Method executed by user equipment, and user equipment

By receiving MAC CE and SCI information, the user equipment determines the set of preferred or non-preferential resources, solving the problem of insufficient resource allocation for NR side-line communication on the unauthorized spectrum and improving transmission reliability.

WO2025140273A1PCT designated stage expired Publication Date: 2025-07-03SHARP KK +1
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Patent Information

Application Number
PCT/CN2024/142195
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-25
Filing Date
2024-12-25
Publication Date
2025-07-03

AI Technical Summary

Technical Problem

When NR side-link communication is performed on unauthorized spectrum, the prior art is difficult to effectively improve the coordinated resource allocation between user equipment, resulting in insufficient transmission reliability.

Method used

The user equipment receives MAC CE and SCI information, determines the preferred or non-preferential resource set, and indicates the number of resource block sets to the physical layer through the MAC layer to improve the synergy of resource allocation.

Benefits of technology

The transmission reliability of communication on the unauthorized spectrum is improved, and the availability of the indication information is enhanced by ensuring that the MAC CE and SCI received by the user equipment contain the same RB set number indication information.

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Abstract

Provided in the present invention are a method executed by a user equipment and a user equipment. The method executed by a user equipment (UE) comprises: a UE, as a sidelink communication UE, receiving a MAC CE on an unlicensed spectrum or a shared spectrum; and the UE determining a preferred resource set or a non-preferred resource set, wherein the MAC CE comprises inter-UE coordination (IUC) request information, and the IUC request information comprises indication information of the number of resource block sets (RB sets).
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Description

Method performed by user equipment and user equipment Technical Field

[0001] The present invention relates to the technical field of wireless communications, and in particular to a method executed by a user equipment and corresponding user equipment. Background Art

[0002] In traditional cellular networks, all communications must go through the base station. In contrast, D2D (Device-to-Device) communication refers to direct communication between two user devices without forwarding through the base station or core network. At the RAN#63 plenary meeting of the 3rd Generation Partnership Project (3GPP) in March 2014, a research project on implementing proximity-based D2D communication services using LTE devices was approved (see Non-Patent Document 1). LTE Release 12 introduces D2D features including:

[0003] 1) Discovery between nearby devices in LTE network coverage scenarios;

[0004] 2) Direct broadcast communication between nearby devices (Broadcast function);

[0005] 3) The upper layer supports unicast and multicast communication functions.

[0006] At the 3GPP RAN#66 plenary meeting in December 2014, the enhanced LTE eD2D (enhanced D2D) research project was approved (see Non-Patent Document 2). The main features introduced in LTE Release 13 eD2D include:

[0007] 1) D2D discovery in scenarios with no network coverage and partial network coverage;

[0008] 2) Priority processing mechanism for D2D communication.

[0009] Based on the design of D2D communication mechanisms, the 3GPP RAN#68 plenary meeting in June 2015 approved a feasibility study on V2X based on D2D communication. V2X, standing for Vehicle to Everything, aims to enable information exchange between vehicles and all entities that may affect them. The goal is to reduce accidents, ease traffic congestion, reduce environmental pollution, and provide other information services. V2X application scenarios primarily include four areas:

[0010] 1) V2V, Vehicle to Vehicle, i.e. vehicle-to-vehicle communication;

[0011] 2) V2P, Vehicle to Pedestrian, where a vehicle sends a warning to a pedestrian or non-motor vehicle;

[0012] 3) V2N, Vehicle to Network, which refers to vehicles connecting to mobile networks;

[0013] 4) V2I, Vehicle to Infrastructure, refers to the communication between vehicles and road infrastructure.

[0014] 3GPP divides the research and standardization work of V2X into three phases. The first phase was completed in September 2016, focusing mainly on V2V, based on LTE Release 12 and Release 13 D2D (also known as sidelink communication), that is, proximity communication technology (see non-patent document 3). V2X stage 1 introduced a new D2D communication interface called the PC5 interface. The PC5 interface is mainly used to solve the communication problems of cellular vehicle networks in high-speed (up to 250 km / h) and high-node density environments. Vehicles can exchange information such as location, speed and direction through the PC5 interface, that is, vehicles can communicate directly through the PC5 interface. Compared with the proximity communication between D2D devices, the functions introduced by LTE Release 14 V2X mainly include:

[0015] 1) Higher density DMRS to support high-speed scenarios;

[0016] 2) Introducing sub-channels to enhance resource allocation;

[0017] 3) Introducing a user equipment sensing mechanism with semi-persistent scheduling.

[0018] The second phase of the V2X research project falls within the scope of LTE Release 15 (see Non-Patent Document 4). The main features introduced include high-order 64QAM modulation, V2X carrier aggregation, short TTI transmission, and feasibility studies of transmit diversity.

[0019] At the 3GPP RAN#80 plenary meeting in June 2018, the corresponding third phase V2X feasibility study topic based on 5G NR network technology (see non-patent document 5) was approved.

[0020] The 5G NR V2X project supports a resource allocation mode 2 based on user equipment sensing, also known as transmission mode 2. In resource allocation mode 2 based on user equipment sensing, the physical layer of the user equipment senses the transmission resources in the resource pool. This means that the user equipment determines whether to exclude resources in the candidate resource set that overlap with the resources indicated by the SCI received from other user equipment. The resources in the candidate resource set that are not excluded are reported to the upper layer, which randomly selects resources for PSSCH / PSCCH transmission from the reported resource set.

[0021] At the 3GPP RAN#90e plenary meeting in December 2020, a standardization research topic based on the already standardized NR sidelink enhancement (see non-patent document 6) was approved. The enhancement of sidelink includes the following three aspects:

[0022] 1) Standardize resource allocation methods to reduce power consumption of sideline communication user equipment (power saving), including but not limited to: resource allocation methods based on partial sensing (partial sensing) and resource allocation methods based on random resource selection;

[0023] 2) Research on improving the communication reliability and reducing the communication latency of resource allocation method 2 in NR sidelink communication, including: inter-UE coordination. Inter-UE coordination means that UE A determines a resource set and sends (indicates) the resource set to UE B. UE B's resource allocation method is resource allocation method 2, and the resource set indicated by UE A is taken into account when selecting resources;

[0024] 3) Standardized Sidelink Discontinuous Reception (SL DRX) mechanism. In 5G NR communications, user equipment supports discontinuous reception of the Physical Downlink Control Channel (PDCCH) in time, known as DRX, which effectively reduces power consumption of communication devices. Similarly, corresponding to SL DRX, discontinuous reception refers to receiving the Physical Downlink Control Channel (PSCCH) during a portion of the time domain, known as the active period; the period when the PSCCH is not received is known as the inactive period.

[0025] In the 3GPP RAN1#104bis-e meeting in April 2021, the following conclusions were reached regarding Inter-UE coordination in mode 2 (IUC) (see Non-Patent Document 7):

[0026] The following two solutions are supported for collaboration between UEs:

[0027] ○ Inter-UE collaboration solution 1: The collaboration message sent by UE A to UE B is an indication of a resource set. The resource set is the resources preferred for UE B's transmission and / or the resources not preferred for UE B's transmission.

[0028] ○ Inter-UE collaboration scheme 2: The collaboration message sent by UE A to UE B indicates the existence of an expected (or potential) resource conflict (resource conflict) on the resources indicated by the SCI sent by UE B, and / or indicates the existence of a detected resource conflict (resource conflict) on the resources indicated by the SCI sent by UE B.

[0029] At the 3GPP RAN#95e plenary meeting in March 2022, a standardization research topic on the evolution of NR sidelink communications (NR SL evo) based on the already standardized NR was approved (see Non-Patent Document 8). The research objectives of NR SL evo include the following:

[0030] 1) Research and standardize NR sidelink communications in unlicensed spectrum, referred to as SL-U. SL-U includes both resource allocation methods 1 and 2 for NR sidelink communications. This research project specifically includes:

[0031] a. In SL-U, the channel access technology and operations of the NR air interface in unlicensed spectrum (NR unlicensed, referred to as NR-U) are reused. The channel access technology of NR-U refers to the Listen Before Talk (LBT) technology, which means that before transmitting, the user equipment needs to listen to the channel resources used for transmission. If the channel is idle, the transmission is carried out; otherwise, the transmission is abandoned.

[0032] b. Study the design framework of the physical channel in sideline communication: that is, make necessary modifications to the structure of the physical channel in the existing NR sideline communication to enable SL-U.

[0033] The solution of this patent includes a method for triggering a collaborative information report between UEs after a user equipment receives a collaborative request between UEs in SL-U.

[0034] Prior art literature

[0035] Non-patent literature

[0036] Non-Patent Literature 1: RP-140518, Work Item Proposal on LTE Device to Device Proximity Services

[0037] Non-Patent Document 2: RP-142311, Work Item Proposal for Enhanced LTE Device t0 Device Proximity Services

[0038] Non-Patent Document 3: RP-152293, New WI proposal: Support for V2V services based on LTE sidelink

[0039] Non-Patent Document 4: RP-170798, New WID on 3GPP V2X Phase 2

[0040] Non-Patent Document 5: RP-181480, New SID Proposal: Study on NR V2X

[0041] Non-Patent Document 6: RP-202846, WID revision: NR sidelink enhancement

[0042] Non-Patent Document 7: RAN1#104bis-e, Chairman's notes, section 8.11.1.2

[0043] Non-Patent Literature 8: RP-220300, WID revision: NR sidelink evolution Summary of the Invention

[0044] In order to solve at least part of the above problems, the present invention provides a method performed by a user equipment and the user equipment.

[0045] According to a first aspect of the present invention, a method performed by a user equipment (UE) is provided, comprising: the UE serving as a sideline communication user equipment receives a MAC CE and / or sideline communication control information (SCI) on an unlicensed spectrum or a shared spectrum; and the UE determines a preferred resource set or a non-preferred resource set, wherein the MAC CE includes first IUC request information serving as request information for collaborative IUC between UEs, and the first IUC request information includes indication information of the number of a first resource block set (RB set), i.e., first RB set number indication information.

[0046] In the method of the first aspect, the SCI includes second IUC request information, and the second IUC request information includes indication information of the second RB set number, that is, second RB set number indication information.

[0047] In the method of the first aspect above, the first RB set number indication information and the second RB set number indication information are the same.

[0048] In the method of the first aspect above, when the UE receives a MAC CE and sideline communication control information SCI, the SCI includes scheduling information of the MAC CE.

[0049] In the method of the first aspect above, the 8th bit in the 6th byte and the 1st and 2nd bits in the 7th byte of the MAC CE are the first RB set number indication information.

[0050] In the method of the first aspect above, the transmission structure of the physical sideline communication control channel PSCCH / physical sideline communication shared channel PSSCH is configured as an interleaved resource block.

[0051] In the method of the first aspect above, when the RRC parameter transmissionStructureForPSCCHandPSSCH is configured as "interlaceRB", the IUC report is triggered by the MAC CE.

[0052] In the method of the first aspect above, the MAC layer provides the first RB set number indication information or the second RB set number indication information to the physical layer to determine the preferred resource set or the non-preferred resource set.

[0053] In addition, according to a second aspect of the present invention, there is provided a user equipment, comprising: a processor; and a memory storing instructions, wherein the instructions execute the above method when executed by the processor.

[0054] Beneficial effects of the present invention

[0055] In SL-U, the present invention describes how, after receiving a MAC CE containing an inter-UE coordination request (IUC request) from another user equipment, a user equipment (UE) indicates to the physical layer the number of resource block sets (RB sets). This solution effectively ensures that the MAC CE and the corresponding SCI received by the user equipment contain the same RB set number indication. This allows the MAC layer to select either the RB set number indication in the SCI or the MAC CE, improving the availability of the indication information and, in turn, the transmission reliability of sidelink communications on unlicensed spectrum. BRIEF DESCRIPTION OF THE DRAWINGS

[0056] The above and other features of the present invention will become more apparent from the following detailed description taken in conjunction with the accompanying drawings, in which:

[0057] FIG1 is a schematic diagram illustrating a basic process of a method executed by a user equipment in a first embodiment of the present invention.

[0058] FIG2 is a block diagram illustrating a user equipment according to an embodiment of the present invention. DETAILED DESCRIPTION

[0059] The present invention is described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that the present invention is not limited to the specific embodiments described below. In addition, for the sake of simplicity, detailed descriptions of known technologies that are not directly related to the present invention are omitted to prevent confusion in understanding the present invention.

[0060] The following describes multiple embodiments of the present invention using a 5G mobile communication system and its subsequent evolutionary versions as example application environments. However, it should be noted that the present invention is not limited to the following embodiments, but is applicable to many other wireless communication systems, such as communication systems after 5G and 4G mobile communication systems before 5G.

[0061] The following describes some of the terms involved in the present invention. Unless otherwise specified, the terms used in the present invention are defined herein. The terms given in the present invention may be named differently in LTE, LTE-Advanced, LTE-Advanced Pro, NR, and later communication systems. However, the present invention adopts unified terminology. When applied to a specific system, the terms can be replaced with the terms used in the corresponding system.

[0062] 3GPP: 3rd Generation Partnership Project

[0063] LTE: Long Term Evolution

[0064] NR: New Radio, New Wireless, New Air Interface

[0065] PDCCH: Physical Downlink Control Channel, physical downlink control channel

[0066] DCI: Downlink Control Information, downlink control information

[0067] PDSCH: Physical Downlink Shared Channel, physical downlink shared channel

[0068] UE: User Equipment

[0069] eNB: evolved NodeB

[0070] gNB: NR base station

[0071] TTI: Transmission Time Interval, transmission time interval

[0072] OFDM: Orthogonal Frequency Division Multiplexing

[0073] CP-OFDM: Cyclic Prefix Orthogonal Frequency Division Multiplexing, orthogonal frequency division multiplexing with cyclic prefix

[0074] C-RNTI: Cell Radio Network Temporary Identifier, cell radio network temporary identifier

[0075] CSI: Channel State Information

[0076] HARQ: Hybrid Automatic Repeat Request

[0077] CSI-RS: Channel State Information Reference Signal

[0078] CRS: Cell Reference Signal, cell-specific reference signal

[0079] PUCCH: Physical Uplink Control Channel, physical uplink control channel

[0080] PUSCH: Physical Uplink Shared Channel, physical uplink shared channel

[0081] UL-SCH: Uplink Shared Channel, uplink shared channel

[0082] CG: Configured Grant, configured scheduling permission

[0083] Sidelink: Sidelink communication

[0084] SCI: Sidelink Control Information, sidelink communication control information

[0085] PSCCH: Physical Sidelink Control Channel, physical sidelink communication control channel

[0086] MCS: Modulation and Coding Scheme, modulation and coding scheme

[0087] RB: Resource Block

[0088] RE:Resource Element

[0089] CRB: Common Resource Block

[0090] CP: Cyclic Prefix

[0091] PRB: Physical Resource Block, physical resource block

[0092] PSSCH: Physical Sidelink Shared Channel, physical sidelink communication shared channel

[0093] FDM: Frequency Division Multiplexing

[0094] RRC: Radio Resource Control

[0095] RSRP: Reference Signal Receiving Power, reference signal receiving power

[0096] SRS: Sounding Reference Signal, detection reference signal

[0097] DMRS: Demodulation Reference Signal

[0098] CRC: Cyclic Redundancy Check

[0099] PSDCH: Physical Sidelink Discovery Channel, physical sidelink communication discovery channel

[0100] PSBCH: Physical Sidelink Broadcast Channel, physical sidelink communication broadcast channel

[0101] SFI: Slot Format Indication, slot format indication

[0102] TDD: Time Division Duplexing

[0103] FDD: Frequency Division Duplexing

[0104] SIB: System Information Block

[0105] SIB1: System Information Block Type 1, system information block type 1

[0106] SLSS: Sidelink synchronization Signal, sidelink communication synchronization signal

[0107] PSSS: Primary Sidelink Synchronization Signal, sidelink communication primary synchronization signal

[0108] SSSS: Secondary Sidelink Synchronization Signal, sideline communication auxiliary synchronization signal

[0109] PCI: Physical Cell ID, physical cell identifier

[0110] PSS: Primary Synchronization Signal

[0111] SSS: Secondary Synchronization Signal

[0112] BWP: BandWidth Part, bandwidth fragment / part

[0113] GNSS: Global Navigation Satellite System

[0114] SFN: System Frame Number, system (wireless) frame number

[0115] DFN: Direct Frame Number, direct frame number

[0116] IE: Information Element

[0117] SSB: Synchronization Signal Block, synchronization system information block

[0118] EN-DC: EUTRA-NR Dual Connection, LTE-NR dual connectivity

[0119] MCG: Master Cell Group

[0120] SCG: Secondary Cell Group

[0121] PCell: Primary Cell

[0122] SCell: Secondary Cell

[0123] PSFCH: Physical Sidelink Feedback Channel, physical sidelink communication feedback channel

[0124] SPS: Semi-Persistant Scheduling

[0125] TA: Timing Advance, uplink timing advance

[0126] PT-RS: Phase-Tracking Reference Signals, phase tracking reference signal

[0127] TB: Transport Block

[0128] CB: Code Block, coding block / code block

[0129] QPSK: Quadrature Phase Shift Keying, quadrature phase shift keying

[0130] 16 / 64 / 256QAM: 16 / 64 / 256Quadrature Amplitude Modulation, quadrature amplitude modulation

[0131] AGC: Auto Gain Control, automatic gain control

[0132] TDRA(field): Time Domain Resource Assignment, time domain resource allocation indication (field)

[0133] FDRA (field): Frequency Domain Resource Assignment, frequency domain resource allocation indication (field)

[0134] ARFCN: Absolute Radio Frequency Channel Number, absolute radio frequency channel number

[0135] SC-FDMA: Single Carrier-Frequency Division Multiple Access

[0136] MAC: Medium Access Control

[0137] MAC CE: MAC Control Element, MAC layer control unit

[0138] PDU: Protocol Data Unit

[0139] DRX: Discontinuous Reception

[0140] SL-U: Sidelink unlicensed, sidelink communication on unlicensed spectrum

[0141] NR-U: NR unlicensed, NR communication on unlicensed spectrum

[0142] LBT: Listen Before Talk

[0143] TBS: Transport Block Size, transport block size

[0144] CQI: Channel Quality Information

[0145] CPE: Cyclic Prefx extension

[0146] COT: Channel Occupancy Time, channel occupancy time

[0147] MCSt:Multiple Consecutive Slots transmission, multiple consecutive time slot transmission

[0148] IUC: Inter-UE Coordination, collaboration between UEs

[0149] The following is a description of the prior art associated with the present invention. Unless otherwise specified, the same terms in the specific embodiments and the prior art have the same meanings.

[0150] It is worth noting that V2X and sidelink in this specification have the same meaning. V2X in this document can also refer to sidelink; similarly, sidelink in this document can also refer to V2X. No specific distinction or limitation is made in the following text.

[0151] The resource allocation mode of V2X (sidelink) communication in the specification of the present invention can be equivalently replaced with the transmission mode of V2X (sidelink) communication. The resource allocation mode mentioned in the specification can represent the transmission mode, and the transmission mode mentioned can represent the resource allocation mode. In NR sidelink communication, transmission mode 1 represents a transmission mode (resource allocation mode) based on base station scheduling; transmission mode 2 represents a transmission mode (resource allocation mode) based on user equipment sensing and resource selection.

[0152] The PSCCH in the specification of the present invention is used to carry SCI. The PSCCH corresponding to, or corresponding to, or related to, or scheduled PSSCH involved in the specification of the present invention have the same meaning, all indicating associated PSSCH or corresponding PSSCH. Similarly, the SCI (including first-level SCI and second-level SCI) corresponding to, or corresponding to, or related to, the PSSCH involved in the specification have the same meaning, all indicating associated SCI or corresponding SCI. It is worth noting that the first-level SCI is called 1st stage SCI or SCI format 1-A, which is transmitted in PSCCH; the second-level SCI is called 2nd stage SCI or SCI format 2-A (or SCI format 2-B, or SCI format 2-C), which is transmitted in the corresponding PSSCH resources.

[0153] The NR sideline communication (SL-U for short) on the unlicensed spectrum in the specification of the present invention can also be called shared spectrum channel access. That is, on the unlicensed spectrum, there may be user devices that access the channel through Wifi technology (wireless LAN technology based on the IEEE 802.11 standard), and there may also be NR sideline communication user devices accessed through the PC5 interface.

[0154] Parameter set (numerology) in NR (including NR sidelink) and time slot in NR (including NR sidelink)

[0155] The parameter set numerology includes two aspects: subcarrier spacing and cyclic prefix (CP) length. NR supports five subcarrier spacings: 15k, 30k, 60k, 120k, and 240kHz (corresponding to μ = 0, 1, 2, 3, and 4). Table 4.2-1 shows the supported transmission parameter sets, as shown below.

[0156] Table 4.2-1 Subcarrier spacing supported by NR

[0157] Extended CP is supported only when μ = 2, that is, with a 60kHz subcarrier spacing. For other subcarrier spacings, only normal CP is supported. For normal CP, each slot contains 14 OFDM symbols; for extended CP, each slot contains 12 OFDM symbols. For μ = 0, that is, with a 15kHz subcarrier spacing, 1 slot = 1ms; for μ = 1, that is, with a 30kHz subcarrier spacing, 1 slot = 0.5ms; for μ = 2, that is, with a 60kHz subcarrier spacing, 1 slot = 0.25ms, and so on.

[0158] NR and LTE have the same definition of subframe, which is 1ms. For the subcarrier spacing configuration μ, the slot number within 1 subframe (1ms) can be expressed as Range is 0 to The slot number within a system frame (frame, duration 10ms) can be expressed as Range is 0 to in, and The definitions of different subcarrier spacing μ are shown in the following table.

[0159] Table 4.3.2-1: Number of symbols in each slot, number of slots in each system frame, and number of slots in each subframe under normal CP

[0160] Table 4.3.2-2: Number of symbols per slot, number of slots per system frame, and number of slots per subframe when using extended CP (60kHz)

[0161] On NR carriers, the system frame (or simply frame) number (SFN) ranges from 0 to 1023. The concept of a direct system frame number (DFN) is introduced for sidelink communications, also ranging from 0 to 1023. The above description of the relationship between system frames and numerology also applies to direct system frames. For example, the duration of a direct system frame is also equal to 10ms. For a 15kHz subcarrier spacing, a direct system frame consists of 10 time slots, and so on. DFN is used for timing on the sidelink carrier.

[0162] Resource blocks RB and resource elements RE

[0163] Resource blocks RB are defined in the frequency domain as For example, for a subcarrier spacing of 15kHz, the RB is 180kHz in the frequency domain. μ , the resource element RE represents 1 subcarrier in the frequency domain and 1 OFDM symbol in the time domain.

[0164] Sidelink communication scenarios

[0165] 1) Out-of-Coverage sidelink communication: Both UEs performing sidelink communication have no network coverage (for example, the UE cannot detect any cell that meets the "cell selection criteria" on the frequency required for sidelink communication, indicating that the UE has no network coverage).

[0166] 2) In-Coverage Sidelink Communication: Both UEs performing sidelink communication have network coverage (for example, the UE detects at least one cell that meets the "cell selection criteria" on the frequency required for sidelink communication, indicating that the UE has network coverage).

[0167] 3) Partial-Coverage Sidelink Communication: One of the UEs performing sidelink communication has no network coverage, while the other UE has network coverage.

[0168] From the UE's perspective, there are only two scenarios: no network coverage and network coverage. Partial network coverage is described from the perspective of sidelink communication.

[0169] Sidelink resource pool

[0170] In sidelink communication, the resources used by the UE for both transmission and reception belong to the resource pool. For example, for a transmission mode based on base station scheduling in sidelink communication, the base station schedules transmission resources for the sidelink UE in the resource pool, or for a transmission mode based on UE perception in sidelink communication, the UE determines transmission resources in the resource pool.

[0171] For NR sidelink communications, frequency domain resource allocation is supported based on sub-channels as the minimum granularity. That is, for PSSCH transmission, the resources occupied in the frequency domain are an integer number of sub-channels. A sub-channel can represent several consecutive resource blocks (RBs) in the frequency domain.

[0172] Perception-based resource allocation

[0173] For the perception-based resource allocation method (resource allocation method 2), the sidelink communication user equipment selects candidate resources within a time window (optionally, a resource selection window [n+T1, n+T2]), and determines the candidate resources that overlap with the reserved resources based on the reserved resources indicated by the PSCCH sent by other user equipment in the monitoring time slot, and excludes these overlapping candidate resources. The physical layer reports the set of candidate resources that are not excluded to the MAC layer, and the MAC layer selects transmission resources for the PSSCH / PSCCH. The set of transmission resources selected by the MAC layer is called a selected sidelink grant. The sidelink communication resources contained in a selected sidelink grant can be used for the initial transmission and all retransmissions of a MAC PDU (corresponding to a transport block TB), or can be used for the initial transmission and all retransmissions of multiple MAC PDUs (corresponding to multiple transport blocks TB). The present invention does not impose any restrictions on this.

[0174] The partial sensing resource allocation method means that the time slots monitored by the user equipment are discontinuous (or discrete) in the monitoring window, so it is called partial sensing.

[0175] Resource selection window [n+T1, n+T2]

[0176] In the resource allocation method based on sensing (or partial sensing), the upper layer requests or triggers the physical layer to determine the resources for PSSCH / PSCCH transmission (perform sensing or partial sensing) in time slot n. The resource selection window is defined as [n+T1, n+T2], that is, the user equipment selects the transmission resources within this window. Among them, T1 meets the condition The selection of T1 depends on the implementation of the user equipment; the RRC configuration information contains a resource selection window configuration list sl-SelectionWindowList, where the list corresponds to a given priority prio TX The element of (priority of transmitting PSSCH) is represented by T 2min If the T 2min Less than the remaining packet delay budget (remaining PDB), then T2 satisfies the condition T 2min ≤T2≤remaining PDB, the selection of T2 depends on the implementation of the user equipment; otherwise T2 is set to remaining PDB. The definition of is as follows (μ SL Indicates the subcarrier spacing parameter of side communication, that is, the subcarrier spacing is ):

[0177] Table 8.1.4-2: The value of

[0178] Table 8.1.4-1: The value of

[0179] LBT (Listen Before Talk) mechanism

[0180] For wireless communications in unlicensed spectrum, some countries or regions (for example, Europe) require user devices to perform LBT (Listen Before Talk) before transmitting. This mechanism, also known as channel access, involves sensing the channel to determine its availability. Specifically, during a period before transmission, the user device will only transmit if it detects the channel is idle; otherwise, it will not transmit.

[0181] Specifically, for NR communication over unlicensed spectrum (NR-U) (or, for SL-U), the basic time unit for sensing the channel can be T sl =9μs. In this time unit, if the energy detected by the base station or user equipment on the channel is lower than the energy threshold value X ThreshWhen the duration is equal to or greater than 4μs, the base station or user equipment considers that the channel is idle within this time unit (or, it is called LBT success). It is worth noting that the channel (channel) that the base station or user equipment detects energy and uses to determine whether it is idle represents a carrier containing a set of continuous resource blocks RB, or a part of the carrier. The channel can also be called LBT bandwidth (LBT bandwidth), or LBT sub-band (LBT sub-band), or resource block set (RBset). An LBT bandwidth or RB set can be equal to 20MHz in the frequency domain, that is, there can be one RB set on a 20MHz carrier. The number of resource blocks RB corresponding to multiple RB sets contained in a carrier (carriers exceeding 20MHz, such as 40MHz, 60MHz, 80MHz) and the guard band (Guard Band, abbreviated as GB) between two continuous RB sets can be as shown in the following table:

[0182] Table 1: Number of RBs in all RB sets and GBs on a carrier at 15kHz and 30kHz subcarrier spacing

[0183] In the table above, using a 15kHz subcarrier spacing and a 40MHz carrier bandwidth as an example, 105-6-105 indicates that the carrier contains two consecutive RB sets, each containing 105 RBs. Between these two RB sets, there is a guard band (GB) consisting of 6 consecutive RBs, for a total of 216 consecutive RBs. This is analogous to the other items in Table 1.

[0184] It is worth noting that the LBT operations performed by the (sideline communication) user equipment on different RB sets can be independent of each other (i.e., the two are unrelated). For example, the user equipment detects that the channel is idle on RB set 1 and that the channel is occupied (or busy) on RB set 2. If the resources selected by the sideline communication user equipment for transmitting PSSCH / PSCCH include (all or part of) the RBs corresponding to RB set 1 and RB set 2, the user equipment can send the corresponding PSSCH / PSCCH if and only if the user equipment detects that the channel is idle on both RB set 1 and RB set 2.

[0185] Inter-UE coordination (IUC)

[0186] The following two solutions are supported for collaboration between UEs:

[0187] ■Inter-UE collaboration solution 1: The collaboration message sent by UE A to UE B is an indication of a resource set. The resource set is a preferred resource set for UE B's transmission (preferred resource set) and / or a non-preferred resource set for UE B's transmission (non-preferred resource set).

[0188] ■ Second collaborative scheme between UEs: The collaborative message sent by UE A to UE B indicates an expected (or potential) resource conflict on the resources indicated by the SCI sent by UE B, and / or indicates a detected resource conflict on the resources indicated by the SCI sent by UE B.

[0189] The solution of the present invention refers to the first coordination solution between UEs, that is, the reported coordination information between UEs is a preferred resource set or a non-preferred resource set.

[0190] Hereinafter, specific examples and embodiments of the present invention will be described in detail. As described above, the examples and embodiments described in this disclosure are provided for illustrative purposes to facilitate understanding of the present invention and are not intended to limit the present invention.

[0191] [Example 1]

[0192] FIG1 is a schematic diagram illustrating a basic process of a method executed by a user equipment according to a first embodiment of the present invention.

[0193] The method executed by the user equipment according to the first embodiment of the present invention will be described in detail below with reference to the basic process diagram shown in FIG1 .

[0194] As shown in FIG1 , in the first embodiment of the present invention, the steps performed by the user equipment include:

[0195] In step S101 , a sideline communication user equipment receives a MAC CE and / or sideline communication control information SCI on an unlicensed spectrum or a shared spectrum.

[0196] Optionally, the transmission structure of PSCCH / PSSCH is configured as interlaced resource blocks (interlaced RBs), that is, the RRC parameter transmissionStructureForPSCCHandPSSCH is configured as "interlaceRB".

[0197] The SCI includes scheduling information of the MAC CE.

[0198] The MAC CE includes first IUC request information as request information for coordinated IUC between UEs. The first IUC request information includes indication information of the number of first resource block sets (RB sets), that is, first RB set number indication information.

[0199] Optionally, the SCI includes second IUC request information. The second IUC request information includes indication information of the number of second RB sets.

[0200] Optionally, the first RB set number indication information and the second RB set number indication information are the same.

[0201] Optionally, if the RRC parameter transmissionStructureForPSCCHandPSSCH is configured as "interlaceRB", the IUC report can be triggered by the MAC CE.

[0202] Optionally, the 8th bit in the 6th byte and the 1st and 2nd (or 1st) bits in the 7th byte of the MAC CE are indication information of the number of the first RB sets.

[0203] In step 102, the user equipment determines a preferred resource set or a non-preferred resource set.

[0204] Optionally, the MAC layer provides (or indicates) the first RB set number indication information or the second RB set number indication information to the physical layer to determine the preferred resource set or the non-preferred resource set.

[0205] FIG2 is a block diagram illustrating a user equipment (UE) according to the present invention. As shown in FIG2 , the user equipment (UE) 80 includes a processor 801 and a memory 802. The processor 801 may include, for example, a microprocessor, a microcontroller, or an embedded processor. The memory 802 may include, for example, a volatile memory (e.g., a random access memory (RAM)), a hard disk drive (HDD), a non-volatile memory (e.g., a flash memory), or other memory. The memory 802 stores program instructions. When executed by the processor 801, these instructions may execute the method described in detail herein.

[0206] The method of the present invention and the related devices have been described above in conjunction with the preferred embodiments. Those skilled in the art will understand that the method shown above is only exemplary, and the various embodiments described above can be combined with each other when no contradiction occurs. The method of the present invention is not limited to the steps and sequence shown above. The network node and user equipment shown above may include more modules, for example, modules that can be developed or developed in the future and can be used for base stations, MMEs, or UEs, etc. The various identifiers shown above are only exemplary and not restrictive, and the present invention is not limited to the specific information elements used as examples of these identifiers. Those skilled in the art can make many changes and modifications based on the teachings of the illustrated embodiments.

[0207] It should be understood that the above embodiments of the present invention can be implemented through software, hardware, or a combination of software and hardware. For example, the various components within the base station and user equipment in the above embodiments can be implemented through a variety of devices, including but 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.

[0208] In this application, "base station" refers to a mobile communication data and control switching center with high transmission power and wide coverage area, including functions such as resource allocation and scheduling, and data reception and transmission. "User equipment" refers to a user's mobile terminal, such as a mobile phone or laptop, that can communicate wirelessly with a base station or micro base station.

[0209] In addition, the embodiments of the present invention disclosed herein can be implemented on a computer program product. More specifically, the computer program product is a product as follows: having a computer-readable medium, on which computer program logic is encoded, and when executed on a computing device, the computer program logic provides relevant operations to implement the above-mentioned technical solutions of the present invention. When executed on at least one processor of a 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), 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 databases, etc. in one or more modules. Software or firmware or this configuration can 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.

[0210] In addition, each functional module or each feature of the base station equipment and terminal equipment used in each of the above embodiments can be implemented or executed by a circuit, and the circuit is generally one or more integrated circuits. The circuit designed to perform the various functions described in this specification may include a general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC) or a general-purpose integrated circuit, a field programmable gate array (FPGA) or other programmable logic device, a discrete gate or transistor logic, or a discrete hardware component, or any combination of the above devices. 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 general-purpose processor or each circuit may be configured by a digital circuit, or may be configured by a logic circuit. In addition, when, due to advances in semiconductor technology, an advanced technology that can replace current integrated circuits emerges, the present invention may also use the integrated circuit obtained using the advanced technology.

[0211] Although the present invention has been described above in conjunction with the preferred embodiments of the present invention, it will be understood by those skilled in the art that various modifications, substitutions, and changes may be made to the present invention without departing from the spirit and scope of the present invention. Therefore, the present invention should not be limited by the above-described embodiments, but should be limited by the appended claims and their equivalents.

Claims

1. A method performed by a user equipment UE, comprising: The UE, as a sidelink communication user equipment, receives a MAC CE on an unlicensed spectrum or a shared spectrum; and The UE determines a preferred resource set or a non-preferred resource set, wherein the MAC CE includes request information for cooperative IUC between UEs, and the IUC request information includes indication information of the number of resource block sets RB set.

2. The method performed by a user equipment UE according to claim 1, wherein The transmission structure of the physical sidelink control channel PSCCH / physical sidelink shared channel PSSCH is configured based on interleaved resource blocks.

3. The method performed by a user equipment UE according to claim 1, wherein The MAC layer provides the RB set number indication information to the physical layer to determine the preferred resource set or the non-preferred resource set.

4. A user equipment, comprising: A processor; and A memory storing instructions, wherein the instructions, when run by the processor, perform the method according to any one of claims 1 to 3.

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