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WO2020040266A1 - Dispositif terminal, dispositif station de base et procédé de communication - Google Patents

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

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Publication number
WO2020040266A1
WO2020040266A1 PCT/JP2019/032912 JP2019032912W WO2020040266A1 WO 2020040266 A1 WO2020040266 A1 WO 2020040266A1 JP 2019032912 W JP2019032912 W JP 2019032912W WO 2020040266 A1 WO2020040266 A1 WO 2020040266A1
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WIPO (PCT)
Prior art keywords
control resource
terminal device
pdcch
resource sets
base station
Prior art date
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PCT/JP2019/032912
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English (en)
Japanese (ja)
Inventor
中嶋 大一郎
智造 野上
渉 大内
翔一 鈴木
友樹 吉村
李 泰雨
会発 林
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Sharp Corp
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Sharp Corp
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Publication of WO2020040266A1 publication Critical patent/WO2020040266A1/fr
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W16/00Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/14Spectrum sharing arrangements between different networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/54Allocation or scheduling criteria for wireless resources based on quality criteria

Definitions

  • the present invention relates to a terminal device, a base station device, and a communication method.
  • This application claims priority based on Japanese Patent Application No. 2018-155520 for which it applied in Japan on August 22, 2018, and uses the content here.
  • the third generation partnership project is a wireless access method and a wireless network (hereinafter, "Long Term Evolution (LTE)" or "EUTRA: Evolved Universal Terrestrial Radio Access”) of cellular mobile communication. Project).
  • LTE Long Term Evolution
  • EUTRA Evolved Universal Terrestrial Radio Access
  • a base station device is also called an eNodeB (evolved @ NodeB) and a terminal device is also called a UE (User @ Equipment).
  • LTE is a cellular communication system in which a plurality of areas covered by a base station device are arranged in a cell shape. A single base station device may manage a plurality of cells.
  • the International Telecommunications Union (ITU: International Telecommunications Union) formulates a next-generation mobile communication system standard, IMT (International Mobile Telecommunications) -2020, so it proposes a next-generation standard (NR: New Radio).
  • ITU International Telecommunications Union
  • NR New Radio
  • Non-Patent Document 1 the NR is based on e-MBB (enhanced Mobile Broadband), mMTC (massive Machine Type Type Communication), and URLLC (Ultra Reliable and Low Latency Communication that satisfies the three scenarios that satisfy the requirements. I have.
  • Non-Patent Document 2 Studies are being made on the application of NR in unlicensed frequency bands (Unlicensed Spectrum) (Non-Patent Document 2). It has been studied to realize a data rate of several Gbps by applying an NR supporting a wide band of 100 MHz to a carrier in an unlicensed frequency band.
  • LBT Listen-Before-Talk
  • One embodiment of the present invention realizes application of NR while applying LBT in an unlicensed frequency band.
  • One embodiment of the present invention provides a terminal device capable of performing wideband communication efficiently, a communication method used for the terminal device, a base station device capable of performing wideband communication efficiently, and a base station device. Provide the communication method used.
  • a first aspect of the present invention is a terminal device that receives a PDCCH, a radio resource control layer processing unit configured to set M control resource sets based on RRC signaling, and the M control resource sets. And a receiving unit that activates N control resource sets from among the PDCCH candidates and monitors a plurality of PDCCH candidates in the activated N control resource sets.
  • the first aspect of the present invention is further characterized in that the receiving unit activates N control resource sets based on a control resource set index from among the M control resource sets.
  • the first aspect of the present invention is further characterized in that the M control resource sets are set for each LBT subband in Bandwidth part.
  • the first aspect of the present invention is further characterized in that the N control resource sets are activated from one or more LBT @ subbands accessed by the base station device using resources.
  • a second aspect of the present invention is a base station apparatus for transmitting a PDCCH, wherein the radio resource control layer processing unit sets M control resource sets for a terminal apparatus; And a transmitting unit that activates N control resource sets from among the control resource sets and transmits PDCCHs using PDCCH candidates in the activated N control resource sets.
  • the second aspect of the present invention is further characterized in that the transmitting unit activates N control resource sets based on a control resource set index from the M control resource sets.
  • the second aspect of the present invention is characterized in that the M control resource sets are set for each LBT subband in Bandwidth part.
  • the second aspect of the present invention is further characterized in that the N control resource sets are activated from one or more LBTLsubbands accessed using resources.
  • a third aspect of the present invention is a communication method used for a terminal device receiving a PDCCH, wherein: a step of setting M control resource sets based on RRC signaling; Activating the N control resource sets from the set; and monitoring a plurality of PDCCH candidates in the activated N control resource sets.
  • a third aspect of the present invention is characterized in that N control resource sets are activated from the M control resource sets based on a control resource set index.
  • the third aspect of the present invention is further characterized in that the M control resource sets are set for each LBT subband in Bandwidth part.
  • a third aspect of the present invention is characterized in that the N control resource sets are activated from one or more LBT @ subbands accessed by the base station apparatus using resources.
  • a fourth aspect of the present invention is a communication method used for a base station apparatus for transmitting a PDCCH, comprising: setting M control resource sets for a terminal apparatus; Activating N control resource sets from among the control resource sets, and transmitting a PDCCH using PDCCH candidates in the activated N control resource sets.
  • a fourth aspect of the present invention is characterized in that N control resource sets are activated based on a control resource set index from among the M control resource sets.
  • a fourth aspect of the present invention is characterized in that the M control resource sets are set for each LBT subband in the Bandwidth part.
  • the fourth aspect of the present invention is further characterized in that the N control resource sets are activated from one or more LBTbsubbands accessed using resources.
  • the terminal device can efficiently perform broadband communication. Further, the base station device can efficiently perform broadband communication.
  • FIG. 1 is a conceptual diagram of a wireless communication system according to one aspect of the present embodiment. It is an example which shows the structure of the radio
  • FIG. 4 is a diagram illustrating an example of control resource set mapping according to an aspect of the present embodiment.
  • FIG. 5 is a diagram illustrating an example of a resource element included in a slot according to an aspect of the present embodiment.
  • FIG. 3 is a diagram illustrating an example of a configuration of one REG according to an aspect of the present embodiment.
  • FIG. 3 is a diagram illustrating a configuration example of a CCE according to an aspect of the present embodiment.
  • FIG. 11 is a diagram illustrating an example of a relationship between the number of REGs configuring a REG group and a method of mapping PDCCH candidates according to an aspect of the present embodiment.
  • FIG. 9 is a diagram illustrating an example of mapping of REGs configuring a CCE according to an aspect of the present embodiment.
  • FIG. 1 is a schematic block diagram illustrating a configuration of a terminal device 1 of the present embodiment.
  • FIG. 2 is a schematic block diagram illustrating a configuration of a base station device 3 according to the present embodiment.
  • FIG. 9 is a diagram illustrating an example of a first initial connection procedure (4-step contention based RACH procedure) according to an aspect of the embodiment.
  • FIG. 1 is a conceptual diagram of a wireless communication system according to one aspect of the present embodiment.
  • the wireless communication system includes terminal devices 1A to 1C and a base station device 3 (gNB).
  • the terminal devices 1A to 1C are also referred to as terminal devices 1 (UE).
  • the radio parameters include a subcarrier interval, an OFDM symbol length, a subframe length, a slot length, and at least a part of a minislot length.
  • the subcarrier interval used for the wireless communication is determined by a communication method used for the wireless communication between the terminal device 1 and the base station device 3 (for example, OFDM: Orthogonal Frequency Division Multiplex, OFDMA: Orthogonal Frequency Division, Multispectrum, SC).
  • OFDM Orthogonal Frequency Division Multiplex
  • OFDMA Orthogonal Frequency Division, Multispectrum
  • SC SC
  • FDMA Single Carrier-Frequency Division Multiple Access
  • DFT-s-OFDM One of the radio parameters for Discrete Fourier Transform-Spread-OFDM.
  • the subcarrier intervals are 15 kHz, 30 kHz, 60 kHz, and 120 kHz.
  • FIG. 2 is an example showing a configuration of a radio frame, a subframe, and a slot according to an aspect of the present embodiment.
  • the length of the slot is 0.5 ms
  • the length of the subframe is 1 ms
  • the length of the radio frame is 10 ms.
  • a slot may be a unit of resource allocation in the time domain.
  • a slot may be a unit to which one transport block is mapped.
  • a transport block may be mapped to one slot.
  • the transport block is transmitted in a predetermined interval (for example, a transmission time interval (TTI: Transmission @ Time @ Interval)) defined by an upper layer (for example, MAC: Medium Access Control, RRC: Radio Resource Control).
  • TTI Transmission @ Time @ Interval
  • RRC Radio Resource Control
  • the slot length may be given by the number of OFDM symbols.
  • the number of OFDM symbols may be seven or fourteen.
  • the slot length may be given based at least on the length of the OFDM symbol.
  • OFDM symbol lengths may differ based at least on subcarrier spacing.
  • the length of the OFDM symbol may be given based at least on the number of points of Fast Fourier Transform (FFT) used for generating the OFDM symbol.
  • FFT Fast Fourier Transform
  • the length of the OFDM symbol may include the length of a cyclic prefix (CP: Cyclic Prefix) added to the OFDM symbol.
  • CP Cyclic Prefix
  • OFDM In the communication between the terminal device 1 and the base station device 3, when a communication method other than OFDM is used (for example, when SC-FDMA or DFT-s-OFDM is used), the generated SC is used. -FDMA symbols and / or DFT-s-OFDM symbols are also referred to as OFDM symbols. Unless otherwise specified, OFDM includes SC-FDMA or DFT-s-OFDM.
  • the length of the slot may be 0.125 ms, 0.25 ms, 0.5 ms, 1 ms.
  • the length of the slot may be 1 ms.
  • the slot length may be 0.5 ms.
  • the slot length may be 0.125 ms.
  • the length of the slot may be 1 ms.
  • one subframe may be composed of eight slots.
  • the length of the slot is 0.25 ms
  • one subframe may be composed of four slots.
  • the length of the slot is 0.5 ms
  • one subframe may be composed of two slots.
  • one subframe may be composed of one slot.
  • OFDM includes a multicarrier communication scheme to which waveform shaping (Pulse hShape), PAPR reduction, out-of-band radiation reduction, or filtering, and / or phase processing (for example, phase rotation or the like) is applied.
  • the multi-carrier communication scheme may be a communication scheme for generating / transmitting a signal in which a plurality of subcarriers are multiplexed.
  • a radio frame may be given by the number of subframes.
  • the number of subframes for a radio frame may be, for example, 10.
  • Radio frames may be given by the number of slots.
  • FIG. 3 is a diagram illustrating a configuration example of a slot and a mini-slot according to one aspect of the present embodiment.
  • mini slots may be referred to as non-slots.
  • the number of OFDM symbols constituting one slot is seven.
  • the mini-slot may be configured by one or more OFDM symbols whose number is smaller than the number of the plurality of OFDM symbols forming the slot. Also, mini-slots may be shorter in length than slots.
  • FIG. 3 shows minislot # 0 to minislot # 5 as an example of the configuration of the minislot.
  • the mini-slot may be configured by one OFDM symbol as shown in mini-slot # 0.
  • the mini-slot may be configured by two OFDM symbols as shown in mini-slots # 1 to # 3. Also, a gap (time interval) may be inserted between two mini slots as indicated by mini slot # 1 and mini slot # 2. Further, as shown in mini-slot # 5, the mini-slot may be configured to straddle the boundary between slot # 0 and slot # 1. That is, the mini-slot may be configured to straddle the boundary of the slot.
  • the minislot is also called a subslot.
  • the minislot is also called sTTI (short @ TTI: Transmission @ Time @ Interval). Also, in the following, a slot may be read as a mini slot.
  • a minislot may be configured with the same number of OFDM symbols as a slot.
  • the mini-slot may be configured with a larger number of OFDM symbols than the number of the plurality of OFDM symbols forming the slot.
  • the length of the time domain of the minislot may be shorter than the length of the slot.
  • the length of the time domain of the minislot may be shorter than the length of the subframe.
  • the uplink physical channel is used by the physical layer to transmit and receive information output from the upper layer.
  • ⁇ PUCCH Physical Uplink Control Channel
  • PUSCH Physical Uplink Shared Channel
  • PRACH Physical Random Access Channel
  • the PUCCH is used for transmitting and receiving uplink control information (UCI: Uplink Control Information).
  • the uplink control information includes channel state information (CSI: Channel State Information) of a downlink channel and a scheduling request (SR: SR) used to request a PUSCH (UL-SCH: Uplink-Shared Channel) resource for initial transmission.
  • Scheduling Request downlink data (TB: Transport block, MAC PDU: Medium Access Control Protocol Data Unit, DL-SCH: Downlink-Shared Hash Channel, DSCH-Dash-Phash-Phash-Phash-Phone).
  • HARQ-ACK indicates ACK (acknowledgement) or NACK (negative-acknowledgement).
  • HARQ-ACK is also referred to as HARQ feedback, HARQ information, HARQ control information, and ACK / NACK.
  • the channel state information includes at least a channel quality indicator (CQI: Channel Quality Indicator).
  • CQI Channel Quality Indicator
  • the channel state information may include a rank indicator (RI: ⁇ Rank ⁇ Indicator).
  • the channel state information may include a precoder matrix indicator (PMI: Precoder @ Matrix @ Indicator).
  • CQI is an index related to channel quality (propagation strength)
  • PMI is an index indicating a precoder.
  • RI is an index indicating the transmission rank (or the number of transmission layers).
  • the PUSCH is used for transmitting and receiving uplink data (TB, MAC PDU, UL-SCH, PUSCH).
  • the PUSCH may be used to transmit and receive HARQ-ACK and / or channel state information along with uplink data.
  • PUSCH may be used to transmit / receive only channel state information, or only HARQ-ACK and channel state information.
  • PUSCH is used for transmitting and receiving the random access message 3.
  • PRACH is used for transmitting and receiving a random access preamble (random access message 1).
  • the PRACH transmits an initial connection establishment (initial connection establishment) procedure, a handover procedure, a connection reestablishment procedure (connection @ re-establishment) procedure, synchronization (timing adjustment) for transmission of uplink data, and a request for a PUSCH (UL-SCH) resource. Used to indicate.
  • the random access preamble may be used to notify the base station device 3 of an index (random access preamble index) given from an upper layer of the terminal device 1.
  • the random access preamble may be given by cyclically shifting the Zadoff-Chu sequence corresponding to the physical root sequence index u.
  • the Zadoff-Chu sequence may be generated based on the physical root sequence index u.
  • a plurality of random access preambles may be defined in one cell.
  • the random access preamble may be specified based at least on the index of the random access preamble. Different random access preambles corresponding to different indexes of the random access preamble may correspond to different combinations of the physical root sequence index u and the cyclic shift.
  • the physical root sequence index u and the cyclic shift may be given based at least on information included in the system information.
  • the physical root sequence index u may be an index for identifying a sequence included in the random access preamble.
  • the random access preamble may be specified based at least on the physical root sequence index u.
  • the uplink physical signal may not be used for transmitting and receiving information output from the upper layer, but is used by the physical layer.
  • -Uplink reference signal (UL RS: Uplink Reference Signal)
  • DMRS Demodulation Reference Signal
  • SRS Sounding Reference Signal
  • DMRS is related to transmission and reception of PUSCH and / or PUCCH.
  • DMRS is multiplexed with PUSCH or PUCCH.
  • the base station device 3 uses DMRS to perform propagation path correction of PUSCH or PUCCH.
  • transmitting the PUSCH and the DMRS together is simply referred to as transmitting the PUSCH.
  • transmitting the PUCCH and the DMRS together is simply referred to as transmitting the PUCCH.
  • receiving both the PUSCH and the DMRS is simply referred to as receiving the PUSCH.
  • receiving both the PUCCH and the DMRS is simply referred to as receiving the PUCCH.
  • the SRS may not be related to transmission / reception of PUSCH or PUCCH.
  • the base station device 3 may use the SRS for measuring the channel state.
  • the SRS may be transmitted and received at the end of a subframe in an uplink slot or a predetermined number of OFDM symbols from the end.
  • the following downlink physical channel is used in downlink wireless communication from the base station device 3 to the terminal device 1.
  • the downlink physical channel is used by the physical layer to transmit and receive information output from the upper layer.
  • ⁇ PBCH Physical Broadcast Channel
  • PDCCH Physical Downlink Control Channel
  • PDSCH Physical Downlink Shared Channel
  • the PBCH is used to broadcast a master information block (MIB: Master Information Block, BCH: Broadcast Channel) commonly used in the terminal device 1.
  • the PBCH may be transmitted based on a predetermined transmission interval. For example, the PBCH may be transmitted at 80 ms intervals. The content of the information included in the PBCH may be updated every 80 ms.
  • the PBCH may be configured with 288 subcarriers.
  • the PBCH may be configured to include two, three, or four OFDM symbols.
  • the MIB may include information related to an identifier (index) for the synchronization signal.
  • the MIB may include information indicating a slot number in which the PBCH is transmitted, a subframe number, and at least a part of a radio frame number.
  • the PDCCH (NR PDCCH) is used for transmitting and receiving downlink control information (DCI: Downlink Control Information). Downlink control information is also called DCI format.
  • the downlink control information may include at least either a downlink grant (downlink @ grant) or an uplink grant (uplink @ grant).
  • a downlink grant is also called a downlink assignment (downlink @ assignment) or a downlink assignment (downlink @ allocation).
  • the downlink control information may include Unlicensed @ access common information.
  • the Unlicensed @ access common information is control information on access, transmission, and the like in the unlicensed frequency band.
  • the Unlicensed access common information may be information of a downlink subframe configuration (Subframe configuration for Unlicensed Access).
  • the downlink subframe configuration may be based on the position of the OFDM symbol occupied in the subframe in which the PDCCH including the downlink subframe configuration information is allocated and / or the PDCCH including the downlink subframe configuration information. Indicates the position of the OFDM symbol that is occupied in the next subframe of the subframe to be used. In the occupied OFDM symbol, transmission and reception of a downlink physical channel and a downlink physical signal are performed.
  • the Unlicensed access common information may be information on an uplink subframe configuration (UL duration and offset).
  • the uplink subframe configuration includes the position of the subframe where the uplink subframe starts based on the subframe in which the PDCCH including the information of the uplink subframe configuration is arranged, and the subframe of the uplink subframe. Indicates a number. The terminal device 1 is not required to receive the downlink physical channel and the downlink physical signal in the subframe indicated by the information of the uplink subframe configuration.
  • downlink control information including a downlink grant or an uplink grant is transmitted and received on the PDCCH including C-RNTI (Cell-Radio Network Temporary Identifier).
  • C-RNTI Cell-Radio Network Temporary Identifier
  • Unlicensed access common information is transmitted and received on the PDCCH including the CC-RNTI (Common Control-Radio Network Temporary Identifier).
  • One downlink grant is used at least for scheduling one PDSCH in one serving cell.
  • the downlink grant is used at least for scheduling PDSCH in the same slot as the slot in which the downlink grant was transmitted.
  • the downlink grant may be used for scheduling the PDSCH in a slot different from the slot in which the downlink grant was transmitted.
  • One uplink grant is used at least for scheduling of one PUSCH in one serving cell.
  • the downlink subframe configuration may be indicated as the ⁇ Unlicensed ⁇ access common information.
  • the downlink subframe configuration indicates the configuration of the OFDM symbol occupied by the subframe.
  • the terminal device 1 recognizes a downlink physical channel and an OFDM symbol used for transmitting a physical signal in the base station device 3 from the OFDM symbol occupied by the subframe indicated by the downlink subframe configuration.
  • OFDM symbols occupied by the current subframe and / or the next subframe may be indicated.
  • the current subframe refers to a subframe in which the Unlicensed @ access common information including the information on the downlink subframe configuration is received. For example, it is shown that 14 OFDM symbols are occupied in the next subframe. For example, it is shown that ten OFDM symbols are occupied in the next subframe.
  • OFDM symbols are occupied in the next subframe. For example, it is shown that 14 OFDM symbols are occupied in the current subframe. For example, it is shown that 11 OFDM symbols are occupied in the current subframe. For example, it is shown that six OFDM symbols are occupied in the current subframe. For example, it is shown that three OFDM symbols are occupied in the current subframe.
  • the ⁇ Unlicensed ⁇ access common information may be information on an uplink subframe configuration (UL ⁇ duration ⁇ offset).
  • the uplink subframe configuration includes the position of the subframe where the uplink subframe starts based on the subframe in which the PDCCH including the information of the uplink subframe configuration is arranged, and the subframe of the uplink subframe. Indicates a number.
  • the terminal device 1 is not required to receive the downlink physical channel and the downlink physical signal in the subframe indicated by the information of the uplink subframe configuration. For example, the first subframe and one subframe from the reference subframe are shown, and the terminal device 1 transmits the downlink physical channel and the downlink physical signal in the first subframe from the reference subframe. Is not required to be received.
  • the terminal device 1 has the first sub-frame, the second sub-frame and the three sub-frames from the reference sub-frame. It is not required to receive a downlink physical channel and a downlink physical signal in the fourth subframe, the fourth subframe, the fifth subframe, and the sixth subframe.
  • the sixth subframe and three subframes from the reference subframe are shown, and the terminal device 1 displays the sixth subframe, the seventh subframe, and the eight subframes from the reference subframe. It is not required to receive a downlink physical channel and a downlink physical signal in the first subframe.
  • control resource set (control resource set) are set (configured) in order to search for the PDCCH.
  • the terminal device 1 attempts to receive the PDCCH in the set control resource set. Details of the control resource set will be described later.
  • PDSCH is used for transmitting and receiving downlink data (DL-SCH, PDSCH).
  • the PDSCH is used at least for transmitting and receiving a random access message 2 (random access response).
  • the PDSCH is used at least for transmitting and receiving system information including parameters used for initial access.
  • the downlink physical signal may not be used for transmitting and receiving information output from the upper layer, but is used by the physical layer.
  • -Synchronization signal (SS: Synchronization signal)
  • DL RS Downlink Reference Signal
  • the synchronization signal is used by the terminal device 1 to synchronize the downlink frequency domain and the time domain.
  • the synchronization signal includes PSS (Primary @ Synchronization @ Signal) and SSS (Secondary @ Synchronization @ Signal).
  • the downlink reference signal is used by the terminal device 1 to perform channel correction of the downlink physical channel.
  • the downlink reference signal is used by the terminal device 1 to calculate downlink channel state information.
  • DMRS Demodulation Reference Signal
  • DMRS corresponds to transmission and reception of PDCCH and / or PDSCH.
  • DMRS is multiplexed on PDCCH or PDSCH.
  • the terminal device 1 may use the PDCCH or the DMRS corresponding to the PDSCH in order to perform channel correction of the PDCCH or the PDSCH.
  • transmitting the PDCCH and the DMRS corresponding to the PDCCH together is simply referred to as transmitting the PDCCH.
  • the reception of the PDCCH and the DMRS corresponding to the PDCCH together is simply referred to as the reception of the PDCCH.
  • transmitting the PDSCH and the DMRS corresponding to the PDSCH together is referred to simply as transmitting the PDSCH.
  • the fact that the PDSCH and the DMRS corresponding to the PDSCH are received together is simply referred to as the PDSCH being received.
  • DMRS may be an RS individually set in the terminal device 1.
  • the DMRS sequence may be given based at least on parameters individually set in the terminal device 1.
  • DMRS may be transmitted separately for PDCCH and / or PDSCH.
  • the DMRS may be an RS that is commonly set for a plurality of terminal devices 1.
  • the DMRS sequence may be given irrespective of parameters individually set in the terminal device 1. For example, a DMRS sequence may be given based on at least a part of a slot number, a minislot number, and a cell ID (identity).
  • the DMRS may be a PDCCH and / or an RS transmitted regardless of whether the PDSCH is being transmitted.
  • the downlink physical channel and the downlink physical signal are also referred to as a downlink signal.
  • the uplink physical channel and the uplink physical signal are also called an uplink signal.
  • the downlink physical channel and the uplink physical channel are collectively referred to as a physical channel.
  • the downlink physical signal and the uplink physical signal are collectively referred to as a physical signal.
  • BCH, UL-SCH and DL-SCH are transport channels.
  • a channel used in a medium access control (MAC) layer is called a transport channel.
  • the unit of the transport channel used in the MAC layer is also called a transport block or MAC @ PDU.
  • HARQ Hybrid Automatic Repeat Repeat reQuest
  • the transport block is a unit of data that the MAC layer passes (deliver) to the physical layer. In the physical layer, transport blocks are mapped to codewords, and modulation processing is performed for each codeword.
  • the base station device 3 and the terminal device 1 exchange (transmit and receive) signals in an upper layer (higher layer).
  • the base station apparatus 3 and the terminal apparatus 1 transmit and receive RRC signaling (RRC message: Radio Resource Control message, RRC information: Transmission / Reception also referred to as Radio Resource Control). May be.
  • RRC signaling and / or MAC @ CE are also referred to as higher layer signals (higher layer signaling).
  • the PUSCH and PDSCH are used at least for transmitting and receiving RRC signaling and MAC CE.
  • the RRC signaling transmitted by the PDSCH from the base station device 3 may be a common signaling to a plurality of terminal devices 1 in the cell. Signaling common to a plurality of terminal devices 1 in a cell is also referred to as common RRC signaling.
  • the RRC signaling transmitted by the PDSCH from the base station device 3 may be signaling dedicated to a certain terminal device 1 (also referred to as dedicated @ signaling or UE @ specific @ signaling). Signaling dedicated to the terminal device 1 is also referred to as dedicated RRC signaling.
  • the cell-specific parameter may be transmitted using common signaling for a plurality of terminal devices 1 in a cell or dedicated signaling for a certain terminal device 1.
  • the UE-specific parameter may be transmitted to a certain terminal device 1 using dedicated signaling.
  • a PDSCH including dedicated RRC signaling may be scheduled by a PDCCH in a control resource set.
  • a PDSCH including common RRC signaling may be scheduled by a PDCCH in a control resource set.
  • BCCH Broadcast Control Channel
  • CCCH Common Control Channel
  • DCCH Dedicated Control Channel
  • the BCCH is an upper layer channel used for transmitting MIB.
  • the CCCH Common ⁇ Control ⁇ Channel
  • the DCCH is an upper layer channel used for transmitting and receiving individual control information (dedicated control information) to and from the terminal device 1.
  • the DCCH is used, for example, for the terminal device 1 connected to the RRC.
  • the BCCH in the logical channel may be mapped to the BCH, DL-SCH, or UL-SCH in the transport channel.
  • the CCCH in a logical channel may be mapped to a DL-SCH or a UL-SCH in a transport channel.
  • the DCCH in the logical channel may be mapped to the DL-SCH or UL-SCH in the transport channel.
  • UUL-SCH in transport channel is mapped to PUSCH in physical channel.
  • the DL-SCH in the transport channel is mapped to the PDSCH in the physical channel.
  • the BCH in the transport channel is mapped to the PBCH in the physical channel.
  • control resource set will be described.
  • FIG. 4 is a diagram illustrating an example of mapping of a control resource set according to an aspect of the present embodiment.
  • a control resource set may be a time-frequency domain to which one or more control channels may be mapped.
  • the control resource set may be an area where the terminal device 1 attempts to receive and / or detect the PDCCH (blind detection (BD: Blind @ Decoding)).
  • the control resource set may be configured by continuous resources (Localized @ resource) in the frequency domain.
  • the control resource set may be configured by discontinuous resources (distributed resources) in the frequency domain.
  • the unit of mapping of the control resource set may be a resource block.
  • the control resource set may be composed of a plurality of resource blocks.
  • the unit of mapping of the control resource set may be an OFDM symbol.
  • the control resource set may be composed of one, two, or three OFDM symbols.
  • the frequency domain of the control resource set may be the same as the system bandwidth of the serving cell. Further, the frequency domain of the control resource set may be given based at least on the system bandwidth of the serving cell. The frequency domain of the control resource set may be provided based at least on higher layer signaling or system information. For example, the position of the resource block configuring the control resource set is reported from the base station apparatus 3 to the terminal apparatus 1 using signaling of an upper layer. For each control resource set, the position of the resource block configuring the control resource set is reported from the base station device 3 to the terminal device 1 using the signaling of the upper layer.
  • the time domain of the control resource set may be provided based at least on upper layer signaling or system information.
  • the number of OFDM symbols constituting the control resource set is reported from the base station device 3 to the terminal device 1 using the signaling of the upper layer.
  • the start position of the OFDM symbol constituting the control resource set is reported from the base station device 3 to the terminal device 1 using the signaling of the upper layer.
  • the end position of the OFDM symbol constituting the control resource set is reported from the base station device 3 to the terminal device 1 using the signaling of the upper layer.
  • the position of the subframe in which the control resource set is arranged is notified from the base station device 3 to the terminal device 1 using signaling of an upper layer.
  • the position of the slot in which the control resource set is allocated is notified from the base station device 3 to the terminal device 1 using signaling of an upper layer.
  • the cycle of the subframe in which the control resource set is arranged is notified from the base station apparatus 3 to the terminal apparatus 1 using signaling of an upper layer.
  • the cycle of the slot in which the control resource set is arranged is notified from the base station device 3 to the terminal device 1 using signaling of an upper layer.
  • the common control resource set may be a control resource set commonly set for a plurality of terminal devices 1.
  • the common control resource set may be given based at least on a synchronization signal, MIB, first system information, second system information, common RRC signaling, dedicated RRC signaling, cell ID, and the like.
  • the position of the subframe in which the common control resource set is arranged may be given based at least on a synchronization signal, MIB, common RRC signaling, or the like.
  • the dedicated control resource set may be a control resource set that is set to be used exclusively for the individual terminal device 1.
  • the dedicated control resource set may be provided based at least on dedicated RRC signaling and / or the value of the C-RNTI.
  • the control resource set may be a set of control channels (or control channel candidates) monitored by the terminal device 1.
  • the control resource set may include a set of control channels (or control channel candidates) monitored by the terminal device 1.
  • the control resource set may be configured to include one or a plurality of search areas (search space, SS: Search @ Space).
  • search space, SS: Search @ Space One or a plurality of search areas (search space, SS: Search @ Space) may be configured (set) in the control resource set.
  • the search area is configured to include one or more PDCCH candidates (PDCCH candidate).
  • the terminal device 1 receives a PDCCH candidate included in the search area and tries to receive the PDCCH.
  • the PDCCH candidate is also referred to as a blind detection candidate (blind @ detection @ candidate).
  • the search area has two types: CSS (Common Search Space, common search area) and USS (UE-specific Search Space).
  • the CSS may be a search area commonly set for a plurality of terminal devices 1.
  • the USS may be a search area including a setting exclusively used for the individual terminal device 1.
  • the CSS may be provided based at least on a synchronization signal, MIB, first system information, second system information, common RRC signaling, dedicated RRC signaling, cell ID, and the like.
  • the USS may be provided based at least on dedicated RRC signaling and / or the value of the C-RNTI.
  • the CSS may be a search area set in a common resource (control resource element) for a plurality of terminal devices 1.
  • the USS may be a search area set in a resource (control resource element) for each individual terminal device 1.
  • the CSS includes type 0 PDCCH @ CSS for the DCI format scrambled by the SI-RNTI used for transmitting system information in the primary cell and type 1 PDCCH @ CSS for the DCI format scrambled by the INT-RNTI used for initial access. May be used.
  • a PDCCH @ CSS type for a DCI format scrambled by CC-RNTI used for Unlicensed @ access may be used.
  • the terminal device 1 can monitor PDCCH candidates in those search areas.
  • the DCI format scrambled by the predetermined RNTI may be a DCI format to which a CRC (Cyclic ⁇ Redundancy ⁇ Check) scrambled by the predetermined RNTI is added.
  • the PDCCH and / or DCI included in the CSS does not include CIF (Carrier ⁇ Indicator ⁇ Field) indicating which PDCCH / DCI schedules the PDSCH or PUSCH for which serving cell (or which component carrier). You may.
  • CIF Carrier ⁇ Indicator ⁇ Field
  • a predetermined serving cell (a predetermined component carrier) is set.
  • PDCCH and / or DCI included in the USS for the PDCCH / DCI includes a CIF indicating which serving cell and / or component carrier the PDSCH or PUSCH is scheduled for.
  • the PDCCH and / or DCI included in the USS includes any of the serving cells and / or Alternatively, the CIF indicating which component carrier PDSCH or PUSCH is scheduled may not be included.
  • the common control resource set may include CSS.
  • the common control resource set may include both CSS and USS.
  • the dedicated control resource set may include USS.
  • the dedicated control resource set may include CSS.
  • a PDCCH including control information required for Unlicensed access may be transmitted and received.
  • the PDCCH including the resource allocation information of the PDSCH including the RMSI may be transmitted and received.
  • a PDCCH including resource allocation information of a PDSCH including a RAR Random @ Access @ Response
  • a PDCCH including control information indicating a pre-empted resource may be transmitted and received.
  • a PDCCH including control information indicating a slot format indicator may be transmitted and received.
  • a plurality of common control resource sets may be configured, and each common control resource set may be arranged in a different subframe.
  • a plurality of common control resource sets may be configured, and each common control resource set may be arranged in the same subframe.
  • a plurality of common control resource sets may be configured, and different PDCCHs and different control information may be arranged in each common control resource set.
  • a plurality of dedicated control resource sets may be configured in a subframe.
  • a plurality of dedicated control resource sets may be configured, and each dedicated control resource set may be arranged in the same subframe.
  • a plurality of dedicated control resource sets may be configured, and each dedicated control resource set may be arranged in a different subframe.
  • the physical resource of the search area is configured by a control channel constituent unit (CCE: Control ⁇ Channel ⁇ Element).
  • CCE Control ⁇ Channel ⁇ Element
  • the CCE is configured by a predetermined number of resource element groups (REG: Resource ⁇ Group).
  • REG Resource ⁇ Group
  • a CCE may be composed of six REGs.
  • the REG may be configured by one OFDM symbol of one PRB (Physical Resource Block). That is, the REG may be configured to include 12 resource elements (RE: Resource @ Element).
  • PRB is also simply called RB (Resource @ Block).
  • the terminal device 1 can detect the PDCCH and / or DCI for the terminal device 1 by blindly detecting the PDCCH candidates included in the search area in the control resource set.
  • the number of times of blind detection for one control resource set in one serving cell and / or one component carrier is determined based on the type of search area for PDCCH included in the control resource set, the type of aggregation level, and the number of PDCCH candidates. May be done.
  • the type of the search region may include at least one of CSS and / or USS and / or UGSS (UE @ Group @ SS) and / or GCSS (Group @ CSS).
  • the type of the aggregation level indicates the maximum aggregation level supported for the CCEs constituting the search area, and at least one of ⁇ 1, 2, 4, 8,..., X ⁇ (X is a predetermined value) It may be defined / set from one.
  • the number of PDCCH candidates may indicate the number of PDCCH candidates for a certain aggregation level. That is, the number of PDCCH candidates may be defined / set for each of a plurality of aggregation levels.
  • the UGSS may be a search area commonly assigned to one or a plurality of terminal devices 1.
  • the GCSS may be a search area in which DCI including parameters related to CSS is mapped to one or a plurality of terminal devices 1.
  • the aggregation level indicates an aggregation level of a predetermined number of CCEs, and is related to the total number of CCEs constituting one PDCCH and / or a search area.
  • the size of the aggregation level may be associated with the coverage corresponding to the PDCCH and / or the search area or the size of the DCI included in the PDCCH and / or the search area (DCI format size, payload size).
  • the start position (start symbol) of a PDCCH symbol is set for one control resource set, and when more than one PDCCH in the control resource set can be detected in a predetermined period
  • the type of search region for PDCCH included in the control resource set, the type of aggregation level, and the number of PDCCH candidates may be respectively set.
  • the type of search area, the type of aggregation level, and the number of PDCCH candidates for the PDCCH included in the control resource set may be set for each control resource set, or may include DCI and / or higher layer signals (RRC signaling). ) May be provided / set, or may be specified / set in advance by a specification.
  • the number of PDCCH candidates may be the number of PDCCH candidates in a predetermined period.
  • the predetermined period may be 1 millisecond.
  • the predetermined period may be one microsecond.
  • the predetermined period may be a period of one slot.
  • the predetermined period may be a period of one OFDM symbol.
  • the start position (start symbol) of the PDCCH symbol is more than one for one control resource set, that is, when there are a plurality of timings for blindly detecting (monitoring) the PDCCH in a predetermined period
  • the type of the search domain, the type of the aggregation level, and the number of PDCCH candidates for the PDCCH included in the control resource set may be respectively set.
  • the type of search area, the type of aggregation level, and the number of PDCCH candidates for the PDCCH included in the control resource set may be set for each control resource set, or may be set via DCI and / or higher layer signals. It may be provided / set, or may be specified / set in advance by a specification.
  • the number of PDCCH candidates to be reduced from a predetermined number may be defined / set for each aggregation level.
  • the terminal device 1 may transmit / notify the base station device 3 of capability information related to blind detection.
  • the terminal device 1 may transmit / notify the number of PDCCH candidates that can be processed in one subframe to the base station device 3 as capability information on PDCCH. If the terminal device 1 can set more than a predetermined number of control resource sets for one or a plurality of serving cells / component carriers, the terminal device 1 transmits / notifies the base station device 3 of the capability information related to the blind detection. Good.
  • the terminal device 1 may transmit / notify the base station device 3 of the capability information related to the slot format.
  • the terminal device 1 transmits capability information related to blind detection to the base station device 3 to the base station device 3 when more than a predetermined number of control resource sets can be set for a predetermined period of one or a plurality of serving cells / component carriers. You may be notified.
  • the capability information related to the blind detection may include information indicating the maximum number of blind detections in a predetermined period. Also, the capability information related to the blind detection may include information indicating that PDCCH candidates can be reduced. In addition, the capability information related to the blind detection may include information indicating the maximum number of control resource sets that can be blindly detected in a predetermined period. The maximum number of the control resource sets and the maximum number of serving cells and / or component carriers capable of monitoring the PDCCH may be set as individual parameters or may be set as common parameters. In addition, the capability information related to the blind detection may include information indicating the maximum number of control resource sets that can simultaneously perform the blind detection in a predetermined period.
  • the terminal device 1 If the terminal device 1 does not support the capability of detecting (blind detection) a control resource set greater than a predetermined number in a predetermined period, the terminal device 1 transmits / notifies capability information related to the blind detection. It is not necessary. If the base station apparatus 3 does not receive the capability information related to the blind detection, the base station apparatus 3 may configure the control resource set so as not to exceed a predetermined number for the blind detection, and may transmit the PDCCH. .
  • the setting related to the control resource set includes a parameter indicating an index (ControlResourceSetId) for identifying the control resource set.
  • the setting related to the control resource set may include a parameter indicating the start position (start symbol) of the PDCCH.
  • the setting related to the control resource set includes a parameter indicating a time resource area of the control resource set (the number of OFDM symbols constituting the control resource set and / or a position of a subframe in which the control resource set is arranged). You may.
  • the setting related to the control resource set may include a parameter indicating a frequency resource region of the control resource set (the number of resource blocks configuring the control resource set).
  • the setting related to the control resource set may include a parameter indicating the type of mapping from the CCE to the REG.
  • the setting regarding the control resource set may include the REG bundle size.
  • RRC signaling may be used for transmitting and receiving a message indicating a setting related to a control resource set.
  • the SIB may be used for transmitting and receiving a message indicating a setting related to the control resource set.
  • the MIB may be used for transmitting and receiving a message indicating a setting related to the control resource set.
  • the setting relating to the search area includes a parameter indicating an index (search area index) for identifying the search area.
  • the setting related to the search area includes a parameter indicating the index of the control resource set in which the search area is arranged.
  • the setting related to the search area may include parameters indicating the cycle and offset of the slot in which the search area is arranged.
  • the setting regarding the search area may include a parameter indicating the number of slots in which the search areas are continuously arranged.
  • the setting related to the search area may include a parameter indicating an OFDM symbol in a slot for monitoring a PDCCH candidate.
  • the setting related to the search area may include a parameter indicating the number of PDCCH candidates to be monitored for each CCE aggregation level.
  • the setting related to the search area may include a parameter indicating DCI @ format in which monitoring is performed.
  • the setting relating to the search area may include a parameter indicating the type of the search area (CSS or USS).
  • RRC signaling may be used for transmitting and receiving a message indicating a setting related to a search area.
  • the SIB may be used for transmitting and receiving a message indicating the setting regarding the search area.
  • the MIB may be used for transmitting and receiving a message indicating the setting regarding the search area.
  • FIG. 5 is a diagram illustrating an example of a resource element included in a slot according to an aspect of the present embodiment.
  • the resource element is a resource defined by one OFDM symbol and one subcarrier.
  • a slot includes N symb OFDM symbols.
  • the number of subcarriers contained in the slot, the number N RB of resource blocks included in the slot may be given by the product of number of subcarriers N RB SC per resource block.
  • a resource block is a group of resource elements in the time domain and the frequency domain.
  • the resource block may be used as a unit for resource allocation in the time domain and / or the frequency domain.
  • N RB SC may be 12.
  • N symb may be the same as the number of OFDM symbols included in the subframe. N symb may be the same as the number of OFDM symbols included in the slot.
  • N RB may be provided based on the cell bandwidth and subcarrier spacing. Further, the N RB may be given based on an upper layer signal (for example, RRC signaling) transmitted from the base station device 3 or the like. Further, the N RB may be given based on the description of the specification.
  • a resource element is identified by an index k for a subcarrier and an index 1 for an OFDM symbol.
  • FIG. 6 is a diagram illustrating an example of a configuration of one REG according to an aspect of the present embodiment.
  • the REG may be configured by one OFDM symbol of one PRB. That is, the REG may be configured by 12 REs that are continuous in the frequency domain. Some of the plurality of REs constituting the REG may be REs to which no downlink control information is mapped.
  • the REG may be configured to include an RE to which downlink control information is not mapped, or may be configured to not include an RE to which downlink control information is not mapped.
  • the RE to which downlink control information is not mapped may be a RE to which a reference signal is mapped, an RE to which a channel other than a control channel is mapped, or a terminal device to which no control channel is mapped. 1 may be the RE assumed.
  • FIG. 7 is a diagram illustrating a configuration example of a CCE according to an aspect of the present embodiment.
  • the CCE may be composed of six REGs.
  • the CCE may be configured by REGs that are continuously mapped in the frequency domain (such a mapping may be referred to as Localized @ mapping) (such a mapping is referred to as non-mapping non-mapping).
  • -Interleaved ⁇ CCE-to-REG ⁇ mapping (such mapping may be referred to as non-interleaved ⁇ mapping). Note that not all REGs constituting the CCE need be continuous in the frequency domain.
  • each resource block constituting each consecutive number of REGs is Not continuous in the frequency domain.
  • the control resource set includes a plurality of OFDM symbols and a plurality of REGs configuring one CCE are arranged over a plurality of time sections (OFDM symbols), as shown in FIG. It may be constituted by a group of REGs that are continuously mapped in the region.
  • the CCE may be configured by REGs that are mapped discontinuously in the frequency domain (such a mapping may be referred to as Distributed @ mapping).
  • interleaved ⁇ CCE-to-REG ⁇ mapping (such a mapping may be referred to as interleaved ⁇ mapping).
  • REGs constituting a CCE using an interleaver may be discontinuously mapped to time-frequency domain resources.
  • the control resource set is composed of a plurality of OFDM symbols and a plurality of REGs constituting one CCE are arranged over a plurality of time sections (OFDM symbols), as shown in FIG.
  • REGs of different time intervals (OFDM symbols) may be mixed and configured by non-continuously mapped REGs. As illustrated in FIG.
  • the CCE may be configured by REGs that are distributed and mapped in groups of a plurality of REGs (a plurality of REGs mapped continuously in the frequency domain). As shown in FIG. 7 (f), the CCE may be configured by REGs that are distributed and mapped in groups of a plurality of REGs (a plurality of REGs mapped continuously in the time domain).
  • the $ CCE may be configured to include one or a plurality of REG groups.
  • REG groups are also referred to as REG bundles.
  • the number of REGs that make up one REG group is called Bundle @ size.
  • the Bundle size of the REG may be any one of 1, 2, 3, and 6.
  • an interleaver may be applied for each REG bundle.
  • the terminal device 1 may assume that the same precoder is applied to the REs in the REG group.
  • the terminal device 1 can perform channel estimation on the assumption that the precoder applied to the REs in the REG group is the same.
  • the terminal device 1 may assume that the precoders applied to the REs between the REG groups are not the same.
  • the terminal device 1 does not need to assume that the precoder applied to the REs between the REG groups is the same.
  • “Between REG groups” may be paraphrased as “between two different REG groups”.
  • the terminal device 1 can perform channel estimation on the assumption that precoders applied to REs between REG groups are not the same. Details of the REG group will be described later.
  • the number of CCEs constituting a PDCCH candidate is also referred to as an aggregation level (AL: Aggregation Level).
  • A Aggregation Level
  • Aggregation level set of PDCCH candidates of AL X is referred to as the search area of the aggregation level AL X. That is, the search area of the aggregation level AL X is aggregation level may be configured to include one or more PDCCH candidates of AL X. Also, the search area may include PDCCH candidates at a plurality of aggregation levels.
  • the CSS may include multiple aggregation level PDCCH candidates.
  • the USS may include multiple aggregation level PDCCH candidates.
  • a set of aggregation levels of PDCCH candidates included in the CSS and a set of aggregation levels of PDCCH candidates included in the USS may be defined / set respectively.
  • the REG group may be used for channel estimation in the terminal device 1.
  • the terminal device 1 performs channel estimation for each REG group. This is based on the difficulty of performing channel estimation (eg, MMSE channel estimation, etc.) at the RE for reference signals to which different precoders are applied.
  • MMSE is an abbreviation for Minimum ⁇ Mean ⁇ Square ⁇ Error.
  • the accuracy of channel estimation varies at least based on the power allocated to the reference signal, the density of the RE used for the reference signal in the time frequency domain, the environment of the radio channel, and the like.
  • the accuracy of the channel estimation varies based at least on the time-frequency domain used for the channel estimation.
  • the REG group may be used as a parameter for setting a time-frequency region used for channel estimation.
  • a small REG group means that one PDCCH candidate includes many REG groups.
  • the fact that one REGCH group is included in one PDCCH candidate means that a transmission method (a precoder rotation, a precoder cycling, and the like) that acquires spatial diversity by applying a precoder individually to each REG group. ).
  • One REG group may be composed of REGs that are continuous or close in the time domain and / or the frequency domain.
  • a group of REGs in the time domain is suitable for improving channel estimation accuracy and / or reducing reference signals.
  • the number of REGs forming the REG group in the time domain may be one, two, three, or another value.
  • the number of REGs forming the REG group in the time domain may be given based at least on the number of OFDM symbols included in the control resource set.
  • the number of REGs forming the REG group in the time domain may be the same as the number of OFDM symbols included in the control resource set.
  • the group of REGs in the frequency domain contributes to an improvement in channel estimation accuracy.
  • the number of REGs forming a group of REGs in the frequency domain may be two, three, or a multiple of at least two, or a multiple of at least three. Is also good.
  • the number of REGs forming the REG group in the frequency domain may be given based at least on the number of PRBs of the control resource set. Further, the number of REGs forming the REG group in the frequency domain may be the same as the number of PRBs included in the control resource set.
  • FIG. 8 is a diagram illustrating an example of REGs configuring PDCCH candidates and the number of REGs configuring REG groups according to an aspect of the present embodiment.
  • PDCCH candidates are mapped to one OFDM symbol, and three REG groups (REG @ group) including two REGs are configured. That is, in the example shown in FIG. 8A, one REG group is composed of two REGs.
  • the number of REGs forming a group of REGs in the frequency domain may include a divisor of the number of PRBs mapped in the frequency direction. In the example illustrated in FIG. 8A, the number of REGs forming a group of REGs in the frequency domain may be 1, 2, 3, or 6.
  • PDCCH candidates are mapped to two OFDM symbols, and three REG groups including two REGs are configured.
  • the number of REGs forming a group of REGs in the frequency domain may be either one or three.
  • the number of REGs forming a group of REGs in the frequency domain may be given based at least on the number of OFDM symbols to which PDCCH candidates are mapped.
  • the number of REGs forming the REG group in the frequency domain may be individually set for the number of OFDM symbols to which PDCCH candidates are mapped.
  • the number of REGs configuring the REG group in the frequency domain may be given based at least on a mapping method (mapping type) of the REGs configuring the CCE.
  • the number of REGs constituting the REG group in the frequency domain may be individually set for the mapping method of the REGs constituting the CCE.
  • the method of mapping the REGs constituting the CCE may be either interleaved @ mapping or non-interleaved @ mapping.
  • the mapping method of the REGs constituting the CCE may be either a continuous mapping method or a discontinuous mapping method.
  • the number of REGs forming a group of REGs in the frequency domain may be given based at least on the number of OFDM symbols to which one CCE is mapped.
  • the number of REGs forming a group of REGs in the frequency domain may be set individually for the number of OFDM symbols to which one CCE is mapped.
  • the number of REGs forming a group of REGs in the time domain may be given based at least on the number of OFDM symbols to which PDCCH candidates are mapped.
  • the number of REGs forming the REG group in the time domain may be individually set for the number of OFDM symbols to which PDCCH candidates are mapped.
  • the number of REGs forming a group of REGs in the time domain may be given based at least on the number of OFDM symbols to which one CCE is mapped.
  • the number of REGs forming a group of REGs in the time domain may be set individually for the number of OFDM symbols to which one CCE is mapped.
  • the REG group in the time domain is also suitable for reducing reference signals.
  • the reference signal may be included in a front OFDM symbol and / or a rear OFDM symbol.
  • the first REG (leading REG) in the REG group may include a RE to which no downlink control information is mapped, and REGs other than the first REG in the REG group may have the downlink control information. It may not include REs that are not mapped.
  • FIG. 9 is a diagram illustrating an example of mapping of REGs configuring a CCE according to an aspect of the present embodiment.
  • the CCE includes six REGs.
  • FIG. 9A shows an example in which REGs constituting a CCE are mapped to Time @ first.
  • the Time @ first mapping maps the REG from the low (small) index of the REG in the time domain to the high (large) index of the REG. This is a mapping method in which one is added.
  • FIG. 9B shows an example in which the REGs constituting the CCE are mapped to Frequency @ first.
  • the mapping of Frequency @ first maps the REG from the lower (small) index to the higher (large) index of the REG in the frequency domain, and changes the index of the REG in the time domain when the index of the REG in the frequency domain reaches the maximum.
  • to map the REG means to map the signal arranged in the REG.
  • FIG. 10 is a schematic block diagram showing the configuration of the terminal device 1 of the present embodiment.
  • the terminal device 1 is configured to include a wireless transmission / reception unit 10 and an upper layer processing unit 14.
  • the wireless transmission / reception unit 10 includes an antenna unit 11, an RF (Radio @ Frequency) unit 12, and a baseband unit 13.
  • the upper layer processing unit 14 includes a medium access control layer processing unit 15 and a radio resource control layer processing unit 16.
  • the wireless transmission / reception unit 10 is also referred to as a transmission unit, a reception unit, or a physical layer processing unit.
  • the physical layer processing unit includes a decoding unit.
  • the receiving unit of the terminal device 1 receives the PDCCH.
  • the decoding unit of the terminal device 1 decodes the received PDCCH.
  • the decoding unit of the terminal device 1 performs the blind decoding process on the received signal of the resource corresponding to the USS PDCCH candidate.
  • the decoding unit of the terminal device 1 performs a brand decoding process on the received signal of the resource corresponding to the PDCCH candidate of the CSS.
  • the receiving unit of the terminal device 1 monitors PDCCH candidates in the control resource set.
  • the receiving unit of the terminal device 1 activates N (a natural number of 1 or more) control resource sets.
  • the receiving unit of the terminal device 1 activates N control resource sets from the M (natural number of 1 or more) control resource sets set by the radio resource control layer processing unit 16.
  • the receiving unit of the terminal device 1 monitors a plurality of PDCCH candidates in the activated control resource set.
  • the receiving unit of the terminal device 1 monitors a plurality of PDCCH candidates in the activated N control resource sets.
  • the receiving unit of the terminal device 1 activates N control resource sets based on the control resource set index.
  • the receiving unit of the terminal device 1 activates N control resource sets based on the control resource set index from among the M control resource sets set by the radio resource control layer processing unit 16.
  • the receiving unit of the terminal device 1 activates N control resource sets having a small or large control resource index value from among the M control resource sets set by the radio resource control layer processing unit 16.
  • the M control resource sets are set for each LBT @ subband (LBG @ grid) in the Bandwidth @ part.
  • the receiving unit of the terminal device 1 activates N control resource sets from one or more LBT @ subbands accessed by the base station device 3 using resources.
  • activating the control resource set may mean activating a search area in the control resource set.
  • activating the control resource set may mean activating (performing) an operation of monitoring a PDCCH candidate in a search area in the control resource set.
  • the upper layer processing unit 14 outputs the uplink data (transport block) generated by a user operation or the like to the wireless transmission / reception unit 10.
  • the upper layer processing unit 14 performs processing of a MAC layer, a packet data integration protocol (PDCP: Packet Data Convergence Protocol) layer, a radio link control (RLC: Radio Link Control) layer, and an RRC layer.
  • PDCP Packet Data Convergence Protocol
  • RLC Radio Link Control
  • the medium access control layer processing unit 15 included in the upper layer processing unit 14 performs processing of the MAC layer.
  • the radio resource control layer processing unit 16 included in the upper layer processing unit 14 performs processing of the RRC layer.
  • the radio resource control layer processing unit 16 manages various setting information / parameters of the own device.
  • the radio resource control layer processing unit 16 sets various setting information / parameters based on the upper layer signal received from the base station device 3. That is, the radio resource control layer processing unit 16 sets various setting information / parameters based on information indicating various setting information / parameters received from the base station device 3.
  • the radio resource control layer processing unit 16 sets a control resource set based on the RRC signaling received from the base station device 3.
  • the radio resource control layer processing unit 16 sets a search area based on the RRC signaling received from the base station device 3.
  • the radio resource control layer processing unit 16 sets a search area in the control resource set based on the RRC signaling received from the base station device 3.
  • the radio resource control layer processing unit 16 sets a control resource set for each LBT @ subband in the Bandwidth @ part based on the RRC signaling received from the base station device 3.
  • the radio resource control layer processing unit 16 sets M control resource sets based on the RRC signaling received from the base station device 3.
  • the radio resource control layer processing unit 16 sets M control resource sets for each LBT @ subband in the Bandwidth @ part based on the RRC signaling received from the base station device 3.
  • the radio resource control layer processing unit 16 sets a frequency bandwidth and a frequency position (resource block number) of Bandwidth @ part.
  • the radio resource control layer processing unit 16 sets one or a plurality of LBT @ subband frequency bandwidths and frequency positions (resource block numbers). Note that the frequency bandwidth and frequency position (resource block number) that are candidates for LBT @ subband are determined in advance by a standard and numbered, and the number of each LBT @ subband is notified from the base station device 3 and the terminal device 1 The radio resource control layer processing unit 16 may set the frequency bandwidth and frequency position (resource block number) of each LBT @ subband based on the notified number.
  • the wireless transmission / reception unit 10 performs physical layer processing such as modulation, demodulation, encoding, and decoding.
  • the wireless transmission / reception unit 10 separates, demodulates, and decodes the signal received from the base station device 3 and outputs the decoded information to the upper layer processing unit 14.
  • the wireless transmission / reception unit 10 generates a transmission signal by modulating and encoding data, and transmits the transmission signal to the base station device 3.
  • the RF unit 12 converts a signal received via the antenna unit 11 into a baseband signal by orthogonal demodulation (down-conversion: down : convert), and removes unnecessary frequency components.
  • the RF unit 12 outputs the processed analog signal to the baseband unit.
  • the baseband unit 13 converts an analog signal input from the RF unit 12 into a digital signal.
  • the baseband unit 13 removes a portion corresponding to CP (Cyclic Prefix) from the converted digital signal, performs fast Fourier transform (FFT: Fast Fourier Transform) on the signal from which the CP has been removed, and converts the signal in the frequency domain. Extract.
  • FFT Fast Fourier Transform
  • the baseband unit 13 performs an inverse fast Fourier transform (IFFT: Inverse Fast Fourier Transform) on the data, generates an OFDM symbol, adds a CP to the generated OFDM symbol, generates a baseband digital signal, and generates a baseband digital signal.
  • IFFT Inverse Fast Fourier Transform
  • the band digital signal is converted into an analog signal.
  • the baseband unit 13 outputs the converted analog signal to the RF unit 12.
  • the RF unit 12 uses a low-pass filter to remove extra frequency components from the analog signal input from the baseband unit 13, up-converts the analog signal to a carrier frequency (up convert), and transmits the analog signal via the antenna unit 11. I do. Further, the RF unit 12 amplifies the power. Further, the RF unit 12 may have a function of controlling transmission power. The RF unit 12 is also called a transmission power control unit.
  • the terminal device 1 receives the PDCCH.
  • the radio resource control layer processing unit 16 sets a control resource set based on RRC signaling.
  • the radio resource control layer processing unit 16 sets M control resource sets based on the RRC signaling.
  • the radio resource control layer processing unit 16 sets M control resource sets for each LBT @ subband in the Bandwidth @ part based on the RRC signaling received from the base station device 3.
  • the receiving unit of the terminal device 1 monitors a plurality of PDCCH candidates in the control resource set.
  • the receiving unit of the terminal device 1 activates N (a natural number of 1 or more) control resource sets.
  • the receiving unit of the terminal device 1 activates N control resource sets from the M (natural number of 1 or more) control resource sets set by the radio resource control layer processing unit 16.
  • the receiving unit of the terminal device 1 monitors a plurality of PDCCH candidates in the activated control resource set.
  • the receiving unit of the terminal device 1 monitors a plurality of PDCCH candidates in the activated N control resource sets.
  • the receiving unit of the terminal device 1 activates N control resource sets based on the control resource set index.
  • the receiving unit of the terminal device 1 activates N control resource sets based on the control resource set index from among the M control resource sets set by the radio resource control layer processing unit 16.
  • the receiving unit of the terminal device 1 activates N control resource sets having a small or large control resource index value from among the M control resource sets set by the radio resource control layer processing unit 16.
  • the M control resource sets are set for each LBT @ subband (LBG @ grid) in the Bandwidth @ part.
  • the receiving unit of the terminal device 1 activates N control resource sets from one or more LBT @ subbands accessed by the base station device 3 using resources.
  • activating the control resource set may mean activating a search area in the control resource set.
  • activating the control resource set may mean activating (performing) an operation of monitoring a PDCCH candidate in a search area in the control resource set.
  • the decoding unit of the terminal device 1 decodes the monitored PDCCH candidate.
  • the above-mentioned Bandwidth @ part is formed in one cell.
  • FIG. 11 is a schematic block diagram illustrating the configuration of the base station device 3 of the present embodiment.
  • the base station device 3 is configured to include a radio transmission / reception unit 30 and an upper layer processing unit 34.
  • the wireless transmission / reception unit 30 includes an antenna unit 31, an RF unit 32, and a baseband unit 33.
  • the upper layer processing unit 34 includes a medium access control layer processing unit 35 and a radio resource control layer processing unit 36.
  • the wireless transmission / reception unit 30 is also referred to as a transmission unit, a reception unit, or a physical layer processing unit.
  • the upper layer processing unit 34 performs processing of the MAC layer, PDCP layer, RLC layer, and RRC layer.
  • the medium access control layer processing unit 35 included in the upper layer processing unit 34 performs processing of the MAC layer.
  • the radio resource control layer processing unit 36 included in the upper layer processing unit 34 performs processing of the RRC layer.
  • the radio resource control layer processing unit 36 generates downlink data (transport block), system information, an RRC message (RRC signaling), MAC @ CE, and the like, which are arranged on the PDSCH, or acquires it from an upper node, and Output to 30. Further, the radio resource control layer processing unit 36 manages various setting information / parameters of each terminal device 1.
  • the radio resource control layer processing unit 36 may set various setting information / parameters for each of the terminal devices 1 via a signal of an upper layer. That is, the radio resource control layer processing unit 36 transmits / reports information indicating various setting information / parameters.
  • the radio resource control layer processing unit 36 sets M (a natural number of 1 or more) control resource sets for the terminal device 1.
  • the radio resource control layer processing unit 36 sets a control resource set for the terminal device 1 for each LBT @ subband within the Bandwidth @ part.
  • the radio resource control layer processing unit 36 sets M control resource sets for the terminal device 1 for each LBT @ subband in the Bandwidth @ part.
  • the radio resource control layer processing unit 36 sets a frequency bandwidth and a frequency position (resource block number) of Bandwidth @ part.
  • the radio resource control layer processing unit 36 sets the frequency bandwidth and the frequency position (resource block number) of one or more LBT @ subbands.
  • the frequency bandwidth and frequency position (resource block number) that are candidates for LBT @ subband are determined in advance by a standard and numbered, and the number of each LBT @ subband is notified from the base station device 3 and the terminal device 1 ,
  • the frequency bandwidth and the frequency position (resource block number) of each LBT @ subband may be set based on the number notified in.
  • the function of the wireless transmitting and receiving unit 30 has the same function as that of the wireless transmitting and receiving unit 10.
  • the transmitting unit of the base station device 3 activates N (a natural number of 1 or more) control resource sets.
  • the transmission unit of the base station device 3 activates N control resource sets from among M (natural number of 1 or more) control resource sets set by the radio resource control layer processing unit 36.
  • the transmitting unit of the base station device 3 transmits the PDCCH using the PDCCH candidate in the activated control resource set.
  • the transmitting unit of the base station device 3 transmits the PDCCH using the PDCCH candidates in the activated N control resource sets.
  • the transmitting unit of the base station device 3 activates N control resource sets based on the control resource set index.
  • the transmission unit of the base station apparatus 3 activates N control resource sets based on the control resource set index from among the M control resource sets set by the radio resource control layer processing unit 36.
  • the transmitting unit of the base station device 3 activates N control resource sets with a small or large control resource index value from among the M control resource sets set by the radio resource control layer processing unit 36.
  • the M control resource sets are set for each LBT @ subband (LBG @ grid) in the Bandwidth @ part.
  • the transmission unit of the base station device 3 activates N control resource sets from one or more LBT @ subbands accessed using the resources.
  • activating the control resource set may mean activating a search area in the control resource set.
  • activating the control resource set may mean transmitting a PDCCH using a PDCCH candidate in a search area in the control resource set.
  • the above-mentioned Bandwidth @ part is formed in one cell.
  • the wireless transmission / reception unit 30 grasps an SS (Search @ space: search area) configured in the terminal device 1.
  • the wireless transmission / reception unit 30 includes an SS grasping unit, and the SS grasping unit grasps the SS configured in the terminal device 1.
  • the SS grasping unit grasps one or more PDCCH candidates in the control resource set configured as Search @ space of the terminal device.
  • the SS grasping unit grasps PDCCH candidates (the number of PDCCH candidates and the numbers of PDCCH candidates) configured in the dedicated control resource set of the terminal device 1.
  • the SS grasping unit grasps PDCCH candidates (the number of PDCCH candidates and the numbers of PDCCH candidates) configured in the common control resource set.
  • the SS grasping unit grasps the PDCCH candidates (the number of PDCCH candidates and the numbers of the PDCCH candidates) configured in the control resource set for each LBT ⁇ subband in Bandwidth ⁇ part.
  • the transmitting unit of the radio transmitting / receiving unit 30 transmits the PDCCH using the PDCCH candidate.
  • the transmission unit (transmission processing unit) of the radio transmission / reception unit 30 of the base station device 3 transmits a PDCCH including CC-RNTI.
  • the transmission unit (transmission processing unit) of the radio transmission / reception unit 30 of the base station device 3 transmits the PDCCH including the Unlicensed @ access common information in the control resource set for each LBT @ subband in the Bandwidth @ part.
  • the transmission unit (transmission processing unit) of the radio transmission / reception unit 30 of the base station device 3 transmits the PDCCH including the Unlicensed access common information (control information indicating the configuration of the subframe of LBT @ subband) in the control resource set for each LBT @ subband. .
  • the wireless resource control layer processing unit 36 configures (sets) each control resource set configured in Bandwidth part using a plurality of resource blocks in the corresponding LBT subband.
  • Each of the units provided with reference numerals 10 to 16 included in the terminal device 1 may be configured as a circuit.
  • Each of the units denoted by reference numerals 30 to 36 included in the base station device 3 may be configured as a circuit.
  • the terminal device 1 may include at least a memory and the circuit.
  • the base station device 3 may include at least a memory and the circuit.
  • each circuit may have a memory, or may have a memory separately from the circuit.
  • each circuit may have a memory, or may have a memory separately from the circuit.
  • the base station device 3 has a communicable range (or communication area) controlled by the base station device 3.
  • the communicable range is divided into one or more cells (or serving cells, subcells, beams, and the like), and communication with the terminal device 1 can be managed for each cell.
  • the terminal device 1 selects at least one cell from a plurality of cells and attempts to establish a connection with the base station device 3.
  • the first state in which the connection between the terminal device 1 and at least one cell of the base station device 3 is established is also referred to as an RRC connection (RRC Connection).
  • RRC Connection The second state in which the terminal device 1 has not established a connection with any cell of the base station device 3 is also referred to as RRC idle.
  • the third state in which the connection between the terminal device 1 and at least one cell of the base station device 3 is established, but some functions are restricted between the terminal device 1 and the base station device 3 is as follows. Also called RRC suspended (RRC @ suspended). RRC suspension is also referred to as RRC inactive.
  • the terminal device 1 of the RRC idle may try to establish a connection with at least one cell of the base station device 3.
  • the cell to which the terminal device 1 attempts to connect is also called a target cell.
  • FIG. 12 is a diagram illustrating an example of a first initial connection procedure (4-step contention based RACH procedure) according to an aspect of the present embodiment.
  • the first initial connection procedure includes at least a part of steps 5101 to 5104.
  • Step 5101 is a step in which the terminal device 1 requests a response for initial connection to the target cell via a physical channel.
  • step 5101 is a step in which the terminal device 1 performs the first transmission to the target cell via the physical channel.
  • the physical channel may be, for example, a PRACH.
  • the physical channel may be a channel exclusively used to request a response for an initial connection.
  • the message transmitted from the terminal device 1 via the physical channel in Step 5101 is also referred to as a random access message 1.
  • the signal of the random access message 1 may be generated based on a random access preamble index u given from an upper layer of the terminal device 1.
  • step 5101 the terminal device 1 performs downlink time-frequency synchronization.
  • a synchronization signal is used for the terminal device 1 to perform downlink time-frequency synchronization.
  • the synchronization signal may be transmitted including the ID of the target cell (cell ID).
  • the synchronization signal may be transmitted including a sequence generated based at least on the cell ID.
  • the fact that the synchronization signal includes the cell ID may mean that a sequence of the synchronization signal is given based on the cell ID.
  • the synchronization signal may be transmitted by applying a beam (or a precoder).
  • the beam shows a phenomenon that the antenna gain varies depending on the direction.
  • the beam may be provided based at least on the directivity of the antenna. Also, the beam may be provided at least based on a phase conversion of the carrier signal. Also, the beam may be provided by applying a precoder.
  • the terminal device 1 receives the PBCH transmitted from the target cell.
  • the PBCH may be transmitted including an important information block (MIB: Master Information Block, EIB: Essential Information Block) including important system information used for the terminal device 1 to connect to the target cell.
  • the important information block is system information.
  • the important information block may include information on the number of the radio frame.
  • the important information block may include information on a position in a superframe composed of a plurality of radio frames (for example, information indicating at least a part of a system frame number (SFN: System ⁇ Frame ⁇ Number) in the superframe).
  • the PBCH may include an index of a synchronization signal.
  • the PBCH may include information related to receiving the PDCCH.
  • the important information block may be mapped to the BCH in the transport channel.
  • the important information block may be mapped to the BCCH in the logical channel.
  • the information related to the reception of the PDCCH may include information indicating a control resource set.
  • the information indicating the control resource set may include information on the number and location of PRBs to which the control resource set is mapped.
  • the information indicating the control resource set may include information indicating the mapping of the control resource set.
  • the information indicating the control resource set may include information related to the number of OFDM symbols to which the control resource set is mapped.
  • the information indicating the control resource set may include information indicating a period (periodicity) of a slot to which the control resource set is mapped.
  • the information indicating the control resource set may include information indicating a position in a time domain of a subframe or a slot in which the control resource set is arranged.
  • the terminal device 1 can attempt to receive the PDCCH based at least on the information indicating the control resource set included in the PBCH.
  • the information related to the reception of the PDCCH may include information related to the ID indicating the destination of the PDCCH.
  • the ID indicating the destination of the PDCCH may be an ID used for scrambling a CRC bit added to the PDCCH.
  • the ID indicating the destination of the PDCCH is also called RNTI (Radio Network Temporary Identifier). It may include information related to an ID used for scrambling a CRC bit added to the PDCCH.
  • the terminal device 1 can attempt to receive the PDCCH based at least on the information related to the ID included in the PBCH.
  • RNTI is SI-RNTI (System Information-RNTI), P-RNTI (Paging-RNTI), C-RNTI (Common-RNTI), Temporary C-RNTI, RA-RNTI (Random Access-CCN-RNT). Common ⁇ Control ⁇ - ⁇ RNTI).
  • SI-RNTI is used at least for scheduling of a PDSCH transmitted including system information.
  • P-RNTI is used at least for scheduling of the PDSCH transmitted including information such as paging information and / or system information change notification.
  • the C-RNTI is used at least for scheduling user data for the terminal device 1 connected to the RRC.
  • Temporary @ C-RNTI is used at least for scheduling the random access message 4.
  • Temporary @ C-RNTI is used at least for scheduling a PDSCH including data mapped to a CCCH in a logical channel.
  • RA-RNTI is used at least for scheduling the random access message 2.
  • the CC-RNTI is used at least for transmitting and receiving control information of Unlicensed @ access.
  • a common control resource set in which a PDSCH including PDSCH resource allocation information used for transmission and reception of system information may be arranged in association with a synchronization signal.
  • the common control resource set may be arranged in a subframe that is the same as or close to the time domain in which the synchronization signal is arranged.
  • the information related to the reception of the PDCCH may include information on the aggregation level of the search area included in the control resource set.
  • the terminal device 1 can specify the aggregation level of the PDCCH candidate to be tried to receive and determine the search area based on at least the information on the aggregation level of the search area included in the control resource set included in the PBCH.
  • the information related to PDCCH reception may include information on the number of PDCCH candidates in the search area.
  • Information related to PDCCH reception may include information on the number of PDCCH candidates for each aggregation level of the search area.
  • the information related to the reception of the PDCCH may include information (REG bundle size) related to the REG group.
  • the information related to the reception of the PDCCH may include information indicating the number of REGs forming the REG group in the frequency domain.
  • the information related to the reception of the PDCCH may include information indicating the number of REGs forming a group of REGs in the time domain.
  • the reference signal corresponding to the control resource set may correspond to a plurality of PDCCH candidates included in the control resource set.
  • the reference signal corresponding to the control resource set may be used for demodulation of a plurality of PDCCHs included in the control resource set.
  • the base station device 3 can transmit a PBCH including information related to the reception of the PDCCH and instruct the terminal device 1 to monitor the common control resource set.
  • the terminal device 1 performs monitoring of the common control resource set based at least on detecting information related to the reception of the PDCCH included in the PBCH.
  • the common control resource set is used at least for scheduling of the first system information (RMSI, OSI).
  • the first system information may include important system information for the terminal device 1 to connect to the target cell.
  • the first system information may include information on various downlink settings.
  • the first system information may include information on various settings of the PRACH.
  • the first system information may include information on various uplink settings.
  • the first system information may include signal waveform information (OFDM or DFT-s-OFDM) set for random access message 3 transmission.
  • OFDM signal waveform information
  • the first system information may include at least a part of the system information other than the information included in the MIB.
  • the first system information may be mapped to a BCH on a transport channel.
  • the first system information may be mapped to a BCCH in a logical channel.
  • the first system information may include at least SIB1 (System ⁇ Information ⁇ Block ⁇ type1).
  • the first system information may include at least SIB2 (System ⁇ Information ⁇ Block ⁇ type2).
  • the common control resource set may be used for scheduling the random access message 2.
  • SIB1 may include information related to measurement necessary for making an RRC connection.
  • the SIB 2 may include information about a channel that is common and / or shared between a plurality of terminal devices 1 in a cell.
  • the MIB may include information indicating a frequency resource forming Bandwidth @ part.
  • the system information SIB (SIB1) may include information indicating a frequency resource constituting Bandwidth @ part.
  • the terminal device 1 may monitor the PDCCH based at least on information related to the reception of the PDCCH.
  • the terminal device 1 may monitor the PDCCH based at least on information related to the REG group.
  • the terminal device 1 may assume a setting applied for monitoring the PDCCH based at least on information related to the reception of the PDCCH.
  • the base station device 3 can transmit MIB and / or first system information and instruct the terminal device 1 to monitor the common control resource set.
  • the first system information may include information related to the reception of the PDCCH.
  • the terminal device 1 may monitor the common control resource set based at least on the information related to the reception of the PDCCH included in the MIB and / or the first system information.
  • the common control resource set may be used to schedule a PDSCH including paging information and / or information for a change notification of system information.
  • Step 5102 is a step in which the base station device 3 makes a response to the random access message 1 to the terminal device 1.
  • the response is also called a random access message 2.
  • Random access message 2 may be sent via PDSCH.
  • the PDSCH including the random access message 2 is scheduled by the PDCCH.
  • CRC bits included in the PDCCH may be scrambled by RA-RNTI.
  • the random access message 2 may be transmitted including a special uplink grant.
  • the special uplink grant is also called a random access response grant.
  • the special uplink grant may be included in the PDSCH including the random access message 2.
  • the random access response grant may include at least Temporary @ C-RNTI.
  • the base station device 3 can transmit the MIB, the first system information, and / or the second system information, and can instruct the terminal device 1 to monitor the common control resource set.
  • the second system information may include information related to receiving the PDCCH.
  • the terminal device 1 monitors the common control resource set based at least on information related to the reception of the PDCCH included in the MIB, the first system information, and / or the second system information.
  • CRC bits added to the PDCCH may be scrambled by Temporary @ C-RNTI.
  • the common control resource set may be used for scheduling the random access message 2.
  • the common control resource set is further based on at least the physical route index u included in the random access message 1 transmitted from the terminal device 1 and / or the resources (PRACH resources) used for transmitting the random access message 1. May be given.
  • the random access message 1 may correspond to monitoring of a control resource set.
  • the resource may indicate a time and / or frequency resource.
  • the resource may be given by a resource block index and / or a slot (subframe) index. Monitoring of the common control resource set may be triggered by the random access message 1.
  • Step 5103 is a step in which the terminal device 1 transmits an RRC connection request to the target cell.
  • the request for the RRC connection is also called a random access message 3.
  • the random access message 3 may be transmitted via the PUSCH scheduled by the random access response grant.
  • the random access message 3 may include an ID used for identifying the terminal device 1.
  • the ID may be an ID managed by an upper layer.
  • the ID may be S-TMSI (SAE Temporary Mobile Mobile Subscriber Identity).
  • the ID may be mapped to the CCCH in a logical channel.
  • Step 5104 is a step in which the base station device 3 transmits a collision resolution message to the terminal device 1.
  • the collision resolution message is also called a random access message 4.
  • the terminal device 1 monitors the PDCCH for scheduling the PDSCH including the random access message 4.
  • the random access message 4 may include a collision avoidance ID.
  • the collision avoidance ID is used to resolve a collision in which a plurality of terminal devices 1 transmit signals using the same radio resource.
  • the collision avoidance ID is also called UE ⁇ contention ⁇ resolution ⁇ identity.
  • the terminal device 1 that has transmitted the random access message 3 including the ID (for example, S-TMSI) used for identifying the terminal device 1 monitors the random access message 4 including the collision resolution message. If the collision avoidance ID included in the random access message 4 is equal to the ID used to identify the terminal device 1, the terminal device 1 considers that the collision resolution has been successfully completed, and sets the C-RNTI field May be set to the value of Temporary @ C-RNTI. The terminal device 1 in which the value of Temporary @ C-RNTI is set in the C-RNTI field is regarded as having completed the RRC connection.
  • the ID for example, S-TMSI
  • the control resource set for monitoring the PDCCH for scheduling the random access message 4 may be a common control resource set.
  • the base station apparatus 3 can transmit the information related to the reception of the PDCCH in the random access message 2 and instruct the terminal apparatus 1 to monitor the common control resource set.
  • the terminal device 1 monitors the PDCCH based at least on information related to the reception of the PDCCH included in the random access message 2.
  • the terminal device 1 connected to the RRC can receive dedicated RRC signaling mapped to the DCCH in the logical channel.
  • the base station device 3 can transmit dedicated RRC signaling including information related to the reception of the PDCCH, and instruct the terminal device 1 to monitor the dedicated control resource set.
  • the terminal device 1 performs monitoring of the PDCCH based at least on information related to the reception of the PDCCH included in the dedicated RRC signaling.
  • the base station device 3 can transmit dedicated RRC signaling including information related to the reception of the PDCCH, and instruct the terminal device 1 to monitor the common control resource set.
  • the terminal device 1 monitors the PDCCH including the CC-RNTI in the common control resource set.
  • the base station device 3 can transmit the random access message 4 including information related to the reception of the PDCCH, and instruct the terminal device 1 to monitor the dedicated control resource set.
  • the terminal device 1 may monitor the dedicated control resource set based at least on the information related to the reception of the PDCCH.
  • the common control resource set may include not only one type but also a plurality of types.
  • a plurality of common control resource sets may be independently configured.
  • a common control resource set for transmitting and receiving PDCCH including CC-RNTI and a common control resource set for transmitting and receiving PDCCH including SI-RNTI may be configured independently.
  • Each of the plurality of common control resource sets may be configured in a different LBT @ subband.
  • FIG. 13 is a diagram illustrating an example of PDCCH candidates monitored by the terminal device 1 according to an aspect of the present embodiment.
  • FIG. 13A shows an example of a PDCCH candidate in a search area of a dedicated control resource set (Dedicated @ CORESET, UE-specific @ CORESET) set based on RRC signaling.
  • FIG. 13A also illustrates an example of a USS PDCCH candidate set based on RRC signaling.
  • FIG. 13A an example in which six PDCCH candidates at aggregation level 1, six PDCCH candidates at aggregation level 2, two PDCCH candidates at aggregation level 4, and two PDCCH candidates at aggregation level 8 are configured. Is shown.
  • FIG. 13A shows an example in which six PDCCH candidates at aggregation level 1, six PDCCH candidates at aggregation level 2, two PDCCH candidates at aggregation level 4, and two PDCCH candidates at aggregation level 8 are configured. Is shown.
  • FIG. 13A shows an
  • FIG. 13B shows an example of a PDCCH candidate in a search area of a common control resource set (Common @ CORESET).
  • FIG. 13B also shows an example of a PDCCH candidate of the CSS.
  • FIG. 13B shows an example in which four PDCCH candidates of aggregation level 4 and two PDCCH candidates of aggregation level 8 are configured.
  • FIG. 13C shows an example of arrangement of a control resource set and a search area. In Subframe #X, only a search area in an individual control resource set is arranged for a certain terminal device 1. In Subframe #X, the terminal device 1 monitors a total of 16 PDCCH candidates in the search area for the dedicated control resource set, as shown in FIG.
  • Subframe #Y for a certain terminal device 1, a search area in an individual control resource set and a search area in a common control resource set are arranged. As shown in FIG. 13B, the terminal device 1 monitors a total of six PDCCH candidates in the search region for the common control resource set and a total of ten PDCCH candidates in the search region for the individual control resource set. Monitor. In Subframe #Z (third time section), only a common control resource set search area is arranged for a certain terminal device 1. In Subframe #Z, the terminal device 1 monitors a total of six PDCCH candidates in the search area for the common control resource set, as shown in FIG.
  • the common control resource set of Subframe #Y and the common control resource set of Subframe #Z may be different types of common control resource sets.
  • the individual control resource set and the common control resource set may be composed of different frequency resources.
  • each individual control resource set when a plurality of individual control resource sets are configured, each individual control resource set may be configured from a different frequency resource.
  • each common control resource set when a plurality of common control resource sets are configured, each common control resource set may be configured from different frequency resources.
  • each control resource set may be composed of different time resources (OFDM symbols).
  • the USS may be arranged in the common control resource set.
  • the CSS may be arranged in the individual control resource set.
  • a plurality of BWPs may be configured in the terminal device 1, and the common control resource set and the individual control resource set may be configured in different BWPs.
  • BWP means a part of the frequency bandwidth of a carrier (cell), and is used to limit the frequency bandwidth used by the terminal device 1 for communication.
  • a PDCCH including information (Preemption @ indication) for indicating a free resource may be transmitted and received.
  • a PDCCH including information for indicating a reserved resource may be transmitted and received.
  • a PDCCH including information indicating a slot format configuration (SFI: Slot Format Indication) may be transmitted and received.
  • the base station device 3 determines whether the channel (resource, frequency band, carrier) is idle (busy) during the first time.
  • the base station device 3 selects a random value from a predetermined range as a backoff counter (random backoff). If the base station apparatus 3 determines that the channel is idle during the first time, it performs carrier sense at each sensing slot time to determine whether the channel is idle. When determining that the channel is idle in the sensing slot time, the base station device 3 decreases the value of the back-off counter and performs carrier sensing again in the next sensing slot time. When determining that the channel is busy in the sensing slot time, the base station device 3 returns to the process of determining whether the channel is idle during the first time.
  • a backoff counter random backoff
  • the base station apparatus 3 transmits a signal, schedules the terminal apparatus 1 (resource allocation), Start receiving signals from The base station device 3 starts access using the resources.
  • the base station apparatus 3 sets an upper limit (Contention @ window) of a value generation range for generation of a backoff counter in random backoff. size). If a communication error is not confirmed after the start of signal transmission / reception, the base station apparatus 3 sets the upper limit of a value generation range to an initial value for generation of a backoff counter in random backoff.
  • LBT is performed for each frequency band of 20 MHz.
  • LBT carrier sensing is performed for each frequency band of 20 MHz.
  • LBT carrier sense frequency band units are referred to as LBT @ subband, LBT @ grid, LBT @ frequency @ bandwidth, and the like.
  • the base station device 3 adjusts the reception bandwidth and the transmission bandwidth of the terminal device 1 with the frequency bandwidth of the cell as the upper limit.
  • the reception bandwidth and the transmission bandwidth of the terminal device 1 may be set small to reduce power consumption.
  • the frequency band adjusted in this way is a subset of the total frequency band of the cell, and is referred to as Bandwidth @ Part (BWP).
  • the change of the BWP may include at least a change of the setting of the RF unit 12 and / or a change of the setting of the baseband unit 13.
  • At least one default downlink BWP (Default Downlink BWP) (Default DL DL BWP) may be set based on at least the RRC signaling.
  • one active downlink BWP (Active ⁇ Downlink ⁇ BWP) (Active ⁇ DL ⁇ BWP) may be set based on at least the RRC signaling.
  • one initial downlink BWP (Initial Downlink BWP) (Initial DL DL BWP) may be set based on at least the system information (SIB).
  • SIB system information
  • one initial downlink BWP (Initial Downlink BWP) (Initial DL BWP) may be set based on at least the MIB.
  • one default uplink BWP (Default ⁇ Uplink ⁇ BWP) (Default ⁇ UL ⁇ BWP) may be set based on at least the RRC signaling.
  • one active uplink BWP (Active ⁇ Uplink ⁇ BWP) (Active ⁇ UL ⁇ BWP) may be set based on at least the RRC signaling.
  • one initial uplink BWP (Initial Uplink BWP) (Initial UL BWP) may be set based on at least the system information (SIB).
  • SIB system information
  • one initial uplink BWP (Initial Uplink BWP) (Initial UL BWP) may be set based on at least the MIB.
  • one or a plurality of downlink BWPs may be set based on at least the RRC signaling. Further, in the terminal device 1, one or a plurality of downlink BWPs (Downlink @ BWP) (DL @ BWP) may be set for one serving cell based on at least the RRC signaling. In the terminal device 1, one or a plurality of uplink BWPs (Uplink @ BWP) (UL @ BWP) may be set based on at least the RRC signaling. In the terminal device 1, one or a plurality of uplink BWPs (Uplink @ BWP) (UL @ BWP) may be set for one serving cell based at least on RRC signaling.
  • a parameter (locationAndBandwidth) indicating a position in the frequency domain and a frequency bandwidth may be used as a parameter (a message of RRC signaling) regarding the setting of BWP.
  • a parameter (subcarrier Spacing) indicating a subcarrier interval may be used as a parameter related to BWP setting (RRC signaling message).
  • a parameter (cyclicPrefix) indicating a cyclic prefix length may be used as a parameter related to the BWP setting (RRC signaling message).
  • a parameter (bwp-Id) indicating a BWP index may be used as a parameter related to the BWP setting (RRC signaling message).
  • FIG. 14 is a diagram illustrating an example of Bandwidth @ adaptation according to an aspect of the present embodiment.
  • DL @ BWP 511 and DL @ BWP 512 are set for a certain terminal device 1 in the serving cell 500.
  • DL @ BWP 511 is given by a frequency band between resource block index 501 and resource block index 502.
  • DL @ BWP 512 is given by a frequency band between resource block index 503 and resource block index 504.
  • DL @ BWP 511 is set as a default downlink BWP or an initial downlink BWP.
  • DL @ BWP 511 is Active @ DL @ BWP (active DL @ BWP).
  • the terminal device 1 receives a signal in Active DL DL BWP.
  • the terminal device 1 receives the PDCCH 521 in the DL @ BWP 511.
  • the PDCCH 521 is transmitted and received using the frequency resources of DL @ BWP 511, but is not necessarily transmitted and received using all the frequency resources of DL @ BWP 511.
  • Active ⁇ DL ⁇ BWP is set based on the bandwidth ⁇ path ⁇ indicator ⁇ field included in the DCI format included in the PDCCH 521.
  • the DL @ BWP to be set to the active state among the DL @ BWPs configured in advance in the terminal device 1 is indicated by a bandwidth @ path @ indicator ⁇ field.
  • bandwidth ⁇ path ⁇ indicator ⁇ field included in PDCCH 521 indicates DL ⁇ BWP 512 as Active ⁇ DL ⁇ BWP
  • terminal device 1 sets DL ⁇ BWP 512 as Active ⁇ DL ⁇ BWP.
  • the terminal device 1 receives the downlink signal 522 (PDCCH, PDSCH) in DL @ BWP512. Note that the downlink signal 522 (PDCCH, PDSCH) is transmitted and received using the DLWBWP512 frequency resources, but is not necessarily transmitted and received using all DL BWP512 frequency resources.
  • a timer (BWP Inactive Timer) may be started. If the PDCCH including the resource allocation information is not received in Active DL DL BWP, the value of the timer is increased. When the value of the timer reaches a preset threshold value, Active DL DL BWP is changed to Default DL DL BWP or Initial DL DL BWP.
  • BWP set based on MIB may be Bandwidth @ adaptation adjusted based on SIB.
  • BWP set based on MIB may be Bandwidth adaptation adjusted based on Dedicated RRC signaling.
  • BWP set based on SIB may be Bandwidth adaptation adjusted based on Dedicated RRC signaling.
  • the present invention can be applied to, for example, Bandwidth adaptation in which BWP in a frequency band larger than LBG subband can be used.
  • FIG. 15 is a diagram illustrating an example of a configuration of a control resource set for each LBT subband according to an embodiment of the present invention.
  • five LBT subbands (LBT subband 0, LBT subband 1, LBT subband 2, LBT subband 3, LBT subband 4, and LBT subband 4) are configured in the downlink BWP for the terminal device 1.
  • the frequency bandwidth of BWP is 100 MHz
  • the frequency bandwidth of LBT subbandu0 is 20 MHz
  • the frequency bandwidth of LBT subband 1 is 20 MHz
  • the frequency bandwidth of LBT subband 2 is 20 MHz
  • the frequency bandwidth of LBT subband 3 is 20 MHz.
  • the frequency bandwidth of LBT @ subband # 4 is 20 MHz.
  • CORESET # 0 is composed of resources in LBT $ subband $ 0.
  • CORESET # 1 is composed of resources in LBT ⁇ subband # 1.
  • CORESET # 2 is composed of resources in LBT ⁇ subband # 2.
  • CORESET # 3 is composed of resources in LBT ⁇ subband # 3.
  • CORESET # 4 is made up of resources in LBT ⁇ subband # 4.
  • CORESET $ 0 is configured using a plurality of resource blocks in LBT $ subband $ 0.
  • CORESET # 1 is configured using a plurality of resource blocks in LBT ⁇ subband # 1.
  • CORESET # 2 is configured using a plurality of resource blocks in LBT ⁇ subband # 2.
  • CORESET # 3 is configured using a plurality of resource blocks in LBT ⁇ subband # 3.
  • CORESET # 4 is configured using a plurality of resource blocks in LBT ⁇ subband # 4.
  • the radio resource control layer processing unit 16 of the terminal device 1 sets five (M) control resource sets. In FIG. 15, the radio resource control layer processing unit 16 of the terminal device 1 sets five (M) control resource sets, one for each LBG @ subband in the Bandwidth @ part. In FIG. 15, the radio resource control layer processing unit 36 of the base station device 3 sets five (M) control resource sets. In FIG. 15, the radio resource control layer processing unit 36 of the base station device 3 sets five (M) control resource sets, one for each LBG @ subband in the Bandwidth @ part.
  • FIG. 16 is a diagram illustrating an example of an operation of activating a control resource set according to an embodiment of the present invention.
  • the configurations of Bandwidth @ part, LBT @ subband, and the control resource set shown in FIG. 16 are the same as those in FIG.
  • the base station apparatus 3 performs an LBT in each LBT @ subband, and uses each LBT @ subband (LBT @ subband0, LBT @ subband2, LBT @ subband2, LBT @ subband3, LBT @ subband, and the LBT @ subband is used in the state where the LBT @ subband is used). This is a state in which each LBT @ subband is occupied (Occuped).
  • FIG. 16 shows a case where three (N) control resource sets are activated.
  • RESET # 0 of LBT ⁇ subband # 0, RESET # 1 of LBT # subband # 1, and RESET # 2 of LBT # subband # 2 are activated.
  • M control resource sets
  • three control resource sets are activated in ascending order of control resource set index.
  • the receiving unit of the terminal device 1 activates three control resource sets (CORESET0, CORESET1, CORESET2) in five (M) control resource sets (CORESET0, CORESET1, CORESET2, CORESET3, CORESET4).
  • the transmission unit of the base station apparatus 3 activates three control resource sets (CORESET0, CORESET1, CORESET2) in five (M) control resource sets (CORESET0, CORESET1, CORESET2, CORESET3, CORESET4). .
  • the receiving unit of the terminal device 1 includes three control resource sets (CORESET0, CORESET1,...) In ascending order of control resource set index among five (M) control resource sets (CORESET0, CORESET1, CORESET2, CORESET3, CORESET4). CORESET2).
  • the transmitting unit of the base station apparatus 3 includes three control resource sets (CORESET0, CORESET1) in ascending order of control resource set indices among five (M) control resource sets (CORESET0, CORESET1, CORESET2, CORESET3, CORESET4). , CORRESET2).
  • FIG. 17 is a diagram illustrating an example of an operation of activating a control resource set according to an embodiment of the present invention.
  • the configurations of Bandwidth @ part, LBT @ subband, and the control resource set shown in FIG. 17 are the same as those in FIG.
  • the base station apparatus 3 performs LBT in each LBT @ subband, and accesses using the resources in LBT @ subband1, LBT @ subband2, LBT @ subband3, and LBT @ subband4, in other words, LBT @ subBund, LBT @ subBub @ 2LsubBud @ LubNb @ subBud , LBT @ subband4 is occupied (Occuped).
  • FIG. 17 shows a case where three (N) control resource sets are activated.
  • RESET # 1 of LBT @ subband # 1, RESET # 2 of LBT @ subband # 2, and RESET # 3 of LBT # subband # 3 are activated.
  • M control resource sets
  • the control resource sets CORESET1, CORESET2, CORESET3,.
  • Three control resource sets (CORESET1, CORESET2, CORESET3) are activated in ascending order of control resource set indexes from CORESET4).
  • the receiving unit of the terminal device 1 activates three control resource sets (CORESET1, CORESET2, CORESET3) out of five (M) control resource sets (CORESET0, CORESET1, CORESET2, CORESET3, CORESET4).
  • the transmission unit of the base station device 3 activates three control resource sets (CORESET1, CORESET2, CORESET3) in five (M) control resource sets (CORESET0, CORESET1, CORESET2, CORESET3, CORESET4). .
  • the receiving unit of the terminal device 1 further includes a control resource set that is accessed by the base station device 3 using the resources in the five (M) control resource sets (CORESET0, CORESET1, CORESET2, CORESET3, CORESET4).
  • control resource sets (CORESET1, CORESET2, CORESET3) in ascending order of the control resource set index from (CORESET1, CORESET2, CORESET3, CORESET4).
  • the transmission unit of the base station device 3 further controls the control resources that the base station device 3 accesses using the resources in the five (M) control resource sets (CORESET0, CORESET1, CORESET2, CORESET3, CORESET4).
  • Activate three control resource sets (CORESET1, CORESET2, CORESET3) from the set (CORESET1, CORESET2, CORESET3, CORESET4) in ascending order of the control resource set index.
  • the control resource set that monitors the PDCCH candidates according to the LBT @ subband available for communication is controlled. This makes it possible to efficiently assign the downlink control information without increasing the processing load of the terminal device 1 and increasing the power consumption of the terminal device 1.
  • the terminal device 1 can efficiently perform broadband communication.
  • the base station device 3 can efficiently perform broadband communication.
  • the mode of activating the control resource set has been mainly described, but the mode of activating the search area may be used.
  • the terminal device 1 sets X (one or more natural numbers) search areas, and activates Y (one or more natural numbers) search areas from the X search areas.
  • the radio resource control layer processing unit 16 of the terminal device 1 sets X search areas based on the RRC signaling.
  • the receiving unit of the terminal device 1 activates Y search areas from among the set X search areas, and monitors a plurality of PDCCH candidates in the activated Y search areas.
  • the receiving unit of the terminal device 1 activates the Y search areas from the X search areas based on the search area index.
  • the receiving unit of the terminal device 1 activates Y search areas having a small or large search area index value among the X search areas.
  • the search area is set for each LBT @ subband in the Bandwidth @ part.
  • the receiving unit of the terminal device 1 activates Y search regions from one or more LBT @ subbands accessed by the base station device 3 using resources.
  • the base station apparatus 3 sets X (one or more natural numbers) search areas for the terminal device 1 and activates Y (one or more natural numbers) search areas from the X search areas. .
  • the radio resource control layer processing unit 36 of the base station device 3 sets X search areas for the terminal device 1.
  • the transmitting unit of the base station apparatus 3 activates Y search areas from among the set X search areas, and transmits the PDCCH using the PDCCH candidates in the activated Y search areas.
  • the transmitting unit of the base station device 3 activates Y search areas from among the X search areas based on the search area index.
  • the transmitting unit of the base station apparatus 3 activates Y search areas having a smaller or larger search area index value among the X search areas.
  • the search area is set for each LBT @ subband in the Bandwidth @ part.
  • the transmitting unit of the base station apparatus 3 activates Y search areas from one or more LBT @ subbands accessed using resources. For example, 20 (X) search areas are set, and 10 (Y) search areas are activated.
  • a first aspect of the present invention is a terminal device that receives a PDCCH, and includes a radio resource control layer processing unit that sets M control resource sets based on RRC signaling, And a receiving unit that activates N control resource sets from among them and monitors a plurality of PDCCH candidates in the activated N control resource sets.
  • the first aspect of the present invention is further characterized in that the receiving unit activates N control resource sets based on a control resource set index from among the M control resource sets.
  • the first aspect of the present invention is further characterized in that the M control resource sets are set for each LBT subband in Bandwidth part.
  • the first aspect of the present invention is further characterized in that the N control resource sets are activated from one or more LBT @ subbands accessed by the base station device using resources.
  • a second aspect of the present invention is a base station apparatus for transmitting a PDCCH, wherein the radio resource control layer processing unit sets M control resource sets for a terminal apparatus; And a transmitting unit that activates N control resource sets from among the control resource sets and transmits PDCCHs using PDCCH candidates in the activated N control resource sets.
  • the second aspect of the present invention is further characterized in that the transmitting unit activates N control resource sets based on a control resource set index from the M control resource sets.
  • the second aspect of the present invention is characterized in that the M control resource sets are set for each LBT subband in Bandwidth part.
  • the second aspect of the present invention is further characterized in that the N control resource sets are activated from one or more LBTLsubbands accessed using resources.
  • a third aspect of the present invention is a communication method used for a terminal device receiving a PDCCH, wherein: a step of setting M control resource sets based on RRC signaling; Activating the N control resource sets from the set; and monitoring a plurality of PDCCH candidates in the activated N control resource sets.
  • a third aspect of the present invention is characterized in that N control resource sets are activated from the M control resource sets based on a control resource set index.
  • the third aspect of the present invention is further characterized in that the M control resource sets are set for each LBT subband in Bandwidth part.
  • a third aspect of the present invention is characterized in that the N control resource sets are activated from one or more LBT @ subbands accessed by the base station apparatus using resources.
  • a fourth aspect of the present invention is a communication method used for a base station apparatus for transmitting a PDCCH, comprising: setting M control resource sets for a terminal apparatus; Activating N control resource sets from among the control resource sets, and transmitting a PDCCH using PDCCH candidates in the activated N control resource sets.
  • a fourth aspect of the present invention is characterized in that N control resource sets are activated based on a control resource set index from among the M control resource sets.
  • a fourth aspect of the present invention is characterized in that the M control resource sets are set for each LBT subband in the Bandwidth part.
  • the fourth aspect of the present invention is further characterized in that the N control resource sets are activated from one or more LBTbsubbands accessed using resources.
  • the program operating on the base station device 3 and the terminal device 1 is a program (CPU (Central Processing Unit)) that controls a CPU (Central Processing Unit) and the like so as to realize the functions of the above-described embodiment according to the present invention.
  • CPU Central Processing Unit
  • a program that causes a computer to function The information handled by these devices is temporarily stored in a RAM (Random Access Memory) at the time of processing, and thereafter stored in various ROMs such as a Flash ROM (Read Only Memory) or an HDD (Hard Disk Drive). Reading, correction and writing are performed by the CPU as necessary.
  • the terminal device 1 and a part of the base station device 3 in the above-described embodiment may be realized by a computer.
  • a 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 and executed by a computer system.
  • the “computer system” here is a computer system built in the terminal device 1 or the base station device 3 and includes an OS and hardware such as peripheral devices.
  • the “computer-readable recording medium” refers to a portable medium such as a flexible disk, a magneto-optical disk, a ROM, and a CD-ROM, and a storage device such as a hard disk built in a computer system.
  • the "computer-readable recording medium” is a medium that dynamically holds the program for a short time, such as a communication line for transmitting the program through a network such as the Internet or a communication line such as a telephone line,
  • a program holding a program for a certain period of time such as a volatile memory in a computer system serving as a server or a client, may be included.
  • the above-mentioned program may be for realizing a part of the above-mentioned functions, or may be for realizing the above-mentioned functions in combination with a program already recorded in a computer system.
  • the base station device 3 in the above-described embodiment can also be realized as an aggregate (device group) including a plurality of devices.
  • Each of the devices constituting the device group may include a part or all of each function or each function block of the base station device 3 according to the above-described embodiment. It is only necessary that the device group has each 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 device 3 in the above-described embodiment may be an EUTRAN (Evolved Universal Terrestrial Radio Access Network). Further, the base station device 3 in the above-described embodiment may have some or all of the functions of the upper node for the eNodeB.
  • EUTRAN Evolved Universal Terrestrial Radio Access Network
  • part or all of the terminal device 1 and the base station device 3 in the above-described embodiment may be typically realized as an LSI which is an integrated circuit, or may be realized as a chipset.
  • Each functional block of the terminal device 1 and the base station device 3 may be individually formed into a chip, or a part or all may be integrated and formed into a chip.
  • the method of circuit integration is not limited to an LSI, and may be realized by a dedicated circuit or a general-purpose processor. Further, in the case where a technology for forming an integrated circuit that replaces the LSI appears due to the advance of the semiconductor technology, an integrated circuit based on the technology can be used.
  • the terminal device is described as an example of the communication device.
  • the present invention is not limited to this, and a stationary or non-movable electronic device installed indoors and outdoors,
  • the present invention can be applied to a terminal device or a communication device such as an AV device, a kitchen device, a cleaning / washing device, an air conditioner, an office device, a vending machine, and other living devices.

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  • Computer Networks & Wireless Communication (AREA)
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  • Mobile Radio Communication Systems (AREA)

Abstract

La présente invention aborde le problème consistant à engager une communication à large bande efficace. Le dispositif de terminal selon la présente invention est un dispositif de terminal permettant de recevoir un canal de commande de liaison descendante physique (PDCCH), le dispositif comprenant : une unité de traitement de couche de commande de ressource sans fil qui définit M ensembles de ressources de commande sur la base d'une signalisation de commande de ressource radio (RRC) ; et une unité de réception qui active N ensembles de ressources de commande parmi les M ensembles de ressources de commande, et qui surveille une pluralité de candidats PDCCH dans les N ensembles d'ensembles de ressources de commande activés.
PCT/JP2019/032912 2018-08-22 2019-08-22 Dispositif terminal, dispositif station de base et procédé de communication Ceased WO2020040266A1 (fr)

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JP2018155520A JP2020031322A (ja) 2018-08-22 2018-08-22 端末装置、基地局装置、および、通信方法
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WO2021179268A1 (fr) * 2020-03-12 2021-09-16 华为技术有限公司 Procédé et appareil de communication
CN113973267A (zh) * 2020-07-24 2022-01-25 中国移动通信有限公司研究院 一种传输处理方法、装置、网络侧设备及终端
WO2022214059A1 (fr) * 2021-04-08 2022-10-13 维沃移动通信有限公司 Procédé et appareil de surveillance d'un pdcch, et terminal
WO2023056874A1 (fr) * 2021-10-08 2023-04-13 中兴通讯股份有限公司 Procédé et dispositif de décodage de canal de commande de liaison descendante, support de stockage et dispositif électronique

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Publication number Priority date Publication date Assignee Title
WO2021179268A1 (fr) * 2020-03-12 2021-09-16 华为技术有限公司 Procédé et appareil de communication
CN113973267A (zh) * 2020-07-24 2022-01-25 中国移动通信有限公司研究院 一种传输处理方法、装置、网络侧设备及终端
CN113973267B (zh) * 2020-07-24 2023-07-25 中国移动通信有限公司研究院 一种传输处理方法、装置、网络侧设备及终端
WO2022214059A1 (fr) * 2021-04-08 2022-10-13 维沃移动通信有限公司 Procédé et appareil de surveillance d'un pdcch, et terminal
WO2023056874A1 (fr) * 2021-10-08 2023-04-13 中兴通讯股份有限公司 Procédé et dispositif de décodage de canal de commande de liaison descendante, support de stockage et dispositif électronique

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