METHOD PERFORMED BY USER EQUIPMENT, AND USER EQUIPMENT
20230039007 · 2023-02-09
Inventors
Cpc classification
H04L1/00
ELECTRICITY
H04W72/23
ELECTRICITY
H04L5/0053
ELECTRICITY
H04L5/0044
ELECTRICITY
H04W72/20
ELECTRICITY
H04L5/0033
ELECTRICITY
International classification
Abstract
Provided in the present invention are a method performed by user equipment, and user equipment. The method comprises: determining sidelink resource pool configuration information to be first configuration information (S101); receiving, from another user equipment, sidelink control information (SCI) and a corresponding or associated physical sidelink shared channel (PSSCH) (S102); and determining a cyclic shift of a physical sidelink feedback channel (PSFCH) corresponding to the PSSCH.
Claims
1-5. (canceled)
6. A method performed by user equipment, the method comprising: determining a sidelink resource pool configuration transmitted from a base station or included in a pre-configuration, wherein the sidelink resource pool configuration includes a configuration of the number of cyclic shift pairs; receiving, from another user equipment, sidelink control information (SCI) and a corresponding or associated physical sidelink shared channel (PSSCH); and determining, based on at least a value, a cyclic shift of a physical sidelink feedback channel (PSFCH) corresponding to the PSSCH, wherein the value is equal to
7. User equipment, comprising: a processor; and a memory having instructions stored therein, wherein, on the basis of the instructions, the processor is configured to: determinine a sidelink resource pool configuration transmitted from a base station or included in a pre-configuration, wherein the sidelink resource pool configuration includes a configuration of the number of cyclic shift pairs; receiving, from another user equipment, sidelink control information (SCI) and a corresponding or associated physical sidelink shared channel (PSSCH); and determining, based on at least a value, a cyclic shift of a physical sidelink feedback channel (PSFCH) corresponding to the PSSCH, wherein the value is equal to
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0055] The above and other features of the present disclosure will become more apparent with the following detailed description in conjunction with the accompanying drawings.
[0056]
[0057]
[0058]
[0059]
DETAILED DESCRIPTION
[0060] The following describes the present disclosure in detail with reference to the accompanying drawings and specific embodiments. It should be noted that the present disclosure should not be limited to the specific embodiments described below. In addition, for simplicity, detailed description of the prior art not directly related to the present disclosure is omitted to prevent confusion in understanding the present disclosure.
[0061] A plurality of embodiments according to the present disclosure are described in detail below by using a 5G mobile communication system and its subsequent evolved versions as an exemplary application environment. However, it is to be noted that the present invention is not limited to the following embodiments, and rather, it is applicable to many other wireless communication systems, such as a communication system later than 5G and a 4G mobile communication system earlier than the 5G.
[0062] Some terms related to the present disclosure are described below. Unless otherwise specified, the terms related to the present disclosure use the definitions herein. The terms given in the present disclosure may be named differently in LTE, LTE-Advanced, LTE-Advanced Pro, NR, and later communication systems, but unified terms are used in the present disclosure. When applied to a specific system, the terms may be replaced with terms used in the corresponding system. [0063] 3GPP: 3rd Generation Partnership Project [0064] LTE: Long Term Evolution [0065] NR: New Radio [0066] PDCCH: Physical Downlink Control Channel [0067] DCI: Downlink Control Information [0068] PDSCH: Physical Downlink Shared Channel [0069] UE: User Equipment [0070] eNB: evolved NodeB, evolved base station [0071] gNB: NR base station [0072] TTI: Transmission Time Interval [0073] OFDM: Orthogonal Frequency Division Multiplexing [0074] C-RNTI: Cell Radio Network Temporary Identifier [0075] CSI: Channel State Indicator [0076] HARQ: Hybrid Automatic Repeat Request [0077] CSI-RS: CSI-Reference Signal, channel state measurement reference signal [0078] CRS: Cell Reference Signal [0079] PUCCH: Physical Uplink Control Channel [0080] PUSCH: Physical Uplink Shared Channel [0081] UL-SCH: Uplink Shared Channel [0082] CG: Configured Grant [0083] Sidelink: Sidelink communication [0084] SCI: Sidelink Control Information [0085] PSCCH: Physical Sidelink Control Channel [0086] MCS: Modulation and Coding Scheme [0087] CRB: Common Resource Block [0088] CP: Cyclic Prefix [0089] PRB: Physical Resource Block [0090] PSSCH: Physical Sidelink Shared Channel [0091] FDM: Frequency Division Multiplexing [0092] RRC: Radio Resource Control [0093] RSRP: Reference Signal Receiving Power [0094] SRS: Sounding Reference Signal [0095] DMRS: Demodulation Reference Signal [0096] CRC: Cyclic Redundancy Check [0097] PSDCH: Physical Sidelink Discovery Channel [0098] PSBCH: Physical Sidelink Broadcast Channel [0099] SFI: Slot Format Indication [0100] TDD: Time Division Duplexing [0101] FDD: Frequency Division Duplexing [0102] SIB1: System Information Block Type 1 [0103] SLSS: Sidelink Synchronization Signal [0104] PSSS: Primary Sidelink Synchronization Signal [0105] SSSS: Secondary Sidelink Synchronization Signal [0106] PCI: Physical Cell ID [0107] PSS: Primary Synchronization Signal [0108] SSS: Secondary Synchronization Signal [0109] BWP: Bandwidth Part [0110] GNSS: Global Navigation Satellite System [0111] SFN: System Frame Number (radio frame number) [0112] DFN: Direct Frame Number [0113] IE: Information Element [0114] SSB: Synchronization Signal Block [0115] EN-DC: EUTRA-NR Dual Connection [0116] MCG: Master Cell Group [0117] SCG: Secondary Cell Group [0118] PCell: Primary Cell [0119] SCell: Secondary Cell [0120] PSFCH: Physical Sidelink Feedback Channel [0121] AGC: Automatic Gain Control
[0122] The following is a description of the prior art associated with the solutions of the present disclosure. Unless otherwise specified, the same terms in the specific embodiments have the same meanings as in the prior art.
[0123] It is worth pointing out that the V2X and sidelink mentioned in the description of the present disclosure have the same meaning. The V2X herein can also mean sidelink; similarly, the sidelink herein can also mean V2X, and no specific distinction and limitation will be made in the following text.
[0124] The resource allocation mode of V2X (sidelink) communication and the transmission mode of V2X (sidelink) communication in the description of the present disclosure can be replaced equivalently.
[0125] The description of the present disclosure relates to a sequence-based PSFCH. It is worth pointing out that the design of the PSFCH includes sequence-based design, but is not limited thereto.
[0126] In the description of the present disclosure, [a] refers to rounding down a, for example .sup.[1.5] .sup.= .sup.1. In the description of the present disclosure, a mod b refers to a remainder obtained after a is divided by b, for example, 7 mod 4 = 3.
[0127] The PSSCH corresponding to or associated with the SCI in the description of the present disclosure also refers to as an SCI scheduling PSSCH.
[0128] Sidelink communication scenarios [0129] 1) Out-of-coverage sidelink communication: Both of two UEs performing sidelink communication are out of network coverage (for example, the UE detects no cell that meets a “cell selection criterion” on a frequency at which sidelink communication needs to be performed, and that means the UE is out of network coverage). [0130] 2) In-coverage sidelink communication: Both of two UEs performing sidelink communication are in network coverage (for example, the UE detects at least one cell that meets a “cell selection criterion” on a frequency at which sidelink communication needs to be performed, and that means the UE is in network coverage). [0131] 3) Partial-coverage sidelink communication: One of two UEs performing sidelink communication is out of network coverage, and the other is in network coverage.
[0132] From the perspective of a UE side, the UE has only two scenarios, out-of-coverage and in-coverage. Partial-coverage is described from the perspective of sidelink communication. NR V2X unicast, groupcast, and broadcast
[0133] Existing LTE V2X communication only supports broadcast communication at a physical layer. Broadcast communication is widely applied in scenarios such as cellular communication where a base station transmits a system message to UE in a cell. The design goals of NR V2X include support for unicast communication and groupcast communication at a physical layer. Unicast communication refers to communication between transmitting user equipment (UE) and single receiving user equipment. Groupcast communication generally means that a group of UEs are assigned the same identity (ID), and a UE transmits V2X data to other UEs in the group, and receives V2X data transmitted by other UEs in the group.
HARQ and Sidelink HARQ
[0134] In order to better improve the reliability of transmission and improve the spectrum efficiency, an HARQ retransmission mechanism is usually included in unicast communication and groupcast communication. HARQ stands for hybrid automatic repeat request, which can provide an error correction function and implement fast retransmissions, and is widely applied in wireless data communications. HARQ feedback includes HARQ ACK (this feedback information means that reception and decoding are correct) and HARQ NACK (this feedback information means that reception and decoding are not correct). Among them, HARQ ACK means that a receiving UE correctly receives and decodes data of a transmitting UE and therefore feeds back HARQ ACK; HARQ NACK means that the receiving UE does not correctly receive and decode the data of the transmitting UE. When the receiving UE feeds back HARQ NACK, the transmitting UE may retransmit corresponding data to ensure improvement in the reliability of data communication.
[0135] NR V2X supports HARQ feedback (or referred to as HARQ-ACK) and HARQ combining at a physical layer, and HARQ ACK and HARQ NACK therein are carried by a physical sidelink feedback channel (PSFCH).
Sidelink Groupcast HARQ
[0136] For groupcast sidelink communication, when HARQ feedback is enabled, two HARQ feedback mechanisms are supported, and are as follows: [0137] 1) (referred to as mechanism 1) the receiving UE only feeds back HARQ NACK; if the receiving UE decodes a PSCCH correctly but fails to decode a corresponding PSSCH correctly, then the receiving UE feeds back NACK; otherwise, the receiving UE does not perform HARQ feedback; [0138] a) all receiving UEs in a group share one PSFCH resource used to feed back HARQ NACK. [0139] 2) (referred to as mechanism 2) the receiving UE feeds back HARQ ACK and HARQ NACK; if the receiving UE decodes a PSCCH correctly but fails to decode a corresponding PSSCH correctly, then the receiving UE feeds back NACK; if the receiving UE decodes the PSCCH correctly and decodes the corresponding PSSCH correctly, then the receiving UE feeds back ACK. [0140] a) Each UE in the group uses a separate PSFCH resource to feed back HARQ ACK and HARQ NACK.
[0141] A PSFCH resource represents a PSFCH resource mapped to a specific time domain, a specific frequency domain, and a specific code domain.
PSFCH Resource Configuration
[0142] In a resource pool, PSFCHs are periodically configured in slots of the resource pool, and the period thereof can be denoted as N, where the value of N may be 1, or 2, or 4. For example, N = 1 means that each of the slots configured in the resource pool includes a PSFCH resource. N = 2 means that every two consecutive slots of all of the slots configured in the resource pool include a slot including a PSFCH resource. N = 4 means that every four consecutive slots of all of the slots configured in the resource pool include a slot including a PSFCH resource.
Sequence-Based PSFCH
[0143] Here,
is used to represent the number of PRBs (in Rel-16 NR sidelink communication,
.sup.= .sup.1) occupied by the PSFCH in the frequency domain, and a sequence length of the PSFCH is therefore denoted as
, where
. This sequence can be expressed as r.sup.α(n) = e.sup.jαn×r(n), where .sup.n .sup.= .sup.0,.sup.1,2, .sup....,
, and α represents a cyclic shift of the sequence. Different cyclic shifts may generate different sequences (having the same sequence length), that is, different cyclic shifts represent different PSFCH resources. Specifically, if respective time domain resources and frequency domain resources of two PSFCHs are the same, and if respective cyclic shifts α of the PSFCHs are different (code domain resources are different), then the two PSFCHs represent two different PSFCH resources. On a designated (or determined) time-frequency resource, when an initial sequence is designated (or determined) to be an initial sequence r(n), the number of possible values of α is
. That is, r.sup.α(n) may generate
sequences at most. That is,
different PSFCH resources at most (in Rel-16 NR sidelink communication, the number of PSFCH resources is 12, i.e., 12 different sequences) exist on the designated (or determined) time-frequency resource.
[0144] For example,
, and the length of the sequence is
. Therefore, when a certain time-frequency resource is designated, the number of possible values of α is
, that is, 12 different PSFCH resources exist. If the UE needs to feed back 1-bit HARQ feedback information, then the UE needs to occupy two different PSFCH resources to respectively transmit the HARQ ACK and the HARQ NACK. At most 12/2 = 6 different UEs can be multiplexed on the designated time-frequency resource for HARQ feedback (each UE feeds back 1-bit HARQ information).
[0145] For HARQ-ACK in unicast sidelink communication and in mechanisms 1 and 2 of groupcast sidelink communication, when each UE provides feedback by means of a PSFCH, one sequence needs to correspond to NACK while another sequence corresponds to ACK. Therefore, the concept of a cyclic shift pair is introduced to sidelink communication. One cyclic shift pair (or a cyclic shift pair corresponding to a cyclic shift pair index) includes two different cyclic shifts. In the description of the present invention,
is used to represent the number of cyclic shift pairs, and the range of the cyclic shift pair index is from 0 to
.
Method for Determining Cyclic Shift α
[0146] In the description of the present invention, the cyclic shift α may also be represented by α.sub.1, that is, α and α.sub.1 can be equivalently replaced by each other. The method for determining α includes, but is not limited to, the following:
[0147] where
[0155] Each embodiment of the present patent includes the method for determining m.sub.cs in the above-mentioned method.
Intra-Group Identifier of UE in Groupcast Mechanism 2
[0156] In the embodiment of the present disclosure, the intra-group identifier of UE in groupcast is represented by M.sub.ID. Optionally, in sidelink groupcast mechanism 2, higher layers (or upper layers) indicate intra-group identifier M.sub.ID of the UE in sidelink communication. In one implementation, if the total number of UEs included in a group in groupcast is N.sub.sizeGroup, the value range of M.sub.ID is from 0 to N.sub.sizeGroup-1. The method used to obtain the value of M.sub.ID in the present invention includes, but is not limited to, the above-mentioned method.
Basic Procedure of LTE V2X (Sidelink) Communication
[0157]
Resource Allocation Mode (Transmission Mode ¾) of LTE V2X
[0160]
Numerologies in NR (including NR Sidelink) and Slots in NR (including NR Sidelink)
[0165] A numerology comprises two aspects: a subcarrier spacing and a cyclic prefix (CP) length. NR supports five subcarrier spacings, which are respectively 15 kHz, 30 kHz, 60 kHz, 120 kHz and 240 kHz (corresponding to .Math. = 0, 1, 2, 3, 4). Table 4.2-1 shows the supported transmission numerologies specifically as follows:
TABLE-US-00001 Subcarrier Spacings Supported by NR .Math. Δƒ = 2.sup..Math..Math.15 [kHz] CP (cyclic prefix) 0 15 Normal 1 30 Normal 2 60 Normal, Extended 3 120 Normal 4 240 Normal
[0166] Only when .Math. = 2, that is, in the case of a 60-kHz sub-carrier spacing, an extended CP is supported, whereas only a normal CP is supported in the case of other sub-carrier spacings. For a normal CP, each slot includes
OFDM symbols; and for an extended CP, each slot includes
OFDM symbols. For .Math. = 0, namely, a 15-kHz subcarrier spacing, one slot = 1 ms; for .Math. = 1, namely, a 30-kHz subcarrier spacing, one slot = 0.5 ms; for .Math. = 2, namely, a 60-kHz subcarrier spacing, one slot = 0.25 ms, and so on.
[0167] NR and LTE have the same definition for a subframe, which denotes 1 ms. For subcarrier spacing configuration .Math., a slot number in one subframe (1 ms) may be denoted as
, and ranges from 0 to
; a slot number in one system frame (having a duration of 10 ms) may be denoted as
, and ranges from 0 to
. Respective definitions of
and
for different subcarrier spacings .Math. are shown in the following tables.
TABLE-US-00002 the number of symbols included in each slot, the number of slots included in each system frame, and the number of slots included in each subframe for a normal CP .Math.
TABLE-US-00003 the number of symbols included in each slot, the number of slots included in each system frame, and the number of slots included in each subframe for an extended CP (60 kHz) .Math.
[0168] On an NR carrier, a system frame (or simply referred to as frame) number (SFN) ranges from 0 to 1023. The concept of a direct frame number (DFN) is introduced to sidelink communication, and the number likewise ranges from 0 to 1023. The above description of the relationships between system frames and numerologies can likewise be applied to a direct frame. For example, a duration of one direct frame is likewise equal to 10 ms; for a subcarrier interval of 15 kHz, one direct frame includes 10 slots, and so on. The DFN is applied to timing on a sidelink carrier.
Sidelink Resource Pool
[0169] In sidelink communication, resources transmitted and received by UEs all belong to resource pools. For example, for a base station scheduling-based transmission mode in sidelink communication (transmission mode 1 in NR sidelink communication), the base station schedules transmission resources for a sidelink UE in a resource pool; alternatively, for a UE sensing-based transmission mode in sidelink communication (transmission mode 2 in NR sidelink communication), the UE determines a transmission resource in a resource pool.
Embodiment 1
[0170] As shown in
[0171] In step S101, sidelink user equipment determines sidelink resource pool configuration information.
[0172] Optionally, the sidelink resource pool configuration information is configuration information transmitted by a base station through RRC signaling. Or,
[0173] optionally, the sidelink resource pool configuration information is included in pre-configuration information of the user equipment.
[0174] Optionally, the sidelink resource pool configuration information includes rbSetPSFCH, which is configuration information of a PRB set actually used for PSFCH transmission and reception. Optionally, the configuration information of a PRB set actually used for PSFCH transmission and reception is bitmap indicated rbSetPSFCH. Optionally,
is equal to the number of 1s or the number of 0s in the bitmap indicated rbSetPSFCH.
[0175] Optionally, the sidelink resource pool configuration information includes configuration information about the number of subchannels N.sub.subch.
[0176] Optionally, the sidelink resource pool configuration information includes PSFCH resource period configuration information
.
[0177] Optionally, the sidelink resource pool configuration information includes configuration information about the number of cyclic shift pairs
.
[0178] Optionally, the sidelink resource pool configuration information includes initial cyclic shift configuration information m.sub.0. Optionally, the value range of m.sub.0 is from 0 to 11, or the value range of m.sub.0 is from 0 to
in a unit of cyclic shift pair.
[0179] Optionally, the sidelink resource pool configuration information includes indication information used to indicate (configure) a mapping relationship
between the PSSCH and the PSFCH as follows:
, or
, is equal to the number of occupied subchannels in PSSCH transmission.
[0180] In step S102, the user equipment receives, from another user equipment, sidelink control information (SCI) and a corresponding or associated PSSCH.
[0181] Optionally, the SCI includes 1.sup.st stage SCI and/or 2.sup.nd stage SCI.
[0182] Optionally, the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI includes indication information used to indicate the number of occupied subchannels in the corresponding PSSCH transmission
.
[0183] Optionally, the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI includes a source identifier (source ID) P.sub.ID of the other user equipment. Optionally, the source ID is an 8-bit or 16-bit bit string.
[0184] Optionally, higher layers (or upper layers) indicate the intra-group identifier M.sub.ID of the UE. Optionally, if the PSSCH transmission is unicast transmission or the UE determines that the HARQ feedback mechanism is mechanism 1 according to the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI, then M.sub.ID = 0. Optionally, if the UE determines that the HARQ feedback mechanism is mechanism 2 according to the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI, then M.sub.ID represents the intra-group identifier of the UE.
[0185] In step S103, the UE determines the value of m.sub.cs, which is used for determining the cyclic shift α(α.sub.1).
[0186] Optionally, the UE determines the value of m.sub.cs according to a cyclic shift pair number (or index) i.
[0187] Optionally, for NACK (0) feedback, m.sub.cs = i; for ACK(1) feedback, m.sub.cs = i + 6. Or, optionally, for NACK (0) feedback, m.sub.cs = i + 6; for ACK(1) feedback, m.sub.cs = i.
[0188] Or, optionally, the UE determines the value of m.sub.cs according to a cyclic shift i′ corresponding to the cyclic shift pair number (or index) i. Optionally, the correspondence between i and i′ is pre-defined, or fixed, or pre-configured.
[0189] Optionally,
, or i′ is an integer between 0 and 11. Optionally, for NACK (0) feedback, m.sub.cs = i′; for ACK(1) feedback, m.sub.cs = (i′+6)mod12 or m.sub.cs = (i′+6). Or, optionally, for NACK (0) feedback, m.sub.cs = (i′+6)mod12, or m.sub.cs = (i′+6); for ACK(1) feedback, m.sub.cs = i′. Or, optionally,
, or i′ is an integer between 0 and 11. Optionally, for NACK (0) feedback, m.sub.cs = i′; for ACK(1) feedback,
, or
. Or, optionally, for NACK (0) feedback,
, or
.For ACK (1) feedback, m.sub.cs = i′.
[0190] Optionally, the cyclic shift pair index
, where optionally,
; optionally,
or
, or,
.
Embodiment 2
[0191] As shown in
[0192] in step S101, sidelink user equipment determines sidelink resource pool configuration information.
[0193] Optionally, the sidelink resource pool configuration information is configuration information transmitted by a base station through RRC signaling. Or,
[0194] optionally, the sidelink resource pool configuration information is included in pre-configuration information of the user equipment.
[0195] Optionally, the sidelink resource pool configuration information includes rbSetPSFCH, which is configuration information of a PRB set actually used for PSFCH transmission and reception. Optionally, the configuration information of a PRB set actually used for PSFCH transmission and reception is bitmap indicated rbSetPSFCH. Optionally,
is equal to the number of 1s or the number of 0s in the bitmap indicated rbSetPSFCH.
[0196] Optionally, the sidelink resource pool configuration information includes configuration information about the number of subchannels N.sub.subch.
[0197] Optionally, the sidelink resource pool configuration information includes PSFCH resource period configuration information
.
[0198] Optionally, the sidelink resource pool configuration information includes configuration information about the number of cyclic shift pairs
.
[0199] Optionally, the sidelink resource pool configuration information includes initial cyclic shift configuration information m.sub.0. Optionally, the value range of m.sub.0 is from 0 to 11, or the value range of m.sub.0 is from 0 to
in a unit of cyclic shift pair.
[0200] In step S102, the user equipment receives, from another user equipment, sidelink control information (SCI) and a corresponding or associated PSSCH.
[0201] Optionally, the SCI includes 1.sup.st stage SCI and/or 2.sup.nd stage SCI.
[0202] Optionally, the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI includes indication information used to indicate the number of occupied subchannels in the corresponding PSSCH transmission
.
[0203] Optionally, the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI includes indication information used to indicate a mapping relationship
between the PSSCH and the PSFCH as follows:
, or
is equal to
. Optionally, the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI includes a source identifier (source ID) P.sub.ID of the other user equipment. Optionally, the source ID is an 8-bit or 16-bit bit string.
[0204] Optionally, higher layers (or upper layers) indicate the intra-group identifier M.sub.ID of the UE. Optionally, if the PSSCH transmission is unicast transmission or the UE determines that the HARQ feedback mechanism is mechanism 1 according to the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI, then M.sub.ID = 0. Optionally, if the UE determines that the HARQ feedback mechanism is mechanism 2 according to the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI, then M.sub.ID represents the intra-group identifier of the UE.
[0205] In step S103, the UE determines the value of m.sub.cs, which is used for determining the cyclic shift α(α.sub.1).
[0206] Optionally, the UE determines the value of m.sub.cs according to a cyclic shift pair number (or index) i.
[0207] Optionally, for NACK (0) feedback, m.sub.cs = i; for ACK(1) feedback, m.sub.cs = i + 6. Or, optionally, for NACK (0) feedback, m.sub.cs = i + 6; for ACK(1) feedback, m.sub.cs = i.
[0208] Or, optionally, the UE determines the value of m.sub.cs according to a cyclic shift i′ corresponding to the cyclic shift pair number (or index) i. Optionally, the correspondence between i and i′ is pre-defined, or fixed, or pre-configured.
[0209] Optionally,
, or i′ is an integer between 0 and 11. Optionally, for NACK (0) feedback, m.sub.cs = i′; for ACK(1) feedback, m.sub.cs = (i′+6)mod12 or m.sub.cs = (i′+6). Or, optionally, for NACK (0) feedback, m.sub.cs = (i′+6)mod12, or m.sub.cs = (i′+6); for ACK(1) feedback, m.sub.cs = i′. Or, optionally,
, or i′ is an integer between 0 and 11. Optionally, for NACK (0) feedback, m.sub.cs = i′; for ACK(1) feedback,
, or
. Or, optionally, for NACK (0) feedback,
, or
. For ACK (1) feedback, m.sub.cs = i′.
[0210] Optionally, the cyclic shift pair index
, where optionally,
; optionally,
;
or
, or,
.
Embodiment 3
[0211] As shown in
[0212] in step S101, sidelink user equipment determines sidelink resource pool configuration information.
[0213] Optionally, the sidelink resource pool configuration information is configuration information transmitted by a base station through RRC signaling. Or,
[0214] optionally, the sidelink resource pool configuration information is included in pre-configuration information of the user equipment.
[0215] Optionally, the sidelink resource pool configuration information includes rbSetPSFCH, which is configuration information of a PRB set actually used for PSFCH transmission and reception. Optionally, the configuration information of a PRB set actually used for PSFCH transmission and reception is bitmap indicated rbSetPSFCH. Optionally,
is equal to the number of 1s or the number of 0s in the bitmap indicated rbSetPSFCH. Optionally, the sidelink resource pool configuration information includes configuration information about the number of subchannels N.sub.subch.
[0216] Optionally, the sidelink resource pool configuration information includes PSFCH resource period configuration information
.
[0217] Optionally, the sidelink resource pool configuration information includes configuration information about the number of cyclic shift pairs
.
[0218] Optionally, the sidelink resource pool configuration information includes initial cyclic shift configuration information m.sub.0. Optionally, the value range of m.sub.0 is from 0 to 11, or the value range of m.sub.0 is from 0 to
in a unit of cyclic shift pair.
[0219] In step S102, the user equipment receives, from another user equipment, sidelink control information (SCI) and a corresponding or associated PSSCH.
[0220] Optionally, the SCI includes 1.sup.st stage SCI and/or 2.sup.nd stage SCI.
[0221] Optionally, the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI includes a source identifier (source ID) P.sub.ID of the other user equipment. Optionally, the source ID is an 8-bit or 16-bit bit string.
[0222] Optionally, higher layers (or upper layers) indicate the intra-group identifier M.sub.ID of the UE. Optionally, if the PSSCH transmission is unicast transmission or the UE determines that the HARQ feedback mechanism is mechanism 1 according to the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI, then M.sub.ID = 0. Optionally, if the UE determines that the HARQ feedback mechanism is mechanism 2 according to the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI, then M.sub.ID represents the intra-group identifier of the UE.
[0223] In step S103, the UE determines the value of m.sub.cs, which is used for determining the cyclic shift α(α.sub.1).
[0224] Optionally, the UE determines the value of m.sub.cs according to a cyclic shift pair number (or index) i.
[0225] Optionally, for NACK (0) feedback, m.sub.cs = i; for ACK(1) feedback, m.sub.cs = i + 6. Or, optionally, for NACK (0) feedback, m.sub.c = i + 6; for ACK(1) feedback, m.sub.c = i.
[0226] Or, optionally, the UE determines the value of m.sub.cs according to a cyclic shift i′ corresponding to the cyclic shift pair number (or index) i. Optionally, the correspondence between i and i′ is pre-defined, or fixed, or pre-configured.
[0227] Optionally,
or iʹ is an integer between 0 and 11. Optionally, for NACK (0) feedback, m.sub.cs = iʹ; for ACK(1) feedback, m.sub.cs = (i′+6)mod12 or m.sub.cs = (iʹ+6). Or, optionally, for NACK (0) feedback, m.sub.c = (iʹ+6)mod12, or m.sub.cs = (iʹ+6); for ACK(1) feedback, m.sub.cs = iʹ. Or, optionally,
or i′ is an integer between 0 and 11. Optionally, for NACK (0) feedback, m.sub.cs = iʹ; for ACK(1) feedback,
or
Or, optionally, for NACK (0) feedback,
or
For ACK (1) feedback, m.sub.cs = iʹ.
[0228] Optionally, the cyclic shift pair index
where optionally,
optionally,
or,
Embodiment 4
[0229] As shown in
[0230] in step S101, sidelink user equipment determines sidelink resource pool configuration information.
[0231] Optionally, the sidelink resource pool configuration information is configuration information transmitted by a base station through RRC signaling. Or,
[0232] optionally, the sidelink resource pool configuration information is included in preconfiguration information of the user equipment.
[0233] Optionally, the sidelink resource pool configuration information includes rbSetPSFCH, which is configuration information of a PRB set actually used for PSFCH transmission and reception. Optionally, the configuration information of a PRB set actually used for PSFCH transmission and reception is bitmap indicated rbSetPSFCH. Optionally,
is equal to the number of 1s or the number of Os in the bitmap indicated rbSetPSFCH.
[0234] Optionally, the sidelink resource pool configuration information includes configuration information about the number of subchannels Nsubch.
[0235] Optionally, the sidelink resource pool configuration information includes PSFCHresource period configuration information
[0236] Optionally, the sidelink resource pool configuration information includes configuration information about the number of cyclic shift pairs
[0237] Optionally, the sidelink resource pool configuration information includes initial cyclic shift configuration information m.sub.0. Optionally, the value range of m.sub.0 is from 0 to 11, or the value range of m.sub.0 is from 0 to
in a unit of cyclic shift pair.
[0238] In step S102, the user equipment receives, from another user equipment, sidelink control information (SCI) and a corresponding or associated PSSCH.
[0239] Optionally, the SCI includes 1.sup.st stage SCI and/or 2.sup.nd stage SCI.
[0240] Optionally, the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI includes indication information used to indicate the number of occupied subchannels in the corresponding PSSCH transmission
.
[0241] Optionally, the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI includes a source identifier (source ID) P.sub.ID of the other user equipment. Optionally, the source ID is an 8-bit or 16-bit bit string.
[0242] Optionally, higher layers (or upper layers) indicate te intra-group identifier M.sub.ID of the UE. Optionally, if the PSSCH transmission is unicast transmission or the UE determines that the HARQ feedback mechanism is mechanism 1 according to the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI, then M.sub.ID = 0. Optionally, if the UE determines that the HARQ feedback mechanism is mechanism 2 according to the 1.sup.st stage SCI and/or the 2.sup.nd stage SCI, then M.sub.ID represents the intra-group identifier of the UE.
[0243] In step S103, the UE determines the value of m.sub.cs, which is used for determining the cyclic shift α(α.sub.1).
[0244] Optionally, the UE determines the value of m.sub.cs according to a cyclic shift pair number (or index) i.
[0245] Optionally, for NACK (0) feedback, m.sub.cs = i; for ACK(1) feedback, m.sub.cs = i + 6. Or, optionally, for NACK (0) feedback, m.sub.cs = i + 6; for ACK(1) feedback, m.sub.cs = i.
[0246] Or, optionally, the UE determines the value of m.sub.cs according to a cyclic shift i′ corresponding to the cyclic shift pair number (or index) i. Optionally, a corresponding relation between i and i′ is pre-defined, or fixed, or pre-configured.
[0247] Optionally,
or iʹ is an integer between 0 and 11. Optionally, for NACK (0) feedback, m.sub.cs = iʹ; for ACK(1) feedback, m.sub.cs = (iʹ+6)mod12 or m.sub.cs = (iʹ+6). Or, optionally, for NACK (0) feedback, m.sub.cs = (iʹ+6)mod12, or m.sub.cs = (iʹ+6); for ACK(1) feedback, m.sub.cs = iʹ. Or, optionally,
or i′ is an integer between 0 and 11. Optionally, for NACK (0) feedback, m.sub.cs = iʹ; for ACK(1) feedback,
or
Or, optionally, for NACK (0) feedback,
or
For ACK (1) feedback, m.sub.cs =iʹ
[0248] Optionally, the cyclic shift pair index
where optionally,
optionally,
or
[0249]
[0250] The methods and related devices according to the present disclosure have been described above in conjunction with preferred embodiments. It should be understood by those skilled in the art that the methods shown above are only exemplary, and the above embodiments can be combined with one another as long as no contradiction arises. The method according to the present disclosure is not limited to steps or sequences shown above. The network node and user equipment illustrated above may include more modules. For example, the network node and user equipment may further include modules that can be developed or will be developed in the future to be applied to a base station, an MME, or UE, and the like. Various identifiers shown above are only exemplary, not for limitation, and the present disclosure is not limited to specific information elements serving as examples of these identifiers. A person skilled in the art could make various alterations and modifications according to the teachings of the illustrated embodiments.
[0251] It should be understood that the above embodiments of the present disclosure may be implemented through software, hardware, or a combination of software and hardware. For example, various components inside the base station and the user equipment in the above embodiments may be implemented through various devices, which include, but are not limited to, analog circuit devices, digital circuit devices, digital signal processing (DSP) circuits, programmable processors, application specific integrated circuits (ASICs), field programmable gate arrays (FPGAs), programmable logic devices (CPLDs), and the like.
[0252] In this application, the “base station” may refer to a mobile communication data and control exchange center with large transmission power and a wide coverage area, including functions such as resource allocation and scheduling, data reception and transmission. “User equipment” may refer to a user mobile terminal, for example, including terminal devices that can communicate with a base station or a micro base station wirelessly, such as a mobile phone, a laptop computer, and the like.
[0253] In addition, the embodiments of the present disclosure disclosed herein may be implemented on a computer program product. More specifically, the computer program product is a product provided with a computer-readable medium having computer program logic encoded thereon. When being executed on a computing device, the computer program logic provides related operations to implement the above-described technical solutions of the present disclosure. When being executed on at least one processor of a computing system, the computer program logic enables the processor to perform the operations (methods) described in the embodiments of the present disclosure. Such an arrangement of the present disclosure is typically provided as software, code, and/or other data structures that are configured or encoded on a computer-readable medium, such as an optical medium (for example, a CD-ROM), a floppy disk, or a hard disk, or other media such as firmware or microcode on one or more ROM or RAM or PROM chips, or downloadable software images, shared database and so on in one or more modules. Software or firmware or such configuration may be installed on a computing equipment such that one or more processors in the computing equipment perform the technical solutions described in the embodiments of the present disclosure.
[0254] In addition, each functional module or each feature of the base station device and the terminal device used in each of the above embodiments may be implemented or executed by a circuit, which is usually one or more integrated circuits. Circuits designed to execute various functions described in this description may include general-purpose processors, digital signal processors (DSPs), application specific integrated circuits (ASICs) or general-purpose integrated circuits, field programmable gate arrays (FPGAs) or other programmable logic devices, discrete gates or transistor logic, or discrete hardware components, or any combination of the above. The general purpose processor may be a microprocessor, or the processor may be an existing processor, a controller, a microcontroller, or a state machine. The aforementioned general purpose processor or each circuit may be configured by a digital circuit or may be configured by a logic circuit. In addition, when an advanced technology that can replace current integrated circuits emerges because of advances in semiconductor technology, the present disclosure may also use integrated circuits obtained using this advanced technology.
[0255] Although the present disclosure has been shown in connection with the preferred embodiments disclosed herein, it will be understood by those skilled in the art that various modifications, substitutions, and alterations may be made therein without departing from the spirit and scope of the present disclosure. Accordingly, the present disclosure should not be defined by the above-described embodiments, but should be defined by the appended claims and their equivalents.