WO2018003530A1 - 端末装置、基地局装置、通信方法、および、集積回路 - Google Patents
端末装置、基地局装置、通信方法、および、集積回路 Download PDFInfo
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- WO2018003530A1 WO2018003530A1 PCT/JP2017/022200 JP2017022200W WO2018003530A1 WO 2018003530 A1 WO2018003530 A1 WO 2018003530A1 JP 2017022200 W JP2017022200 W JP 2017022200W WO 2018003530 A1 WO2018003530 A1 WO 2018003530A1
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- csi
- mode
- transmission
- grant
- terminal device
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B17/00—Monitoring; Testing
- H04B17/30—Monitoring; Testing of propagation channels
- H04B17/309—Measuring or estimating channel quality parameters
- H04B17/336—Signal-to-interference ratio [SIR] or carrier-to-interference ratio [CIR]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
- H04B7/0615—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
- H04B7/0619—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
- H04B7/0621—Feedback content
- H04B7/0626—Channel coefficients, e.g. channel state information [CSI]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
- H04B7/0615—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
- H04B7/0619—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
- H04B7/0621—Feedback content
- H04B7/063—Parameters other than those covered in groups H04B7/0623 - H04B7/0634, e.g. channel matrix rank or transmit mode selection
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/10—Scheduling measurement reports ; Arrangements for measurement reports
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0446—Resources in time domain, e.g. slots or frames
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/21—Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
Definitions
- the present invention relates to a terminal device, a base station device, a communication method, and an integrated circuit.
- LTE Long Term Evolution
- EUTRA Evolved Universal Terrestrial Radio Access
- 3GPP Third Generation Partnership Project
- a base station apparatus is also called eNodeB (evolvedvolveNodeB)
- UE UserUEEquipment
- 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 apparatus may manage a plurality of cells.
- One embodiment of the present invention provides a terminal device, a base station device, a communication method, and an integrated circuit that can efficiently transmit channel state information.
- the aspect of the present invention takes the following measures. That is, the terminal apparatus according to the first aspect of the present invention includes a channel measurement unit that derives CSI, and a transmission unit that transmits the CSI, and the CSI reference resource (CSI reference resource) or the first before the CSI reference resource.
- the terminal device determines the content of the CSI based on a type of a downlink physical channel allocated nearby.
- the base station apparatus in the 2nd aspect of this invention is provided with the channel measurement part which derives CSI, and the receiving part which receives the said CSI, From CSI reference resource (CSI
- the communication method of the terminal device in the 3rd aspect of this invention derives CSI, transmits the said CSI, and assigns it to the nearest before a CSI reference resource (CSI
- the content of the CSI is determined based on a downlink physical channel type.
- the communication method of the base station apparatus in the 4th aspect of this invention is CSI deriving, receiving the said CSI, and the CSI reference resource (CSI
- an integrated circuit mounted on a terminal device comprising: a channel measurement circuit for deriving CSI; and a transmission circuit for transmitting the CSI; and a CSI reference resource (CSI reference) resource) or the type of the downlink physical channel allocated closest to the CSI reference resource, the content of the CSI is determined.
- CSI reference CSI reference resource
- an integrated circuit mounted on a base station apparatus comprising: a channel measurement circuit for deriving CSI; and a receiving circuit for receiving the CSI; and a CSI reference resource (CSI The content of the CSI is determined based on the type of the downlink physical channel allocated closest to the reference resource) or the CSI reference resource.
- channel state information can be transmitted efficiently.
- FIG. 1 shows another example which determines the content of periodic CSI, when the 1st periodic CSI reporting parameter in aspect E of this embodiment is set in common with respect to PDSCH and sPDSCH.
- FIG. 1 is a conceptual diagram of a wireless communication system in the present embodiment.
- the radio communication system includes terminal apparatuses 1A to 1C and a base station apparatus 3.
- the terminal devices 1A to 1C are also referred to as terminal devices 1.
- the following uplink physical channels are used in uplink wireless communication from the terminal device 1 to the base station device 3.
- the uplink physical channel is used to transmit information output from an upper layer.
- -PUCCH Physical Uplink Control Channel
- SPUCCH short Physical Uplink Control Channel
- PUSCH Physical Uplink Shared Channel
- SPUSCH Short Physical Uplink Shared Channel
- PRACH Physical Random Access Channel
- SPRACH short Physical Random Access Channel
- PUCCH and / or sPUCCH are used for transmitting uplink control information (UCI).
- PUCCH may include sPUCCH.
- the uplink control information may include channel state information (CSI) for the downlink. Further, the uplink control information may include a scheduling request (SR) used to request a UL-SCH resource. Further, the uplink control information may include HARQ-ACK (Hybrid Automatic Repeat request ACKnowledgement).
- CSI channel state information
- SR scheduling request
- HARQ-ACK Hybrid Automatic Repeat request ACKnowledgement
- HARQ-ACK may indicate HARQ-ACK for downlink data (Transport block, Medium Access Control, Protocol, Data, Unit, MAC-PDU, Downlink-Shared Channel, DL-SCH, Physical Downlink Shared Channel, PDSCH).
- HARQ-ACK may indicate ACK (acknowledgement, positive-acknowledgment) or NACK (negative-acknowledgement) for downlink data.
- the CSI may also be composed of a channel quality indicator (CQI: “Channel quality indicator”), a precoding matrix indicator (PMI: “Precoding” Matrix “Indicator”), and / or a rank indication (RI: “Rank” Indication).
- PUSCH and / or sPUSCH is used for transmitting uplink data (Uplink-Shared Channel: UL-SCH).
- PUSCH may include sPUSCH.
- the PUSCH may also be used to transmit HARQ-ACK and / or CSI along with uplink data.
- the PUSCH may be used to transmit only CSI, or only HARQ-ACK and CSI. That is, PUSCH may be used to transmit only uplink control information.
- the base station device 3 and the terminal device 1 may exchange (transmit / receive) signals in a higher layer.
- the base station apparatus 3 and the terminal apparatus 1 may transmit and receive RRC signaling (also referred to as RRC message and RRC information) in a radio resource control (Radio Resource Control: RRC) layer.
- RRC Radio Resource Control
- the base station device 3 and the terminal device 1 may exchange (transmit / receive) MAC control elements in a MAC (Medium Access Control) layer.
- the RRC signaling and / or the MAC control element is also referred to as a higher layer signal.
- the “upper layer parameter”, “upper layer message”, “upper layer signal”, “upper layer information”, and “upper layer information element” are the same. It may be.
- PUSCH may be used to transmit RRC signaling and MAC control elements.
- the RRC signaling transmitted from the base station apparatus 3 may be common signaling for a plurality of terminal apparatuses 1 in the cell.
- the RRC signaling transmitted from the base station device 3 may be signaling dedicated to a certain terminal device 1 (also referred to as dedicated signaling). That is, user device specific (user device specific) information may be transmitted to a certain terminal device 1 using dedicated signaling.
- PRACH and / or sPRACH are used to transmit a random access preamble.
- PRACH may include sPRACH.
- the PRACH (or random access procedure) is used mainly for the terminal device 1 to synchronize with the base station device 3 in the time domain.
- PRACH (or random access procedure) includes initial connection establishment (initial connection establishment) procedure, handover procedure, connection re-establishment (connection re-establishment) procedure, synchronization for uplink transmission (timing adjustment), and scheduling request. It may also be used for transmission of (PUSCH resource request, UL-SCH resource request).
- the following uplink physical signals are used in uplink wireless communication.
- the uplink physical signal is not used for transmitting information output from the higher layer, but is used by the physical layer.
- UL RS Uplink Reference Signal
- DMRS Demodulation Reference Signal
- SRS Sounding Reference Signal
- DMRS relates to transmission of PUSCH, sPUSCH, and / or PUCCH. That is, DMRS may be time-multiplexed with PUSCH, sPUSCH, or PUCCH.
- the base station apparatus 3 may use DMRS to perform PUSCH, sPUSCH, or PUCCH channel correction.
- transmitting both PUSCH and DMRS is also simply referred to as transmitting PUSCH (transmitting on PUSCH).
- transmitting both sPUSCH and DMRS is also simply referred to as transmitting sPUSCH (performing transmission on sPUSCH).
- transmitting both PUCCH and DMRS is also simply referred to as transmitting PUCCH (performing transmission on PUCCH).
- SRS is not related to PUSCH or PUCCH transmission.
- the base station apparatus 3 may use SRS in order to measure the uplink channel state.
- the following downlink physical channels are used in downlink wireless communication from the base station apparatus 3 to the terminal apparatus 1.
- the downlink physical channel is used to transmit information output from an upper layer.
- PBCH Physical Broadcast Channel
- PCFICH Physical Control Format Indicator Channel
- PHICH Physical Hybrid automatic repeat request Indicator Channel
- PDCCH Physical Downlink Control Channel
- EPDCCH Enhanced Physical Downlink Control Channel
- SPDCCH short Physical Downlink Control Channel, PDCCH for short TTI
- PDSCH Physical Downlink Shared Channel
- SPDSCH Short Physical Downlink Shared Channel
- PMCH Physical Multicast Channel
- the PBCH is used to broadcast a master information block (Master Information Block: MIB, Broadcast Channel: BCH) commonly used in the terminal device 1.
- MIB Master Information Block
- BCH Broadcast Channel
- PCFICH is used for transmitting information indicating a region (OFDM symbol) used for transmission of PDCCH.
- the PHICH is used to transmit an HARQ indicator (HARQ feedback, response information) indicating ACK (ACKnowledgement) or NACK (Negative ACKnowledgement) for uplink data (Uplink Shared Channel: UL-SCH) received by the base station apparatus 3. It is done.
- HARQ indicator HARQ feedback, response information
- ACK acknowledgement
- NACK Negative ACKnowledgement
- the PDCCH, EPDCCH, and / or sPDCCH are used to transmit downlink control information (Downlink Control Information: DCI).
- the PDCCH may include an EPDCCH.
- the PDCCH may include sPDCCH.
- a plurality of DCI formats may be defined for downlink control information transmitted on PDCCH, EPDCCH, and / or sPDCCH. That is, a field for downlink control information may be defined in the DCI format and mapped to information bits.
- the DCI format for downlink is also referred to as downlink DCI, downlink grant, and / or downlink assignment.
- the DCI format for uplink is also referred to as uplink DCI, uplink grant, and / or uplink assignment.
- the DCI grant may include a downlink grant (DL grant) and an uplink grant (UL grant).
- DCI included in PDCCH and EPDCCH may include a DL grant for PDSCH.
- the DCI included in the sPDCCH may include a DL grant for the sPDSCH.
- DCI including DL grant for sPDSCH may be referred to as sDCI (shortened DCI).
- DCI including UL grant for sPUSCH may be referred to as sDCI.
- the PDCCH may include sDCI.
- the EPDCCH may include sDCI.
- one DL grant may be used for scheduling one PDSCH in one cell.
- the DL grant may be used for scheduling the PDSCH in the same subframe as the subframe in which the DL grant is transmitted.
- One DL grant may be used for scheduling one or more sPDSCHs in one cell.
- the DL grant may be used for scheduling sPDSCH within the same sTTI as the sTTI (shortened Transmission Time Interval) in which the DL grant is transmitted.
- the DL grant may include information related to downlink allocation for one or a plurality of terminal devices 1. That is, the DL grant includes frequency allocation information (Resource allocation), MCS (Modulation and Coding), number of transmission antenna ports, scramble identity (SCID: Scramble Identity), number of layers, new data It may include at least one of an indicator (New Data Indicator), RV (Redundancy Version), number of transport blocks, precoder information, and transmission scheme information.
- frequency allocation information Resource allocation
- MCS Modulation and Coding
- SCID Scramble Identity
- new data It may include at least one of an indicator (New Data Indicator), RV (Redundancy Version), number of transport blocks, precoder information, and transmission scheme information.
- subcarrier spacing and / or symbol length constituting the TTI and the subcarrier spacing and / or symbol length constituting the sTTI may be different.
- a DCI format used for scheduling one PUSCH in one cell for example, DCI format 0 and / or DCI format 4, hereinafter, a first UL grant, a first UL DCI. May also be defined.
- the first UL grant may include a carrier indicator field (CIF: “Carrier Indicator Field”). Further, the first UL grant may include information on a transmission power command (TPC command: TransmissionTransPower Control Command) for the scheduled PUSCH. Moreover, the information regarding the cyclic shift with respect to DMRS (DMRS relevant to transmission of PUSCH) may be contained in 1st UL grant.
- the first UL grant may include information on MCS (modulation and coding scheme) and / or information on the redundancy version. Further, the first UL grant may include information on resource block assignment (Resource block assignment) and / or information on hopping resource assignment. Further, the first UL grant may include information (CSI request) used to request CSI transmission. Further, the first UL grant may include information (SRS request) used to request transmission of SRS.
- TPC command TransmissionTransPower Control Command
- the first UL grant may be defined as a DCI common to a plurality of terminal devices 1 and / or a DCI dedicated to a certain terminal device 1. That is, the first UL grant may be transmitted in the common search space and / or the user equipment specific search space. The first UL grant may be transmitted on the PDCCH and / or the EPDCCH. Further, the CRC parity bit added to the first UL grant may be scrambled by RNTI, which will be described later.
- the first UL grant may be used to specify a setting for a certain subframe. That is, the first UL grant may be used to indicate a setting commonly used in a certain subframe. That is, the setting indicated using the first UL grant may be effective for each subframe. That is, the first UL grant may be a subframe specific UL grant. That is, when the PUSCH is scheduled using the first UL grant, the terminal device 1 may perform transmission on the scheduled PUSCH in a certain subframe (using all the subframes). .
- UL grant at least information related to frequency resource allocation to PUSCH, sPUSCH, and / or sPDCCH (for example, information related to allocation of physical resource block to PUSCH, sPUSCH, and / or sPDCCH).
- An included DCI format (hereinafter also referred to as a second UL grant or a second UL DCI) may be defined. That is, the second UL grant may be used for scheduling of at least PUSCH, sPUSCH, and / or sPDCCH.
- the second UL grant may include information related to bandwidth for scheduled PUSCH, scheduled sPUSCH, and / or scheduled sPDCCH. That is, the second UL grant may include information related to scheduled bandwidth for transmission on PUSCH, transmission on sPUSCH, and / or transmission on sPDCCH.
- the second UL grant includes a scheduled PUSCH, a scheduled sPUSCH, and / or a physical resource block start position for the scheduled sPDCCH (and / or an end position, eg, a length from the start position. Information) may be included.
- the second UL grant may include information for indicating a physical resource block for the scheduled PUSCH, the scheduled sPUSCH, and the scheduled sPDCCH.
- the second UL grant may include a carrier indicator field (CIF: “Carrier Indicator Field”). Further, the second UL grant may include information on a transmission power command (TPC command: TransmissionTransPower Control Command) for the scheduled PUSCH. Further, the second UL grant may include information related to the transmission power command for the scheduled sPUSCH. Further, the second UL grant may include information on a cyclic shift for DMRS (PUSCH and / or DMRS related to transmission of sPUSCH). The second UL grant may include information on MCS (modulation and coding scheme) and / or information on the redundancy version. Further, the second UL grant may include information on resource block assignment (Resource block assignment) and / or information on hopping resource assignment. Also, the second UL grant may include information (CSI) request) used to request CSI transmission. The second UL grant may include information (SRSSrequest) used to request transmission of SRS.
- TPC command TransmissionTransPower Control Command
- the information (partial or all information) transmitted using the second UL grant uses an upper layer signal (for example, a signal in the MAC layer and / or a signal in the RRC layer). May be transmitted.
- an upper layer signal for example, a signal in the MAC layer and / or a signal in the RRC layer. May be transmitted.
- the downlink control information as described above is transmitted using the second UL grant.
- the downlink control information transmitted using the second UL grant is an upper layer signal. May be used to transmit.
- the second UL grant may be defined as a DCI (UL grant, Common UL grant, Non-UE specific UL grant) common to a plurality of terminal devices 1. That is, the second UL grant may be transmitted only in the common search space, which will be described later. Further, the second UL grant may be transmitted using only the PDCCH and / or the EPDCCH.
- DCI UL grant, Common UL grant, Non-UE specific UL grant
- the CRC parity bit added to the second UL grant may be scrambled by RNTI, which will be described later.
- the CRC parity bit added to the second UL grant may be scrambled by the first UL-RNTI.
- the search space (for example, common search space) in which the second UL grant is transmitted may be provided by at least the first UL-RNTI.
- the second UL grant may be used to define a setting for a certain subframe. That is, the second UL grant may be used to indicate a setting commonly used in a certain subframe. That is, the setting indicated using the second UL grant may be effective for one or more subframes.
- the second UL grant may be a subframe specific UL grant (a sub-frame specific UL grant). That is, when the PUSCH is scheduled using the second UL grant, the terminal device 1 may perform transmission on the scheduled PUSCH in a certain subframe (using all the subframes). .
- the third UL grant may include information related to transmission time interval (Transmission Time Interval: TTI) assignment for transmission on PUSCH and / or sPUSCH. That is, the third UL grant may be used at least for scheduling of PUSCH and / or sPUSCH.
- TTI Transmission Time Interval
- the third UL grant may include information related to the length of the transmission time interval for the scheduled PUSCH and / or the scheduled sPUSCH. Also, the third UL grant may include information related to the location of the DMRS transmitted with the scheduled PUSCH. Also, the third UL grant may include information related to the location of the DMRS transmitted with the scheduled sPUSCH.
- the third UL grant may include information on DMRS (for example, information on cyclic shift of DMRS) transmitted together with the scheduled PUSCH.
- the third UL grant may include information regarding DMRS (for example, information regarding cyclic shift of DMRS) transmitted together with the scheduled sPUSCH.
- the third UL grant may include information (Grant to Tx delay offset) on delay for transmission on PUSCH and / or transmission on sPUSCH based on reception (detection) of the third UL grant. Good.
- the third UL grant may include a carrier indicator field (CIF: “Carrier Indicator Field”). Further, the third UL grant may include information on a transmission power command (TPC command: TransmissionTransPower Control Command) for the scheduled PUSCH. Further, the third UL grant may include information related to the transmission power command for the scheduled sPUSCH. In addition, the third UL grant may include information on a cyclic shift for DMRS (PUSCH and / or DMRS related to transmission of sPUSCH). The third UL grant may include information on MCS (modulation and coding scheme) and / or information on the redundancy version. Further, the third UL grant may include information on resource block assignment (Resource block assignment) and / or information on hopping resource assignment.
- CIF Carrier Indicator Field
- the third UL grant may include information (CSI request) used to request transmission of CSI. Further, the third UL grant may include information (SRS request) used to request transmission of SRS. The third UL grant may include information (TTI ⁇ ⁇ ⁇ ⁇ index) related to a TTI index, which will be described later.
- the third UL grant may be defined as a dedicated DCI (UL grant, UE-specific UL grant) for a certain terminal device 1. That is, the third UL grant may be transmitted only in the UE specific pace, which will be described later.
- the third UL grant may be transmitted on PDCCH, EPDCCH, and / or sPDCCH. Further, the third UL grant may be transmitted on the PDSCH.
- the CRC parity bit added to the third UL grant may be scrambled by RNTI, which will be described later.
- the CRC parity bit added to the third UL grant may be scrambled by the third UL-RNTI.
- the search space (for example, user equipment specific search space) in which the third UL grant is transmitted may be provided by at least the second UL-RNTI.
- the third UL grant may be used to define a setting for a certain transmission time interval. That is, the third UL grant may be used to indicate a setting used in a certain transmission time interval. That is, the setting indicated using the third UL grant may be effective for one transmission time interval. That is, the second UL grant may be a transmission time interval specific UL grant (a TTI specific UL grant). That is, when the PUSCH is scheduled using the third UL grant, the terminal device 1 performs transmission on the scheduled PUSCH in a certain transmission time interval (in a certain transmission time interval in a certain subframe). You may go.
- the second UL grant may be used for scheduling of the sPDCCH in which the third UL grant is transmitted.
- the terminal device 1 may receive (detect) the third UL grant by receiving (detecting) the second UL grant. Further, the terminal device 1 monitors PDCCH, EPDCCH and / or sPDCCH to which the third UL grant is transmitted by monitoring (decoding and detecting) the PDCCH and / or EPDCCH to which the second UL grant is transmitted. (Decoding and detection) may be performed.
- the PDCCH and / or EPDCCH in which the second UL grant is transmitted is detected by monitoring by the terminal device 1, and the resources of the PDCCH, EPDCCH and / or sPDCCH in which the third UL grant is transmitted are the second
- the information may be directly indicated by information included in the UL grant.
- the PDCCH, EPDCCH and / or sPDCCH resources may include time resources and / or frequency resources. That is, the PDCCH, EPDCCH, and / or sPDCCH in which the third UL grant is transmitted may not be monitored by the terminal device 1.
- the UL grant may include a first UL grant, a second UL grant, and / or a third UL grant.
- the terminal device 1 may receive the downlink data on the PDSCH based on the scheduling. Moreover, when the resource of PUSCH is scheduled using UL grant, the terminal device 1 may transmit uplink data and / or uplink control information using PUSCH based on scheduling. Moreover, when the resource of sPUSCH is scheduled using UL grant, the terminal device 1 may transmit uplink data and / or uplink control information by sPUSCH based on scheduling.
- the terminal device 1 may monitor a set of PDCCH candidates (PDCCH candidates), EPDCCH candidates (EPDCCH candidates), and / or sPDCCH candidates (sPDCCH candidates).
- PDCCH candidates PDCCH candidates
- EPDCCH candidates EPDCCH candidates
- sPDCCH candidates sPDCCH candidates
- the PDCCH may include EPDDCH and / or sPDCCH.
- the PDCCH candidate may indicate a candidate in which the PDCCH may be arranged and / or transmitted by the base station device 3.
- the term “monitor” may include the meaning that the terminal apparatus 1 attempts to decode each PDCCH in the set of PDCCH candidates according to all the DCI formats to be monitored.
- the search space may include a common search space (Common Search Space: CSS).
- the common search space may be defined as a common space for the plurality of terminal devices 1.
- the search space may include a user equipment specific search space (UE-specific “Search Space”: “USS”).
- UE-specific “Search Space” “USS”.
- the user device specific search space may be provided based on at least the C-RNTI assigned to the terminal device 1.
- the terminal device 1 may monitor the PDCCH in the common search space and / or the user device specific search space and detect the PDCCH addressed to itself.
- the RNTI assigned to the terminal device 1 by the base station device 3 may be used for transmission of downlink control information (transmission on the PDCCH).
- a CRC (Cyclic Redundancy Check) parity bit is added to the DCI format (which may be downlink control information), and after the CRC parity bit is added, the CRC parity bit may be scrambled by the RNTI.
- the CRC parity bit added to the DCI format may be obtained from the payload of the DCI format.
- the “CRC parity bit”, “CRC bit”, and “CRC” may be the same.
- “PDCCH in which a DCI format with CRC parity bits added is transmitted” “PDCCH including CRC parity bits and including DCI format”, “PDCCH including CRC parity bits”, and “DCI format The “including PDCCH” may be the same.
- “PDCCH including X” and “PDCCH with X” may be the same.
- the terminal device 1 may monitor the DCI format.
- the terminal device 1 may monitor DCI.
- the terminal device 1 may monitor DCI.
- the terminal device 1 may monitor PDCCH.
- the terminal device 1 tries to decode the DCI format to which the CRC parity bit scrambled by the RNTI is added, and detects the DCI format in which the CRC is successful as the DCI format addressed to itself (also referred to as blind decoding). ) That is, the terminal device 1 may detect the PDCCH accompanied by the CRC scrambled by the RNTI. Further, the terminal device 1 may detect a PDCCH accompanied by a DCI format to which a CRC parity bit scrambled by RNTI is added.
- the RNTI may include a C-RNTI (Cell-Radio Network Temporary Identifier).
- C-RNTI Cell-Radio Network Temporary Identifier
- the C-RNTI may be a unique (unique) identifier for the terminal device 1 used for RRC connection and scheduling identification.
- C-RNTI may also be used for dynamically scheduled unicast transmissions.
- RNTI may include SPS C-RNTI (Semi-Persistent Scheduling C-RNTI).
- SPS C-RNTI Semi-Persistent Scheduling C-RNTI
- the SPS C-RNTI is a unique (unique) identifier for the terminal device 1 used for semi-persistent scheduling.
- SPS C-RNTI may also be used for semi-persistently scheduled unicast transmissions.
- the semi-persistently scheduled transmission may include the meaning of periodically scheduled transmission.
- RNTI may include RA-RNTI (Random Access RNTI).
- RA-RNTI Random Access RNTI
- the RA-RNTI may be an identifier used for transmission of a random access response message. That is, RA-RNTI may be used for transmission of a random access response message in a random access procedure.
- the terminal device 1 may monitor the PDCCH with the CRC scrambled by the RA-RNTI when the random access preamble is transmitted. Also, the terminal device 1 may receive a random access response on the PDSCH based on the detection of the PDCCH accompanied by the CRC scrambled by the RA-RNTI.
- PDCCH with CRC scrambled by C-RNTI may be transmitted in USS or CSS.
- PDCCH with CRC scrambled by SPS C-RNTI may be transmitted in USS or CSS.
- the PDCCH with CRC scrambled by RA-RNTI may be transmitted only in CSS.
- PDSCH is used to transmit downlink data (Downlink Shared Channel: DL-SCH).
- the PDSCH is used for transmitting a system information message.
- the system information message may be cell specific (cell specific) information.
- the system information may be included in RRC signaling.
- PDSCH may also be used to transmit RRC signaling and MAC control elements.
- the PDSCH may be used to transmit the third UL grant.
- the terminal device 1 may receive (detect) the third UL grant (information included in the third UL grant) in the PDSCH scheduled by the base station device 3.
- PMCH is used to transmit multicast data (Multicast Channel: MCH).
- the following downlink physical signals are used in downlink wireless communication.
- the downlink physical signal is not used for transmitting information output from the upper layer, but is used by the physical layer.
- ⁇ Synchronization signal (SS) ⁇ Downlink Reference Signal (DL RS)
- the synchronization signal is used for the terminal device 1 to synchronize the downlink frequency domain and time domain.
- the synchronization signal is arranged in subframes 0, 1, 5, and 6 in the radio frame.
- the synchronization signal is arranged in subframes 0 and 5 in the radio frame.
- the downlink reference signal is used for the terminal device 1 to correct the propagation path of the downlink physical channel.
- the downlink reference signal is used for the terminal apparatus 1 to calculate downlink channel state information.
- the following five types of downlink reference signals are used.
- -CRS Cell-specific Reference Signal
- URS UE-specific Reference Signal
- PDSCH PDSCH
- DMRS Demodulation Reference Signal
- EPDCCH Non-Zero Power Chanel State Information-Reference Signal
- ZP CSI-RS Zero Power Chanel State Information-Reference Signal
- MBSFN RS Multimedia Broadcast and Multicast Service over Single Frequency Network Reference signal
- PRS Positioning Reference Signal
- the downlink physical channel and the downlink physical signal are collectively referred to as a downlink signal.
- the uplink physical channel and the uplink physical signal are collectively referred to as an uplink signal.
- the downlink physical channel and the uplink physical channel are also 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, MCH, UL-SCH and DL-SCH are transport channels.
- a channel used in a medium access control (Medium Access Control: MAC) layer is referred to as a transport channel.
- a transport channel unit used in the MAC layer is also referred to as a transport block (transport block: TB) or a MAC PDU (Protocol Data Unit).
- HARQ HybridbrAutomatic Repeat reQuest
- the transport block is a unit of data that the MAC layer delivers to the physical layer.
- the transport block is mapped to a code word, and an encoding process is performed for each code word.
- FIG. 2 is a diagram showing a configuration of slots in the present embodiment.
- normal CP normal Cyclic Prefix
- extended CP extended Cyclic Prefix
- the physical signal or physical channel transmitted in each slot may be represented by a resource grid.
- the resource grid may be defined by a plurality of subcarriers and a plurality of OFDM symbols.
- a resource grid may be defined by a plurality of subcarriers and a plurality of SC-FDMA symbols.
- Each element in the resource grid is referred to as a resource element.
- the resource element may be represented by a frequency domain index (frequency-domain index: k) and a time domain index (time-domain index: m). That is, a resource element may be identified using a subcarrier number (frequency domain index: k) and an OFDM symbol or SC-FDMA symbol number (time domain index: m).
- the size of the resource block in the frequency domain expressed as the number of subcarriers in the downlink is expressed as N sc and the downlink bandwidth setting expressed as a multiple of N sc is expressed as N RB
- the uplink when the size of the resource block in the frequency domain expressed as the number of subcarriers is expressed as N sc and the uplink bandwidth setting expressed as a multiple of N sc is expressed as N RB
- the OFDM symbol number in one downlink slot is denoted as N symbol
- the SC-FDMA symbol number in one uplink slot is denoted as N symbol
- the resource block may be used to express a mapping of a certain physical channel (such as PDSCH or PUSCH) to a resource element.
- one physical resource block may be defined by 7 consecutive OFDM symbols or SC-FDMA symbols in the time domain and 12 consecutive subcarriers in the frequency domain. Therefore, one physical resource block may be composed of (7 ⁇ 12) resource elements.
- One physical resource block may correspond to one slot in the time domain, and may correspond to 180 kHz in the frequency domain if the subcarrier interval ⁇ f is 15 kHz.
- the subcarrier spacing ⁇ f may be different for each channel and / or for each TTI / sTTI.
- one radio frame may be composed of 20 slots numbered from # 0 to # 19.
- one radio frame may be 10 ms.
- One subframe may be composed of two consecutive slots.
- one subframe may be 1 ms, and subframe n may be composed of slots 2n and 2n + 1. That is, one subframe in the downlink may be 1 ms, and may be composed of 14 OFDM symbols.
- one subframe in the uplink may be 1 ms, and may be composed of 14SC-FDMA symbols.
- one subframe may be composed of 14 OFDM symbols.
- one slot may be configured with 7 OFDM symbols.
- one subframe may be configured with 14SC-FDMA symbols.
- one slot may be configured with 14SC-FDMA symbols.
- a transmission time interval (Transmission Time Interval: TTI) may be defined for transmission in the downlink and / or transmission in the uplink. That is, transmission in the downlink and / or transmission in the uplink may be performed in one transmission time interval (the length of one transmission time interval).
- TTI Transmission Time Interval
- a transmission time interval having a length of 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, and / or 14 (1 subframe) is provided. May be defined. That is, in the downlink, the length of the transmission time interval is 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, and / or 14 (1 subframe). It may be an OFDM symbol. A transmission time interval composed of fewer than 14 OFDM symbols is also referred to as sTTI.
- a transmission time interval having a length of 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, and / or 14 (1 subframe) is provided. May be defined. That is, in the uplink, the length of the transmission time interval is 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, and / or 14 (1 subframe). It may be an SC-FDMA symbol.
- a transmission time interval composed of fewer than 14 OFDM symbols is also referred to as sTTI.
- one or a plurality of serving cells may be set for the terminal device 1.
- a technique in which the terminal device 1 communicates via a plurality of serving cells is referred to as cell aggregation or carrier aggregation.
- one or a plurality of serving cells to be set may include one primary cell and one or a plurality of secondary cells.
- the primary cell may be a serving cell that has undergone an initial connection establishment (initial connectionabestablishment) procedure, a serving cell that has initiated a connection re-establishment procedure, or a cell designated as a primary cell in a handover procedure. Good.
- the primary cell may be a cell used for transmission on the PUCCH.
- the secondary cell may be set at the time when the RRC connection is established or later.
- a carrier corresponding to a serving cell is referred to as a downlink component carrier.
- a carrier corresponding to a serving cell is referred to as an uplink component carrier.
- the downlink component carrier and the uplink component carrier are collectively referred to as a component carrier.
- the terminal device 1 may perform transmission and / or reception on a plurality of physical channels simultaneously in one or a plurality of serving cells (component carriers).
- one physical channel may be transmitted in one serving cell (component carrier) among a plurality of serving cells (component carriers).
- the base station apparatus 3 may set one or a plurality of serving cells using an upper layer signal (for example, RRC signaling).
- an upper layer signal for example, RRC signaling
- one or more secondary cells may be configured to form a set of multiple serving cells with the primary cell.
- the base station apparatus 3 may activate or deactivate one or a plurality of serving cells using a higher layer signal (for example, a MAC control element). For example, the base station device 3 may activate or deactivate one or a plurality of serving cells among one or a plurality of serving cells set using RRC signaling.
- the terminal device 1 may transmit CSI (for example, aperiodic CSI) only for the activated serving cell.
- linking may be defined between the uplink (for example, uplink component carrier) and the downlink (for example, downlink component carrier). That is, even if a serving cell for UL grant is identified based on linking between uplink and downlink (serving cell in which transmission on uplink (s) PUSCH scheduled by UL grant (uplink transmission) is performed) is identified. Good.
- the carrier indicator field does not exist in the downlink assignment or UL grant in this case.
- the downlink assignment received in the primary cell may correspond to the downlink transmission in the primary cell.
- the UL grant received in the primary cell may correspond to uplink transmission in the primary cell.
- the downlink assignment received in a certain secondary cell may correspond to the downlink transmission in the certain secondary cell.
- the UL grant received in a certain secondary cell may correspond to the uplink transmission in the certain secondary cell.
- FIG. 3 is a diagram illustrating an example of physical channel assignment in the downlink according to the present embodiment.
- PDCCH 300A includes one or a plurality of OFDM symbols from the beginning of the subframe (PDCCH length 320A) and is transmitted using a bandwidth equal to the cell bandwidth.
- PDSCH 301A includes an OFDM symbol obtained by removing PDCCH 300A from the entire subframe, and is transmitted using a part of the cell bandwidth.
- the sPDCCHs 323A, 303A, 305A, and 307A include a part of the OFDM symbol excluding the PDCCH 300A from the entire subframe (sPDCCH lengths 321A, 311A, 313A, and 315A), and are transmitted using the sTTI bandwidth 309A.
- sPDSCH 302A, 304A, 306A and 308A include a portion of the OFDM symbol excluding PDCCH 300A from the entire subframe (sPDSCH lengths 322A, 312A, 314A and 316A) and are transmitted using sTTI bandwidth 309A Also good.
- the sPDCCHs 323A, 303A, 305A, and 307A and / or the sPDSCHs 302A, 304A, 306A, and 308A may be transmitted using at least one (part) of the cell bandwidth.
- STTI length 310A includes sPDCCH length 321A and sPDSCH length 322A.
- the sTTI length 317A includes the sPDCCH length 311A and the sPDSCH length 312A.
- the sTTI length 318A includes the sPDCCH length 313A and the sPDSCH length 314A.
- the sTTI length 319A includes the sPDCCH length 315A and the sPDSCH length 316A.
- the sTTI lengths 310A to 319A may be a common value within a subframe.
- the sTTI lengths 310A to 319A may be different within a subframe.
- sPDCCH 323A, 303A, 305A, and 307A may be sPDSCH.
- the length of sPDSCH may be the same as the length of sTTI.
- the sPDCCH 323A corresponding to the sTTI 310A allocated later than the PDCCH 300A may be included in the PDCCH 300A. That is, transmission on sPDCCH 323A may be transmitted using PDCCH 300A. That is, the DL grant for the sPDSCH 302A may be transmitted using the PDCCH 300A.
- the length 310A of the sTTI may include only the length 322A of the sPDSCH 302A.
- the base station apparatus 3 may schedule the PDSCH to the terminal apparatus 1 or may schedule the sPDSCH.
- the transmission mode using the transmission time interval TTI is also referred to as a transmission mode (TTI mode) for PDSCH.
- a transmission mode using the short transmission time interval sTTI is also referred to as a transmission mode (sTTI mode) for sPDSCH.
- the transmission mode of the terminal device 1 is set by upper layer parameters. That is, the base station apparatus 3 transmits transmission mode information (Transmission Mode information) to the terminal device 1 by RRC signaling. Specifically, the base station apparatus 3 may transmit common setting information (Common configuration) or individual setting information (Independent configuration) as transmission mode (TM) information.
- the transmission mode information indicates the transmission mode.
- Common setting information is setting information set in common for PDSCH and sPDSCH.
- the common setting information indicates a transmission mode common to sPDSCH and PDSCH.
- the individual setting information for the PDSCH indicates a transmission mode for the PDSCH.
- the individual setting information for sPDSCH indicates a transmission mode for sPDSCH.
- the terminal device 1 transmits the TTI mode (transmission mode for PDSCH) and the sTTI mode (based on the common setting information). Assume that the same transmission mode is used for both (transmission mode for sPDSCH).
- the terminal device 1 determines the TTI mode as the transmission mode TM3 and determines the sTTI mode as the transmission mode TM3.
- Individual setting information is setting information set individually (flexible and independent) for each of PDSCH and sPDSCH. For example, when the common setting information for the PDSCH indicates the transmission mode 4, the terminal device 1 determines the transmission mode for the TTI mode as TM4. For example, when the common setting information for sPDSCH indicates transmission mode 3, the terminal device 1 determines the transmission mode for the sTTI mode as TM3.
- the transmission mode may be set by a DCI format of DCI (TM independent DCI format, TM-dependent DCI format, etc.) transmitted by PDCCH or sPDCCH. That is, the terminal device 1 selects a DCI format based on the transmission mode, and tries to receive the selected DCI format.
- DCI TM independent DCI format, TM-dependent DCI format, etc.
- the terminal device 1 uses the TTI mode (transmission mode for PDSCH) and the sTTI mode (transmission mode for sPDSCH) based on any one or a plurality of setting information such as common setting information and individual setting information. And decide.
- the CSI reporting mode includes an aperiodic CSI reporting mode and a periodic CSI reporting mode.
- the base station apparatus 3 may set the reporting mode using an upper layer signal (for example, RRC signaling). That is, as an aperiodic CSI reporting mode, mode 1-0, mode 1-1, mode 1-2, mode 2-0, mode 2-2, mode 3-0, mode 3-1 and mode 3-2 Either may be set. Further, any one of mode 1-0, mode 1-1, mode 2-0, and mode 2-1 may be set as the periodic CSI reporting mode.
- an upper layer signal for example, RRC signaling
- the CSI reporting mode may be defined by a combination of CQI feedback type and PMI feedback type.
- Mode XY indicates a combination of CQI feedback type X and PMI feedback type Y.
- the terminal device 1 may execute aperiodic CSI reporting (transmission) using PUSCH in a certain subframe based on the reporting mode (that is, CQI and PMI feedback types). Moreover, the terminal device 1 may perform aperiodic CSI reporting (transmission) using sPUSCH in a certain transmission time interval based on the reporting mode. Moreover, the terminal device 1 may perform periodic CSI reporting (transmission) using PUCCH in a certain subframe based on the reporting mode. Moreover, the terminal device 1 may perform periodic CSI reporting (transmission) using sPUCCH in a certain transmission time interval based on the reporting mode.
- aperiodic CSI reporting mode when the aperiodic CSI reporting mode is set and mode 1-0 is set, only a single wideband CQI (wideband CQI) may be reported in a certain subframe.
- mode 1-2 When mode 1-2 is set, a single wideband CQI (wideband CQI) and a plurality of PMIs (subband PMI) may be reported in a certain subframe.
- mode 2-0 when mode 2-0 is set, even if a single CQI and a single wideband CQI (widebandQCQI) related to the subband selected by the terminal device 1 are reported in a certain subframe. Good. Further, when mode 2-2 is set, in a certain subframe, a single CQI, a plurality of PMIs (subband PMI), and a single wideband CQI (for a subband selected by the terminal device 1). wideband CQI), a single PMI (single PMI) may be reported.
- mode 3-0 when mode 3-0 is set, in a certain subframe, a plurality of CQIs (subband ⁇ ⁇ ⁇ CQI) and a single wideband CQI (wideband CQI) related to the subband set by the base station apparatus 3 are May be reported. Also, when mode 3-1 is set, in a certain subframe, a plurality of CQIs (subbandQCQI), a single wideband CQI (wideband CQI), and a subband set by the base station apparatus 3 A single PMI (single PMI) may be reported.
- mode 3-1 when mode 3-1 is set, in a certain subframe, a plurality of CQIs (subbandQCQI), a single wideband CQI (wideband CQI), and a subband set by the base station apparatus 3 A single PMI (single PMI) may be reported.
- mode 3-2 When mode 3-2 is set, in a certain subframe, a plurality of CQIs (subbandsubCQI), a single wideband CQI (wideband CQI), and a subband set by the base station apparatus 3 Multiple PMIs (subbandsubPMI) may be reported.
- subbandsubCQI CQIs
- wideband CQI wideband CQI
- subbandsubPMI Multiple PMIs
- the subband CQI (subband CQI) is the CQI related to the subband selected by the terminal apparatus 1, the CQI related to the subband set by the base station apparatus 3, and all the subbands included in the downlink bandwidth of the cell. And CQI for each of all subbands included in the bandwidth of the sTTI band.
- the wideband bandwidth defined in the CSI reporting mode for the TTI mode and the wideband bandwidth defined in the CSI reporting mode for the sTTI mode may be set in common or differently.
- the base station apparatus 3 may transmit information used for setting (determining) each wideband bandwidth.
- the wideband bandwidth defined for the CSI reporting mode for the TTI mode may be all of the downlink bandwidth of the cell.
- the base station apparatus 3 may transmit information used to set (determine) the wideband bandwidth defined for the CSI reporting mode for the sTTI mode.
- the wideband bandwidth defined for the CSI reporting mode for the sTTI mode may be the bandwidth of the sTTI band assigned to the terminal device 1.
- the subband bandwidth defined for the CSI reporting mode for the TTI mode and the subband bandwidth defined for the CSI reporting mode for the sTTI mode may be the same or differently set. But you can.
- the subband bandwidth defined for the CSI reporting mode for the TTI mode may be given based on the downlink bandwidth of the cell.
- the subband bandwidth defined for the CSI reporting mode for the sTTI mode may be given based on the bandwidth of the sTTI band.
- the subband is included in the subband selected by the terminal device 1, the subband set by the base station device 3, all the subbands included in the downlink bandwidth of the cell, and the bandwidth of the sTTI band. All subbands may be included.
- the CSI reporting in the present embodiment may include aperiodic CSI reporting and periodic CSI reporting.
- the transmission of aperiodic CSI reporting may be triggered by UL grant or DL grant.
- a field mapped to information (CSI request) used for requesting transmission of CSI is also referred to as a CSI request field.
- the CSI request field may be included in the UL grant.
- the CSI request field may be included in the DL grant.
- the UL grant that includes the CSI request field may be the first UL grant.
- the UL grant including the CSI request field may be a second UL grant.
- the UL grant including the CSI request field may be a third UL grant.
- the CSI request field included in the third UL grant may be replaced with the CSI request field included in the second UL grant.
- the terminal device 1 In periodic CSI reporting, the terminal device 1 periodically transmits CSI.
- Information on PUCCH / sPUCCH resources used for transmission of periodic CSI reporting and / or information for setting an interval (period) may be notified by an upper layer signal (for example, RRC signaling).
- A is an example of determining the content of CSI.
- FIG. 4 is a diagram illustrating an example of determining the CSI content in the aspect A of the present embodiment.
- the CSI content is that the terminal device 1 informs the base station device 3 of the quality status of the downlink physical channel.
- the base station apparatus 3 may schedule downlink data to the terminal apparatus 1 in a frequency band with good channel quality based on the received CSI content.
- the CSI content may include some or all of CQI, PMI, and RI.
- CSI content may be indicated by a CSI reporting mode. That is, different CSI reporting modes may include different CSI content.
- the CSI content may be designated in advance by the RRC signaling from the base station apparatus 3.
- CSI content is also referred to as a reporting type and a feedback type.
- the terminal device 1 may perform CSI reporting in subframe n (405).
- the terminal device 1 may perform measurement for deriving CSI in a subframe nn CQI_ref (403) called a CSI reference resource.
- Measurements for deriving CSI may include channel measurements and interference measurements.
- the terminal device 1 derives CSI by assuming transmission of PDSCH / sPDSCH in the CSI reference resource.
- a CSI reference resource may be defined by a group of downlink physical resource blocks corresponding to a frequency band from which a CQI value is derived.
- the frequency domain of the CSI reference resource may correspond to the entire downlink system bandwidth including all physical resource blocks.
- the terminal device 1 measures the subband CQI (subbandsubCQI) set by the base station device 3
- the frequency domain of the CSI reference resource corresponds to the downlink bandwidth set by the base station device 3. Also good. That is, the terminal device 1 may perform measurement for deriving CSI in a group of physical resource blocks related to the frequency bandwidth corresponding to the CSI reference resource.
- the CSI reference resource may be defined by a downlink subframe or a special subframe nn CQI_ref .
- n CQI_ref value for periodic CSI reporting is such that subframe n ⁇ n CQI_ref corresponds to a valid downlink subframe or valid special subframe prior to subframe n, or prior to 4. Value.
- the CSI reference resource for aperiodic CSI reporting is a valid downlink subframe containing a UL grant that triggers the aperiodic CSI report or It may be a valid special subframe.
- n CQI_ref may be a value of 4.
- the mobile station apparatus 1 considers subframes that satisfy at least the following conditions (X1) to (X3) as valid.
- the downlink subframe in the condition (X1) may include a special subframe.
- -Condition (X1) Instructed as a downlink subframe by the uplink-downlink setting of the serving cell-Condition (X2): When not TM9 and TM10, it is not an MBSFN subframe-Condition (X3): Set If there is no valid downlink subframe or valid special subframe nn CQI_ref corresponding to the uplink subframe n in a certain serving cell, the uplink subframe n of the corresponding serving cell CSI reporting in may be omitted.
- the CSI reference resource in the time domain may include some or all symbols in the subframe.
- the terminal apparatus 1 in the sTTI mode may perform CSI measurement based on the length of the sTTI.
- the terminal device 1 in the sTTI mode may determine the number of OFDM symbols constituting the CSI reference resource based on the length of the sTTI.
- the n CQI_ref value of the CSI reference resource may be set from the base station apparatus 3 in advance. That is, the n CQI_ref value of the CSI reference resource may be set based on the parameter received from the base station apparatus 3.
- the parameter may also relate to downlink sTTI length, sPDSCH length, sPDCCH length, uplink sTTI length, sPUSCH length, and / or sPUCCH length. Good (may be shown).
- the parameter directly indicates the n CQI_ref value.
- CSI reference resources may be defined by RI and PMI.
- the CSI reference resource is a subframe in which CSI is measured.
- the terminal device 1 performs measurement for deriving CSI based on a reference signal such as CRS or CSI-RS in a defined CSI reference resource.
- the terminal apparatus 1 assumes a transmission scheme for PDSCH / sPDSCH corresponding to the set transmission mode.
- the transmission scheme for PDSCH is given based on the TTI mode.
- the transmission scheme for sPDSCH is given based on the sTTI mode.
- the transmission scheme may include MIMO spatial multiplexing and transmission diversity.
- the terminal device 1 may determine the transmission of the RI based on the transmission scheme for the assumed PSDCH / sPDSCH and information on the antenna port. Further, the terminal device 1 may select an optimal PMI based on the determined RI. When calculating the CQI, the terminal device 1 derives the maximum CQI index in which the error rate of the transport block specified by the modulation scheme and the transport block size according to the CQI index does not exceed 0.1. When the terminal apparatus 1 performs RI feedback and / or PMI feedback, the terminal apparatus 1 calculates CQI on the assumption that downlink data is transmitted using the RI and PMI.
- the terminal device 1 derives CSI according to the transmission scheme. That is, the terminal device 1 needs to determine which of the transmission scheme for the PDSCH and the transmission scheme for the sPDSCH corresponds to the CSI feedback.
- the CSI content reported for different transmission schemes is different.
- the downlink physical channel for the terminal device 1 is allocated in the downlink subframe 403 defined in the CSI reference resource, the content of the CSI is based on the type of the allocated downlink physical channel. And a transmission scheme to be assumed for CSI derivation.
- the downlink physical channel type may include PDSCH and sPDSCH.
- the downlink for the terminal device 1 When the downlink physical channel for the terminal device 1 is not allocated in the downlink subframe 403 defined in the CSI reference resource, the downlink for the terminal device 1 allocated closest to the CSI reference resource Based on the type of link physical channel, the content of CSI and the transmission scheme assumed for the derivation of CSI may be determined.
- the terminal device 1 performs CSI reporting in the uplink subframe n (405).
- the downlink subframe 403, that is, the downlink subframe nn CQI_ref may be a CSI reference resource corresponding to the uplink subframe n.
- the terminal device 1 performs measurement for CSI derivation.
- the terminal device 1 may determine the CSI content corresponding to the transmission scheme for the PDSCH, and perform measurement for CSI derivation.
- the terminal apparatus 1 may determine CSI content corresponding to the transmission scheme for sPDSCH and perform measurement for CSI derivation.
- the CSI content and the transmission scheme assumed for CSI derivation may be determined.
- the terminal device 1 may perform measurement for derivation of CSI in the subframe 403 that is a CSI reference resource based on the determined CSI content.
- CSI content may include a part or all of CQI, PMI, and RI.
- the content of CSI may be determined by a transmission scheme for PDSCH or sPDSCH.
- the transmission scheme for PDSCH is MIMO spatial multiplexing
- the transmission scheme for sPDSCH is transmission diversity.
- the terminal device 1 feeds back the CSI content related to the MIMO spatial multiplexing scheduling to the base station device 3 (Reporting) may be used.
- the terminal device 1 transmits the CSI content related to the transmission diversity scheduling to the base station device 3.
- Feedback may be used.
- the CSI content corresponding to the transmission scheme for PDSCH and sPDSCH may be set in advance from base station apparatus 3.
- Aspect B is another example of determining the content of CSI.
- aperiodic CSI reporting may be triggered by a UL grant that includes a CSI request field.
- the terminal device 1 may determine the CSI content based on the type of the downlink physical channel including the UL grant including the CSI request field set to trigger the transmission of the CSI.
- the types of downlink physical channels in aspect B of the present embodiment may include PDCCH and sPDCCH.
- the terminal device 1 determines the CSI content according to the TTI mode (transmission scheme for the PDSCH), and derives the CSI in the CSI reference resource. Measurements may be taken.
- the terminal device 1 determines the CSI content according to the sTTI mode (transmission scheme for sPDSCH), and the CSI reference resource uses the CSI Measurements for derivation may be performed.
- Aspect C is another example of determining the content of CSI.
- the terminal device 1 determines which of the transmission scheme for PDSCH and the transmission scheme for sPDSCH corresponds to the CSI feedback. There is a need.
- the terminal device 1 may determine the transmission scheme assumed for CSI content and CSI derivation based on the transmission scheme of PDSCH or sPDSCH indicated in the detected downlink DCI format (DL grant).
- the transmission scheme assumed for CSI derivation may be a PDSCH or sPDSCH transmission scheme shown in the downlink DCI format (DL grant).
- the DL grant may also trigger CSI reporting. That is, the terminal device 1 receives a DL grant that includes a CSI request field set to trigger transmission of CSI and is used for scheduling of downlink physical channels (PDSCH, sPDSCH). Based on the transmission scheme of the downlink physical channel (PDSCH, sPDSCH) indicated in the received DL grant, the CSI content and the transmission scheme assumed for CSI derivation may be determined.
- the terminal device 1 determines the CSI content and the CSI based on the PDSCH or sPDSCH transmission scheme indicated by the detected DL grant.
- a transmission scheme assumed for derivation of CSI may be determined, and measurement for derivation of CSI may be performed.
- the terminal apparatus 1 can detect the PDSCH indicated by the DL grant detected closest to the CSI reference resource. Based on the transmission scheme of sPDSCH, the CSI content and the transmission scheme assumed for CSI derivation may be determined, and measurement for CSI derivation may be performed.
- the terminal apparatus 1 determines the CSI content corresponding to the MIMO spatial multiplexing, and derives the CSI. Measurement may be performed.
- the terminal apparatus 1 determines the CSI content according to the transmission diversity, and performs measurement for CSI derivation. You may go.
- CSI content corresponding to MIMO spatial multiplexing or transmission diversity may be set in advance by higher layer signaling.
- the CSI content corresponding to MIMO spatial multiplexing or transmission diversity may be determined based on a CSI reporting mode that can support MIMO spatial multiplexing or transmission diversity set in the terminal apparatus 1.
- the PUSCH, PUCCH, sPUSCH, or sPUCCH resource used for CSI reporting may be pre-assigned by RRC signaling from the base station apparatus 3.
- Resources used for CSI reporting may be linked to DL grant resources and / or associated DL data (PDSCH, sPDSCH) resources.
- Aspect D is another example of determining the content of CSI.
- the CSI content may be specified by the CSI reporting mode notified from the upper layer.
- the base station device 3 transmits a CSI reporting mode (CSI report mode) to the terminal device 1 by RRC signaling. Specifically, the base station apparatus 3 may transmit an aperiodic CSI reporting parameter (cqi-ReportModeAperiodic) as information indicating an aperiodic CSI reporting mode (Aperiodic CSI reporting mode). Moreover, the base station apparatus 3 may transmit a periodic CSI reporting parameter (cqi-FormatIndicatorPeriodic) as information indicating a periodic CSI reporting mode (Periodic CSI reporting mode).
- the periodic CSI reporting parameter notifies which type of wideband CQI (wideband CQI) or subband CQI (UE selected subband CQI) is used.
- the wideband CQI and the subband CQI are CQI feedback.
- the terminal device 1 may determine a PMI feedback type (PMI Feedback Type) based on the transmission mode. That is, the terminal device 1 may determine whether to transmit PMI based on the transmission mode. Further, a single PMI and / or multiple PMIs may be transmitted. Alternatively, the terminal device 1 may determine whether to transmit the RI based on the transmission mode. That is, the periodic CSI reporting mode of the terminal device 1 is implicitly given according to the periodic CSI reporting parameter and the transmission mode.
- PMI Feedback Type PMI Feedback Type
- FIG. 5 is an example for explaining a channel state information transmission method according to aspect D of the present embodiment.
- the base station apparatus 3 may set the first CSI reporting parameter and the second CSI reporting parameter using an upper layer signal (for example, RRC signaling).
- the first CSI reporting parameter may be used to set a CSI reporting mode for a transmission mode (TTI mode) for PDSCH.
- the second CSI reporting parameter may be used to set a CSI reporting mode for a transmission mode (sTTI mode) for sPDSCH.
- the first CSI reporting parameter may indicate the first CSI reporting mode.
- the second CSI reporting parameter may indicate a second CSI reporting mode.
- the terminal device 1 receives (i) the first CSI reporting parameter indicating the first CSI reporting mode and the second CSI reporting parameter indicating the second CSI reporting mode, and (ii) PDSCH Select one of the first CSI reporting parameter and the second CSI reporting parameter based on the transmission mode and the transmission mode of sPDSCH, and (iii) based on the CSI reporting mode corresponding to the selected one,
- the CSI may be derived.
- the base station apparatus 3 transmits the first CSI reporting parameter and the second CSI reporting parameter to the terminal apparatus 1 using RRC signaling.
- step 501 of FIG. 5A it is determined which of the TTI mode and the sTTI mode the terminal apparatus 1 is in.
- the base station apparatus 3 may notify the terminal apparatus 1 using RRC signaling as information indicating the TTI mode or the sTTI mode.
- the terminal device 1 sets the sTTI mode based on reception of RRC signaling that notifies the sTTI mode.
- step 502 of FIG. 5A the terminal device 1 in which the sTTI mode is set up from the two CSI reporting modes based on the first CSI reporting parameter received in step 500A of FIG. 5A and the second CSI reporting parameter,
- the second CSI reporting mode for the transmission mode of sPDSCH may be selected, and CSI reporting may be performed based on the selected second CSI reporting mode.
- the base station device 3 transmits the first CSI reporting parameter and the second CSI reporting parameter to the terminal device 1 using RRC signaling.
- step 503 of FIG. 5B it is determined which of the TTI mode and the sTTI mode the terminal apparatus 1 is in.
- the base station apparatus 3 may notify the terminal apparatus 1 using RRC signaling as information indicating the TTI mode or the sTTI mode.
- the terminal device 1 sets the TTI mode based on reception of RRC signaling that notifies the TTI mode.
- the terminal device 1 in which the TTI mode is set is obtained from two CSI reporting modes based on the first CSI reporting parameter received in Step 500B of FIG. 5B and the second CSI reporting parameter.
- a first CSI reporting mode for the PDSCH transmission mode may be selected, and CSI reporting may be performed based on the selected first CSI reporting mode.
- the example as shown in FIG. 5 may be used for aperiodic CSI reporting. Also, the example shown in FIG. 5 may be used for periodic CSI reporting.
- FIG. 6 is a sequence diagram illustrating an example of a channel state information transmission method according to aspect D of the present embodiment.
- FIG. 6 may be an example that limits FIG.
- the terminal device 1 is set with two CSI reporting parameters.
- the terminal device 1 is not limited to the sTTI mode or the TTI mode.
- a CSI reporting parameter that can support MIMO spatial multiplexing may be selected from the first CSI reporting parameter and the second CSI reporting parameter, and CSI reporting for scheduling of MIMO spatial multiplexing may be performed.
- the base station apparatus 3 transmits the first CSI reporting parameter and the second CSI reporting parameter to the terminal apparatus 1 using RRC signaling.
- the first CSI reporting parameter may be set for MIMO spatial multiplexing.
- the first CSI reporting parameter is set in a transmission scheme for PDSCH that is MIMO spatially multiplexed.
- the terminal device 1 receives RRC signaling notifying the sTTI mode and sets the sTTI mode.
- the terminal device 1 in which the sTTI mode is set is selected from the two CSI reporting modes based on the first CSI reporting parameter and the second CSI reporting parameter received in step 600A of FIG. 6A.
- the CSI reporting may be performed using the first CSI reporting mode for the PDSCH transmission mode corresponding to MIMO spatial multiplexing.
- the base station apparatus 3 transmits the first CSI reporting parameter and the second CSI reporting parameter to the terminal apparatus 1 using RRC signaling.
- the first CSI reporting parameter may be set for MIMO spatial multiplexing.
- the first CSI reporting parameter is set in a transmission scheme for PDSCH that is MIMO spatially multiplexed.
- the terminal device 1 receives RRC signaling notifying the TTI mode, and sets the TTI mode.
- the terminal device 1 in which the TTI mode is set is selected from the two CSI reporting modes based on the first CSI reporting parameter and the second CSI reporting parameter received in step 600B of FIG. 6B.
- the CSI reporting may be performed using the first CSI reporting mode for the PDSCH transmission mode corresponding to MIMO spatial multiplexing.
- the base station apparatus 3 may set one common first CSI reporting parameter using an upper layer signal (for example, RRC signaling).
- the first CSI reporting parameter may indicate a first CSI reporting mode.
- the first CSI reporting parameter may indicate one CQI feedback type.
- the terminal device 1 receives the first CSI reporting parameter, and based on the PDSCH transmission mode (TTI mode), the sPDSCH transmission mode (sTTI mode), and the first CSI reporting parameter , CSI content may be determined.
- FIG. 7 is a diagram illustrating an example of determining the aperiodic CSI content when the first aperiodic CSI reporting parameter in the aspect E of the present embodiment is set in common.
- the first CSI reporting parameter may be a first aperiodic CSI reporting parameter.
- the common first aperiodic CSI reporting parameter may indicate the same CSI reporting mode for PDSCH and sPDSCH. That is, the base station device 3 transmits the first aperiodic CSI reporting parameter to the terminal device 1.
- the terminal device 1 receives the first aperiodic CSI reporting parameter used to determine the CSI content, and based on the PDSCH transmission mode, the sPDSCH transmission mode, and the first aperiodic CSI reporting parameter , CSI content may be determined.
- FIG. 7A shows an example in which the transmission mode for PDSCH and the transmission mode for sPDSCH are different.
- FIG. 7B shows an example in which the transmission mode for PDSCH and the transmission mode for sPDSCH are the same.
- the terminal device 1 determines which of the transmission mode for the PDSCH and the transmission mode for the sPDSCH is to be measured for the aperiodic CSI.
- the terminal apparatus 1 may determine whether to perform the aperiodic CSI measurement for the transmission mode for the PDSCH and the transmission mode for the sPDSCH based on the aspect A, aspect B, or aspect C. Good.
- the terminal device 1 determines the aperiodic CSI reporting mode and the CSI content to be fed back based on the determined PDSCH or sPDSCH transmission mode and the first aperiodic CSI reporting parameter.
- the terminal device 1 when the first aperiodic CSI reporting mode is supported for the determined transmission mode of PDSCH or sPDSCH, the terminal device 1 performs CSI reporting based on the first aperiodic CSI reporting mode. May be. Whether the first aperiodic CSI reporting mode is supported for a certain transmission mode may be defined in advance by a specification or the like.
- the terminal device 1 when the first aperiodic CSI reporting mode is not supported for the determined transmission mode of PDSCH or sPDSCH, the terminal device 1 performs CSI reporting based on the first aperiodic CSI reporting mode.
- the mode may be switched in the horizontal direction as shown by the arrow in the example shown in FIG. 7A.
- the base station apparatus 3 sets the transmission mode for PDSCH to the transmission mode TM4 and the transmission mode for sPDSCH to the transmission mode TM2, and transmits RRC signaling indicating the setting to the terminal apparatus 1.
- the transmission mode TM4 of PDSCH mode 1-2, mode 2-2, mode 3-1, mode 3-2 and mode 1-1 are supported.
- the transmission mode TM2 of sPDSCH mode 2-0, mode 3-0 and mode 1-0 are supported.
- the first aperiodic CSI reporting parameter indicates mode 3-2.
- the terminal apparatus 1 assumes the PDSCH transmission mode for CSI derivation, the CSI derivation is performed based on the set first aperiodic CSI reporting mode 3-2 to the base station apparatus 3.
- the CSI may be reported.
- the CSI may be reported to the base station apparatus 3 based on the mode 3-0.
- the mode 3-0 may be determined by looking for the same lateral mode (same CQI feedback type but different PMI feedback type mode) as mode 3-2 in FIG. 7A.
- Mode 3-0 differs from mode 3-2 in PMI feedback type, but the CQI feedback type is the same. That is, when the first aperiodic CSI reporting mode is not supported for the transmission mode of sPDSCH, the aperiodic CSI reporting mode for the transmission mode of sPDSCH is the first aperiodic CSI set by the base station apparatus 3.
- the mode may be switched from the mode 3-2 which is the CSI reporting mode to the mode 3-0. That is, the terminal apparatus 1 may report CSI to the base station apparatus 3 based on the mode 3-0.
- FIG. 7B is a diagram illustrating an example in which the base station device 3 sets the transmission mode for each of the PDSCH and sPDSCH in the terminal device 1 to one common transmission mode.
- the same aperiodic CSI reporting mode is supported for the PDSCH transmission mode and the sPDSCH transmission mode set to the common transmission mode. That is, the terminal device 1 may report CSI to the base station device 3 based on the first aperiodic CSI reporting mode.
- the terminal device 1 changes the first aperiodic CSI reporting mode based on the set first aperiodic CSI reporting mode as shown by the arrow in the example shown in FIG. 7B.
- the mode may be switched to a vertical mode (different CQI feedback type but the same PMI feedback type mode).
- the terminal device 1 switches to a mode (mode 1-0, mode 1-1, and mode 1-2) including wideband CQI based on the first aperiodic CSI reporting mode. May be.
- CSI reporting for the sPDSCH transmission mode may be performed using a mode (mode 1-0, mode 2-0, mode 3-0) including a wideband CQI with a small payload size (number of bits) indicating the CSI content. Good.
- the base station apparatus 3 sets the transmission mode for each of PDSCH and sPDSCH to a common transmission mode TM2, and transmits RRC signaling indicating the setting to the terminal apparatus 1. That is, mode 2-0, mode 3-0, and mode 1-0 are supported for transmission mode TM2 of PDSCH and sPDSCH. Further, the common first aperiodic CSI reporting mode is set to mode 3-0. When the terminal apparatus 1 assumes the PDSCH transmission mode for CSI derivation, the CSI derivation is performed based on the set mode 3-0 which is the first aperiodic CSI reporting mode. CSI may be reported.
- the CSI derivation is performed based on the set mode 3-0 which is the first aperiodic CSI reporting mode. CSI may be reported. Further, when the terminal apparatus 1 assumes the transmission mode of sPDSCH for CSI derivation, the CSI derivation is the same as the mode 3-0 which is the first aperiodic CSI reporting mode set in FIG. 7B. May be switched to mode 1-0 including the wideband CQI.
- the aperiodic CSI reporting mode for the transmission mode of sPDSCH may be switched from mode 3-0, which is the first aperiodic CSI reporting mode set by base station apparatus 3, to mode 1-0. That is, the terminal device 1 may report CSI to the base station device 3 based on the mode 1-0.
- the first CSI reporting parameter may indicate one CQI feedback type.
- the first CSI reporting parameter may indicate one common CQI feedback type. That is, the terminal device 1 may determine the CSI content based on the combination of the CQI feedback type given by the first CSI reporting parameter and the PMI feedback type determined by the PDSCH or sPDSCH transmission mode.
- FIG. 8 is a diagram illustrating an example of determining the content of the periodic CSI when the first periodic CSI reporting parameter in the aspect E of the present embodiment is commonly set for the PDSCH and the sPDSCH.
- the first CSI reporting parameter may be a first periodic CSI reporting parameter.
- the common first periodic CSI reporting parameter may indicate the same CQI feedback type for PDSCH and sPDSCH. That is, the base station device 3 transmits the first periodic CSI reporting parameter to the terminal device 1.
- FIG. 8A shows an example in which the transmission mode for PDSCH and the transmission mode for sPDSCH are different.
- FIG. 8B is an example when the transmission mode for PDSCH and the transmission mode for sPDSCH are the same.
- the terminal device 1 determines which of the transmission mode for the PDSCH and the transmission mode for the sPDSCH should be measured for the periodic CSI.
- the terminal device 1 may determine which of the transmission mode for the PDSCH and the transmission mode for the sPDSCH is to be measured based on the aspect A, aspect B, or aspect C.
- the terminal device 1 determines the periodic CSI reporting mode and the CSI content to be fed back based on the determined PDSCH or sPDSCH transmission mode and the first periodic CSI reporting parameter.
- the first periodic CSI reporting parameter may indicate a common CQI feedback type for the transmission mode for PDSCH and the transmission mode for sPDSCH.
- the PMI feedback type of CSI reporting for PDSCH is determined by the transmission mode of PDSCH.
- the PMI feedback type of CSI reporting for sPDSCH is determined by the transmission mode of sPDSCH. That is, the terminal device 1 determines the CSI content to be fed back based on the combination of the common CQI feedback type and the PMI feedback type determined by the transmission mode.
- the base station apparatus 3 sets the transmission mode for PDSCH to the transmission mode TM4 and the transmission mode for sPDSCH to the transmission mode TM2, and transmits RRC signaling indicating the setting to the terminal apparatus 1.
- mode 1-2 and mode 2-1 are supported for PDSCH transmission mode TM4.
- mode 2-0 and mode 1-0 are supported.
- the common first periodic CSI reporting parameter is set to the subband CQI feedback type.
- the PMI feedback type used for CSI reporting is determined to be a single PMI (single PMI). That is, mode 2-1 may be determined.
- the terminal device 1 may report to the base station device 3 based on the determined contention shown in mode 2-1.
- the PMI feedback type used for CSI reporting is determined to be no PMI (No PMI). That is, mode 2-0 may be determined.
- the terminal apparatus 1 may report to the base station apparatus 3 based on the determined contention indicated in mode 2-0.
- FIG. 8B is a diagram illustrating an example in which the base station apparatus 3 sets the transmission mode for each of the PDSCH and sPDSCH in the terminal apparatus 1 to one common transmission mode.
- the same periodic CSI reporting mode is supported for the PDSCH transmission mode and the sPDSCH transmission mode set to the common transmission mode. That is, the terminal apparatus 1 may report CSI to the base station apparatus 3 based on the common transmission mode and the first periodic CSI reporting parameter.
- the first periodic CSI reporting parameter may indicate a common CQI feedback type for the transmission mode for PDSCH and the transmission mode for sPDSCH.
- the PMI feedback type may be determined based on a common transmission mode.
- the CSI reporting CQI feedback type for sPDSCH may be set to the wideband CQI type.
- the CQI feedback type of CSI reporting for the sPDSCH may be set to a wideband CQI feedback type. That is, based on the first periodic CSI reporting parameter indicating the common CQI feedback type, the terminal apparatus 1 sets the periodic CSI reporting mode to the vertical mode (different CQI feedback as indicated by the arrow in the example shown in FIG. 8B. Type, but the same PMI feedback type mode). Specifically, the terminal device 1 may switch to a mode (mode 1-0 and mode 1-1) including the wideband CQI feedback type based on the first periodic CSI reporting parameter. That is, CSI reporting for the sPDSCH transmission mode may use a mode including a wideband CQI with a small payload size (number of bits) indicating the CSI content.
- the base station apparatus 3 sets the transmission mode for each of PDSCH and sPDSCH to the common transmission mode TM4, and transmits to the terminal apparatus 1 using RRC signaling.
- transmission mode TM4 of PDSCH and sPDSCH mode 1-1 and mode 2-1 are supported. That is, the terminal device 1 determines the PMI feedback type used for CSI reporting as a single PMI (single ⁇ PMI). Further, the common first periodic CSI reporting parameter is set to the subband CQI feedback type.
- the terminal apparatus 1 assumes a PDSCH transmission mode for CSI derivation, the CSI derivation may be reported to the base station apparatus 3 based on the set mode 2-1.
- the CSI derivation may report CSI to the base station device 3 based on the set mode 2-1.
- the CSI derivation is performed in a mode including the same vertical wideband CQI feedback type as the mode 2-1 set in FIG. 8B. You may switch.
- the periodic CSI reporting mode for the transmission mode of sPDSCH may be switched from mode 2-1 to mode 1-1. That is, the terminal device 1 may report to the base station device 3 based on the content shown in mode 1-1.
- Aspect E may be used for aperiodic CSI reporting.
- each aspect in the present embodiment is a different example of determining CSI content and / or CSI reporting mode.
- the terminal device 1 and the base station device 3 can perform CSI content and / or CSI based on at least some or all of the following elements (A) to (G):
- a reporting mode may be determined.
- Element A CSI reference resource or the type of the downlink physical channel assigned closest before the CSI reference resource.
- Element B UL grant including a CSI request field set to trigger transmission of CSI.
- Type of downlink physical channel including:-Element C: Transmission scheme of downlink physical channel-Element D: PDSCH transmission mode-Element E: sPDSCH transmission mode-Element F: Payload size (number of bits) indicating the content of CSI
- G Physical parameter (numerology) of the downlink physical channel
- the physical parameter may be a parameter related to the signal waveform of the downlink physical channel, for example.
- the parameter related to the signal waveform may be the number of symbols applied to the downlink physical channel, signal waveform (waveform), subcarrier spacing, CP length, sample period, and the like.
- FIG. 9 is a schematic block diagram showing the configuration of the terminal device 1 in the present embodiment.
- the terminal device 1 includes an upper layer processing unit 101, a control unit 103, a receiving unit 105, a transmitting unit 107, and a transmitting / receiving antenna unit 109.
- the upper layer processing unit 101 includes a radio resource control unit 1011, a scheduling information interpretation unit 1013, and an sTTI control unit 1015.
- the reception unit 105 includes a decoding unit 1051, a demodulation unit 1053, a demultiplexing unit 1055, a radio reception unit 1057, and a channel measurement unit 1059.
- the transmission unit 107 includes an encoding unit 1071, a modulation unit 1073, a multiplexing unit 1075, a radio transmission unit 1077, and an uplink reference signal generation unit 1079.
- the upper layer processing unit 101 outputs uplink data (transport block) generated by a user operation or the like to the transmission unit 107.
- the upper layer processing unit 101 includes a medium access control (MAC: Medium Access Control) layer, a packet data integration protocol (Packet Data Convergence Protocol: PDCP) layer, a radio link control (Radio Link Control: RLC) layer, and radio resource control. Process the (Radio Resource Control: RRC) layer.
- MAC Medium Access Control
- PDCP Packet Data Convergence Protocol
- RLC Radio Link Control
- RRC Radio Resource Control
- the radio resource control unit 1011 included in the upper layer processing unit 101 manages various setting information / parameters of the own device.
- the radio resource control unit 1011 sets various setting information / parameters based on the upper layer signal received from the base station apparatus 3. That is, the radio resource control unit 1011 sets various setting information / parameters based on information indicating various setting information / parameters received from the base station apparatus 3. Also, the radio resource control unit 1011 generates information arranged in each uplink channel and outputs the information to the transmission unit 107.
- the radio resource control unit 1011 is also referred to as a setting unit 1011.
- the scheduling information interpretation unit 1013 included in the upper layer processing unit 101 interprets the DCI format (scheduling information, UL grant) received via the reception unit 105, and receives based on the interpretation result of the DCI format.
- Control information is generated to control unit 105 and transmission unit 107, and is output to control unit 103.
- the sTTI control unit 1015 included in the upper layer processing unit 101 performs control related to sTTI transmission based on various setting information, information related to SPS such as parameters, and the situation.
- control unit 103 generates a control signal for controlling the receiving unit 105 and the transmitting unit 107 based on the control information from the higher layer processing unit 101.
- Control unit 103 outputs the generated control signal to receiving unit 105 and transmitting unit 107 to control receiving unit 105 and transmitting unit 107.
- the receiving unit 105 also separates, demodulates, and decodes the received signal received from the base station apparatus 3 via the transmission / reception antenna unit 109 according to the control signal input from the control unit 103, and processes the decoded information in an upper layer Output to the unit 101.
- the radio reception unit 1057 converts a downlink signal received via the transmission / reception antenna unit 109 into a baseband signal by orthogonal demodulation (down-conversion: down covert), removes unnecessary frequency components, and reduces the signal level.
- the amplification level is controlled so as to be properly maintained, and quadrature demodulation is performed based on the in-phase component and the quadrature component of the received signal, and the quadrature demodulated analog signal is converted into a digital signal.
- the radio reception unit 1057 removes a portion corresponding to CP (Cyclic Prefix) from the converted digital signal, and performs a fast Fourier transform (FFT) on the signal from which the CP has been removed to obtain a frequency domain signal. Extract.
- CP Cyclic Prefix
- the demultiplexing unit 1055 separates the extracted signal into PHICH, PDCCH, PDSCH, and downlink reference signal. Further, demultiplexing section 1055 compensates for the propagation path of PHICH, PDCCH, and PDSCH from the estimated propagation path value input from channel measurement section 1059. Also, the demultiplexing unit 1055 outputs the demultiplexed downlink reference signal to the channel measurement unit 1059.
- the demodulating unit 1053 multiplies the PHICH by a corresponding code and synthesizes it, demodulates the synthesized signal using the BPSK (Binary Phase Shift Shift Keying) modulation method, and outputs it to the decoding unit 1051.
- Decoding section 1051 decodes the PHICH addressed to the own apparatus, and outputs the decoded HARQ indicator to higher layer processing section 101.
- Demodulation section 1053 demodulates the QPSK modulation scheme for PDCCH and outputs the result to decoding section 1051.
- the decoding unit 1051 tries to decode the PDCCH, and when the decoding is successful, the decoding unit 1051 outputs the decoded downlink control information and the RNTI corresponding to the downlink control information to the higher layer processing unit 101.
- the demodulation unit 1053 demodulates the modulation scheme notified by the DL grant such as QPSK (Quadrature Phase Shift Keying), 16QAM (Quadrature Amplitude Modulation), 64QAM, etc., and outputs the result to the decoding unit 1051.
- the decoding unit 1051 performs decoding based on the information regarding the coding rate notified by the downlink control information, and outputs the decoded downlink data (transport block) to the higher layer processing unit 101.
- the channel measurement unit 1059 measures the downlink path loss and channel state from the downlink reference signal input from the demultiplexing unit 1055, and outputs the measured path loss and channel state to the upper layer processing unit 101. Also, channel measurement section 1059 calculates an estimated value of the downlink propagation path from the downlink reference signal, and outputs it to demultiplexing section 1055. The channel measurement unit 1059 performs channel measurement and / or interference measurement in order to calculate CQI (may be CSI).
- CQI may be CSI
- the transmission unit 107 generates an uplink reference signal according to the control signal input from the control unit 103, encodes and modulates uplink data (transport block) input from the higher layer processing unit 101, PUCCH, PUSCH, and the generated uplink reference signal are multiplexed and transmitted to base station apparatus 3 via transmission / reception antenna section 109. Moreover, the transmission part 107 transmits uplink control information.
- the encoding unit 1071 performs encoding such as convolutional encoding and block encoding on the uplink control information input from the higher layer processing unit 101.
- the encoding unit 1071 performs turbo encoding based on information used for PUSCH scheduling.
- the modulation unit 1073 uses the modulation scheme in which the encoded bits input from the encoding unit 1071 are notified by downlink control information such as BPSK, QPSK, 16QAM, and 64QAM, or a modulation scheme predetermined for each channel. Modulate. Modulation section 1073 determines the number of spatially multiplexed data sequences based on information used for PUSCH scheduling, and transmits the same PUSCH by using MIMO (Multiple Input Multiple Multiple Output) SM (Spatial Multiplexing). A plurality of uplink data are mapped to a plurality of sequences, and precoding is performed on the sequences.
- MIMO Multiple Input Multiple Multiple Output
- SM Spatial Multiplexing
- the uplink reference signal generation unit 1079 has a physical layer cell identifier (physical layer cell identity: PCI, Cell ID, etc.) for identifying the base station device 3, a bandwidth for arranging the uplink reference signal, UL A sequence determined by a predetermined rule (formula) is generated based on the cyclic shift notified by the grant, the parameter value for generating the DMRS sequence, and the like.
- the multiplexing unit 1075 rearranges the PUSCH modulation symbols in parallel according to the control signal input from the control unit 103, and then performs a discrete Fourier transform (Discrete-Fourier-Transform: DFT).
- multiplexing section 1075 multiplexes the PUCCH and PUSCH signals and the generated uplink reference signal for each transmission antenna port. That is, multiplexing section 1075 arranges the PUCCH and PUSCH signals and the generated uplink reference signal in the resource element for each transmission antenna port.
- the wireless transmission unit 1077 generates an SC-FDMA symbol by performing inverse fast Fourier transform (Inverse Fast Transform: IFFT) on the multiplexed signal, and adds a CP to the generated SC-FDMA symbol.
- IFFT inverse fast Fourier transform
- Generates a band digital signal converts the baseband digital signal to an analog signal, removes excess frequency components using a low-pass filter, upconverts to a carrier frequency, amplifies the power, and transmits and receives antennas It outputs to the part 109 and transmits.
- FIG. 10 is a schematic block diagram showing the configuration of the base station apparatus 3 in the present embodiment.
- the base station apparatus 3 includes an upper layer processing unit 301, a control unit 303, a reception unit 305, a transmission unit 307, and a transmission / reception antenna unit 309.
- the higher layer processing unit 301 includes a radio resource control unit 3011, a scheduling unit 3013, and an sTTI control unit 3015.
- the reception unit 305 includes a decoding unit 3051, a demodulation unit 3053, a demultiplexing unit 3055, a wireless reception unit 3057, and a channel measurement unit 3059.
- the transmission unit 307 includes an encoding unit 3071, a modulation unit 3073, a multiplexing unit 3075, a radio transmission unit 3077, and a downlink reference signal generation unit 3079.
- the upper layer processing unit 301 includes a medium access control (MAC: Medium Access Control) layer, a packet data integration protocol (Packet Data Convergence Protocol: PDCP) layer, a radio link control (Radio Link Control: RLC) layer, a radio resource control (Radio). Resource (Control: RRC) layer processing. Further, upper layer processing section 301 generates control information for controlling receiving section 305 and transmitting section 307 and outputs the control information to control section 303.
- MAC Medium Access Control
- PDCP Packet Data Convergence Protocol
- RLC Radio Link Control
- Radio Radio Resource
- the radio resource control unit 3011 included in the higher layer processing unit 301 generates downlink data (transport block), system information, RRC message, MAC CE (Control element), and the like arranged in the downlink PDSCH, Alternatively, it is acquired from the upper node and output to the transmission unit 307.
- the radio resource control unit 3011 manages various setting information / parameters of each terminal device 1.
- the radio resource control unit 3011 may set various setting information / parameters for each terminal apparatus 1 via higher layer signals. That is, the radio resource control unit 1011 transmits / broadcasts information indicating various setting information / parameters.
- the radio resource control unit 3011 is also referred to as a setting unit 3011.
- the scheduling unit 3013 included in the higher layer processing unit 301 assigns physical channels (PDSCH and PUSCH) based on the received channel state information, the channel estimation value input from the channel measurement unit 3059, the channel quality, and the like. And the coding rate and modulation scheme and transmission power of subframes, physical channels (PDSCH and PUSCH), and the like. Based on the scheduling result, the scheduling unit 3013 generates control information (for example, DCI format) for controlling the reception unit 305 and the transmission unit 307 and outputs the control information to the control unit 303. The scheduling unit 3013 further determines timing for performing transmission processing and reception processing.
- control information for example, DCI format
- the sTTI control unit 3015 included in the upper layer processing unit 301 performs control related to SPS based on various setting information and information and status related to SPS such as parameters.
- control unit 303 generates a control signal for controlling the reception unit 305 and the transmission unit 307 based on the control information from the higher layer processing unit 301.
- the control unit 303 outputs the generated control signal to the reception unit 305 and the transmission unit 307 and controls the reception unit 305 and the transmission unit 307.
- the receiving unit 305 separates, demodulates, and decodes the received signal received from the terminal device 1 via the transmission / reception antenna unit 309 according to the control signal input from the control unit 303, and the decoded information is the upper layer processing unit 301. Output to.
- the radio reception unit 3057 converts the uplink signal received via the transmission / reception antenna unit 309 into a baseband signal by orthogonal demodulation (down-conversion: down covert), removes unnecessary frequency components, and has a signal level of The amplification level is controlled so as to be appropriately maintained, and quadrature demodulation is performed based on the in-phase component and the quadrature component of the received signal, and the analog signal subjected to the quadrature demodulation is converted into a digital signal.
- the receiving unit 305 receives uplink control information.
- the wireless reception unit 3057 removes a portion corresponding to CP (Cyclic Prefix) from the converted digital signal.
- the radio reception unit 3057 performs fast Fourier transform (FFT) on the signal from which the CP is removed, extracts a frequency domain signal, and outputs the signal to the demultiplexing unit 3055.
- FFT fast Fourier transform
- the demultiplexing unit 1055 separates the signal input from the radio reception unit 3057 into signals such as PUCCH, PUSCH, and uplink reference signal. Note that this separation is performed based on radio resource allocation information included in the UL grant that is determined in advance by the radio resource control unit 3011 by the base station device 3 and notified to each terminal device 1.
- demultiplexing section 3055 compensates for the propagation paths of PUCCH and PUSCH from the propagation path estimation value input from channel measurement section 3059. Further, the demultiplexing unit 3055 outputs the separated uplink reference signal to the channel measurement unit 3059.
- the demodulation unit 3053 performs inverse discrete Fourier transform (Inverse Discrete Fourier Transform: IDFT) on the PUSCH to obtain modulation symbols, and BPSK (Binary (Phase Shift Keying), QPSK,
- IDFT Inverse Discrete Fourier Transform
- BPSK Binary (Phase Shift Keying)
- QPSK Quadrature Shift Keying
- the received signal is demodulated using a predetermined modulation method such as 16QAM, 64QAM, or the like, or the modulation method notified by the own device in advance to each terminal device 1 using the UL grant.
- the demodulator 3053 uses the MIMO SM based on the number of spatially multiplexed sequences notified in advance to each terminal device 1 using UL grants and information indicating precoding to be performed on the sequences, thereby using the same PUSCH.
- the modulation symbols of a plurality of uplink data transmitted in (1) are separated.
- the decoding unit 3051 encodes the demodulated PUCCH and PUSCH encoded bits in a predetermined encoding method, which is determined in advance, or the device itself notifies the terminal device 1 in advance with a UL grant. Decoding is performed at a rate, and the decoded uplink data and uplink control information are output to the upper layer processing section 101.
- decoding section 3051 performs decoding using the encoded bits held in the HARQ buffer input from higher layer processing section 301 and the demodulated encoded bits.
- Channel measurement section 309 measures an estimated channel value, channel quality, and the like from the uplink reference signal input from demultiplexing section 3055 and outputs the result to demultiplexing section 3055 and higher layer processing section 301.
- the transmission unit 307 generates a downlink reference signal according to the control signal input from the control unit 303, and encodes the HARQ indicator, downlink control information, and downlink data input from the higher layer processing unit 301. Then, PHICH, PDCCH, PDSCH, and a downlink reference signal are multiplexed, and a signal is transmitted to the terminal device 1 via the transmission / reception antenna unit 309.
- the encoding unit 3071 encodes the HARQ indicator, downlink control information, and downlink data input from the higher layer processing unit 301 with predetermined encoding such as block encoding, convolutional encoding, and turbo encoding. Encoding is performed using the method, or encoding is performed using the encoding method determined by the radio resource control unit 3011.
- the modulation unit 3073 modulates the coded bits input from the coding unit 3071 with a modulation scheme determined in advance by the radio resource control unit 3011 such as BPSK, QPSK, 16QAM, and 64QAM.
- the downlink reference signal generation unit 3079 obtains a sequence known by the terminal device 1 as a downlink reference signal, which is obtained by a predetermined rule based on a physical layer cell identifier (PCI) for identifying the base station device 3 or the like. Generate as The multiplexing unit 3075 multiplexes the modulated modulation symbol of each channel and the generated downlink reference signal. That is, multiplexing section 3075 arranges the modulated modulation symbol of each channel and the generated downlink reference signal in the resource element.
- PCI physical layer cell identifier
- the wireless transmission unit 3077 performs an inverse fast Fourier transform (Inverse Fast Fourier Transform: IFFT) on the multiplexed modulation symbol or the like to generate an OFDM symbol, adds a CP to the generated OFDM symbol, and adds a baseband digital signal A signal is generated, a baseband digital signal is converted into an analog signal, an extra frequency component is removed by a low-pass filter, up-converted to a carrier frequency (up ⁇ convert), power amplified, and output to a transmission / reception antenna unit 309 To send.
- IFFT inverse Fast Fourier transform
- the various units constituting the terminal device 1 and the base station device 3 may be circuits.
- the transmission unit 107 may be the transmission circuit 107.
- Aspect A of the present embodiment is a terminal device 1 and includes a channel measurement unit 1059 for deriving CSI and a transmission unit 107 for transmitting the CSI, and the CSI reference resource or the CSI reference resource The content of the CSI is determined based on the type of the downlink physical channel assigned closest.
- the downlink physical channel type may include PDSCH and sPDSCH.
- the CSI content includes part or all of CQI, PMI, and RI.
- Aspect B of the present embodiment is the terminal device 1 and includes a channel measurement unit 1059 for deriving CSI and a transmission unit 107 for transmitting the CSI, and is set to trigger transmission of the CSI.
- the content of the CSI is determined based on the type of the downlink physical channel including the UL grant including the CSI request field.
- the downlink physical channel type may include PDCCH and sPDCCH.
- the CSI content includes part or all of CQI, PMI, and RI.
- Aspect C of the present embodiment is a terminal device 1 and a DL grant including a CSI request field set to trigger transmission of CSI, and is used for scheduling of a downlink physical channel
- the transmission scheme of the downlink physical channel is given by a DL grant.
- Aspect D of the present embodiment is the terminal device 1 and includes a first CSI reporting parameter indicating the first CSI reporting mode and a second CSI reporting parameter indicating the second CSI reporting mode.
- the channel measuring unit 1059 has a first mode based on a PDSCH transmission mode and an sPDSCH transmission mode.
- One of the CSI reporting parameter and the second CSI reporting parameter is selected, and the CSI is derived based on the CSI reporting mode corresponding to the selected one.
- the channel measurement unit 1059 performs MIMO spatial multiplexing when at least one of the transmission mode of the PDSCH and the transmission mode of the sPDSCH is a transmission mode related to spatial multiplexing.
- the first CSI reporting parameter to be set is selected.
- Aspect E of the present embodiment is the terminal device 1, and includes a receiving unit 105 that receives a first CSI reporting parameter used to determine CSI content, a channel measuring unit 1059 that derives the CSI, The channel measurement unit 1059 determines the content of the CSI based on the PDSCH transmission mode, the sPDSCH transmission mode, and the first CSI reporting parameter.
- the CSI content is determined based on whether the PDSCH transmission mode and the sPDSCH transmission mode are the same.
- Aspect F of the present embodiment is the base station apparatus 3, and includes a channel measurement unit 3059 for deriving CSI, and a reception unit 305 for receiving the CSI, and the CSI reference resource or the CSI reference resource
- the content of the CSI is determined based on the type of the downlink physical channel assigned closest to the.
- the downlink physical channel type may include PDSCH and sPDSCH.
- the CSI content includes part or all of CQI, PMI, and RI.
- Aspect G of the present embodiment is the base station apparatus 3, which includes a channel measurement unit 3059 for deriving CSI, and a reception unit 305 for receiving the CSI, and is set to trigger transmission of the CSI.
- the content of the CSI is determined based on a downlink physical channel type including a UL grant including the generated CSI request field.
- the downlink physical channel type may include PDCCH and sPDCCH.
- the CSI content includes part or all of CQI, PMI, and RI.
- Aspect H of the present embodiment is a base station apparatus 3, which is a DL grant including a CSI request field set to trigger transmission of CSI, and for scheduling of a downlink physical channel
- the transmission scheme of the downlink physical channel is given by a DL grant.
- Aspect I of the present embodiment is the base station apparatus 3, and includes a first CSI reporting parameter indicating the first CSI reporting mode and a second CSI reporting parameter indicating the second CSI reporting mode.
- a transmission unit 307 for transmitting CSI a channel measurement unit 3059 for deriving CSI, and a reception unit 305 for receiving the CSI.
- the channel measurement unit 3059 is configured to perform a first operation based on a transmission mode of PDSCH and a transmission mode of sPDSCH.
- One of the CSI reporting parameter and the second CSI reporting parameter is selected, and the CSI is derived based on the CSI reporting mode corresponding to the selected one.
- the channel measurement unit 3059 may perform MIMO spatial multiplexing when at least one of the PDSCH transmission mode and the sPDSCH transmission mode is a transmission mode related to spatial multiplexing.
- the first CSI reporting parameter to be set is selected.
- the aspect J of the present embodiment is the base station apparatus 3, which is a transmission unit 307 that transmits a first CSI reporting parameter used to determine CSI content, and a channel measurement unit 3059 that derives the CSI.
- the channel measuring unit 3059 determines the content of the CSI based on the PDSCH transmission mode, the sPDSCH transmission mode, and the first CSI reporting parameter.
- the CSI content is determined based on whether the PDSCH transmission mode and the sPDSCH transmission mode are the same.
- a program that operates on the base station device 3 and the terminal device 1 according to one aspect of the present invention is a program (computer) that controls a CPU (Central Processing Unit) and the like so as to realize the functions of the above embodiments according to the present invention.
- May be a program that allows Information handled by these devices is temporarily stored in RAM (Random Access Memory) during processing, and then stored in various ROMs such as Flash ROM (Read Only Memory) and HDD (Hard Disk Drive). Reading, correction, and writing are performed by the CPU as necessary.
- the program for realizing the 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” 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 storage device such as a flexible medium, a magneto-optical disk, a portable medium such as a ROM or a CD-ROM, and a hard disk incorporated in a computer system.
- the “computer-readable recording medium” is a medium that dynamically holds a program for a short time, such as a communication line when transmitting a program via a network such as the Internet or a communication line such as a telephone line,
- a volatile memory inside a computer system serving as a server or a client may be included and a program that holds a program for a certain period of time.
- the program may be a program for realizing a part of the functions described above, and may be a program capable of realizing the functions described above in combination with a program already recorded in a computer system.
- the base station device 3 in the above-described embodiment can 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 functional block of the base station device 3 according to the above-described embodiment.
- the device group only needs to have one function or each function block of the base station device 3.
- 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).
- the base station device 3 in the above-described embodiment may have a part or all of the functions of the upper node for the eNodeB.
- 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 that is typically an integrated circuit, or may be realized as a chip set.
- 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 circuit integration is not limited to LSI, and may be realized by a dedicated circuit or a general-purpose processor.
- an integrated circuit based on the technology can also be used.
- the terminal device is described as an example of the communication device.
- the present invention is not limited to this, and the stationary or non-movable electronic device installed indoors or outdoors,
- the present invention can also be applied to terminal devices or communication devices such as AV equipment, kitchen equipment, cleaning / washing equipment, air conditioning equipment, office equipment, vending machines, and other daily life equipment.
- One embodiment of the present invention is used in, for example, a communication system, a communication device (for example, a mobile phone device, a base station device, a wireless LAN device, or a sensor device), an integrated circuit (for example, a communication chip), a program, or the like. be able to.
- a communication device for example, a mobile phone device, a base station device, a wireless LAN device, or a sensor device
- an integrated circuit for example, a communication chip
- a program or the like.
- Terminal apparatus 3 Base station apparatus 101 Upper layer processing section 103 Control section 105 Reception section 107 Transmission section 301 Upper layer processing section 303 Control section 305 Reception section 307 Transmission section 1011 Radio resource control section 1013 Scheduling information Interpretation unit 1015 sTTI control unit 3011 Radio resource control unit 3013 Scheduling unit 3015 sTTI control unit
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Abstract
Description
本願は、2016年6月28日に日本に出願された特願2016-127320号について優先権を主張し、その内容をここに援用する。
・PUCCH(Physical Uplink Control Channel)
・sPUCCH(short Physical Uplink Control Channel, PUCCH for short TTI)
・PUSCH(Physical Uplink Shared Channel)
・sPUSCH(short Physical Uplink Shared Channel, PUSCH for short TTI)
・PRACH(Physical Random Access Channel)
・sPRACH(short Physical Random Access Channel, PRACH for short TTI)
PUCCH、および/または、sPUCCHは、上りリンク制御情報(Uplink Control Information : UCI)を送信するために用いられる。以下、PUCCHは、sPUCCHを含んでもよい。ここで、上りリンク制御情報には、下りリンクに対するチャネル状態情報(Channel State Information : CSI)が含まれてもよい。また、上りリンク制御情報には、UL-SCHのリソースを要求するために用いられるスケジューリング要求(Scheduling Request : SR)が含まれてもよい。また、上りリンク制御情報には、HARQ-ACK(Hybrid Automatic Repeat request ACKnowledgement)が含まれてもよい。
・上りリンク参照信号(Uplink Reference Signal : UL RS)
本実施形態において、以下の2つのタイプの上りリンク参照信号が用いられる。
・DMRS(Demodulation Reference Signal)
・SRS(Sounding Reference Signal)
DMRSは、PUSCH、sPUSCH、および/または、PUCCHの送信に関連する。すなわち、DMRSは、PUSCH、sPUSCH、または、PUCCHと時間多重されてもよい。例えば、基地局装置3は、PUSCH、sPUSCH、または、PUCCHの伝搬路補正を行なうためにDMRSを使用してもよい。
・PBCH(Physical Broadcast Channel)
・PCFICH(Physical Control Format Indicator Channel)
・PHICH(Physical Hybrid automatic repeat request Indicator Channel)
・PDCCH(Physical Downlink Control Channel)
・EPDCCH(Enhanced Physical Downlink Control Channel)
・sPDCCH(short Physical Downlink Control Channel, PDCCH for short TTI)
・PDSCH(Physical Downlink Shared Channel)
・sPDSCH(short Physical Downlink Shared Channel, PDSCH for short TTI)
・PMCH(Physical Multicast Channel)
PBCHは、端末装置1で共通に用いられるマスターインフォメーションブロック(Master Information Block: MIB, Broadcast Channel: BCH)を報知するために用いられる。
・同期信号(Synchronization signal: SS)
・下りリンク参照信号(Downlink Reference Signal: DL RS)
同期信号は、端末装置1が下りリンクの周波数領域および時間領域の同期をとるために用いられる。TDD方式において、同期信号は無線フレーム内のサブフレーム0、1、5、6に配置される。FDD方式において、同期信号は無線フレーム内のサブフレーム0と5に配置される。
・CRS(Cell-specific Reference Signal)
・PDSCHに関連するURS(UE-specific Reference Signal)
・EPDCCHに関連するDMRS(Demodulation Reference Signal)
・NZP CSI-RS(Non-Zero Power Chanel State Information - Reference Signal)
・ZP CSI-RS(Zero Power Chanel State Information - Reference Signal)
・MBSFN RS(Multimedia Broadcast and Multicast Service over Single Frequency Network Reference signal)
・PRS(Positioning Reference Signal)
ここで、下りリンク物理チャネルおよび下りリンク物理信号を総称して、下りリンク信号とも称する。また、上りリンク物理チャネルおよび上りリンク物理信号を総称して、上りリンク信号とも称する。下りリンク物理チャネルおよび上りリンク物理チャネルを総称して、物理チャネルとも称する。下りリンク物理信号および上りリンク物理信号を総称して、物理信号とも称する。
・条件(X1):サービングセルの上りリンク-下りリンク設定によって下りリンクサブフレームとして指示されている
・条件(X2):TM9およびTM10ではない場合、MBSFNサブフレームではない
・条件(X3):設定された測定ギャップに含まれない
また、あるサービングセルにおいて、上りリンクサブフレームnに対応する有効な下りリンクサブフレームまたは有効なスペシャルサブフレームn-nCQI_refがない場合は、該当サービングセルの上りリンクサブフレームnにおけるCSIレポーティングは省略されてもよい。
・要素B:CSIの送信をトリガするようにセットされたCSIリクエストフィールドを含むULグラントを含む下りリンク物理チャネルのタイプ
・要素C:下りリンク物理チャネルのトランスミッションスキーム
・要素D:PDSCHのトランスミッションモード
・要素E:sPDSCHのトランスミッションモード
・要素F:CSIのコンテンツを示すペイロードサイズ(ビット数)
・要素G:下りリンク物理チャネルの物理パラメータ(numerology)
ここで、要素Gにおいて、物理パラメータは、例えば、下りリンク物理チャネルの信号波形に関するパラメータであってもよい。信号波形に関するパラメータは、下りリンク物理チャネルに適用されるシンボル数、信号波形(waveform)、サブキャリアスペーシング、CP長、サンプル周期等であってもよい。
3 基地局装置
101 上位層処理部
103 制御部
105 受信部
107 送信部
301 上位層処理部
303 制御部
305 受信部
307 送信部
1011 無線リソース制御部
1013 スケジューリング情報解釈部
1015 sTTI制御部
3011 無線リソース制御部
3013 スケジューリング部
3015 sTTI制御部
Claims (6)
- CSIを導き出すチャネル測定部と、
前記CSIを送信する送信部と、
を備え、
CSIリファレンスリソースもしくは前記CSIリファレンスリソースより前の一番近くに割り当てられた下りリンク物理チャネルのタイプに基づいて、前記CSIのコンテンツが決定される
端末装置。 - 前記下りリンク物理チャネルのタイプは、
PDSCHおよびsPDSCHを含む
請求項1に記載の端末装置。 - CSIを導き出すチャネル測定部と、
前記CSIを受信する受信部と、
を備え、
CSIリファレンスリソースもしくは前記CSIリファレンスリソースより前の一番近くに割り当てられた下りリンク物理チャネルのタイプに基づいて、前記CSIのコンテンツが決定される
基地局装置。 - 前記下りリンク物理チャネルのタイプは、
PDSCHおよびsPDSCHを含む
請求項3に記載の基地局装置。 - 端末装置に用いられる通信方法であって、
CSIを導き出し、
前記CSIを送信し、
CSIリファレンスリソースもしくは前記CSIリファレンスリソースより前の一番近くに割り当てられた下りリンク物理チャネルのタイプに基づいて、前記CSIのコンテンツを決定する
通信方法。 - 端末装置に搭載される集積回路であって、
CSIを導き出すチャネル測定回路と、
前記CSIを送信する送信回路と、
を備え、
CSIリファレンスリソースもしくは前記CSIリファレンスリソースより前の一番近くに割り当てられた下りリンク物理チャネルのタイプに基づいて、前記CSIのコンテンツを決定する
集積回路。
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| US16/312,306 US10666331B2 (en) | 2016-06-28 | 2017-06-15 | Terminal apparatus, base station apparatus, communication method, and integrated circuit |
| CN201780033158.0A CN109417718B (zh) | 2016-06-28 | 2017-06-15 | 终端装置、基站装置、通信方法以及集成电路 |
| AU2017287229A AU2017287229B2 (en) | 2016-06-28 | 2017-06-15 | Terminal device, base station device, communication method, and integrated circuit |
| EP17819890.9A EP3477989B1 (en) | 2016-06-28 | 2017-06-15 | Terminal device, base station device, communication method, and integrated circuit |
| CONC2018/0013821A CO2018013821A2 (es) | 2016-06-28 | 2018-12-19 | Aparato terminal, aparato de estación base, método de comunicación y circuito integrado |
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| JPWO2018012457A1 (ja) * | 2016-07-12 | 2019-05-16 | 株式会社Nttドコモ | ユーザ端末及び無線通信方法 |
| EP3493580B1 (en) * | 2016-07-26 | 2022-08-31 | NTT DoCoMo, Inc. | User terminal, base station and wireless communication method |
| WO2018030768A1 (ko) * | 2016-08-08 | 2018-02-15 | 엘지전자 주식회사 | 파워 헤드룸 보고 방법 및 장치 |
| US10985891B2 (en) | 2016-09-30 | 2021-04-20 | Motorola Mobility Llc | Method and apparatus for reporting channel state information |
| WO2018085118A1 (en) * | 2016-11-01 | 2018-05-11 | Intel IP Corporation | Downlink control information design with shorter tti |
| KR102314320B1 (ko) * | 2017-04-01 | 2021-10-19 | 엘지전자 주식회사 | 무선 통신 시스템에서 짧은 전송 시간 간격을 지원하는 단말을 위한 상향링크 신호 전송 또는 수신 방법 및 이를 위한 장치 |
| WO2018231971A1 (en) * | 2017-06-13 | 2018-12-20 | Intel IP Corporation | Enhancement on scheduling and harq-ack feedback for urllc, multiplexing scheme for control/data channel and dm-rs for nr, and activation mechanism, scheduling aspects, and synchronization signal (ss) blocks for new radio (nr) system with multiple bandwidth parts (bwps) |
| WO2019014882A1 (zh) * | 2017-07-20 | 2019-01-24 | 南通朗恒通信技术有限公司 | 一种被用于无线通信的用户、基站中的方法和装置 |
| US20190386771A1 (en) * | 2018-06-13 | 2019-12-19 | Qualcomm Incorporated | Channel state information measurement and feedback for transmission mode switching |
| US11218963B2 (en) * | 2018-10-05 | 2022-01-04 | Qualcomm Incorporated | Discontinuous reception wakeup operation with multiple component carriers |
| EP4152803A4 (en) | 2020-05-29 | 2023-06-14 | Guangdong Oppo Mobile Telecommunications Corp., Ltd. | METHOD OF PROCESSING CHANNEL STATUS INFORMATION, ELECTRONIC DEVICE AND STORAGE MEDIA |
| WO2022032627A1 (en) * | 2020-08-14 | 2022-02-17 | Qualcomm Incorporated | Channel state information (csi) processing for ue intiated csi and downlink grant csi |
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| WO2010123304A2 (en) * | 2009-04-24 | 2010-10-28 | Samsung Electronics Co., Ltd. | Multiplexing large payloads of control information from user equipments |
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- 2017-06-15 AU AU2017287229A patent/AU2017287229B2/en active Active
- 2017-06-15 MX MX2019000102A patent/MX394446B/es unknown
- 2017-06-15 CN CN201780033158.0A patent/CN109417718B/zh active Active
-
2018
- 2018-12-19 CO CONC2018/0013821A patent/CO2018013821A2/es unknown
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| HUAWEI ET AL.: "PDSCH design for short TTI", 3GPP TSG-RAN WG1#85 R1-164821, 27 May 2016 (2016-05-27), XP051096316, Retrieved from the Internet <URL:http://www.3gpp.org/ftp/tsg-ran/WG1-RL1/TSGR1-932/Docs/Rl-164821.zip> * |
| MEDIATEK INC: "Channel design for shortened TTI in FDD", 3GPP TSG-RAN WG1#84B R1-162945, 15 April 2016 (2016-04-15), XP051080429, Retrieved from the Internet <URL:http://www.3gpp.org/ftp/tsg-ran/WG1-RL1/TSGR1-84b/Docs/Rl-162945.zip> * |
| See also references of EP3477989A4 * |
Also Published As
| Publication number | Publication date |
|---|---|
| EP3477989A4 (en) | 2019-11-20 |
| EP3477989A1 (en) | 2019-05-01 |
| US10666331B2 (en) | 2020-05-26 |
| EP3477989B1 (en) | 2021-03-17 |
| CN109417718A (zh) | 2019-03-01 |
| US20190349046A1 (en) | 2019-11-14 |
| MX2019000102A (es) | 2019-04-01 |
| CN109417718B (zh) | 2022-04-15 |
| AU2017287229B2 (en) | 2021-08-12 |
| AU2017287229A1 (en) | 2019-01-17 |
| CO2018013821A2 (es) | 2019-01-18 |
| JP2019145857A (ja) | 2019-08-29 |
| MX394446B (es) | 2025-03-24 |
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