station device 3 according to one aspect of the present embodiment.
  • the base station apparatus 3 includes a wireless transmission / reception unit 30 and an upper layer processing unit 34.
  • the radio transmission / reception unit 30 includes an antenna unit 31, an RF unit 32, and a baseband unit 33.
  • the upper layer processing unit 34 includes a medium access control layer processing unit 35 and a radio resource control layer processing unit 36.
  • the wireless transmission / reception unit 30 is also referred to as a transmission unit, a reception unit, or a physical layer processing unit.
  • the upper layer processing unit 34 processes the MAC layer, PDCP layer, RLC layer, and RRC layer.
  • the medium access control layer processing unit 35 included in the upper layer processing unit 34 processes the MAC layer.
  • the radio resource control layer processing unit 36 included in the upper layer processing unit 34 processes the RRC layer.
  • the wireless resource control layer processing unit 36 generates downlink data (transport block), system information, RRC message, MAC CE, etc. arranged in the PDSCH, or acquires them from a higher-level node and outputs them to the wireless transmission / reception unit 30. .. Further, the radio resource control layer processing unit 36 manages various setting information / parameters of each terminal device 1.
  • the radio resource control layer processing unit 36 may set various setting information / parameters for each terminal device 1 via a signal of the upper layer. That is, the radio resource control layer processing unit 36 transmits / notifies information indicating various setting information / parameters.
  • the setting information may include information related to processing or setting of a physical channel, a physical signal (that is, a physical layer), a MAC layer, a PDCP layer, an RLC layer, and an RRC layer.
  • the parameter may be an upper layer parameter.
  • the function of the wireless transmission / reception unit 30 is the same as that of the wireless transmission / reception unit 10, the description thereof will be omitted.
  • Each portion of the terminal device 1 with reference numerals 10 to 16 may be configured as a circuit.
  • Each portion of the base station apparatus 3 with reference numerals 30 to 36 may be configured as a circuit.
  • the terminal device 1 may carry out carrier sense prior to transmission of the physical signal. Further, the base station apparatus 3 may perform carrier sense prior to the transmission of the physical signal.
  • the carrier sense may be to perform energy detection on a radio channel (Radio channel). Whether or not the physical signal can be transmitted may be given based on the carrier sense performed prior to the transmission of the physical signal. For example, if the amount of energy detected by the carrier sense performed prior to the transmission of the physical signal is greater than a predetermined threshold, the physical channel may not be transmitted or cannot be transmitted. May be determined. Further, when the amount of energy detected by the carrier sense performed prior to the transmission of the physical signal is smaller than a predetermined threshold value, the physical channel may be transmitted or can be transmitted. It may be judged.
  • the transmission of the physical channel may or may not be performed. .. That is, when the amount of energy detected by the carrier sense performed prior to the transmission of the physical signal is equal to a predetermined threshold value, it may be determined that the transmission is impossible or the transmission is possible. Good.
  • the procedure in which the transmission availability of the physical channel is given based on the carrier sense is also called LBT (Listen Before Talk).
  • LBT Listen Before Talk
  • the situation in which it is determined that the physical signal cannot be transmitted as a result of the LBT is also referred to as a busy state or a busy state.
  • the busy state may be a state in which the amount of energy detected by carrier sense is larger than a predetermined threshold value.
  • the situation in which it is determined that the physical signal can be transmitted as a result of LBT is also referred to as an idle state or an idle.
  • the idle state may be a state in which the amount of energy detected by carrier sense is smaller than a predetermined threshold value.
  • LBT fileure that it is determined that the transmission of a physical signal is impossible as a result of LBT.
  • the value of the section (channel occupancy section) (Channel Occupancy Time: COT) in which the channel is continuously occupied may be predetermined depending on the country, or may be predetermined for each frequency band.
  • the base station apparatus 3 may notify the terminal apparatus 1 of the channel occupied section.
  • the terminal device 1 recognizes the length of the channel occupied section, and can grasp the timing at which the channel occupied section ends.
  • the maximum value of COT may be any of 2 ms, 3 ms, 6 ms, 8 ms, and 10 ms.
  • the terminal device 1 may multiplex the uplink control information (UCI) on the PUCCH and transmit it.
  • the terminal device 1 may multiplex the UCI to the PUSCH and transmit it.
  • UCI uses downlink channel state information (Channel State Information: CSI), scheduling request indicating a PUSCH resource request (Scheduling Request: SR), and downlink data (Transport block, Medium Access PDU PDU PDU PDU PDU PDU -At least one of HARQ-ACK (Hybrid Automatic Repeat ACKnowledgement) for SHAREDChannel: DL-SCH, Physical Downlink Shared Channel: PDSCH may be included.
  • CSI Channel State Information
  • SR scheduling Request indicating a PUSCH resource request
  • SR scheduling request indicating a PUSCH resource request
  • SR scheduling request indicating a PUSCH resource request
  • downlink data Transport block
  • HARQ-ACK Hybrid Automatic Repeat ACKnowledgement
  • HARQ-ACK may also be referred to as ACK / NACK, HARQ feedback, HARQ-ACK feedback, HARQ response, HARQ-ACK response, HARQ information, HARQ-ACK information, HARQ control information, and HARQ-ACK control information. ..
  • the HARQ-ACK may include at least the HARQ-ACK bits corresponding to one transport block.
  • the HARQ-ACK bit may indicate ACK (ACKnowledgement) or NACK (Negative-ACKnowledgement) corresponding to one or more transport blocks.
  • the HARQ-ACK may include at least a HARQ-ACK codebook containing one or more HARQ-ACK bits. The fact that the HARQ-ACK bit corresponds to one or more transport blocks may mean that the HARQ-ACK bit corresponds to a PDSCH containing the one or more transport blocks.
  • HARQ control for one transport block may be called a HARQ process.
  • One HARQ process identifier may be given for each HARQ process.
  • the terminal device 1 displays HARQ-ACK information in the slot indicated by the value of the HARQ instruction field included in the DCI format 1_0 corresponding to PDSCH reception or the DCI format 1-11, and the HARQ-ACK codebook. ) May be reported to the base station apparatus 3.
  • the value of the HARQ indicator field may be mapped to a set of slots (1,2,3,4,5,6,7,8).
  • the value of the HARQ indicator field may be mapped to the set of slots given by the upper layer parameter dl-DataToUL-ACK.
  • the number of slots indicated at least based on the value of the HARQ indicator field may also be referred to as HARQ-ACK timing or K1.
  • HARQ-ACK indicating the decoding state of PDSCH (downlink data) transmitted in slot n may be reported (transmitted) in slot n + K1.
  • Dl-DataToUL-ACK shows a list of HARQ-ACK timings for PDSCH.
  • Timing is the number of slots between the slot where the PDSCH was received (or the slot containing the last OFDM symbol to which the PDSCH is mapped) and the slot where the HARQ-ACK is transmitted for the received PDSCH. is there.
  • dl-DataToUL-ACK is a list of one, two, or three, four, five, six, seven, or eight timings.
  • the HARQ indicator field is 0 bits. If dl-DataToUL-ACK is a list of two timings, the HARQ indicator field is 1 bit.
  • the HARQ indicator field is 2 bits. If the dl-DataToUL-ACK is a list of 5, 6, or 7, or 8 timings, the HARQ indicator field is 3 bits.
  • dl-DataToUL-ACK consists of a list of timings with any value in the range 0-31.
  • dl-DataToUL-ACK consists of a list of timings with any value in the range 0-63.
  • the size of dl-DataToUL-ACK is defined as the number of elements that dl-DataToUL-ACK contains.
  • the size of dl-DataToUL-ACK may be referred to as L para .
  • the index of dl-DataToUL-ACK may be given, indicated, or indicated by the value indicated by the HARQ indicator field.
  • the terminal device 1 sets the size of the HARQ-ACK codebook according to the size of the dl-DataToUL-ACK. For example, when dl-DataToUL-ACK consists of 8 elements, the size of HARQ-ACK codebook is 8. For example, when dl-DataToUL-ACK consists of two elements, the size of HARQ-ACK codebook is 2.
  • Each HARQ-ACK information constituting the HARQ-ACK codebook is HARQ-ACK information for PDSCH reception at each slot timing of dl-DataToUL-ACK. This type of HARQ-ACK codebook is also referred to as a Semi-static HARQ-ACK codebook.
  • the dl-DataToUL-ACK consists of a list of eight timings 0, 7, 15, 23, 31, 39, 47, 55, and the HARQ indicator field consists of 3 bits.
  • the HARQ instruction field is "000" it corresponds to the first 0 in the list of dl-DataToUL-ACK as the corresponding timing. That is, the HARQ instruction field "000" corresponds to the value 0 indicated by the index 1 of the dl-DataToUL-ACK.
  • the HARQ instruction field "001" corresponds to the second 7 in the list of dl-DataToUL-ACK as the corresponding timing.
  • the HARQ instruction field "010" corresponds to the third 15 in the list of dl-DataToUL-ACK as the corresponding timing.
  • the HARQ instruction field "011” corresponds to the fourth 23 in the list of dl-DataToUL-ACK as the corresponding timing.
  • the HARQ instruction field is "100"
  • the corresponding timing corresponds to the fifth 31 in the list of dl-DataToUL-ACK.
  • the HARQ instruction field "101" corresponds to the sixth 39 in the list of dl-DataToUL-ACK as the corresponding timing.
  • the HARQ indicator field "110" corresponds to the seventh 47 in the list of dl-DataToUL-ACK as the corresponding timing.
  • the HARQ instruction field "111" corresponds to the eighth 55 in the list of dl-DataToUL-ACK as the corresponding timing.
  • the terminal device 1 transmits the corresponding HARQ-ACK in the 0th slot from the received PDSCH slot.
  • the terminal device 1 transmits the corresponding HARQ-ACK in the seventh slot from the received PDSCH slot.
  • the terminal device 1 transmits the corresponding HARQ-ACK in the 15th slot from the received PDSCH slot.
  • the terminal device 1 transmits the corresponding HARQ-ACK in the 23rd slot from the received PDSCH slot.
  • the terminal device 1 transmits the corresponding HARQ-ACK in the 31st slot from the received PDSCH slot.
  • the terminal device 1 transmits the corresponding HARQ-ACK in the 39th slot from the received PDSCH slot.
  • the terminal device 1 transmits the corresponding HARQ-ACK in the 47th slot from the received PDSCH slot.
  • the terminal device 1 transmits the corresponding HARQ-ACK in the 55th slot from the received PDSCH slot.
  • the N PDSCH repeat may be the value of the pdsch-AggressionFactor.
  • the N PDSCH repeat may be 1.
  • the terminal device 1 may report HARQ-ACK information for PDSCH reception from slot n-N PDSCH repeat +1 to slot n using PUCCH transmission and / or PUSCH transmission in slot n + k.
  • k may be the number of slots indicated by the HARQ indicator field included in the DCI format corresponding to the PDSCH reception.
  • k may be given by the upper layer parameter dl-DataToUL-ACK.
  • the HARQ-ACK timing value K1 is (1, 2, 3, It may be a part or all of 4, 5, 6, 7, 8). If the terminal device 1 is configured to monitor PDCCH containing DCI format 1-11, the HARQ-ACK timing value K1 may be given by the upper layer parameter dl-DataToUL-ACK.
  • the terminal device 1 determines a set of multiple opportunities for receiving one or more candidate PDSCHs to transmit the corresponding HARQ-ACK information on the PUCCH of a slot.
  • the terminal device 1 determines that the plurality of slots of the slot timing K1 included in the dl-DataToUL-ACK are a plurality of opportunities for receiving the candidate PDSCH.
  • K1 may be a set of k. For example, when dl-DataToUL-ACK is (1, 2, 3, 4, 5, 6, 7, 8), the PUCCH in slot n receives PDSCH in slot n-1 and PDSCH in slot n-2.
  • Receive, receive PDSCH in slot n-3, receive PDSCH in slot n-4, receive PDSCH in slot n-5, receive PDSCH in slot n-6, receive PDSCH in slot n-7, receive n-8 HARQ-ACK information for PDSCH reception of the slot of is transmitted.
  • the terminal device 1 sets ACK or NACK as HARQ-ACK information based on the transport block included in the PDSCH, and corresponds to the candidate PDSCH reception. If PDSCH is not received in the slot to be used, NACK is set as HARQ-ACK information.
  • the HARQ instruction field included in the DCI format received by the PDCCH of the slot n-1 indicates 1.
  • the HARQ instruction field included in the DCI format received by the PDCCH of the slot n-2 indicates 2.
  • the HARQ instruction field included in the DCI format received by the PDCCH of the n-3 slot indicates 3.
  • the HARQ instruction field included in the DCI format received by the PDCCH of the slot n-4 indicates 4.
  • the HARQ instruction field included in the DCI format received by the PDCCH of the n-5 slot indicates 5.
  • the HARQ instruction field included in the DCI format received by the PDCCH of the slot n-6 indicates 6.
  • the HARQ instruction field included in the DCI format received by the PDCCH of the slot n-7 indicates 7.
  • the HARQ instruction field included in the DCI format received by the PDCCH of the slot n-8 indicates 8.
  • the terminal device 1 receives a slot for receiving PDCCH, a slot for transmitting HARQ-ACK information based on the value of the HARQ instruction field included in the received DCI format, and a plurality of candidate PDSCHs corresponding to the HARQ-ACK information. Determine the set of slots. For example, when dl-DataToUL-ACK is (1, 2, 3, 4, 5, 6, 7, 8), the terminal device 1 receives the PDCCH in the slot m, and the HARQ instruction field included in the DCI format is 4. Is shown. The terminal device 1 determines that the HARQ-ACK information is transmitted in the slot (m + 4).
  • other HARQ-ACK information transmitted in the slot (m + 4) includes HARQ-ACK information for PDSCH reception in the slot (m + (1-4)) and the slot (m + (2-4)).
  • HARQ-ACK information for PDSCH reception includes HARQ-ACK information for PDSCH reception in slot (m + (3-4)), HARQ-ACK information for PDSCH reception in slot (m + (5-4)), and slot (m +) HARQ-ACK information for PDSCH reception in (6-4)), HARQ-ACK information for PDSCH reception in slot (m + (7-4)), and HARQ- for PDSCH reception in slot (m + (8-4)).
  • the dl-DataToUL-ACK can be configured not only as a value indicating the number of slots as the timing of HARQ-ACK, but also as a value (information) indicating that HARQ-ACK is held.
  • the terminal device 1 receives a HARQ instruction field indicating a value indicating that the PDCCH holds the HARQ-ACK
  • the terminal device 1 holds the HARQ-ACK (HARQ-ACK information) for the PDSCH scheduled by the PDCCH, and holds the HARQ-ACK. Waits for transmission of ACK (HARQ-ACK information).
  • the terminal device 1 retransmits the HARQ-ACK codebook based on the instruction from the base station device 3.
  • the DCI format contains information instructing the retransmission of the HARQ-ACK codebook.
  • the information instructing the retransmission of the HARQ-ACK codebook is shown explicitly or implicitly.
  • the terminal device 1 transmits the HARQ-ACK codebook, but the base station device 3 that could not properly detect the HARQ-ACK codebook due to the interference by the hidden terminal instructs the retransmission of the HARQ-ACK codebook.
  • a toggle bit is used as control information (New HARQ-ACK codebook indicator) regarding retransmission of the HARQ-ACK codebook.
  • the base station apparatus 3 detects the HARQ-ACK codebook, the base station apparatus 3 toggles and transmits a bit of control information regarding the retransmission of the HARQ-ACK codebook when the terminal device 1 is not instructed to retransmit the HARQ-ACK codebook.
  • the terminal device 1 detects that the bit of the control information regarding the retransmission of the HARQ-ACK codebook is toggled, recognizes that the previously transmitted HARQ-ACK codebook has been detected by the base station device 3, and has a new HARQ-ACK.
  • the base station device 3 Only the codebook is transmitted, or a new HARQ-ACK codebook is transmitted and the HARQ-ACK codebook not detected by the base station apparatus 3 is retransmitted.
  • the base station device 3 cannot detect the HARQ-ACK codebook, when instructing the terminal device 1 to retransmit the HARQ-ACK codebook, the base station device 3 transmits the bit of the control information regarding the retransmission of the HARQ-ACK codebook without toggle. To do.
  • the terminal device 1 detects that the bit of the control information regarding the retransmission of the HARQ-ACK codebook is not toggled, and transmits a new HARQ-ACK codebook, retransmits the transmitted HARQ-ACK codebook, or transmits by LBT fileure. Retransmission of the HARQ-ACK codebook that could not be performed.
  • the terminal device 1 accumulates the retransmission of the HARQ-ACK codebook until it receives a bit of control information regarding the retransmission of the toggled HARQ-ACK codebook.
  • the terminal device 1 is subjected to the new HARQ-.
  • the retransmission of a plurality of HARQ-ACK codebooks selected so that the total number of HARQ-ACK information does not exceed the first value is performed.
  • the retransmission of a plurality of HARQ-ACK codebooks selected so that the total number of HARQ-ACK information does not exceed the first value is appropriately received by the base station device 3, and the toggled HARQ-ACK codebook is used.
  • the bit of the control information regarding the retransmission is received, the retransmission of the remaining stored HARQ-ACK codebook is restarted.
  • the first value is the number of resource blocks for the PUCCH, the number of subcarriers of the resource block, the number of symbols in the time domain of the PUCCH, the modulation method of the PUCCH, and the base station apparatus 3 with respect to the PUCCH used for transmitting the HARQ-ACK codebook. It is calculated based on at least one, a plurality, or all parameters of the set maximum coding rate. In addition, other parameters may be considered in the calculation of the first value.
  • the size of one HARQ-ACK codebook is 8, and the first value is 24.
  • the size of the HARQ-ACK codebook is the number (number of bits) of HARQ-ACK included in the HARQ-ACK codebook.
  • the terminal device 1 performs up to the transmission of three HARQ-ACK codebooks with one PUCCH.
  • the terminal device 1 retransmits two HARQ-ACK codebooks and newly transmits one HARQ-ACK codebook with one PUCCH.
  • the terminal device 1 further accumulates the retransmission of three or more HARQ-ACK codebooks, the terminal device 1 retransmits the two HARQ-ACK codebooks at the next PUCCH.
  • the terminal device 1 when the terminal device 1 receives the bit of the control information regarding the retransmission of the toggled HARQ-ACK codebook, in other words, the terminal device 1 provides the control information implying that the base station device 3 has succeeded in detecting the PUCCH.
  • the terminal device 1 receives the control information, the terminal device 1 retransmits the remaining stored HARQ-ACK codebook.
  • the size of one HARQ-ACK codebook is 8, and the first value is 20. Since the total size of the three HARQ-ACK codebooks is 24, which exceeds the first value, the terminal device 1 retransmits one HARQ-ACK codebook and newly transmits one HARQ-ACK codebook in one PUCCH. Do it with. As described above, the first value does not have to be a multiple of the size of one HARQ-ACK codebook.
  • the size of one HARQ-ACK codebook is 8, and the first value is 24.5. Since the total size of the four HARQ-ACK codebooks is 32, which exceeds the first value, the terminal device 1 retransmits the two HARQ-ACK codebooks and newly transmits one HARQ-ACK codebook in one PUCCH. Do it with. Thus, the first value does not have to be an integer.
  • FIG. 6 is a diagram illustrating an example of retransmission of HARQ-ACK codebook according to the embodiment of the present invention.
  • the terminal device 1 newly transmits HARQ-ACK codebook 1 (601).
  • the base station apparatus 3 transmits a bit of control information regarding retransmission of the HARQ-ACK codebook that is not toggled because the HARQ-ACK codebook 1 cannot be detected.
  • the terminal device 1 receives the bit of the control information regarding the retransmission of the HARQ-ACK codebook that is not toggled, retransmits the HARQ-ACK codebook 1, and newly transmits the HARQ-ACK codebook 2 (602).
  • the base station apparatus 3 cannot detect HARQ-ACK codebook 1 and HARQ-ACK codebook 2, and transmits a bit of control information regarding retransmission of HARQ-ACK codebook that is not toggled.
  • the terminal device 1 receives the bit of the control information regarding the retransmission of the HARQ-ACK codebook that is not toggled, and performs the retransmission of the HARQ-ACK codebook 1, the retransmission of the HARQ-ACK codebook 2, and the new transmission of the HARQ-ACK codebook 3 (603). ).
  • the base station device 3 cannot detect HARQ-ACK codebook 1, HARQ-ACK codebook 2, and HARQ-ACK codebook 3, and transmits a bit of control information regarding retransmission of HARQ-ACK codebook that is not toggled.
  • the terminal device 1 receives a bit of control information regarding the retransmission of the HARQ-ACK codebook that is not toggled, and performs the retransmission of the HARQ-ACK codebook 1, the retransmission of the HARQ-ACK codebook 2, and the new transmission of the HARQ-ACK codebook 4 (604). ).
  • the terminal device 1 stores the information of HARQ-ACK codebook 3.
  • the base station apparatus 3 can detect HARQ-ACK codebook 1, HARQ-ACK codebook 2, and HARQ-ACK codebook 4, and transmits a bit of control information regarding retransmission of the toggled HARQ-ACK codebook.
  • the terminal device 1 receives the bit of the control information regarding the retransmission of the toggled HARQ-ACK codebook, retransmits the HARQ-ACK codebook 3, and newly transmits the HARQ-ACK codebook 5 (605).
  • the control information regarding the retransmission of the HARQ-ACK codebook is included in the DCI format for scheduling the PDSCH and is transmitted and received.
  • the terminal device 1 detects the DCI format and includes a HARQ-ACK codebook (newly transmitted HARQ-ACK codebook) including HARQ-ACK for the PDSCH scheduled by the DCI format, and a HARQ-ACK codebook transmitted at least once. Or, the HARQ-ACK codebook that has been prepared for transmission at least once is transmitted with the same PUCCH. In other words, the terminal device 1 transmits a new transmission of the Semi-static HARQ-ACK codebook to the current COT and a retransmission of the Semi-static HARQ-ACK codebook to the past COT in one PUCCH.
  • the HARQ-ACK codebook transmitted from the terminal device 1 is not properly detected in the base station device 3. If it is detected that another device is using a wireless channel (also referred to as LBT fileure) before transmitting the HARQ-ACK codebook that has been prepared for transmission, the terminal device 1 has prepared for transmission. Do not send HARQ-ACK codebook.
  • a wireless channel also referred to as LBT fileure
  • the base station device 3 transmits one or more PDSCHs at COT 1 and instructs the terminal device 1 to transmit HARQ-ACK codebook 1.
  • the terminal device 1 receives one or more PDSCHs at COT 1, and transmits HARQ-ACK codebook 1 for the PDSCH received at COT 1 at PUCCH 1.
  • the base station device 3 transmits control information indicating that the HARQ-ACK codebook 1 could not be detected in PUCCH 1 and the HARQ-ACK codebook was not detected in COT 2 to the terminal device 1.
  • the base station device 3 transmits one or more PDSCHs at the COT 2 and instructs the terminal device 1 to transmit the HARQ-ACK codebook 2.
  • the terminal device 1 receives the control information indicating that the HARQ-ACK codebook was not detected in the COT 2, receives one or more PDSCHs, and receives the HARQ-ACK codebook 2 and the HARQ for the PDSCH received in the COT 2. -Transmit ACK codebook 1 and PUCCH 2.
  • the base station device 3 transmits control information indicating that HARQ-ACK codebook 1 and HARQ-ACK codebook 2 could not be detected by PUCCH 2 and HARQ-ACK codebook was not detected by COT 3 to the terminal device 1. Further, the base station device 3 transmits one or more PDSCHs at the COT 3 and instructs the terminal device 1 to transmit the HARQ-ACK codebook 3. The terminal device 1 receives the control information indicating that the HARQ-ACK codebook was not detected in the COT 3, receives one or more PDSCHs, and has the HARQ-ACK codebook 3 and HARQ for the PDSCH received in the COT 3. -ACK codebook 1 and HARQ-ACK codebook 2 are transmitted by PUCCH 3.
  • the base station apparatus 3 terminals the control information indicating that HARQ-ACK codebook 1, HARQ-ACK codebook 2, and HARQ-ACK codebook 3 could not be detected in PUCCH 3, and HARQ-ACK codebook was not detected in COT 4. It is transmitted to the device 1. Further, the base station device 3 transmits one or more PDSCHs at the COT 4, and instructs the terminal device 1 to transmit the HARQ-ACK codebook 4. The terminal device 1 receives the control information indicating that the HARQ-ACK codebook was not detected in the COT 4, receives one or more PDSCHs, and receives the HARQ-ACK codebook 4 and the HARQ for the PDSCH received in the COT 4.
  • -ACK codebook 1 and HARQ-ACK codebook 2 are transmitted by PUCCH 4. Since the sum of the HARQ-ACK information of HARQ-ACK codebook 1, HARQ-ACK codebook 2, HARQ-ACK codebook 3 and HARQ-ACK codebook 4 exceeds the first value, the terminal device 1 transmits with one PUCCH. HARQ-ACK codebook 1 and HARQ-ACK codebook 2 are selected as the HARQ-ACK codebook to be retransmitted so that the total sum of the HARQ-ACK information to be performed does not exceed the first value. The terminal device 1 retains the HARQ-ACK codebook 3 that has not been selected (it is in a state of waiting for transmission).
  • the base station device 3 can detect HARQ-ACK codebook 1, HARQ-ACK codebook 2, and HARQ-ACK codebook 4 on PUCCH 4, and provides control information indicating that HARQ-ACK codebook is detected on COT 5. Send to. Further, the base station device 3 transmits one or more PDSCHs at the COT 5 and instructs the terminal device 1 to transmit the HARQ-ACK codebook 5. The terminal device 1 receives the control information indicating that the HARQ-ACK codebook is detected in the COT 5, receives one or more PDSCHs, and receives the HARQ-ACK codebook 5 and the HARQ- for the PDSCH received in the COT 5. ACK codebook 3 and PUCCH 5 are transmitted. The terminal device 1 retransmits the held HARQ-ACK codebook 3.
  • the base station device 3 may notify the terminal device 1 by different control information instead of the toggle bit as the control information instructing the retransmission of the HARQ-ACK codebook.
  • Information (bits) in which the value is cyclically incremented may be used as the control information for instructing the retransmission of the HARQ-ACK codebook.
  • the terminal device 1 recognizes that the transmitted HARQ-ACK codebook was not detected in the base station device 3 when it is not incremented compared to the previously received value, that is, when the same value is received, and the terminal device 1 recognizes that the transmitted HARQ-ACK codebook was not detected, and the HARQ-ACK codebook Resend.
  • the reception quality of the HARQ-ACK codebooks can be improved. Can be maintained at an appropriate level.
  • the terminal device 1 can efficiently perform communication.
  • the base station device 3 can efficiently perform communication.
  • the aspect of the present invention has taken the following measures. That is, the first aspect of the present invention is a terminal device including a processor and a memory for storing a computer program code, and the HARQ-ACK transmitted when the computer program code is executed by the processor. Accumulate the retransmission of the HARQ-ACK codebook until the control information indicating that the codebook is detected is received, the HARQ-ACK information of the newly transmitted HARQ-ACK codebook, and the HARQ-ACK of the retransmission of the HARQ-ACK codebook-.
  • the newly transmitted HARQ-ACK codebook and the remaining unselected HARQ-ACK codebook to be resent are Is transmitted by one PUCCH, and the operation including the transmission is performed.
  • a second aspect of the present invention is a base station apparatus including a processor and a memory for storing a computer program code, and when the computer program code is executed by the processor, an HARQ-ACK codebook Is transmitted, control information indicating that the transmitted HARQ-ACK codebook is not detected is transmitted, the newly transmitted HARQ-ACK codebook HARQ-ACK information, and the retransmission HARQ-ACK codebook HARQ- Performs an operation including receiving the HARQ-ACK codebook of one or more retransmissions selected so that the sum with the ACK information does not exceed the first value.
  • a third aspect of the present invention is the communication method used for the terminal device, in which the HARQ-ACK codebook is retransmitted until the control information indicating that the transmitted HARQ-ACK codebook is detected is received.
  • the sum of the HARQ-ACK information of the newly transmitted HARQ-ACK codebook and the HARQ-ACK information of the retransmission of the HARQ-ACK codebook of the retransmission does not exceed the first value.
  • the newly transmitted HARQ-ACK codebook and the remaining unselected retransmitted HARQ-ACK codebook Includes a step of transmitting in one PUCCH.
  • the fourth aspect of the present invention is the communication method used for the base station apparatus, and the control information indicating that the transmitted HARQ-ACK codebook is not detected until the HARQ-ACK codebook is detected. And one or more selected so that the sum of the HARQ-ACK information of the newly transmitted HARQ-ACK codebook and the HARQ-ACK information of the retransmission HARQ-ACK codebook does not exceed the first value.
  • the step of receiving the HARQ-ACK codebook of the retransmission of the above is included.
  • the step of receiving the HARQ-ACK codebook of the remaining unselected retransmissions is included.
  • the program operating on the base station device 3 and the terminal device 1 controls a CPU (Central Processing Unit) and the like so as to realize the functions of the above embodiment related to one aspect of the present invention. It may be a program (a program that makes a computer function). Then, the information handled by these devices is temporarily stored in RAM (Random Access Memory) at the time of processing, and then stored in various ROMs such as Flash ROM (Read Only Memory) and HDD (Hard Disk Drive). The CPU reads, corrects, and writes as necessary.
  • RAM Random Access Memory
  • ROMs Read Only Memory
  • HDD Hard Disk Drive
  • the terminal device 1 and a part of the base station device 3 in the above-described embodiment may be realized by a computer.
  • the program for realizing this control function may be recorded on a computer-readable recording medium, and the program recorded on the recording medium may be read by the computer system and executed.
  • the "computer system” referred to here is a computer system built in the terminal device 1 or the base station device 3, and includes hardware such as an OS and peripheral devices.
  • the "computer-readable recording medium” refers to a flexible disk, a magneto-optical disk, a portable medium such as a ROM or a CD-ROM, or a storage device such as a hard disk built in a computer system.
  • a "computer-readable recording medium” is a medium that dynamically holds a program for a short period of time, such as a communication line when a program is transmitted via a network such as the Internet or a communication line such as a telephone line.
  • a program may be held for a certain period of time, such as a volatile memory inside a computer system serving as a server or a client.
  • the above-mentioned program may be a program for realizing a part of the above-mentioned functions, and may be a program for realizing the above-mentioned functions in combination with a program already recorded in the computer system.
  • the terminal device 1 may consist of at least one processor and at least one memory including a computer program instruction (computer program).
  • the memory and the computer program instruction (computer program) may be configured such that the terminal device 1 performs the operations and processes described in the above-described embodiment by using a processor.
  • the base station apparatus 3 may consist of at least one processor and at least one memory including computer program instructions (computer programs).
  • the memory and the computer program instruction (computer program) may be configured such that the base station apparatus 3 performs the operations and processes described in the above-described embodiment by using a processor.
  • the base station device 3 in the above-described embodiment can also be realized as an aggregate (device group) composed of a plurality of devices.
  • Each of the devices constituting the device group may include a part or all of each function or each function block of the base station device 3 according to the above-described embodiment.
  • the terminal device 1 according to the above-described embodiment can also communicate with the base station device as an aggregate.
  • the base station apparatus 3 in the above-described embodiment may be EUTRAN (Evolved Universal Terrestrial Radio Access Network) and / or NG-RAN (NextGen RAN, NR RAN).
  • EUTRAN Evolved Universal Terrestrial Radio Access Network
  • NG-RAN NextGen RAN, NR RAN
  • the base station apparatus 3 in the above-described embodiment may have a part or all of the functions of the upper node with respect to eNodeB and / or gNB.
  • a part or all of the terminal device 1 and the base station device 3 in the above-described embodiment may be realized as an LSI which is typically an integrated circuit, or may be realized as a chipset.
  • Each functional block of the terminal device 1 and the base station device 3 may be individually chipped, or a part or all of them may be integrated into a chip.
  • the method of making an integrated circuit is not limited to LSI, and may be realized by a dedicated circuit or a general-purpose processor. Further, when an integrated circuit technology that replaces an LSI appears due to advances in semiconductor technology, it is also possible to use an integrated circuit based on this technology.
  • the terminal device is described as an example of the communication device, but the present invention is not limited to this, and is a stationary or non-movable electronic device installed indoors or outdoors.
  • terminal devices or communication devices such as AV equipment, kitchen equipment, cleaning / washing equipment, air conditioning equipment, office equipment, vending machines, and other living equipment.

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  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)
  • Detection And Prevention Of Errors In Transmission (AREA)

Abstract

La présente invention permet d'effectuer une transmission et une réception d'acquittement d'HARQ (HARQ-ACK) efficaces. Un dispositif terminal selon l'invention : cumule une retransmission d'un livre de codes HARQ-ACK jusqu'à ce que des informations de commande indiquant que le livre de codes HARQ-ACK transmis a été détecté soient reçues ; sélectionne un ou plusieurs des livres de codes HARQ-ACK cumulés devant être retransmis de sorte que la somme d'informations HARQ-ACK d'un livre de codes HARQ-ACK devant être nouvellement transmis et d'informations HARQ-ACK des livres de codes HARQ-ACK devant être retransmis ne dépasse pas une première valeur ; et transmet le livre de codes HARQ-ACK devant être nouvellement transmis et le ou les livres de codes HARQ-ACK sélectionnés devant être retransmis sur un seul PUCCH.
PCT/JP2020/008212 2019-03-13 2020-02-28 Dispositif terminal, dispositif station de base, et procédé de communication WO2020184209A1 (fr)

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