WO2021160032A1 - 由用户设备执行的方法以及用户设备 - Google Patents

由用户设备执行的方法以及用户设备 Download PDF

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Publication number
WO2021160032A1
WO2021160032A1 PCT/CN2021/075485 CN2021075485W WO2021160032A1 WO 2021160032 A1 WO2021160032 A1 WO 2021160032A1 CN 2021075485 W CN2021075485 W CN 2021075485W WO 2021160032 A1 WO2021160032 A1 WO 2021160032A1
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Prior art keywords
dci format
dci
sub
monitor
size
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PCT/CN2021/075485
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English (en)
French (fr)
Inventor
罗超
刘仁茂
赵毅男
吉村友树
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夏普株式会社
罗超
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Priority to US17/797,054 priority Critical patent/US20230079566A1/en
Publication of WO2021160032A1 publication Critical patent/WO2021160032A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W28/00Network traffic management; Network resource management
    • H04W28/16Central resource management; Negotiation of resources or communication parameters, e.g. negotiating bandwidth or QoS [Quality of Service]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • H04W72/232Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the physical layer, e.g. DCI signalling
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/08Testing, supervising or monitoring using real traffic
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/30Services specially adapted for particular environments, situations or purposes
    • H04W4/40Services specially adapted for particular environments, situations or purposes for vehicles, e.g. vehicle-to-pedestrians [V2P]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal

Definitions

  • the present invention relates to a method executed by a user equipment and a user equipment.
  • Non-Patent Document 1 RP-152293, New WI proposal: Support for V2V services based on LTE sidelink
  • Non-Patent Document 2 RP-170798, New WID on 3GPP V2X Phase 2
  • Non-Patent Document 3 RP-170855, New WID on New Radio Access Technology
  • Non-Patent Document 4 RP-190766, New WID on 5G V2X with NR sidelink
  • the present invention provides a method executed by a user equipment and a user equipment.
  • the UE can efficiently and unambiguously determine the 5G V2X-related DCI size.
  • a method executed by user equipment UE which is characterized in that it includes:
  • the first DCI format set is a set of DCI formats other than DCI format 3_0 and DCI format 3_1 in the DCI format set monitored in a cell configured for the UE,
  • the alignment condition of the DCI size of the first straight line includes: the UE has been configured to monitor the DCI format 3_0, or the UE has been configured to monitor the DCI format 3_1,
  • the filling operation of the DCI size of the first row includes: filling the configured DCI format 3_0 or the configured DCI format 3_1 with zeros until the load size of the DCI format 3_0 or the DCI format 3_1 is equal to all
  • the load size of the DCI in the first DCI format set is greater than the minimum value of the DCI format 3_0 or the DCI format 3_1.
  • a method executed by a user equipment which is characterized in that it includes:
  • the DCI format set S includes at least one of DCI format 3_0 and DCI format 3_1.
  • the UE is configured with at least one of SL-RNTI, SL-CS-RNTI, SL-L-CS-RNTI, and SL SPS V-RNTI.
  • the UE is configured to monitor DCI format 3_0 and DCI format 3_1, and the number of information bits in DCI format 3_1 is less than the load size of DCI format 3_0, then zero is added to the DCI format 3_1 until its load size is equal to all The load size of the DCI format 3_0 is described.
  • the DCI format 3_0 filling operation is performed.
  • the filling condition of the DCI format 3_0 is that the UE is configured to monitor the DCI format 3_0, and d is not equal to the value of any element in the set T others.
  • the filling operation of the DCI format 3_0 is: adding zeros to the DCI format 3_0 until the load size is equal to the value of the smallest element greater than d in the set T others.
  • the DCI format 3_1 filling operation is performed.
  • the filling condition of the DCI format 3_1 is that the UE is configured to monitor the DCI format 3_1, and d is not equal to the value of any element in the set T others.
  • the filling operation of the DCI format 3_1 is: adding zeros to the DCI format 3_1 until the load size is equal to the value of the smallest element greater than d in the set T others.
  • d is the size of the DCI format 3_0 before resizing.
  • d is the size of the DCI format 3_1 before resizing.
  • the set T others is a set of sizes of all other DCI formats in the DCI format set S except for DCI format 3_0 (if present) and DCI format 3_1 (if present).
  • a user equipment including: a processor; and a memory storing instructions, wherein the instructions execute the above-mentioned method when run by the processor.
  • the present invention provides a method to improve the DCI size alignment process, so that the UE can efficiently and unambiguously determine the 5G V2X-related DCI size.
  • Fig. 1 is a flowchart showing a method executed by a user equipment according to the first embodiment of the present invention.
  • Fig. 2 shows a block diagram of the user equipment UE involved in the present invention.
  • 3GPP 3rd Generation Partnership Project
  • the third generation partnership project the third generation partnership project
  • AGC Automatic Gain Control, automatic gain control
  • BWP Bandwidth Part, Bandwidth Part
  • CA Carrier Aggregation, carrier aggregation
  • CCE control-channel element, control channel element
  • CORESET control-resource set, control resource set
  • CP Cyclic Prefix, cyclic prefix
  • CP-0FDM Cyclic Prefix Orthogonal Frequency Division Multiplexing, Cyclic Prefix Orthogonal Frequency Division Multiplexing
  • CRB Common Resource Block, common resource block
  • CRC Cyclic Redundancy Check, cyclic redundancy check
  • CSI Channel-state Information, channel state information
  • DCI Downlink Control Information, downlink control information
  • DFN Direct Frame Number, direct frame number
  • DFT-s-OFDM Discrete Fourier Transformation Spread Orthogonal Frequency Division Multiplexing, Discrete Fourier Transform Spread Spectrum Orthogonal Frequency Division Multiplexing
  • DL-SCH Downlink Shared Channel, downlink shared channel
  • DM-RS Demodulation reference signal, demodulation reference signal
  • eMBB Enhanced Mobile Broadband, enhanced mobile broadband communications
  • eNB E-UTRAN Node B, E-UTRAN Node B
  • E-UTRAN Evolved UMTS Terrestrial Radio Access Network, the evolved UMTS terrestrial radio access network
  • FDD Frequency Division Duplex, Frequency Division Duplex
  • FDRA Frequency Domain Resource Assignment, frequency domain resource allocation
  • GLONASS GLObal NAvigation Satellite System, Global Navigation Satellite System
  • gNB NR Node B, NR Node B
  • GNSS Global Navigation Satellite System, Global Navigation Satellite System
  • GPS Global Positioning System, Global Positioning System
  • ID Identity (or Identifier), identity, identifier
  • IP Internet Protocol, Internet Protocol
  • LCID Logical Channel ID, logical channel identifier
  • LTE Long Term Evolution, long-term evolution
  • LTE-A Long Term Evolution-Advanced, Long Term Evolution-Upgraded Version
  • MAC Medium Access Control, medium access control
  • MAC CE MAC Control Element, MAC control element
  • MCG Master Cell Group, primary cell group
  • MIB Master Information Block, master information block
  • MIB-SL Master Information Block-Sidelink, master information block-go straight
  • MIB-SL-V2X Master Information Block-Sidelink-V2X, master information block-go straight-vehicle to any entity
  • MIB-V2X Master Information Block-V2X, master information block-vehicle to any entity
  • mMTC massive Machine Type Communication, large-scale machine type communication
  • NAS Non-Access-Stratum, non-access layer
  • NDI New Data Indicator, new data indicator
  • NUL Normal Uplink, normal uplink
  • OFDM Orthogonal Frequency Division Multiplexing, Orthogonal Frequency Division Multiplexing
  • PBCH Physical Broadcast Channel, physical broadcast channel
  • PDCCH Physical Downlink Control Channel, physical downlink control channel
  • PDCP Packet Data Convergence Protocol, packet data convergence protocol
  • PDSCH Physical Downlink Shared Channel, physical downlink shared channel
  • PSBCH Physical Sidelink Broadcast Channel, physical direct broadcast channel
  • PSCCH Physical Sidelink Control Channel, physical direct control channel
  • PSFCH Physical Sidelink Feedback Channel, physical direct feedback channel
  • PSSCH Physical Sidelink Shared Channel, physical direct shared channel
  • PRB Physical Resource Block, physical resource block
  • PSS Primary Synchronization Signal, the primary synchronization signal
  • PSS-SL Primary Synchronization Signal for Sidelink, direct main synchronization signal
  • PSSS Primary Sidelink Synchronization Signal, main straight line synchronization signal
  • PTAG Primary Timing Advance Group, the main timing advance group
  • PUSCH Physical uplink shared channel, physical uplink shared channel
  • PUCCH Physical uplink control channel, physical uplink control channel
  • QoS Quality of Service, quality of service
  • QZSS Quasi-Zenith Satellite System, Quasi-Zenith Satellite System
  • RAR Random Access Response, Random Access Response
  • RB Resource Block, resource block
  • REG resource-element group, resource element group
  • RF Radio Frequency, radio frequency
  • RLC Radio Link Control, radio link control protocol
  • Radio-Network Temporary Identifier Radio-Network Temporary Identifier, wireless network temporary identifier
  • RRC Radio Resource Control, radio resource control
  • RV Redundancy Version, redundant version
  • S-BWP Sidelink Bandwidth Part, straight bandwidth segment
  • S-MIB Sidelink Master Information Block, go straight to the master information block
  • S-PSS Sidelink Primary Synchronization Signal, direct main synchronization signal
  • S-SSB Sidelink SS/PBCH block, direct synchronization signal/physical broadcast channel block
  • S-SSS Sidelink Secondary Synchronization Signal, direct-travel secondary synchronization signal
  • SCG Secondary Cell Group, secondary cell group
  • SCI Sidelink Control Information, direct control information
  • SCS Subcarrier Spacing, subcarrier spacing
  • SDAP Service Data Adaptation Protocol, service data adaptation protocol
  • SFN System Frame Number, system frame number
  • SIB System Information Block, system information block
  • SL BWP Sidelink Bandwidth Part, straight-through bandwidth segment
  • SL MIB Sidelink Master Information Block
  • SL PSS Sidelink Primary Synchronization Signal, direct main synchronization signal
  • SL SS Sidelink Synchronization Signal, direct synchronization signal
  • SL SSID Sidelink Synchronization Signal Identity (or Sidelink Synchronization Signal Identifier), direct synchronization signal identification
  • SL SSB Sidelink SS/PBCH block, direct synchronization signal/physical broadcast channel block
  • SL SSS Sidelink Secondary Synchronization Signal, direct-travel secondary synchronization signal
  • SLSS Sidelink Synchronization Signal, direct synchronization signal
  • SLSS ID Sidelink Synchronization Signal Identity (or Sidelink Synchronization Signal Identifier), direct synchronization signal identification
  • SLSSID Sidelink Synchronization Signal Identity (or Sidelink Synchronization Signal Identifier), direct synchronization signal identification
  • SpCell Special Cell, special cell
  • SRS Sounding Reference Signal, sounding reference signal
  • SSB SS/PBCH block, synchronization signal/physical broadcast channel block
  • SSB-SL SS/PBCH block for Sidelink, direct sync signal/physical broadcast channel block
  • SSS Secondary Synchronization Signal, secondary synchronization signal
  • SSS-SL Secondary Synchronization Signal for Sidelink, direct auxiliary synchronization signal
  • SSSB Sidelink SS/PBCH block, direct synchronization signal/physical broadcast channel block
  • SSSS Secondary Sidelink Synchronization Signal, auxiliary direct synchronization signal
  • Sub-channel sub-channel
  • Timing Advance Timing Advance
  • TAG Timing Advance Group, timing advance group
  • Transport Block transport block
  • TCP Transmission Control Protocol, Transmission Control Protocol
  • TDD Time Division Duplex, time division duplex
  • TPC Transmit power control, transmission power control
  • UE User Equipment, user equipment
  • UMTS Universal Mobile Telecommunications System
  • Universal Mobile Telecommunications System Universal Mobile Telecommunications System
  • V2I Vehicle-to-Infrastructure, vehicle to infrastructure
  • V2N Vehicle-to-network, vehicle-to-network
  • V2P Vehicle-to-Pedestrian, vehicle to pedestrian
  • V2V Vehicle-to-vehicle, vehicle-to-vehicle
  • V2X Vehicle-to-everything, vehicle to any entity
  • VRB Virtual Resource Block, virtual resource block
  • “higher layer” can refer to one or more protocol layers or protocol sublayers above the physical layer.
  • MAC layer RLC layer
  • PDCP layer PC5 RRC layer
  • PC5-S layer RRC layer
  • V2X layer application layer
  • V2X application layer etc.
  • pre-configuration may be pre-configure through higher layer protocol/signaling (pre-configure). For example, preset (for example, preset according to the specifications of the high-level protocol) in a specific storage location in the UE, or preset (for example, preset according to the specifications of the high-level protocol) in a specific storage location that the UE can access.
  • preset for example, preset according to the specifications of the high-level protocol
  • preset for example, preset according to the specifications of the high-level protocol
  • configuration can be configured through higher layer protocol/signaling.
  • it is configured for the UE through RRC signaling.
  • time-domain resources can also be referred to as time resources.
  • frequency-domain resources may also be referred to as frequency resources.
  • symbol refers to "OFDM symbol”.
  • the number of OFDM symbols can start from 0.
  • the set of numbers of OFDM symbols in a slot may be ⁇ 0, 1,..., 13 ⁇ .
  • the set of OFDM symbol numbers in a slot may be ⁇ 0, 1, ..., 11 ⁇ .
  • a resource block can refer to a virtual resource block (VRB), a physical resource block (PRB), a common resource block (CRB), or Refers to resource blocks defined in other ways.
  • VRB virtual resource block
  • PRB physical resource block
  • CRB common resource block
  • the number of sub-carriers can start from 0.
  • the set of numbers of subcarriers in a resource block may be ⁇ 0, 1, ..., 11 ⁇ .
  • DCI format refers to the DCI format in the same serving cell configured for the UE.
  • the size of the DCI format may also be referred to as the payload size of the DCI format, and vice versa.
  • the size of the DCI format refers to the size of the corresponding DCI format when the "size of the DCI format” is mentioned.
  • step a "if the size of DCI format X is equal to the size of DCI format Y, add a zero padding bit to said DCI format X", where the "size of DCI format X" mentioned is DCI format X is the size of DCI format X before adding one zero padding bit.
  • the interface between devices can be called PC5 interface, and the corresponding transmission link can be called at the physical layer. It is a "straight" or “sidelink” (SL) link, which is used to distinguish between an uplink (UL) link and a downlink (DL) link.
  • Communication based on the SL link can be called SL communication (sidelink communication).
  • the SL link based on LTE technology can be called LTE SL link.
  • the SL link based on NR technology can be called NR SL link.
  • 5G V2X communication can be based on LTE SL or NR SL. Unless otherwise specified below, "SL” refers to NR SL.
  • the physical layer of the SL interface can support one or more modes in one or more of the in-coverage, out-of-coverage, and partial-coverage scenarios For example, broadcast transmission, groupcast transmission, unicast transmission, and so on.
  • the SCS subcarrier spacing, subcarrier spacing, denoted as ⁇ f, in kHz
  • the SCS subcarrier spacing, subcarrier spacing, denoted as ⁇ f, in kHz
  • the SCS corresponding to the SL link can be 15kHz (normal CP), or 30kHz (normal CP), or 60kHz (normal CP or extended CP);
  • the SCS corresponding to the SL link can be 60kHz (normal CP or extended CP), or 120kHz (normal CP).
  • may be the SCS configuration of the SL carrier; for example, all SL transmissions in one SL carrier use the same SCS configuration and/or the same CP.
  • can be the SCS configuration of SL BWP (Sidelink Bandwidth Part, or S-BWP, or SBWP, or SL-BWP, or BWP-SL, or BWP for short); for example , All SL transmissions in an SL BWP use the same SCS configuration and/or the same CP.
  • may be the SCS configuration of a resource pool; for example, all SL transmissions in a resource pool use the same SCS configuration and/or the same CP.
  • the signals and channels related to SL operation may include:
  • ⁇ PSBCH Physical Sidelink Broadcast Channel, physical direct broadcast channel
  • ⁇ PSCCH Physical Sidelink Control Channel
  • ⁇ PSSCH Physical Sidelink Shared Channel, physical direct shared channel
  • ⁇ PSFCH Physical Sidelink Feedback Channel, physical direct feedback channel
  • SL PSS, SL SSS, and PSBCH can be organized into blocks on time/frequency resources, such as SL SSB (Sidelink Synchronization Signal/PSBCH block, or SSS/PSBCH block, direct synchronization signal/physical) Direct broadcast channel block), or called SSS/PSBCH block, or S-SS/PSBCH block, or S-SSB, or SSSB, or SL-SSB, or SSB-SL.
  • the transmission bandwidth of the SL SSB (for example, 11 resource blocks) may be located in the corresponding SL carrier (for example, in one SL BWP configured in the SL carrier).
  • SL PSS and/or SL SSS can carry SL SSID (Sidelink Synchronization Identity, or Sidelink Synchronization Identifier), or Sidelink Synchronization Signal Identity, or Sidelink Synchronization Signal Identity, or Sidelink Synchronization Signal Identity, or SL-SSID, or SL-SSID Called SSID-SL, or SLSSID, or SLSS ID, or S-SSID, etc.), PSBCH can carry SL MIB (Sidelink Master Information Block), or SL-MIB , Or S-MIB, or MIB-SL).
  • the SL MIB may contain the configuration information of the SL link, such as the direct frame number (or the frame number) or the direct half frame number (or the half frame number) where the PSBCH (or the corresponding SL SSB) carrying the SL MIB is located. Frame number) or direct subframe number (or called subframe number) or direct slot number (or called slot number) related information.
  • the time domain and/or frequency domain resources used to transmit the SL SSB can be configured through high-level parameters.
  • the position of the SL SSB in the frequency domain can be configured through the parameter absoluteFrequencySSB-SL.
  • the number of SL SSBs (for example, recorded as ) Can be set by the parameter numSSBwithinPeriod-SL, where the number (or index) is i S-SSB
  • the index of the slot in which the SL SSB is located in a period of 16 frames can be in It can be configured through the parameter timeOffsetSSB-SL, Can pass parameters Configuration.
  • the time domain resources and/or frequency domain resources configured for the SL SSB in the SL carrier correspond to the candidate SL SSB (or called the SL SSB candidate).
  • the candidate SL SSB or called the SL SSB candidate.
  • the synchronization source related to SL synchronization may include GNSS (Global Navigation Satellite System), gNB, eNB, and UE (for example, NR UE, LTE UE, NR UE or LTE UE).
  • GNSS Global Navigation Satellite System
  • gNB Global Navigation Satellite System
  • eNB eNode B
  • UE for example, NR UE, LTE UE, NR UE or LTE UE.
  • a UE serving as a synchronization source for example, a UE transmitting SL and SSB
  • SyncRefUE for example, a UE transmitting SL and SSB
  • GNSS can include GPS (Global Positioning System), GLONASS (GLObal Navigation Satellite System), BeiDou (BeiDou Navigation Satellite System), Galileo (Galileo Navigation Satellite System), QZSS (Quasi-Zenith Satellite System, Quasi-Zenith Satellite System) and so on.
  • GPS Global Positioning System
  • GLONASS GLObal Navigation Satellite System
  • BeiDou BeiDou Navigation Satellite System
  • Galileo Galileo Navigation Satellite System
  • QZSS Quadasi-Zenith Satellite System, Quasi-Zenith Satellite System
  • One or more (for example, one) SL BWP can be configured in the SL carrier.
  • the start symbol of the SL time domain resource in a time slot can be configured through the parameter startSLsymbols (or the parameter sl-StartSymbol-r16) (for example, the number of the symbol in a time slot is recorded as )
  • the number of symbols of the SL time domain resource in a time slot can be configured through the parameter lengthSLsymbols (or the parameter sl-LengthSymbols-r16) (for example, the number of symbols is recorded as ).
  • the symbols of SL time domain resources in a time slot can be called "SL symbols".
  • the set of SL symbols in a time slot as but For example, if Then the set of SL symbols in one slot is ⁇ 7, 8, 9, 10, 11, 12, 13 ⁇ .
  • SL transmission can be carried out in a specific resource pool.
  • One or more resource pools can be configured in an SL BWP, among which, in each resource pool,
  • the position of the start resource block of the start subchannel of the resource pool in the SL BWP can be configured through the parameter startRB-Subchannel (or the parameter sl-StartRB-Subchannel-r16).
  • the number of sub-channels occupied by the resource pool can be configured through the parameter numSubchannel (or the parameter sl-NumSubchannel-r16) (denoted as ). Said The sub-channels can be continuous in the frequency domain.
  • each subchannel can be composed of one or more resource blocks.
  • the specific number of resource blocks (called the size of the subchannel, for example, denoted as n subChannelSize ) can be passed through the parameter subchannelsize (or the parameter sl-SubchannelSize-r16 ) Configuration.
  • the n subChannelSize resource blocks may be continuous in the frequency domain.
  • each sub-channel in a resource pool can be numbered as 0, 1, ..., according to the order of frequency from small to large.
  • the sub-channel numbered i can be called "sub-channel i"
  • the parameter timeresourcepool (or parameter sl-TimeResource-r16) can be used to configure one or more time slots (for example, through time slots) that are periodically available for the resource pool (or belong to the resource pool).
  • Bitmap mode where the size of the period can be configured by the parameter periodResourcePool.
  • the allocation of resources related to SL operations can be classified as follows:
  • ⁇ Mode 1 (Mode 1): The base station schedules SL resources for SL transmission.
  • ⁇ Mode 2 The UE determines the SL resources used for SL transmission (that is, the base station does not participate in the scheduling of SL resources). For example, the UE performing the SL transmission operation autonomously determines the SL resources used for the SL transmission.
  • the UE can schedule data transmission through SCI (Sidelink Control Information).
  • SCI Servicelink Control Information
  • SL operation can support "two-stage SCI" (two-stage SCI), in which the first stage SCI (1 st -stage SCI) can contain information such as resource reservation and/or resource allocation, so that all monitoring (monitor) SL
  • the UE of the link performs sensing for resource reservation and/or resource allocation; the second-stage SCI (2 nd- stage SCI) may contain other information, such as information related to HARQ feedback.
  • SCI Servicelink Control Information
  • it may include only the first stage SCI, or only the second stage SCI, or both the first stage SCI and the second stage SCI.
  • the format of the first stage SCI can be SCI format 0-1 (or written as "SCI format 0_1").
  • SCI format 0-1 or written as "SCI format 0_1".
  • the format of the second stage SCI can be SCI format 0-2 (or written as "SCI format 0_2").
  • SCI format 0-2 or written as "SCI format 0_2".
  • Source ID Source ID
  • Source ID Source ID
  • HARQ Process ID HARQ Process ID
  • HARQ Process Number HARQ Process Number
  • the first stage SCI can be carried on the PSCCH.
  • the second stage SCI can be multiplexed with the data to be transmitted on the PSSCH associated with the PSCCH (or scheduled).
  • the PSCCH and its associated PSSCH can be multiplexed on the time domain and/or frequency domain resources allocated for SL transmission in a certain manner (for example, the subchannel where the starting resource block of the PSCCH is located is the start of the PSSCH associated with it. Starting subchannel.
  • the starting resource block of the PSCCH is the starting resource block of the starting subchannel of the PSSCH to which it is associated).
  • the first stage SCI and/or the corresponding second stage SCI schedules the PSSCH (or the transmission of the PSSCH is scheduled, or the transmission of the TB carried in the PSSCH is scheduled).
  • the sender may be referred to as TX UE, and the receiver may be referred to as RX UE.
  • the PSFCH sent by the RX UE may carry feedback on the PSCCH and/or PSSCH sent by the TX UE.
  • the feedback may be referred to as "HARQ-ACK information".
  • the HARQ-ACK information may be an acknowledgement (ACK) or a negative acknowledgement (NACK, or NAK, Negative Acknowledgement); in other configurations, the HARQ-ACK information may only include NACK.
  • PSFCH resources can appear periodically in a resource pool, for example, configured by the parameter sl-PSFCH-Period-r16 (for example, configured as 1 time slot, or 2 time slots, or 4 time slots ).
  • a special value (for example, 0) of the parameter sl-PSFCH-Period-r16 may be used to indicate that no PSFCH resource is configured in the corresponding resource pool, and/or to indicate that HARQ feedback in the corresponding resource pool is disabled.
  • the time slots related to the PSFCH period can be "logical time slots", that is, only time slots that belong to the corresponding resource pool are included; for example, time slot 0 and time slot 5 in a certain frame belong to a certain resource
  • time slot 0 and time slot 5 in a certain frame belong to a certain resource
  • the PSFCH resource can be configured in an RB set (for example, a set of continuous PRBs, or a set of partially or completely discontinuous PRBs), for example, configured through the parameter sl-PSFCH-RB-Set.
  • 5G can schedule downlink transmission on PDSCH (Physical Downlink Shared Channel) and PUSCH (Physical Downlink Shared Channel) through DCI (Downlink Control Information).
  • PDSCH Physical Downlink Shared Channel
  • PUSCH Physical Downlink Shared Channel
  • DCI Downlink Control Information
  • Uplink Shared Channel physical uplink shared channel.
  • PSCCH and PSSCH can be additionally scheduled through DCI.
  • 5G supports multiple DCI formats, for example, the DCI formats shown in Table 1 may be included.
  • the CRC of each DCI format can be scrambled with an RNTI (Radio-Network Temporary Identifier) to indicate a specific purpose and/or one or more target UEs.
  • RNTI Radio-Network Temporary Identifier
  • the CRC used to indicate the DCI format of paging may be scrambled with P-RNTI.
  • the 5G DCI can be carried on the PDCCH (Physical Downlink Control Channel).
  • a PDCCH can be composed of one or more CCEs (control-channel elements, control channel elements), and a CCE can be composed of multiple (for example, 6) REGs (resource-element groups), and REG It is defined in CORESET (control-resource set).
  • a CORESET contains multiple resource blocks in the frequency domain (each resource block consists of 12 consecutive subcarriers in the frequency domain), and contains one or more (for example, 1, or 2, or 3) in the time domain ) OFDM symbol.
  • the UE may monitor the PDCCH transmission of the base station on one or more search space sets (search space sets), where each search space set may correspond to a set of PDCCH candidates (PDCCH candidates).
  • search space sets search space sets
  • PDCCH candidates PDCCH candidates
  • the UE performs blind detection on the time-frequency resource corresponding to the PDCCH candidate to be monitored to determine whether there is a PDCCH sent to itself.
  • the search space collection can be divided into a CSS (Common Search Space) collection and a USS (UE-specific search space, UE-specific search space) collection.
  • a CSS Common Search Space
  • USS UE-specific search space, UE-specific search space
  • ⁇ Type 0-PDCCH CSS collection For example, it is configured through the pdcch-ConfigSIB1 parameter in the MIB, or through the searchSpaceSIB1 parameter in the PDCCH-ConfigCommon, or through the searchSpaceZero parameter in the PDCCH-ConfigCommon.
  • the RNTI used to scramble the CRC of the corresponding DCI format may include SI-RNTI. It can be used for the primary cell of MCG (Master Cell Group, primary cell group).
  • ⁇ Type 0A-PDCCH CSS collection For example, it is configured through the searchSpaceOtherSystemInformation parameter in PDCCH-ConfigCommon.
  • the RNTI used to scramble the CRC of the corresponding DCI format may include SI-RNTI. Can be used for MCG's primary cell.
  • ⁇ Type 1-PDCCH CSS collection For example, it is configured through the ra-SearchSpace parameter in PDCCH-ConfigCommon.
  • the RNTI used to scramble the CRC of the corresponding DCI format may include RA-RNTI and TC-RNTI. Can be used for the primary cell.
  • ⁇ Type 2-PDCCH CSS collection For example, it is configured through the pagingSearchSpace parameter in PDCCH-ConfigCommon.
  • the RNTI used to scramble the CRC of the corresponding DCI format may include P-RNTI. Can be used for MCG's primary cell.
  • the RNTI used to scramble the CRC of the corresponding DCI format may include INT-RNTI, SFI-RNTI, TPC-PUSCH-RNTI, TPC-PUCCH-RNTI, TPC-SRS-RNTI, C-RNTI, MCS-C-RNTI, and CS-RNTI, where C-RNTI, MCS-C-RNTI and CS-RNTI can only be used for the primary cell.
  • the RNTI used to scramble the CRC of the corresponding DCI format may include C-RNTI, MCS-C-RNTI, SP-CSI-RNTI, CS-RNTI, SL-RNTI, SL-CS-RNTI, and SL-L-CS- RNTI.
  • search space can be associated with a search space set.
  • a search space can be defined as a part of a search space set, or a subset (for example, corresponding to PDCCH candidates with the same aggregation level in a set of PDCCH candidates); for another example, a search space It is equivalent to a search space collection; another example is to define the relationship between the search space and the search space collection in other ways.
  • DCI format can be considered related to the search space for monitoring the DCI. For example, sometimes (for example, when calculating the number of DCI sizes that need to be monitored), it can be considered that "DCI format x monitored in search space 1" and "DCI format x monitored in search space 2" are two different DCIs. Format.
  • a UE-specific search space can be configured to monitor DCI format 0_0 and DCI format 1_0, or configured to monitor DCI format 0_1 and DCI format 1_1, but cannot be configured to monitor DCI format 0_0, DCI format 1_0, DCI format 0_1 and DCI Format 1_1.
  • DCI formats for example, DCI format 3_0, and DCI format 3_1, etc.
  • DCI format X denoted as DCI format X
  • the UE is configured to monitor the DCI format X is equivalent to "the UE is configured to monitor the DCI format X in a user-specific search space”.
  • the UE needs to assume a DCI size (DCI size) when blindly detecting PDCCH candidates. Due to the limitation of processing capacity, the UE can only monitor a certain number of DCI sizes in each time slot. For example, the total number of different DCI sizes configured in the cell does not exceed 4; for another example, the configuration in the cell is related to C-RNTI ( For example, the total number of different DCI sizes of the corresponding DCI format CRC is scrambled by C-RNTI does not exceed 3.
  • each field in a DCI format may be different according to the RNTI that scrambles the CRC of the DCI format.
  • the design of the DCI format can be such that when two or more or all applicable RNTIs are used to scramble the CRC of one DCI format, the size of the DCI format is the same.
  • Table 2 and Table 3 respectively show an example of the definition of each field in DCI format 1_0 when SI-RNTI and RA-RNTI are used to scramble its CRC; it can be seen that by defining different " The size of the "reserved bits" field, the size of the DCI format 1_0 can be uniformly written as 28+d FDRA , where d FDRA is the size of the frequency domain resource allocation field. The value of d FDRA may be related to the search space for monitoring the DCI format.
  • each field in a DCI format may also be related to other predefined, configuration or pre-configuration information.
  • DCI format X determines the size of a DCI format (for example, DCI format X)
  • determines the size of a DCI format X determines each field appearing in the DCI format X (for example, Determine whether the field appears, and the size of the field, etc.).
  • the size of the DCI format X may be referred to as the "number of information bits" of the DCI format X.
  • any DCI size alignment operation for example, adding zero padding bits
  • the size of the DCI format X is no longer called the "number of information bits".
  • the design of the DCI format can make the size of the same DCI format monitored in two or more common search spaces the same, and/or make the size of the same DCI format monitored in two or more common search spaces.
  • the size of the same DCI format monitored in multiple user-specific search spaces is the same.
  • you can ignore the specific search space For example, you can say "the size of the DCI format x monitored in the public search space”. Say “the size of the DCI format x monitored in the UE specific search space”.
  • Table 3 An example of the definition of DCI format 1_0 with RA-RNTI scrambling its CRC
  • DCI size alignment can be performed. For example, any one or more of the following steps or sub-steps or sub-sub-steps or sub-sub-sub-steps can be performed. step:
  • step 0 includes sub-step 0-0, sub-step 0-1, sub-step 0-2, and sub-step 0-3.
  • step 1 includes sub-step 1-0, sub-step 1-1, sub-step 1-2, sub-step 1-3, and sub-step 1-4.
  • step 2 includes sub-step 2-0, sub-step 2-1, sub-step 2-2, sub-step 2-3, and sub-step 2-4.
  • step 2A includes sub-step 2A-0, sub-step 2A-1, sub-step 2A-2, sub-step 2A-3, and sub-step 2A-4.
  • step 3 includes sub-step 3-0.
  • step 4 includes sub-step 4A, sub-step 4B, and sub-step 4C. in,
  • sub-step 4A includes sub-sub-step 4A-0, sub-sub-step 4A-1, sub-sub-step 4A-2, sub-sub-step 4A-3, sub-sub-step 4A-4, and sub-sub-step 4A-5.
  • sub-step 4B includes sub-sub-step 4B-0. in,
  • sub-sub-step 4B-0 includes sub-sub-sub-step 4B-0-0 and sub-sub-sub-step 4B-0-1.
  • sub-step 4C includes sub-sub-step 4C-0,
  • sub-sub-step 4C-0 includes sub-sub-sub-step 4C-0-0 and sub-sub-sub-step 4C-0-1.
  • each step or sub-step or sub-sub-step or sub-sub-step can be adjusted.
  • sub-step 4A-1 can be adjusted to any one of the sub-steps or sub-steps or sub-sub-steps included in step 4
  • sub-step 4A-2 can be adjusted to any of the sub-steps included in step 4 Or sub-sub-step or after sub-sub-step.
  • sub-sub-step 4A-1 can be described as "repeat sub-step 2-2".
  • sub-sub-step 4A-2 can be described as "repeat sub-step 2A-2".
  • Fig. 1 is a flowchart showing a method executed by a user equipment according to the first embodiment of the present invention.
  • the steps performed by the user equipment UE include: step S101 and step S103.
  • step S101 the size of one or more DCI formats in the DCI format set S is determined.
  • the DCI format set S includes all DCI formats configured to monitor for the UE. in,
  • all DCI formats configured to monitor for the UE include at least one of DCI format 3_0 and DCI format 3_1.
  • the DCI format set S includes at least one of DCI format 3_0 and DCI format 3_1.
  • the DCI format set S only includes the DCI format configured to monitor for the UE. For example, if the UE is not configured to monitor the DCI format 3_1, the DCI format set S does not include the DCI format 3_1.
  • the DCI format set S includes any one or more of the following DCI formats:
  • one or more DCI formats in the DCI format set S are configured to be monitored in a common search space.
  • one or more DCI formats in the DCI format set S are configured to be monitored in a user-specific search space.
  • one or more DCI formats in the DCI format set S are configured to be monitored in a common search space and also configured to be monitored in a user-specific search space.
  • DCI format X a DCI format (for example, denoted as DCI format X) is configured to monitor in the public search space, and also configured to monitor in the user-specific search space
  • DCI format X and The DCI format X monitored in the user-specific search space can be considered as two different DCI formats (for example, at least from the perspective of calculating the size of the DCI format).
  • DCI format X for example, denoted as DCI format X
  • DCI format set S if the "condition for monitoring DCI format X" is established, it can be determined that the UE is configured to monitor DCI format X.
  • the "monitor DCI format 3_0 condition” can include any one or more of the following (any combination of “and” or “or” when applicable):
  • the UE is configured with configuration information for SL communication for network scheduling.
  • the UE is configured with the value of SL-RNTI.
  • the UE is configured with the value of SL-CS-RNTI.
  • the DCI format set configured in one or more search spaces (or one or more search space sets) configured by the UE includes DCI format 3_0 (for example, the value of the parameter dci-FormatsSL-r16 is "formats3-0", For another example, the value of the parameter dci-FormatsSL-r16 is "formats3-0-And-3-1").
  • the "monitor DCI format 3_1 condition” can include any one or more of the following (any combination of “and” or “or” if applicable):
  • the UE is configured with configuration information for SL communication for network scheduling.
  • the UE is configured with the value of SL-L-CS-RNTI.
  • the UE is configured with the value of SL Semi-Persistent Scheduling V-RNTI (or SL SPS V-RNTI).
  • the DCI format set configured in one or more search spaces (or one or more search space sets) configured by the UE includes DCI format 3_1 (for example, the value of parameter dci-FormatsSL-r16 is "formats3-1", For another example, the value of the parameter dci-FormatsSL-r16 is "formats3-0-And-3-1").
  • the "determining the size of one or more DCI formats in the DCI format set S" includes any one or more of the following:
  • Step 1 ⁇ Step 0, or one or more sub-steps of Step 0.
  • Step 1 ⁇ Step 1, or one or more sub-steps of Step 1.
  • Step 2 ⁇ Step 2, or one or more sub-steps of Step 2.
  • Step 2A ⁇ Step 2A, or one or more sub-steps of Step 2A.
  • Step 3 ⁇ Step 3, or one or more sub-steps of Step 3.
  • Step 4 ⁇ Step 4, or one or more sub-steps of Step 4, where,
  • Step S101-0 If the filling condition 1 of the DCI format 3_1 is satisfied, perform the filling operation 1 of the DCI format 3_1. in,
  • the "DCI format 3_1 padding condition 1" may be "none", that is, the "DCI format 3_1 padding operation 1" is always performed.
  • the "DCI Format 3_1 Filling Condition 1" may include any one or more of the following (in any combination of “and” or “or” if applicable):
  • the UE is configured to monitor the DCI format 3_0.
  • the UE is configured to monitor the DCI format 3_0 in a user-specific search space.
  • the UE is configured to monitor the DCI format 3_1.
  • the UE is configured to monitor the DCI format 3_1 in a user-specific search space.
  • the UE is configured to monitor DCI format 3_0 and/or DCI format 3_1.
  • the number of information bits in DCI format 3_1 is less than the number of information bits in DCI format 3_0.
  • the "DCI format 3_1 padding operation 1" may include: adding zeros to the DCI format 3_1 (for example, adding a number of zero padding bits after the last field of the DCI format 3_1) until its load size It is equal to the load size of the DCI format 3_0.
  • Step S101-1 If the DCI format 3_0 filling condition 1 is satisfied, then the DCI format 3_0 filling operation 1 is performed. in,
  • the "DCI format 3_0 padding condition 1" may be "none", that is, the "DCI format 3_0 padding operation 1" is always performed.
  • the "DCI format 3_0 filling condition 1" may include any one or more of the following (in any combination of “and” or “or” if applicable):
  • the UE is configured to monitor the DCI format 3_0.
  • the UE is configured to monitor the DCI format 3_0 in a user-specific search space.
  • the UE is configured to monitor the DCI format 3_1.
  • the UE is configured to monitor the DCI format 3_1 in a user-specific search space.
  • the UE is configured to monitor DCI format 3_0 and/or DCI format 3_1.
  • the number of information bits in DCI format 3_0 is less than the number of information bits in DCI format 3_1.
  • the load size of DCI format 3_0 is smaller than the load size of DCI format 3_1.
  • the "DCI format 3_0 padding operation 1" may include:
  • Add zeros to the DCI format 3_0 for example, add a number of zero padding bits after the last field of the DCI format 3_0) until the load size is equal to the load size of the DCI format 3_1.
  • Step S101-2 If the filling condition 2 of the DCI format 3_0 is satisfied, the filling operation 2 of the DCI format 3_0 is performed. in,
  • the "DCI format 3_0 padding condition 2" may be "none", that is, the "DCI format 3_0 padding operation 2" is always performed.
  • the "DCI format 3_0 filling condition 2" may include any one or more of the following (in any combination of “and” or “or” if applicable):
  • the UE is configured to monitor the DCI format 3_0.
  • the UE is configured to monitor the DCI format 3_0 in a user-specific search space.
  • the UE is configured to monitor the DCI format 3_1.
  • the UE is configured to monitor the DCI format 3_1 in a user-specific search space.
  • the UE is not configured to monitor the DCI format 3_1.
  • the UE is configured to monitor DCI format 3_0 and/or DCI format 3_1.
  • ⁇ d 1012 is not equal to the value of any element in the set T others.
  • ⁇ d 1012 is less than the value of the element with the largest value in the set T others.
  • the "DCI format 3_0 padding operation 2" may include any one or more of the following:
  • d 1012 can be determined according to any one or more of the following:
  • d 1012 max(D 30 , D 31 ).
  • d 1012 D 30 .
  • d 1012 D 31 .
  • d 1012 D 30 .
  • d 1012 D 30 .
  • Step S101-3 If the filling condition 2 of the DCI format 3_1 is satisfied, the filling operation 2 of the DCI format 3_1 is performed. in,
  • the "DCI format 3_1 padding condition 2" may be "none", that is, the "DCI format 3_1 padding operation 2" is always performed.
  • the "DCI format 3_1 filling condition 2" may include any one or more of the following (in any combination of “and” or “or” if applicable):
  • the UE is configured to monitor the DCI format 3_0.
  • the UE is configured to monitor the DCI format 3_0 in a user-specific search space.
  • the UE is not configured to monitor DCI format 3_0.
  • the UE is configured to monitor the DCI format 3_1.
  • the UE is configured to monitor the DCI format 3_1 in a user-specific search space.
  • the UE is configured to monitor DCI format 3_0 and/or DCI format 3_1.
  • ⁇ d 1013 is not equal to the value of any element in the set T others.
  • ⁇ d 1013 is less than the value of the element with the largest value in the set T others.
  • the "DCI format 3_1 padding operation 2" may include any one or more of the following:
  • d 1013 can be determined according to any one or more of the following:
  • d 1013 max(D 31 , D 30 ).
  • Step S101-4 If the filling condition 1 of the DCI format 3_0/3_1 is satisfied, perform the filling operation 1 of the DCI format 3_0/3_1. in,
  • the "DCI format 3_0/3_1 padding condition 1" may be "none", that is, the "DCI format 3_0 padding operation 1" is always performed.
  • the "DCI format 3_0/3_1 filling condition 1" can include any one or more of the following (in applicable cases, press “and” or “or” in any combination):
  • the UE is configured to monitor the DCI format 3_0.
  • the UE is configured to monitor the DCI format 3_0 in a user-specific search space.
  • the UE is not configured to monitor DCI format 3_0.
  • the UE is configured to monitor the DCI format 3_1.
  • the UE is configured to monitor the DCI format 3_1 in a user-specific search space.
  • the UE is not configured to monitor the DCI format 3_1.
  • the UE is configured to monitor DCI format 3_0 and/or DCI format 3_1.
  • ⁇ d 1014 is not equal to the value of any element in the set T others.
  • ⁇ d 1014 is less than the value of the element with the largest value in the set T others.
  • the "DCI format 3_0/3_1 padding operation 1" may include any one or more of the following:
  • d 1014 can be determined according to any one or more of the following:
  • d 1014 max(D 30 , D 31 ).
  • d 1014 D 30 .
  • d 1014 D 30 .
  • T others is a set of sizes of "other DCI formats".
  • the "other DCI format” can be defined in any of the following ways:
  • DCI formats other than DCI format 3_0 if the DCI format set S includes DCI format 3_0
  • DCI format 3_1 if the DCI format set S includes DCI format 3_1 .
  • DCI format set S except for DCI format 3_0 (if the DCI format set S includes DCI format 3_0) and DCI format 3_1 (if the DCI format set S includes DCI format 3_1), and DCI format related to C-RNTI.
  • the DCI format related to C-RNTI In the DCI format set S, the DCI format related to C-RNTI.
  • DCI formats configured to monitor for the UE except for DCI format 3_0 (if the UE is configured to monitor DCI format 3_0) and DCI format 3_1 (if the UE is configured to monitor DCI format 3_1, for example, in a user-specific In the search space, DCI formats other than DCI format 3_1) are monitored.
  • DCI format 3_0 if the UE is configured to monitor DCI format 3_0
  • DCI format 3_1 if the UE is configured to monitor DCI format 3_1, for example, in a user-specific
  • the DCI format related to C-RNTI other than DCI format 3_1) is monitored in the search space.
  • DCI formats configured to monitor for the UE, DCI formats other than DCI format 3_0 and DCI format 3_1.
  • the DCI format related to the C-RNTI.
  • the size of one or more DCI formats in the "other DCI format” may be different in different steps (or sub-steps, or sub-sub-steps, or sub-sub-steps).
  • T others can be different in different steps (or sub-steps, or sub-steps, or sub-sub-steps).
  • D 30 is the size of DCI format 3_0. in,
  • D 30 may be different in different steps (or sub-steps, or sub-steps, or sub-sub-steps).
  • D 30 only exists when the UE is configured to monitor DCI format 3_0.
  • D 31 is the size of DCI format 3_1.
  • D 31 may be different in different steps (or sub-steps, or sub-steps, or sub-sub-steps).
  • D 31 only exists when the UE is configured to monitor DCI format 3_1.
  • D 3031 is the size of DCI format 3_0/3_1. in,
  • the "size of DCI format 3_0/3_1" refers to the size of DCI format 3_0 and DCI format 3_1 Common size (for example, after performing step S101-0; for another example, after performing step S101-1).
  • the "size of DCI format 3_0/3_1" refers to the size of DCI format 3_0 and the DCI format The larger of the size of 3_1.
  • the "size of the DCI format 3_0/3_1" refers to the size of the DCI format 3_0.
  • the "size of the DCI format 3_0/3_1" refers to the size of the DCI format 3_1.
  • the "size of DCI format 3_0/3_1" refers to the size of DCI format 3_0 (for example, according to the definition of DCI format 3_0 and DCI format 3_1,
  • the size of the DCI format 3_1 is always smaller (or smaller than or equal to) the size of the DCI format 3_0, so as long as the UE is configured to monitor the DCI format 3_0, the DCI format 3_0 can be used as a reference size for further DCI size alignment operations).
  • the "size of DCI format 3_0/3_1" refers to the size of DCI format 3_1 (for example, according to the definition of DCI format 3_1 and DCI format 3_0, The size of the DCI format 3_0 is always smaller (or smaller than or equal to) the size of the DCI format 3_1, so as long as the UE is configured to monitor the DCI format 3_1, the DCI format 3_1 can be used as a reference size for further DCI size alignment operations).
  • the D 3031 may be different in different steps (or sub-steps, or sub-steps, or sub-sub-steps).
  • D 3031 exists only when the UE is configured to monitor DCI format 3_0 or the UE is configured to monitor DCI format 3_1.
  • step S101-0 (if it exists) and step S101-1 (if it exists) and step S101-2 (if it exists) and step S101-3 (if it exists) and step S101-4 ( If it exists, the order of execution can be adjusted in any way.
  • step S101-0 and/or step S101-1 and/or step S101-2 and/or step S101-3 and/or step S101-4 can be determined in one of the following ways:
  • step 2 ends, before step 3 starts (for example, if step 2A does not exist).
  • step 4A ends (for example, if step 4B does not exist).
  • step S101-0 and/or step S101-1 and/or step S101-2 and/or step S101-3 and/or step S101-4 can occur one or more times.
  • step S103 DCI is received.
  • the DCI is received according to one or more DCI formats in the DCI format set S.
  • the "configuration" in "UE is configured to monitor DCI format X" can be replaced with "predefined ".
  • the “configuration” in “UE is configured to monitor DCI format X” can be replaced with “pre-configured ".
  • the present invention provides a method to improve the DCI size alignment process, so that the UE can efficiently and unambiguously determine the 5G V2X-related DCI size.
  • FIG. 2 is used to illustrate a user equipment that can execute the method executed by the user equipment described in detail above in the present invention as a modified example.
  • Fig. 2 is a block diagram showing a user equipment UE related to the present invention.
  • the user equipment UE20 includes a processor 201 and a memory 202.
  • the processor 201 may include, for example, a microprocessor, a microcontroller, an embedded processor, and the like.
  • the memory 202 may include, for example, volatile memory (such as random access memory RAM), hard disk drive (HDD), non-volatile memory (such as flash memory), or other memories.
  • the memory 202 stores program instructions. When the instruction is executed by the processor 201, it can execute the above-mentioned method executed by the user equipment described in detail in the present invention.
  • the method and related equipment of the present invention have been described above in conjunction with preferred embodiments. Those skilled in the art can understand that the methods shown above are only exemplary, and the various embodiments described above can be combined with each other without any contradiction.
  • the method of the present invention is not limited to the steps and sequence shown above.
  • the network nodes and user equipment shown above may include more modules, for example, may also include modules that can be developed or developed in the future and can be used for base stations, MMEs, or UEs, and so on.
  • the various identifiers shown above are only exemplary rather than restrictive, and the present invention is not limited to specific information elements as examples of these identifiers. Those skilled in the art can make many changes and modifications based on the teaching of the illustrated embodiment.
  • the foregoing embodiments of the present invention can be implemented by software, hardware, or a combination of both software and hardware.
  • the various components inside the base station and user equipment in the above embodiments can be implemented by a variety of devices, including but not limited to: analog circuit devices, digital circuit devices, digital signal processing (DSP) circuits, programmable processing Device, application specific integrated circuit (ASIC), field programmable gate array (FPGA), programmable logic device (CPLD), etc.
  • DSP digital signal processing
  • ASIC application specific integrated circuit
  • FPGA field programmable gate array
  • CPLD programmable logic device
  • base station may refer to a mobile communication data and control switching center with a certain transmission power and a certain coverage area, including functions such as resource allocation and scheduling, data reception and transmission.
  • User equipment may refer to a user's mobile terminal, for example, including mobile phones, notebooks, and other terminal devices that can communicate with base stations or micro base stations wirelessly.
  • the embodiments of the present invention disclosed herein can be implemented on a computer program product.
  • the computer program product is a product that has a computer-readable medium with computer program logic encoded on the computer-readable medium, and when executed on a computing device, the computer program logic provides related operations to implement The above technical solution of the present invention.
  • the computer program logic When executed on at least one processor of the computing system, the computer program logic causes the processor to perform the operations (methods) described in the embodiments of the present invention.
  • This arrangement of the present invention is typically provided as software, code and/or other data structures arranged or encoded on a computer readable medium such as an optical medium (e.g., CD-ROM), floppy disk or hard disk, or as software, code and/or other data structures such as one or more Firmware or microcode on a ROM or RAM or PROM chip, or downloadable software images, shared databases, etc. in one or more modules.
  • Software or firmware or such a configuration may be installed on a computing device, so that one or more processors in the computing device execute the technical solutions described in the embodiments of the present invention.
  • each functional module or each feature of the base station equipment and terminal equipment used in each of the foregoing embodiments may be implemented or executed by a circuit, and the circuit is usually one or more integrated circuits.
  • Circuits designed to perform the various functions described in this specification can include general-purpose processors, digital signal processors (DSP), application-specific integrated circuits (ASIC) or general-purpose integrated circuits, field programmable gate arrays (FPGA), or other Programming logic devices, discrete gate or transistor logic, or discrete hardware components, or any combination of the above devices.
  • the general-purpose processor may be a microprocessor, or the processor may be an existing processor, controller, microcontroller, or state machine.
  • the general-purpose processor or each circuit described above may be configured by a digital circuit, or may be configured by a logic circuit.
  • the present invention can also use integrated circuits obtained by using this advanced technology.

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Abstract

根据本发明,提出了一种由用户设备执行的方法以及用户设备。由用户设备执行的方法,其特征在于包括:确定DCI格式集合S中的一个或多个DCI格式的大小,以及接收DCI,其中,所述DCI格式集合S包括DCI格式3_0和DCI格式3_1中的至少一个,以及,所述UE配置了SL-RNTI、SL-CS-RNTI、SL-L-CS-RNTI、SL SPS V-RNTI中的至少一个。

Description

由用户设备执行的方法以及用户设备 技术领域
本发明涉及一种由用户设备执行的方法以及用户设备。
背景技术
在5G中如何进行不同DCI格式的大小的对齐,存在需要解决的问题。
此外,在5G V2X中,由于引入了新的DCI格式(例如DCI格式3_0,又如DCI格式3_1),如何处理新的DCI格式的大小(例如是否需要将新的DCI格式的大小与5G中已有的DCI格式的大小对齐,以及怎么进行对齐等),是一个需要解决的问题。
在先技术文献
非专利文献
非专利文献1:RP-152293,New WI proposal:Support for V2V services based on LTE sidelink
非专利文献2:RP-170798,New WID on 3GPP V2X Phase 2
非专利文献3:RP-170855,New WID on New Radio Access Technology
非专利文献4:RP-190766,New WID on 5G V2X with NR sidelink
发明内容
为了解决上述问题中的至少一部分,本发明提供了一种由用户设备执行的方法以及用户设备,通过改进DCI大小对齐流程,使得UE可以高效无歧义地确定5G V2X相关的DCI的大小。
根据本发明,提出了一种由用户设备UE执行的方法,其特征在于包括:
为第一DCI格式集合执行DCI大小对齐流程,以及
若满足第一直行DCI大小对齐条件,则执行第一直行DCI大小填充 操作,
其中,
所述第一DCI格式集合是为所述UE配置的在一个小区中监听的DCI格式集合中除DCI格式3_0和DCI格式3_1外的其它DCI格式的集合,
所述第一直行DCI大小对齐条件包括:所述UE已配置为监听DCI格式3_0,或者所述UE已配置为监听DCI格式3_1,
所述第一直行DCI大小填充操作包括:对已配置的所述DCI格式3_0或已配置的所述DCI格式3_1填充零,直至所述DCI格式3_0或所述DCI格式3_1的负荷大小等于所述第一DCI格式集合中的DCI的负荷大小中大于所述DCI格式3_0或所述DCI格式3_1的最小值。
根据本发明,提出了一种由用户设备执行的方法,其特征在于包括:
确定DCI格式集合S中的一个或多个DCI格式的大小,以及接收DCI。
优选地,所述DCI格式集合S包括DCI格式3_0和DCI格式3_1中的至少一个。
优选地,所述UE配置了SL-RNTI、SL-CS-RNTI、SL-L-CS-RNTI、SL SPS V-RNTI中的至少一个。
优选地,若所述UE配置为监听DCI格式3_0和DCI格式3_1,且DCI格式3_1的信息比特的数量小于DCI格式3_0的负荷大小,则对所述DCI格式3_1添加零直至其负荷大小等于所述DCI格式3_0的负荷大小。
优选地,若满足DCI格式3_0填充条件,则执行DCI格式3_0填充操作。
优选地,所述DCI格式3_0填充条件是:所述UE配置为监听DCI格式3_0,且d不等于集合T others中任何一个元素的值。
优选地,所述DCI格式3_0填充操作是:对所述DCI格式3_0添加零直至其负荷大小等于集合T others中大于d的最小元素的值。
优选地,若满足DCI格式3_1填充条件,则执行DCI格式3_1填充操作。
优选地,所述DCI格式3_1填充条件是:所述UE配置为监听DCI格式3_1,且d不等于集合T others中任何一个元素的值。
优选地,所述DCI格式3_1填充操作是:对所述DCI格式3_1添加零直至其负荷大小等于集合T others中大于d的最小元素的值。
优选地,若所述UE配置为监听DCI格式3_0,则d为调整大小前的DCI格式3_0的大小。
优选地,若所述UE未配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则d为调整大小前的DCI格式3_1的大小。
优选地,所述集合T others是所述DCI格式集合S中除DCI格式3_0(如果存在的话)和DCI格式3_1(如果存在的话)外的所有其他DCI格式的大小的集合。
此外,根据本发明,提出了一种用户设备,包括:处理器;以及存储器,存储有指令,其中,所述指令在由所述处理器运行时执行上述的方法。
因此,本发明提供了一种方法,通过改进DCI大小对齐流程,使得UE可以高效无歧义地确定5G V2X相关的DCI的大小。
附图说明
通过下文结合附图的详细描述,本发明的上述和其它特征将会变得更加明显,其中:
图1是示出了根据本发明的实施例一的由用户设备执行的方法的流程图。
图2示出了本发明所涉及的用户设备UE的框图。
具体实施方式
下面结合附图和具体实施方式对本发明进行详细阐述。应当注意,本发明不应局限于下文所述的具体实施方式。另外,为了简便起见,省略了对与本发明没有直接关联的公知技术的详细描述,以防止对本发明的理解造成混淆。
下文以5G移动通信***及其后续的演进版本作为示例应用环境,具体描述了根据本发明的多个实施方式。然而,需要指出的是,本发明不限 于以下实施方式,而是可适用于更多其它的无线通信***,例如5G之后的通信***以及5G之前的4G移动通信***等。
下面描述本发明涉及的部分术语,如未特别说明,本发明涉及的术语采用此处定义。本发明给出的术语在LTE、LTE-Advanced、LTE-Advanced Pro、NR以及之后的通信***中可能采用不同的命名方式,但本发明中采用统一的术语,在应用到具体的***中时,可以替换为相应***中采用的术语。
3GPP:3rd Generation Partnership Project,第三代合作伙伴计划
AGC:Automatic Gain Control,自动增益控制
AL:Aggregation Level,聚合等级
AS:Access Stratum,接入层
BWP:Bandwidth Part,带宽片段
CA:Carrier Aggregation,载波聚合
CCE:control-channel element,控制信道元素
CORESET:control-resource set,控制资源集
CP:Cyclic Prefix,循环前缀
CP-0FDM:Cyclic Prefix Orthogonal Frequency Division Multiplexing,循环前缀正交频分复用
CRB:Common Resource Block,公共资源块
CRC:Cyclic Redundancy Check,循环冗余校验
CSI:Channel-state Information,信道状态信息
CSS:Common Search Space,公共搜索空间
DC:Dual Connectivity,双连接
DCI:Downlink Control Information,下行控制信息
DFN:Direct Frame Number,直接帧号
DFT-s-OFDM:Discrete Fourier Transformation Spread Orthogonal Frequency Division Multiplexing,离散傅里叶变换扩频正交频分复用
DL:Downlink,下行
DL-SCH:Downlink Shared Channel,下行共享信道
DM-RS:Demodulation reference signal,解调参考信号
eMBB:Enhanced Mobile Broadband,增强的移动宽带通信
eNB:E-UTRAN Node B,E-UTRAN节点B
E-UTRAN:Evolved UMTS Terrestrial Radio Access Network,演进的UMTS陆地无线接入网
FDD:Frequency Division Duplex,频分双工
FDRA:Frequency Domain Resource Assignment,频域资源分配
FR1:Frequency Range 1,频率范围1
FR2:Frequency Range 1,频率范围2
GLONASS:GLObal NAvigation Satellite System,全球导航卫星***
gNB:NR Node B,NR节点B
GNSS:Global Navigation Satellite System,全球导航卫星***
GPS:Global Positioning System,全球定位***
HARQ:Hybrid Automatic Repeat Request,混合自动重复请求
ID:Identity(或者Identifier),身份,标识符
IE:Information Element,信息元素
IP:Internet Protocol,网际协议
LCID:Logical Channel ID,逻辑信道标识符
LTE:Long Term Evolution,长期演进
LTE-A:Long Term Evolution-Advanced,长期演进-升级版
MAC:Medium Access Control,介质访问控制
MAC CE:MAC Control Element,MAC控制元素
MCG:Master Cell Group,主小区组
MIB:Master Information Block,主信息块
MIB-SL:Master Information Block-Sidelink,主信息块-直行
MIB-SL-V2X:Master Information Block-Sidelink-V2X,主信息块-直行-车辆到任何实体
MIB-V2X:Master Information Block-V2X,主信息块-车辆到任何实体
mMTC:massive Machine Type Communication,大规模机器类通信
NAS:Non-Access-Stratum,非接入层
NDI:New Data Indicator,新数据指示符
NR:New Radio,新无线电
NUL:Normal Uplink,正常上行
OFDM:Orthogonal Frequency Division Multiplexing,正交频分复用
PBCH:Physical Broadcast Channel,物理广播信道
PDCCH:Physical Downlink Control Channel,物理下行控制信道
PDCP:Packet Data Convergence Protocol,分组数据汇聚协议
PDSCH:Physical Downlink Shared Channel,物理下行共享信道
PSBCH:Physical Sidelink Broadcast Channel,物理直行广播信道
PSCCH:Physical Sidelink Control Channel,物理直行控制信道
PSFCH:Physical Sidelink Feedback Channel,物理直行反馈信道
PSSCH:Physical Sidelink Shared Channel,物理直行共享信道
PRB:Physical Resource Block,物理资源块
PSS:Primary Synchronization Signal,主同步信号
PSS-SL:Primary Synchronization Signal for Sidelink,直行主同步信号
PSSS:Primary Sidelink Synchronization Signal,主直行同步信号
PTAG:Primary Timing Advance Group,主定时提前组
PUSCH:Physical uplink shared channel,物理上行共享信道
PUCCH:Physical uplink control channel,物理上行控制信道
QCL:Quasi co-location,准共置
QoS:Quality of Service,服务质量
QZSS:Quasi-Zenith Satellite System,准天顶卫星***
RAR:Random Access Response,随机接入响应
RB:Resource Block,资源块
RE:Resource Element,资源元素
REG:resource-element group,资源元素组
RF:Radio Frequency,射频
RLC:Radio Link Control,无线链路控制协议
RNTI:Radio-Network Temporary Identifier,无线网络临时标识符
RRC:Radio Resource Control,无线资源控制
RV:Redundancy Version,冗余版本
S-BWP:Sidelink Bandwidth Part,直行带宽片段
S-MIB:Sidelink Master Information Block,直行主信息块
S-PSS:Sidelink Primary Synchronization Signal,直行主同步信号
S-SSB:Sidelink SS/PBCH block,直行同步信号/物理广播信道块
S-SSS:Sidelink Secondary Synchronization Signal,直行辅同步信号
SCG:Secondary Cell Group,次小区组
SCI:Sidelink Control Information,直行控制信息
SCS:Subcarrier Spacing,子载波间隔
SDAP:Service Data Adaptation Protocol,业务数据适配协议
SFN:System Frame Number,***帧号
SIB:System Information Block,***信息块
SL:Sidelink,直行
SL BWP:Sidelink Bandwidth Part,直行带宽片段
SL MIB:Sidelink Master Information Block,直行主信息块
SL PSS:Sidelink Primary Synchronization Signal,直行主同步信号
SL SS:Sidelink Synchronisation Signal,直行同步信号
SL SSID:Sidelink Synchronization Signal Identity(或者Sidelink Synchronization Signal Identifier),直行同步信号标识
SL SSB:Sidelink SS/PBCH block,直行同步信号/物理广播信道块
SL SSS:Sidelink Secondary Synchronization Signal,直行辅同步信号
SLSS:Sidelink Synchronisation Signal,直行同步信号
SLSS ID:Sidelink Synchronization Signal Identity(或者Sidelink Synchronization Signal Identifier),直行同步信号标识
SLSSID:Sidelink Synchronization Signal Identity(或者Sidelink Synchronization Signal Identifier),直行同步信号标识
SpCell:Special Cell,特殊小区
SRS:Sounding Reference Signal,探测参考信号
SSB:SS/PBCH block,同步信号/物理广播信道块
SSB-SL:SS/PBCH block for Sidelink,直行同步信号/物理广播信道块
SSS:Secondary Synchronization Signal,辅同步信号
SSS-SL:Secondary Synchronization Signal for Sidelink,直行辅同步信号
SSSB:Sidelink SS/PBCH block,直行同步信号/物理广播信道块
SSSS:Secondary Sidelink Synchronization Signal,辅直行同步信号
STAG:Secondary Timing Advance Group,辅定时提前组
Sub-channel:子信道
SUL:Supplementary Uplink,补充上行
TA:Timing Advance,定时提前
TAG:Timing Advance Group,定时提前组
TB:Transport Block,传输块
TCP:Transmission Control Protocol,传输控制协议
TDD:Time Division Duplex,时分双工
TPC:Transmit power control,传输功率控制
UE:User Equipment,用户设备
UL:Uplink,上行
UMTS:Universal Mobile Telecommunications System,通用移动通信***
URLLC:Ultra-Reliable and Low Latency Communication,超可靠低延迟通信
USS:UE-specific Search Space,UE特定搜索空间
V2I:Vehicle-to-Infrastructure,车辆到基础设施
V2N:Vehicle-to-network,车辆到网络
V2P:Vehicle-to-Pedestrian,车辆到行人
V2V:Vehicle-to-vehicle,车辆到车辆
V2X:Vehicle-to-everything,车辆到任何实体
VRB:Virtual Resource Block,虚拟资源块
在本发明的所有实施例和实施方式中,如未特别说明:
●可选地,在适用的情况下,“发送”又可以替换为“传输”。
●可选地,“高层”可以指物理层之上的一个或多个协议层或协 议子层。例如MAC层,又如RLC层,又如PDCP层,又如PC5 RRC层,又如PC5-S层,又如RRC层,又如V2X层,又如应用层,又如V2X应用层,等等。
●可选地,“预配置”可以是通过高层协议/信令进行预配置(pre-configure)。例如预置(例如按高层协议的规范预置)在UE中特定的存储位置,或者预置(例如按高层协议的规范预置)在UE能存取的特定的存储位置。
●可选地,“配置”可以是通过高层协议/信令进行配置。例如通过RRC信令为UE配置。
●可选地,时域(time-domain)资源又可以称为时间(time)资源。
●可选地,频域(fequency-domain)资源又可以称为频率(frequency)资源。
●可选地,“符号”指的是“OFDM符号”。
●可选地,在一个时隙内,OFDM符号的编号可以从0开始。例如对于正常CP,在一个时隙内的OFDM符号的编号的集合可以是{0,1,...,13}。又如对于扩展CP,在一个时隙内的OFDM符号的编号的集合可以是{0,1,...,11}。
●可选地,资源块可以指虚拟资源块(virtual resource block,VRB),也可以指物理资源块(physical resource block,PRB),也可以指公共资源块(common resource block,CRB),也可以指按其他方式定义的资源块。
●可选地,在一个资源块内,子载波的编号可以从0开始。例如在一个资源块内的子载波的编号的集合可以是{0,1,...,11}。
●可选地,“DCI格式”指的是为所述UE配置的同一个服务小区中的DCI格式。
●可选地,“DCI格式的大小”也可以称为DCI格式的负荷大小(payload size),反之亦然。
●可选地,“DCI格式的大小”指的是在提到所述“DCI格式的大小”时相应的DCI格式的大小。例如,在步骤a中,“若DCI格式X的大小等于DCI格式Y的大小,则对所述DCI格式X 添加一个零填充比特”,其中提到的“DCI格式X的大小”为对所述DCI格式X添加一个零填充比特前的DCI格式X的大小。
在基于D2D(Device to Device,设备到设备)技术的通信中,设备(也称为用户设备,User Equipment,UE)之间的接口可以称为PC5接口,相应的传输链路在物理层可以称为“直行”或者说“侧行”(sidelink,简称SL)链路,用于区别上行(uplink,简称UL)链路和下行(downlink,简称DL)链路。基于SL链路的通信可以称为SL通信(sidelink communication)。基于LTE技术的SL链路可以称为LTE SL链路。基于NR技术的SL链路可以称为NR SL链路。5G V2X通信可以基于LTE SL,也可以基于NR SL。下文中如未特别说明,“SL”指的是NR SL。
SL接口的物理层可以支持在有覆盖(in-coverage)、无覆盖(out-of-coverage)和部分覆盖(partial-coverage)场景中的一种或多种场景下进行一种或多种模式的传输,例如广播(broadcast)传输,又如组播(groupcast)传输,又如单播(unicast)传输,等等。
对FR1(Frequency Range 1,频率范围1),SL链路对应的SCS(subcarrier spacing,子载波间隔,记为Δf,单位为kHz)可以是15kHz(正常CP),或30kHz(正常CP),或60kHz(正常CP或扩展CP);对FR2(Frequency Range 2,频率范围2),SL链路对应的SCS可以是60kHz(正常CP或扩展CP),或120kHz(正常CP)。每个SCS分别对应一个SCS配置(SCS configuration,记为μ),例如,Δf=15kHz对应μ=0,Δf=30kHz对应μ=1,Δf=60kHz对应μ=2,Δf=120kHz对应μ=3,等等;又如,对任意一个给定的μ,Δf=2 μ·15kHz。μ可以是SL载波的SCS配置;例如,一个SL载波中的所有SL传输都使用同一个SCS配置和/或同一个CP。μ可以是SL BWP(Sidelink Bandwidth Part,直行带宽片段,或者称为S-BWP,或者称为SBWP,或者称为SL-BWP,或者称为BWP-SL,或者简称为BWP)的SCS配置;例如,一个SL BWP中的所有SL传输都使用同一个SCS配置和/或同一个CP。μ可以是资源池(resource pool)的SCS配置;例如,一个资源池中的所有SL传输都使用同一个SCS配置和/或同一个CP。
与SL操作有关的信号和信道可以包括:
●SL PSS(Sidelink Primary Synchronization Signal,直行主同步信号),或者称为S-PSS,或者称为SPSS,或者称为SL-PSS,或者称为PSS-SL,或者称为PSSS(Primary Sidelink Synchronization Signal,主直行同步信号),等等。
●SL SSS(Sidelink Secondary Synchronization Signal,直行辅同步信号),或者称为S-SSS,或者称为SSSS(Sidelink Secondary Synchronization Signal),或者称为SL-SSS,或者称为SSS-SL,或者称为SSSS(Secondary Sidelink Synchronization Signal,辅直行同步信号),等等。
●PSBCH(Physical Sidelink Broadcast Channel,物理直行广播信道)。
●PSCCH(Physical Sidelink Control Channel,物理直行控制信道)。
●PSSCH(Physical Sidelink Shared Channel,物理直行共享信道)。
●PSFCH(Physical Sidelink Feedback Channel,物理直行反馈信道)。
SL PSS、SL SSS和PSBCH一起可以在时频(time/frequency)资源上组织成块状的形式,例如称为SL SSB(Sidelink Synchronization Signal/PSBCH block,或者SSS/PSBCH block,直行同步信号/物理直行广播信道块),或者称为SSS/PSBCH块,或者称为S-SS/PSBCH块,或者称为S-SSB,或者称为SSSB,或者称为SL-SSB,或者称为SSB-SL。SL SSB的传输带宽(例如,11个资源块)可以位于相应的SL载波内(例如,位于所述SL载波内配置的一个SL BWP内)。SL PSS和/或SL SSS可以携带SL SSID(Sidelink Synchronization Identity,或者Sidelink Synchronization Identifier,直行同步标识,或者Sidelink Synchronization Signal Identity,或者Sidelink Synchronization Signal Identifier,直行同步信号标识,或者称为SL-SSID,或者称为SSID-SL,或者称为SLSSID,或者称为SLSS ID,或者称为S-SSID,等等),PSBCH可以携带SL MIB(Sidelink Master Information Block,直行主信息块,或者称为SL-MIB,或者称为S-MIB,或者称为MIB-SL)。SL MIB中可以包含SL链路的配置信息,例如与携带所述SL MIB的PSBCH(或者相应的SL SSB)所在的直接帧号(或者称为帧号)或直接半帧号(或者称为半帧号)或直接子 帧号(或者称为子帧号)或直接时隙号(或者称为时隙号)有关的信息。
在SL链路上,用于传输SL SSB的时域和/或频域资源可以通过高层参数进行配置。例如,在频域上,可以通过参数absoluteFrequencySSB-SL配置SL SSB在频域上的位置。又如,在时域上,在长度为16帧的周期内,SL SSB的个数(例如记为
Figure PCTCN2021075485-appb-000001
)可以通过参数numSSBwithinPeriod-SL设置,其中,编号(或者说索引)为i S-SSB
Figure PCTCN2021075485-appb-000002
的SL SSB所在的时隙(slot)在长度为16帧的周期内的索引可以是
Figure PCTCN2021075485-appb-000003
其中
Figure PCTCN2021075485-appb-000004
可以通过参数timeOffsetSSB-SL配置,
Figure PCTCN2021075485-appb-000005
可以通过参数
Figure PCTCN2021075485-appb-000006
配置。
有时候,可以认为为SL载波中的SL SSB配置的时域资源和/或频域资源对应的是候选(candidate)SL SSB(或者称为SL SSB候选)。在一个候选SL SSB所对应的时域和/或频域资源上,可能同时存在一个或多个SL SSB传输(例如,分别来自不同UE),也可能不存在任何SL SSB传输。
与SL同步有关的同步源(synchronization source,或者称为同步参考,synchronization reference,或者称为同步参考源,synchronization reference source)可以包括GNSS(Global navigation satellite system,全球导航卫星***)、gNB、eNB和UE(例如NR UE,又如LTE UE,又如NR UE或LTE UE)。一个作为同步源的UE(例如,传输SL SSB的UE),可以称为SyncRefUE。
GNSS的例子可以包括GPS(Global Positioning System,全球定位***)、GLONASS(GLObal NAvigation Satellite System,全球导航卫星***)、BeiDou(北斗导航卫星***)、Galileo(伽利略导航卫星***)、QZSS(Quasi-Zenith Satellite System,准天顶卫星***)等。
SL载波内可以配置一个或多个(例如一个)SL BWP。在每一个SL BWP内,可以通过参数startSLsymbols(或者参数sl-StartSymbol-r16)配置SL时域资源在一个时隙内的起始符号(例如记所述符号在一个时隙内 的编号为
Figure PCTCN2021075485-appb-000007
),可以通过参数lengthSLsymbols(或者参数sl-LengthSymbols-r16)配置SL时域资源在一个时隙内的符号个数(例如记所述符号个数为
Figure PCTCN2021075485-appb-000008
)。SL时域资源在一个时隙内的符号可以称为“SL符号”。记一个时隙内的SL符号的集合为
Figure PCTCN2021075485-appb-000009
Figure PCTCN2021075485-appb-000010
例如,若
Figure PCTCN2021075485-appb-000011
则所述在一个时隙内的SL符号的集合为{7,8,9,10,11,12,13}。
SL传输可以在一个特定的资源池中进行。一个SL BWP内可以配置一个或多个资源池,其中,在每一个资源池内,
●在频域,可以通过参数startRB-Subchannel(或者参数sl-StartRB-Subchannel-r16)配置所述资源池在SL BWP内的起始子信道的起始资源块的位置。
●在频域,可以通过参数numSubchannel(或者参数sl-NumSubchannel-r16)配置所述资源池占用的子信道的个数(记为
Figure PCTCN2021075485-appb-000012
)。所述
Figure PCTCN2021075485-appb-000013
个子信道在频域上可以是连续的。
●在频域,每个子信道可以由一个或多个资源块组成,具体的资源块个数(称为子信道的大小,例如记为n subChannelSize)可以通过参数subchannelsize(或者参数sl-SubchannelSize-r16)配置。所述n subChannelSize个资源块在频域上可以是连续的。
●在频域,按频率从小到大的顺序,一个资源池内的各个子信道可以分别编号为0,1,……,
Figure PCTCN2021075485-appb-000014
其中,编号为i的子信道可以称为“子信道i”
Figure PCTCN2021075485-appb-000015
●在时域,可以通过参数timeresourcepool(或者参数sl-TimeResource-r16)配置周期性出现的可用于所述资源池(或者说属于所述资源池)的一个或多个时隙(例如通过时隙位图的方式),其中周期的大小可以通过参数periodResourcePool配置。
与SL操作有关的资源(例如时域资源,又如频域资源,又如码域资源)的分配方式可以分类如下:
●模式1(Mode 1):基站调度用于SL传输的SL资源。
●模式2(Mode 2):UE确定用于SL传输的SL资源(即基站不 参与SL资源的调度)。例如,执行SL传输操作的UE自主确定用于SL传输的SL资源。
UE可以通过SCI(Sidelink Control Information,直行控制信息)调度数据的传输。SL操作可以支持“两阶段SCI”(two-stage SCI),其中第一阶段SCI(1 st-stage SCI)可以包含资源预留和/或资源分配等信息,以便于所有正在监测(monitor)SL链路的UE对于资源预留和/或资源分配情况进行检测(sensing);第二阶段SCI(2 nd-stage SCI)可以包含其他信息,例如和HARQ反馈相关的信息等。下文中如未特别说明,在单独提到“SCI”时,可以只包括第一阶段SCI,也可以只包括第二阶段SCI,也可以既包括第一阶段SCI也包括第二阶段SCI。
第一阶段SCI的格式可以是SCI格式0-1(或者写成“SCI格式0_1”)。下面是SCI格式0-1中可以包含的信息的一些例子:
●优先级(Priority)。
●频率资源分配(Frequency resource assignment)。
●时间资源分配(Time resource assignment)。
●资源预留周期(Resource reservation period)。
●第二阶段SCI格式(2 nd-stage SCI format)。
第二阶段SCI的格式可以是SCI格式0-2(或者写成“SCI格式0_2”)。下面是SCI格式0-2中可以包含的信息的一些例子:
●源层一标识符(Source Layer-1 ID,或者称为Layer-1 Source ID,层一源标识符,或者称为Physical Layer Source ID,物理层源标识符,或者(在上下文清楚的情况下)称为Source ID,源标识符)。
●目标层一标识符(Destination Layer-1 ID,或者称为Layer-1 Destination ID,层一目标标识符,或者称为Physical Layer Destination ID,物理层目标标识符,或者(在上下文清楚的情况下)称为Destination ID,目标标识符)。
●HARQ进程标识(HARQ Process ID),或者说HARQ进程号(HARQ Process Number)。
●新数据标识(New Data Indicator,NDI)。
●冗余版本(Redundancy Version,RV)。
第一阶段SCI可以携带在PSCCH上。第二阶段SCI可以和要传输的数据一起复用在PSCCH关联的(或者说调度的)PSSCH上。PSCCH及其所关联的PSSCH可以通过一定的方式复用在为SL传输分配的时域和/或频域资源上(例如,PSCCH的起始资源块所在的子信道是其所关联的PSSCH的起始子信道。又如,PSCCH的起始资源块是其所关联的PSSCH的起始子信道的起始资源块)。另外,可以认为第一阶段SCI和/或相应的第二阶段SCI调度了PSSCH(或者说调度了PSSCH的传输,或者说调度了PSSCH中携带的TB的传输)。
对于一个特定的包含PSCCH和/或PSSCH的SL传输,发送方可以称为TX UE,接收方可以称为RX UE。若所述SL传输是一个组播(groupcast)传输,或者单播(unicast)传输,在启用HARQ反馈的情况下,RX UE发送的PSFCH可以携带对TX UE发送的PSCCH和/或PSSCH的反馈,其中,所述反馈可以称为“HARQ-ACK信息”。在一些配置下,HARQ-ACK信息可以是肯定应答(ACK),或者否定应答(NACK,或者NAK,Negative Acknowledgement);在另一些配置下,HARQ-ACK信息可以只包含NACK。
在时域,PSFCH资源可以在一个资源池中周期性地出现,例如通过参数sl-PSFCH-Period-r16进行配置(例如,配置为1个时隙,或者2个时隙,或者4个时隙)。参数sl-PSFCH-Period-r16的一个特殊的取值(例如0)可以用于指示相应的资源池中没有配置PSFCH资源,和/或表示相应的资源池中HARQ反馈被禁用。与PSFCH周期有关的时隙可以是“逻辑时隙”,即只包括属于相应的资源池中的时隙;例如,在某个帧(frame)中的时隙0和时隙5属于某个资源池的时域资源,而时隙1、2、3和4不属于该资源池的时域资源,则sl-PSFCH-Period-r16=1可以指示上述时隙0和时隙5中存在PSFCH资源。
在频域,PSFCH资源可以配置在一个RB集合(例如一组连续PRB的集合,又如一组部分或全部不连续的PRB的集合)中,例如通过参数sl-PSFCH-RB-Set进行配置。
另一方面,5G(或者称为NR,或者称为5G NR)可以通过DCI(Downlink Control Information,下行控制信息)调度PDSCH(Physical Downlink Shared Channel,物理下行共享信道)上的下行传输以及PUSCH(Physical Uplink Shared Channel,物理上行共享信道)上的上行传输。在5G V2X中,还可以额外地通过DCI调度PSCCH和PSSCH的传输。
5G支持多种DCI格式,例如,可以包括表1所示的DCI格式。每种DCI格式的CRC可以用一个RNTI(Radio-Network Temporary Identifier,无线网络临时标识符)加扰,以指示一个特定的用途和/或一个或多个目的UE。例如,用于指示寻呼(paging)的DCI格式的CRC可以用P-RNTI加扰。
表1 5G支持的DCI格式的例子
Figure PCTCN2021075485-appb-000016
5G的DCI可以承载在PDCCH(Physical Downlink Control Channel,物理下行控制信道)上。一个PDCCH可以由一个或者多个CCE(control-channel element,控制信道元素)组成,而一个CCE又可以由多个(例如,6个)REG(resource-element group,资源元素组)组成,而REG则在CORESET(control-resource set,控制资源集)内定义。一 个CORESET在频域包含多个资源块(每个资源块由频域上12个连续的子载波组成),在时域上包含一个或者多个(例如,1个,或者2个,或者3个)OFDM符号。
UE可以在一个或者多个搜索空间集合(search space set)上监听基站的PDCCH传输,其中,每个搜索空间集合可以对应一组PDCCH候选(PDCCH candidate)。UE通过在所要监听的PDCCH候选对应的时频资源上进行盲检(blind detection)以确定是否存在发给自己的PDCCH。
搜索空间集合可以分为CSS(Common Search Space,公共搜索空间)集合和USS(UE-specific search space,UE特定搜索空间)集合,例如,具体地,可以定义下面的搜索空间集合中的一个或多个:
●类型0-PDCCH CSS集合。例如通过MIB中的pdcch-ConfigSIB1参数进行配置,或者通过PDCCH-ConfigCommon中的searchSpaceSIB1参数进行配置,或者通过PDCCH-ConfigCommon中的searchSpaceZero参数进行配置。用于加扰相应的DCI格式的CRC的RNTI可以包括SI-RNTI。可以用于MCG(Master Cell Group,主小区组)的主小区(primary cell)。
●类型0A-PDCCH CSS集合。例如通过PDCCH-ConfigCommon中的searchSpaceOtherSystemInformation参数进行配置。用于加扰相应的DCI格式的CRC的RNTI可以包括SI-RNTI。可以用于MCG的主小区。
●类型1-PDCCH CSS集合。例如通过PDCCH-ConfigCommon中的ra-SearchSpace参数进行配置。用于加扰相应的DCI格式的CRC的RNTI可以包括RA-RNTI、TC-RNTI。可以用于主小区。
●类型2-PDCCH CSS集合。例如通过PDCCH-ConfigCommon中的pagingSearchSpace参数进行配置。用于加扰相应的DCI格式的CRC的RNTI可以包括P-RNTI。可以用于MCG的主小区。
●类型3-PDCCH CSS集合。例如通过PDCCH-Config中的SearchSpace配置,其中searchSpaceType=common。用于加扰相应的DCI格式的CRC的RNTI可以包括INT-RNTI、SFI-RNTI、 TPC-PUSCH-RNTI、TPC-PUCCH-RNTI、TPC-SRS-RNTI、C-RNTI、MCS-C-RNTI和CS-RNTI,其中C-RNTI、MCS-C-RNTI和CS-RNTI可以只用于主小区。
●USS集合。例如通过PDCCH-Config中的SearchSpace配置,其中searchSpaceType=ue-Specific。用于加扰相应的DCI格式的CRC的RNTI可以包括C-RNTI、MCS-C-RNTI、SP-CSI-RNTI、CS-RNTI、SL-RNTI、SL-CS-RNTI和SL-L-CS-RNTI。
有时候可以使用“搜索空间”(search space)的概念。搜索空间可以关联到搜索空间集合,例如,一个搜索空间可以定义为一个搜索空间集合的一部分,或者说子集(例如对应一组PDCCH候选中聚合等级相同的PDCCH候选);又如,一个搜索空间等同于一个搜索空间集合;又如,按其他方式定义搜索空间和搜索空间集合的关系。
由于UE在一个特定的搜索空间中监听DCI,“DCI格式”的定义可以认为与监听DCI的搜索空间有关。例如,有时候(例如在计算需要监听的DCI大小的数量时)可以认为“在搜索空间1中监听的DCI格式x”和“在搜索空间2中监听的DCI格式x”是两种不同的DCI格式。
一个搜索空间中可以监听的DCI格式可以有一定的限制。例如,一个UE特定搜索空间可以配置为监听DCI格式0_0和DCI格式1_0,或者配置为监听DCI格式0_1和DCI格式1_1,但不可以配置为监听DCI格式0_0、DCI格式1_0、DCI格式0_1和DCI格式1_1。
有些DCI格式(例如DCI格式3_0,又如DCI格式3_1,等等)只配置为在用户特定搜索空间中监听,而不配置为在公共搜索空间中监听。对于一个这样的DCI格式(记为DCI格式X),“UE配置为监听DCI格式X”等同于“UE配置为在一个用户特定搜索空间中监听DCI格式X”。
UE在盲检PDCCH候选时需要假定一个DCI大小(DCI size)。由于处理能力的限制,UE在每个时隙只能监听一定数量的DCI大小,例如,小区中配置的不同DCI大小的总数不超过4个;又如,小区中配置的与C-RNTI有关(例如,相应的DCI格式的CRC由C-RNTI加扰)的不同DCI大小的总数不超过3个。
一个DCI格式中各个字段的定义(例如,该字段是否出现,以及该 字段的大小,等等)可以随着加扰所述DCI格式的CRC的RNTI的不同而不同。另一方面,DCI格式的设计可以使得当使用两个或者更多个或者所有适用的RNTI分别加扰一个DCI格式的CRC时,所述DCI格式的大小是一样的。例如,表2和表3分别显示了使用SI-RNTI和RA-RNTI加扰其CRC时DCI格式1_0中各个字段的定义的一个例子;可以看到,通过分别为这两种情况定义不同的“保留比特”字段的大小,DCI格式1_0的大小可以统一写成28+d FDRA,其中d FDRA是频域资源分配字段的大小。d FDRA的值可以与监视所述DCI格式的搜索空间有关。
一个DCI格式中各个字段的定义还可以与其他预定义、配置或预配置信息有关。为确定一个DCI格式(例如记为DCI格式X)的大小,首先需要“确定DCI格式X”,即根据预定义、预配置或配置信息确定所述DCI格式X中出现的每一个字段(例如,确定该字段是否出现,以及该字段的大小,等等)。可选地,在“确定DCI格式X”后,所述DCI格式X的大小可以称为所述DCI格式X的“信息比特的数量”。可选地,在对所述DCI格式X进行过任何DCI大小对齐操作(例如添加零填充比特)后,不再称所述DCI格式X的大小为其“信息比特的数量”。
为了尽量减少小区中总的DCI大小的数量,DCI格式的设计可以使得在两个或者更多个公共搜索空间中监听的同一个DCI格式的大小是一样的,和/或使得在两个或者更多个用户特定的搜索空间中监听的同一个DCI格式的大小是一样的。此时,可选地,在提及一个DCI格式x的大小时,可以忽略具体是哪一个搜索空间,例如,可以说“在公共搜索空间中监听的DCI格式x的大小”,又如,可以说“在UE特定搜索空间中监听的DCI格式x的大小”。
表2用SI-RNTI加扰其CRC的DCI格式1_0的定义的一个例子
Figure PCTCN2021075485-appb-000017
表3用RA-RNTI加扰其CRC的DCI格式1_0的定义的一个例子
Figure PCTCN2021075485-appb-000018
为了进一步减少小区中总的DCI大小的数量,在必要时,可以执行DCI大小对齐(DCI size alignment),例如,执行下面中的任意一个或多个步骤或子步骤或子子步骤或子子子步骤:
Figure PCTCN2021075485-appb-000019
Figure PCTCN2021075485-appb-000020
Figure PCTCN2021075485-appb-000021
Figure PCTCN2021075485-appb-000022
Figure PCTCN2021075485-appb-000023
Figure PCTCN2021075485-appb-000024
Figure PCTCN2021075485-appb-000025
Figure PCTCN2021075485-appb-000026
Figure PCTCN2021075485-appb-000027
其中,
●可选地,步骤0包含子步骤0-0、子步骤0-1、子步骤0-2和子步骤0-3。
●可选地,步骤1包含子步骤1-0、子步骤1-1、子步骤1-2、子步骤1-3和子步骤1-4。
●可选地,步骤2包含子步骤2-0、子步骤2-1、子步骤2-2、子步骤2-3和子步骤2-4。
●可选地,步骤2A包含子步骤2A-0、子步骤2A-1、子步骤2A-2、子步骤2A-3和子步骤2A-4。
●可选地,步骤3包含子步骤3-0。
●可选地,步骤4包含子步骤4A、子步骤4B和子步骤4C。其中,
◆可选地,子步骤4A包含子子步骤4A-0、子子步骤4A-1、子子步骤4A-2、子子步骤4A-3、子子步骤4A-4和子子步骤4A-5。
◆可选地,子步骤4B包含子子步骤4B-0。其中,
○可选地,子子步骤4B-0包含子子子步骤4B-0-0和子子子步骤4B-0-1。
◆可选地,子步骤4C包含子子步骤4C-0,
○可选地,子子步骤4C-0包含子子子步骤4C-0-0和子子子步骤4C-0-1。
●可选地,每个步骤或子步骤或子子步骤或子子子步骤的执行顺序可以进行调整。例如子步骤4A-1可以调整为放到步骤4包含的任意一个子步骤或子子步骤或子子子步骤之后,又如子步骤4A-2可以调整为放到步骤4包含的任意一个子步骤或子子步骤或子子子步骤之后。
●可选地,子子步骤4A-1可以描述为“重复子步骤2-2”。
●可选地,子子步骤4A-2可以描述为“重复子步骤2A-2”。
[实施例一]
下面结合图1来说明本发明的实施例一的由用户设备执行的方法。
图1是示出了根据本发明的实施例一的由用户设备执行的方法的流程图。
如图1所示,在本发明的实施例一中,用户设备UE执行的步骤包括:步骤S101和步骤S103。
具体地,在步骤S101,确定DCI格式集合S中的一个或多个DCI格式的大小。
其中,
●可选地,所述DCI格式集合S包含为所述UE配置监听的所有DCI格式。其中,
◆可选地,为所述UE配置监听的所有DCI格式中包含DCI 格式3_0和DCI格式3_1中的至少一个。
●可选地,所述DCI格式集合S包含DCI格式3_0和DCI格式3_1中的至少一个。
●可选地,所述DCI格式集合S只包含为所述UE配置监听的DCI格式。例如,若所述UE未配置为监听DCI格式3_1,则所述DCI格式集合S不包含DCI格式3_1。
●可选地,所述DCI格式集合S包含下面中的任意一个或多个DCI格式:
◆DCI格式0_0。
◆DCI格式0_1。
◆DCI格式0_2。
◆DCI格式1_0。
◆DCI格式1_1。
◆DCI格式1_2。
◆DCI格式2_0。
◆DCI格式2_1。
◆DCI格式2_2。
◆DCI格式2_3。
◆DCI格式2_4。
◆DCI格式3_0。
◆DCI格式3_1。
●可选地,所述DCI格式集合S中的一个或多个DCI格式配置为在公共搜索空间中监听。
●可选地,所述DCI格式集合S中的一个或多个DCI格式配置为在用户特定搜索空间中监听。
●可选地,所述DCI格式集合S中的一个或多个DCI格式既配置为在公共搜索空间中监听,也配置为在用户特定搜索空间中监听。其中,
◆可选地,若一个DCI格式(例如记为DCI格式X)既配置为在公共搜索空间中监听,也配置为在用户特定搜索空间 中监听,则在公共搜索空间中监听的DCI格式X和在用户特定搜索空间中监听的DCI格式X可以认为是两种不同的DCI格式(例如至少从计算DCI格式大小的角度可以这么认为)。
●可选地,对所述DCI格式集合S中的一个DCI格式(例如记为DCI格式X),若“监听DCI格式X条件”成立,则可以确定所述UE配置为监听DCI格式X。
◆例如,可选地,“监听DCI格式3_0条件”可以包括下面中的任意一项或多项(在适用的情况下按“与”或者“或”的方式任意组合):
○所述UE配置了用于网络调度的SL通信的配置信息。
○所述UE配置了SL-RNTI的值。
○所述UE配置了SL-CS-RNTI的值。
○所述UE配置的一个或多个搜索空间(或者一个或多个搜索空间集合)中配置的DCI格式集合中包含DCI格式3_0(例如参数dci-FormatsSL-r16的值为“formats3-0”,又如参数dci-FormatsSL-r16的值为“formats3-0-And-3-1”)。
◆又如,可选地,“监听DCI格式3_1条件”可以包括下面中的任意一项或多项(在适用的情况下按“与”或者“或”的方式任意组合):
○所述UE配置了用于网络调度的SL通信的配置信息。
○所述UE配置了SL-L-CS-RNTI的值。
○所述UE配置了SL Semi-Persistent Scheduling V-RNTI(或者称为SL SPS V-RNTI)的值。
○所述UE配置的一个或多个搜索空间(或者一个或多个搜索空间集合)中配置的DCI格式集合中包含DCI格式3_1(例如参数dci-FormatsSL-r16的值为“formats3-1”,又如参数dci-FormatsSL-r16的值为“formats3-0-And-3-1”)。
●可选地,所述“确定DCI格式集合S中的一个或多个DCI格式的大小”包括下面中的任意一项或多项:
◆步骤0,或者步骤0的一个或多个子步骤。
◆步骤1,或者步骤1的一个或多个子步骤。
◆步骤2,或者步骤2的一个或多个子步骤。
◆步骤2A,或者步骤2A的一个或多个子步骤。
◆步骤3,或者步骤3的一个或多个子步骤。
◆步骤4,或者步骤4的一个或多个子步骤,其中,
○可选地,对于每一个子步骤,包括其中一个或多个子子步骤。其中,
◇可选地,对于每一个子子步骤,包括其中一个或多个子子子步骤。
◆步骤S101-0:若满足DCI格式3_1填充条件1,则执行DCI格式3_1填充操作1。其中,
○可选地,所述“DCI格式3_1填充条件1”可以是“无”,即总是执行所述“DCI格式3_1填充操作1”。
○可选地,所述“DCI格式3_1填充条件1”可以包括下面中的任意一项或多项(在适用的情况下按“与”或者“或”任意组合):
◇所述UE配置为监听DCI格式3_0。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_0。
◇所述UE配置为监听DCI格式3_1。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_1。
◇所述UE配置为监听DCI格式3_0和/或DCI格式3_1。
◇DCI格式3_1的信息比特的数量小于DCI格式3_0的信息比特的数量。
◇DCI格式3_1的信息比特的数量小于DCI格式3_0 的负荷大小。
◇DCI格式3_1的负荷大小小于DCI格式3_0的负荷大小。
○可选地,所述“DCI格式3_1填充操作1”可以包括:对所述DCI格式3_1添加零(例如在所述DCI格式3_1的最后一个字段之后添加若干个零填充比特)直至其负荷大小等于所述DCI格式3_0的负荷大小。
◆步骤S101-1:若满足DCI格式3_0填充条件1,则执行DCI格式3_0填充操作1。其中,
○可选地,所述“DCI格式3_0填充条件1”可以是“无”,即总是执行所述“DCI格式3_0填充操作1”。
○可选地,所述“DCI格式3_0填充条件1”可以包括下面中的任意一项或多项(在适用的情况下按“与”或者“或”任意组合):
◇所述UE配置为监听DCI格式3_0。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_0。
◇所述UE配置为监听DCI格式3_1。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_1。
◇所述UE配置为监听DCI格式3_0和/或DCI格式3_1。
◇DCI格式3_0的信息比特的数量小于DCI格式3_1的信息比特的数量。
◇DCI格式3_0的信息比特的数量小于DCI格式3_1的负荷大小。
◇DCI格式3_0的负荷大小小于DCI格式3_1的负荷大小。
○可选地,所述“DCI格式3_0填充操作1”可以包括:
对所述DCI格式3_0添加零(例如在所述DCI格式3_0 的最后一个字段之后添加若干个零填充比特)直至其负荷大小等于所述DCI格式3_1的负荷大小。
◆步骤S101-2:若满足DCI格式3_0填充条件2,则执行DCI格式3_0填充操作2。其中,
○可选地,所述“DCI格式3_0填充条件2”可以是“无”,即总是执行所述“DCI格式3_0填充操作2”。
○可选地,所述“DCI格式3_0填充条件2”可以包括下面中的任意一项或多项(在适用的情况下按“与”或者“或”任意组合):
◇所述UE配置为监听DCI格式3_0。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_0。
◇所述UE配置为监听DCI格式3_1。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_1。
◇所述UE未配置为监听DCI格式3_1。
◇所述UE配置为监听DCI格式3_0和/或DCI格式3_1。
◇d 1012不等于集合T others中任何一个元素的值。
◇d 1012小于集合T others中取值最大的元素的值。
○可选地,所述“DCI格式3_0填充操作2”可以包括下面中的任意一项或多项:
◇对所述DCI格式3_0添加零(例如在所述DCI格式3_0的最后一个字段之后添加若干个零填充比特)直至其负荷大小等于集合T others中大于d 1012的最小元素的值。
◇对所述DCI格式3_0添加零(例如在所述DCI格式3_0的最后一个字段之后添加若干个零填充比特)直至其负荷大小等于集合T others中最大元素的值。
其中,可选地,d 1012可以按下面中的任意一项或多项确定:
○若所述UE配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则d 1012=max(D 30,D 31)。
○若所述UE配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则d 1012=D 30
○若所述UE配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则d 1012=D 31
○若所述UE配置为监听DCI格式3_0,且所述UE未配置为监听DCI格式3_1,则d 1012=D 30
○若所述UE配置为监听DCI格式3_0,则d 1012=D 30
○若所述UE配置为监听DCI格式3_0,则d 1012=D 31
○d 1012=D 30
○d 1012=D 31
○d 1012=D 3031
◆步骤S101-3:若满足DCI格式3_1填充条件2,则执行DCI格式3_1填充操作2。其中,
○可选地,所述“DCI格式3_1填充条件2”可以是“无”,即总是执行所述“DCI格式3_1填充操作2”。
○可选地,所述“DCI格式3_1填充条件2”可以包括下面中的任意一项或多项(在适用的情况下按“与”或者“或”任意组合):
◇所述UE配置为监听DCI格式3_0。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_0。
◇所述UE未配置为监听DCI格式3_0。
◇所述UE配置为监听DCI格式3_1。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_1。
◇所述UE配置为监听DCI格式3_0和/或DCI格式3_1。
◇d 1013不等于集合T others中任何一个元素的值。
◇d 1013小于集合T others中取值最大的元素的值。
○可选地,所述“DCI格式3_1填充操作2”可以包括下面中的任意一项或多项:
◇对所述DCI格式3_1添加零(例如在所述DCI格式3_1的最后一个字段之后添加若干个零填充比特)
直至其负荷大小等于集合T others中大于d 1013的最小元素的值。
◇对所述DCI格式3_1添加零(例如在所述DCI格式3_1的最后一个字段之后添加若干个零填充比特)直至其负荷大小等于集合T others中最大元素的值。
其中,可选地,d 1013可以按下面中的任意一项或多项确定:
○若所述UE配置为监听DCI格式3_1,且所述UE配置为监听DCI格式3_0,则d 1013=max(D 31,D 30)。
○若所述UE配置为监听DCI格式3_1,且所述UE配置为监听DCI格式3_0,则d 1013=D 31
○若所述UE配置为监听DCI格式3_1,且所述UE配置为监听DCI格式3_0,则d 1013=D 30
○若所述UE配置为监听DCI格式3_1,且所述UE未配置为监听DCI格式3_0,则d 1013=D 31
○若所述UE配置为监听DCI格式3_1,则d 1013=D 31
○若所述UE配置为监听DCI格式3_1,则d 1013=D 30
○d 1013=D 31
○d 1013=D 30
○d 1013=D 3031
◆步骤S101-4:若满足DCI格式3_0/3_1填充条件1,则执行DCI格式3_0/3_1填充操作1。其中,
○可选地,所述“DCI格式3_0/3_1填充条件1”可以是“无”,即总是执行所述“DCI格式3_0填充操作1”。
○可选地,所述“DCI格式3_0/3_1填充条件1”可以包括下面中的任意一项或多项(在适用的情况下按“与” 或者“或”任意组合):
◇所述UE配置为监听DCI格式3_0。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_0。
◇所述UE未配置为监听DCI格式3_0。
◇所述UE配置为监听DCI格式3_1。
◇所述UE配置为在一个用户特定搜索空间中监听DCI格式3_1。
◇所述UE未配置为监听DCI格式3_1。
◇所述UE配置为监听DCI格式3_0和/或DCI格式3_1。
◇d 1014不等于集合T others中任何一个元素的值。
◇d 1014小于集合T others中取值最大的元素的值。
○可选地,所述“DCI格式3_0/3_1填充操作1”可以包括下面中的任意一项或多项:
◇对所述DCI格式3_0添加零(例如在所述DCI格式3_0的最后一个字段之后添加若干个零填充比特)直至其负荷大小等于集合T others中大于d 1014的最小元素的值。
◇对所述DCI格式3_0添加零(例如在所述DCI格式3_0的最后一个字段之后添加若干个零填充比特)直至其负荷大小等于集合T others中最大元素的值。
◇对所述DCI格式3_1添加零(例如在所述DCI格式3_1的最后一个字段之后添加若干个零填充比特)直至其负荷大小等于集合T others中大于d 1014的最小元素的值。
◇对所述DCI格式3_1添加零(例如在所述DCI格式3_1的最后一个字段之后添加若干个零填充比特)直至其负荷大小等于集合T others中最大元素的值。
其中,可选地,d 1014可以按下面中的任意一项或多项确定:
○若所述UE配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则d 1014=max(D 30,D 31)。
○若所述UE配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则d 1014=D 30
○若所述UE配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则d 1014=D 31
○若所述UE配置为监听DCI格式3_0,且所述UE未配置为监听DCI格式3_1,则d 1014=D 30
○若所述UE未配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则d 1014=D 31
○若所述UE配置为监听DCI格式3_0,则d 1014=D 30
○若所述UE配置为监听DCI格式3_1,则d 1014=D 31
○d 1014=D 30
○d 1014=D 31
○d 1014=D 3031
其中,
◆可选地,T others是“其他DCI格式”的大小的集合。其中,
○可选地,所述“其他DCI格式”可以按下面中任意一种方式定义:
◇在所述DCI格式集合S中,除DCI格式3_0(若所述DCI格式集合S中包含DCI格式3_0)和DCI格式3_1(若所述DCI格式集合S中包含DCI格式3_1)以外的DCI格式。
◇在所述DCI格式集合S中,除DCI格式3_0(若所述DCI格式集合S中包含DCI格式3_0)和DCI格式3_1(若所述DCI格式集合S中包含DCI格式3_1)以外的、与C-RNTI有关的DCI格式。
◇在所述DCI格式集合S中,除了DCI格式3_0和DCI格式3_1以外的DCI格式。
◇在所述DCI格式集合S中,除了DCI格式3_0和 DCI格式3_1以外的、与C-RNTI有关的DCI格式。
◇在所述DCI格式集合S中,与C-RNTI有关的DCI格式。
◇在为所述UE配置监听的DCI格式中,除DCI格式3_0(若所述UE配置为监听DCI格式3_0)和DCI格式3_1(若所述UE配置为监听DCI格式3_1,例如在一个用户特定搜索空间中监听DCI格式3_1)以外的DCI格式。
◇在为所述UE配置监听的DCI格式中,除DCI格式3_0(若所述UE配置为监听DCI格式3_0)和DCI格式3_1(若所述UE配置为监听DCI格式3_1,例如在一个用户特定搜索空间中监听DCI格式3_1)以外的、与C-RNTI有关的DCI格式。
◇在为所述UE配置监听的DCI格式中,除了DCI格式3_0和DCI格式3_1以外的DCI格式。
◇在为所述UE配置监听的DCI格式中,除了DCI格式3_0和DCI格式3_1以外的、与C-RNTI有关的DCI格式。
◇在为所述UE配置监听的DCI格式中,与C-RNTI有关的DCI格式。
◇除DCI格式3_0和DCI格式3_1以外的DCI格式。
◇除DCI格式3_0和DCI格式3_1以外的、与C-RNTI有关的DCI格式。
◇与C-RNTI有关的DCI格式。
○可选地,由于DCI格式对齐操作,所述“其他DCI格式”中的一个或多个DCI格式的大小在不同步骤(或者子步骤,或者子子步骤,或者子子子步骤)中可以不一样,因此T others在不同步骤(或者子步骤,或者子子步骤,或者子子子步骤)中可以不一样。
◆可选地,D 30是DCI格式3_0的大小。其中,
○可选地,由于DCI格式对齐操作,D 30在不同步骤(或者子步骤,或者子子步骤,或者子子子步骤)中可以不一样。
○可选地,仅当所述UE配置为监听DCI格式3_0时,D 30才存在。
◆可选地,D 31是DCI格式3_1的大小。其中,
○可选地,由于DCI格式对齐操作,D 31在不同步骤(或者子步骤,或者子子步骤,或者子子子步骤)中可以不一样。
○可选地,仅当所述UE配置为监听DCI格式3_1时,D 31才存在。
◆可选地,D 3031是DCI格式3_0/3_1的大小。其中,
○可选地,若所述UE配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则所述“DCI格式3_0/3_1的大小”指的是DCI格式3_0和DCI格式3_1的共同大小(例如,在执行步骤S101-0之后;又如,在执行步骤S101-1之后)。
○可选地,若所述UE配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则所述“DCI格式3_0/3_1的大小”指的是DCI格式3_0的大小和DCI格式3_1的大小中的更大者。
○可选地,若所述UE配置为监听DCI格式3_0,且所述UE未配置为监听DCI格式3_1,则所述“DCI格式3_0/3_1的大小”指的是DCI格式3_0的大小。
○可选地,若所述UE未配置为监听DCI格式3_0,且所述UE配置为监听DCI格式3_1,则所述“DCI格式3_0/3_1的大小”指的是DCI格式3_1的大小。
○可选地,若所述UE配置为监听DCI格式3_0,则所述“DCI格式3_0/3_1的大小”指的是DCI格式3_0的大小(例如,按照DCI格式3_0和DCI格式3_1的定 义,DCI格式3_1的大小总是小于(或者小于等于)DCI格式3_0的大小,因此只要所述UE配置为监听DCI格式3_0,DCI格式3_0就可以作为进一步DCI大小对齐操作中使用的参考大小)。
○可选地,若所述UE配置为监听DCI格式3_1,则所述“DCI格式3_0/3_1的大小”指的是DCI格式3_1的大小(例如,按照DCI格式3_1和DCI格式3_0的定义,DCI格式3_0的大小总是小于(或者小于等于)DCI格式3_1的大小,因此只要所述UE配置为监听DCI格式3_1,DCI格式3_1就可以作为进一步DCI大小对齐操作中使用的参考大小)。
○可选地,由于DCI格式对齐操作,D 3031在不同步骤(或者子步骤,或者子子步骤,或者子子子步骤)中可以不一样。
○可选地,仅当所述UE配置为监听DCI格式3_0或所述UE配置为监听DCI格式3_1时,D 3031才存在。
◆可选地,步骤S101-0(如果存在的话)和步骤S101-1(如果存在的话)和步骤S101-2(如果存在的话)和步骤S101-3(如果存在的话)和步骤S101-4(如果存在的话)之间的执行顺序可以按任意方式调整。
◆可选地,步骤S101-0和/或步骤S101-1和/或步骤S101-2和/或步骤S101-3和/或步骤S101-4的时间点可以按下面的方式之一确定:
○步骤2结束之后,步骤3开始之前(例如在步骤2A不存在的情况下)。
○步骤2A结束之后,步骤3开始之前。
○在步骤3之前的、紧挨着步骤3的那个步骤(或子步骤或子子步骤或子子子步骤)结束之后,步骤3开始之前。
○步骤4结束之后。
○步骤4A结束之后(例如在步骤4B不存在的情况下)。
○步骤4B结束之后。
○“DCI大小对齐流程”结束之后。
◆可选地,步骤S101-0和/或步骤S101-1和/或步骤S101-2和/或步骤S101-3和/或步骤S101-4可以出现一次或多次。
此外,在步骤S103,接收DCI。例如,按照所述DCI格式集合S中的一个或多个DCI格式接收DCI。
可选地,在本发明的实施例一中,在适用的情况下(例如对某个或某些DCI格式),“UE配置为监听DCI格式X”中的“配置”可以替换为“预定义”。
可选地,在本发明的实施例一中,在适用的情况下(例如对某个或某些DCI格式),“UE配置为监听DCI格式X”中的“配置”可以替换为“预配置”。
这样,根据实施例一所述,本发明提供了一种方法,通过改进DCI大小对齐流程,使得UE可以高效无歧义地确定5G V2X相关的DCI的大小。
[变形例]
下面,利用图2来说明作为一种变形例的可执行本发明上面所详细描述的用户设备执行的方法的用户设备。
图2是表示本发明所涉及的用户设备UE的框图。
如图2所示,该用户设备UE20包括处理器201和存储器202。处理器201例如可以包括微处理器、微控制器、嵌入式处理器等。存储器202例如可以包括易失性存储器(如随机存取存储器RAM)、硬盘驱动器(HDD)、非易失性存储器(如闪速存储器)、或其他存储器等。存储器202上存储有程序指令。该指令在由处理器201运行时,可以执行本发明详细描述的由用户设备执行的上述方法。
上文已经结合优选实施例对本发明的方法和涉及的设备进行了描述。本领域技术人员可以理解,上面示出的方法仅是示例性的,而且以上说明的各实施例在不发生矛盾的情况下能够相互组合。本发明的方法并不局限于上面示出的步骤和顺序。上面示出的网络节点和用户设备可以包括更多的模块,例如还可以包括可以开发的或者将来开发的可用于基站、MME、或UE的模块等等。上文中示出的各种标识仅是示例性的而不是限制性的,本发明并不局限于作为这些标识的示例的具体信元。本领域技术人员根据所示实施例的教导可以进行许多变化和修改。本领域技术人员应该理解,数学表达式或数学等式或数学不等式的部分或全部可以进行一定程度的简化(例如合并常数项)或者变换或者重写;简化或者变换或者重写前后的数学表达式或数学等式或数学不等式可以认为是等同的。
应该理解,本发明的上述实施例可以通过软件、硬件或者软件和硬件两者的结合来实现。例如,上述实施例中的基站和用户设备内部的各种组件可以通过多种器件来实现,这些器件包括但不限于:模拟电路器件、数字电路器件、数字信号处理(DSP)电路、可编程处理器、专用集成电路(ASIC)、现场可编程门阵列(FPGA)、可编程逻辑器件(CPLD),等等。
在本申请中,“基站”可以指具有一定发射功率和一定覆盖面积的移动通信数据和控制交换中心,包括资源分配调度、数据接收发送等功能。“用户设备”可以指用户移动终端,例如包括移动电话、笔记本等可以与基站或者微基站进行无线通信的终端设备。
此外,这里所公开的本发明的实施例可以在计算机程序产品上实现。更具体地,该计算机程序产品是如下的一种产品:具有计算机可读介质,计算机可读介质上编码有计算机程序逻辑,当在计算设备上执行时,该计算机程序逻辑提供相关的操作以实现本发明的上述技术方案。当在计算***的至少一个处理器上执行时,计算机程序逻辑使得处理器执行本发明实施例所述的操作(方法)。本发明的这种设置典型地提供为设置或编码在例如光介质(例如CD-ROM)、软盘或硬盘等的计算机可读介质上的软件、代码和/或其他数据结构、或者诸如一个或多个ROM或RAM或PROM 芯片上的固件或微代码的其他介质、或一个或多个模块中的可下载的软件图像、共享数据库等。软件或固件或这种配置可安装在计算设备上,以使得计算设备中的一个或多个处理器执行本发明实施例所描述的技术方案。
此外,上述每个实施例中所使用的基站设备和终端设备的每个功能模块或各个特征可以由电路实现或执行,所述电路通常为一个或多个集成电路。设计用于执行本说明书中所描述的各个功能的电路可以包括通用处理器、数字信号处理器(DSP)、专用集成电路(ASIC)或通用集成电路、现场可编程门阵列(FPGA)或其他可编程逻辑器件、分立的门或晶体管逻辑、或分立的硬件组件、或以上器件的任意组合。通用处理器可以是微处理器,或者所述处理器可以是现有的处理器、控制器、微控制器或状态机。上述通用处理器或每个电路可以由数字电路配置,或者可以由逻辑电路配置。此外,当由于半导体技术的进步,出现了能够替代目前的集成电路的先进技术时,本发明也可以使用利用该先进技术得到的集成电路。
尽管以上已经结合本发明的优选实施例示出了本发明,但是本领域的技术人员将会理解,在不脱离本发明的精神和范围的情况下,可以对本发明进行各种修改、替换和改变。因此,本发明不应由上述实施例来限定,而应由所附权利要求及其等价物来限定。

Claims (2)

  1. 一种由用户设备UE执行的方法,其特征在于包括:
    为第一DCI格式集合执行DCI大小对齐流程,以及
    若满足第一直行DCI大小对齐条件,则执行第一直行DCI大小填充操作,
    其中,
    所述第一DCI格式集合是为所述UE配置的在一个小区中监听的DCI格式集合中除DCI格式3_0和DCI格式3_1外的其它DCI格式的集合,
    所述第一直行DCI大小对齐条件包括:所述UE已配置为监听DCI格式3_0,或者所述UE已配置为监听DCI格式3_1,
    所述第一直行DCI大小填充操作包括:对已配置的所述DCI格式3_0或已配置的所述DCI格式3_1填充零,直至所述DCI格式3_0或所述DCI格式3_1的负荷大小等于所述第一DCI格式集合中的DCI的负荷大小中大于所述DCI格式3_0或所述DCI格式3_1的最小值。
  2. 一种用户设备,包括:
    处理器;以及
    存储器,存储有指令,
    其中,所述指令在由所述处理器运行时执行根据权利要求1所述的方法。
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