Sidelink communications on unlicensed carriers

The implementation of a listen-before-talk procedure for sidelink transmission on unlicensed carriers addresses the challenge of direct user device communication, ensuring efficient and reliable sidelink operations by managing channel access and failures, particularly benefiting V2X services.

JP7842864B2Active Publication Date: 2026-04-08ZTE CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-23
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Current wireless communication methods do not effectively enable direct communication between user terminal devices on unlicensed carriers, necessitating a method for efficient sidelink transmission on such carriers.

Method used

Implementing a listen-before-talk (LBT) procedure on unlicensed carriers for sidelink transmission, where user devices determine the LBT result and transmit sidelink signals accordingly, and indicate LBT failures to the media access control (MAC) layer, with prioritization and channel access based on quality of service (QoS) profiles and channel access priority.

Benefits of technology

Enables efficient and reliable sidelink communication on unlicensed carriers by ensuring channel availability and managing LBT failures, enhancing communication performance in diverse scenarios like vehicle-to-everything (V2X) services.

✦ Generated by Eureka AI based on patent content.

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Abstract

In one embodiment, a first user device performs a Listen Before Talk (LBT) procedure on an unlicensed carrier for a sidelink transmission, determines a result of the LBT procedure, transmits a sidelink signal on a channel in the unlicensed carrier to a second user device in response to determining that the result is an LBT success, and in response to determining that the result is an LBT failure, a physical layer entity of the first user device sends an LBT failure indication to a Medium Access Control (MAC) layer entity of the first user device.
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Description

Technical Field

[0001] This document generally relates to sidelink transmission in wireless communication.

Background Art

[0002] Background Wireless communication is often performed using user terminal devices and base stations. Also, wireless communication is carried out in carriers or frequency bands. Some carriers are licensed carriers, and a licensed carrier is a carrier licensed to a service provider by a government or other reliable entity for exclusive use. Other carriers are unlicensed carriers, and an unlicensed carrier is a carrier not licensed by such a government agency or other reliable entity. Currently, user terminal devices communicate directly with each other (i.e., without using a base station) on a licensed carrier. However, there may be cases where a method for user terminal devices to communicate directly with each other on an unlicensed carrier is desirable.

Summary of the Invention

Means for Solving the Problems

[0003] Summary This document relates to methods, systems, apparatuses, and devices for wireless communication. In some embodiments, a method for wireless communication includes performing a listen before talk (LBT) procedure on an unlicensed carrier for sidelink transmission by a first user device, determining a result of the LBT procedure by the first user device, transmitting a sidelink signal on a channel in the unlicensed carrier to a second user device by the first user device in response to a determination that the result is an LBT success, and transmitting an LBT failure indication to a media access control (MAC) layer entity of the first user device by a physical layer entity of the first user device in response to a determination that the result is an LBT failure.

[0004] In some other implementations, devices such as network devices are disclosed. These devices may include one or more processors and one or more memories, the one or more processors being configured to read computer code from one or more memories to perform one of the methods described above.

[0005] In several other implementations, a computer program product is disclosed. The computer program product may include a non-temporary computer-readable program medium in which computer code is stored, and when executed by one or more processors, causes one or more processors to perform one of the methods described above.

[0006] The above and other embodiments and their implementations are described in more detail in the drawings, specification and claims. The present invention provides, for example, the following: (Item 1) A method for wireless communication, wherein the method is The first user device performs the Listen Before Talk (LBT) procedure on an unlicensed carrier for sidelink transmission, The first user device determines the result of the LBT procedure, In response to the determination that the above result is an LBT success, the first user device transmits the sidelink signal on the channel in the unlicensed carrier to the second user device. In response to the determination that the above result is an LBT failure, the physical layer entity of the first user device transmits an LBT failure indication to the media access control (MAC) layer entity of the first user device. Methods that include... (Item 2) The method according to item 1, wherein performing the LBT procedure on the unlicensed carrier includes performing the LBT procedure by the first user device according to the sidelink channel access priority or quality of service (QoS) profile of the sidelink logical channel. (Item 3) The sidelink signal includes a sidelink transport block, and the method further includes the first user device selecting a channel access priority class (CAPC) for the LBT procedure, the selection being Select the highest priority CAPC of the sidelink data radio bearers depending on the transport block containing multiple sidelink data radio bearers. Depending on whether the transport block includes at least one sidelink signaling radio bearer, a sidelink broadcast control channel (SBCCH), or a sidelink media access control (MAC) control element (CE) having the highest priority CAPC, the highest priority CAPC may be selected, or Selecting the lowest priority CAPC in accordance with the fact that the transport block contains only one or more sidelink media access control (MAC) control elements (CEs) with the lowest priority CAPC. The method described in item 1, including one of the following. (Item 4) The first user device determines sidelink consistency LBT failure according to the LBT procedure. The method described in item 1, further including the method described in item 1. (Item 5) In response to determining the aforementioned sidelink consistency LBT failure, the active sidelink bandwidth portion is switched from one bandwidth portion to another. The method described in item 4, further including the method described in item 4. (Item 6) In accordance with the LBT procedure, the first user device generates a sidelink LBT failure MAC control element (CE) in response to determining the sidelink consistent LBT failure. The method described in item 4, further including the method described in item 4. (Item 7) The method described in item 6, wherein the sidelink LBT failure MAC CE is identified by a MAC subheader containing logical channel identification information (LCID). (Item 8) The aforementioned side link LBT failure MAC CE is, A list of destination indexes that triggered a sidelink consistency LBT failure, wherein each destination index in the list identifies destination identification information, or A list of carrier indices that triggered a sidelink consistency LBT failure, or N octets containing 8*N X fields, where N is an integer greater than or equal to 1. Includes, The i-th X field is set to a value of 1 depending on whether a consistent LBT failure is triggered and not canceled with respect to carrier index i, and the i-th X field is set to a value of 0 depending on whether the consistent LBT failure is not triggered or canceled, or The i-th X field is set to a value of 1 depending on whether a consistent LBT failure is triggered and not canceled with respect to destination index i, and the i-th X field is set to a value of 0 depending on whether a consistent LBT failure is not triggered or canceled. The method described in item 6. (Item 9) The first user device triggers a scheduling request for the sidelink LBT failure MAC CE. The method described in item 6, further including the method described in item 6. (Item 10) The method according to item 9, further comprising the first user device receiving a scheduling request resource configuration for the sidelink LBT failure MAC CE from the wireless access node before triggering the scheduling request. (Item 11) The first user device selects a first maximum number of continuous hybrid automatic retransmission requests (HARQ) discontinuous transmissions (DTX) from among multiple maximum numbers of continuous HARQ DTX. The method described in item 1, further including the method described in item 1. (Item 12) The first user device receives the multiple maximum number of consecutive HARQ DTX from the wireless access node. The method described in item 11, further including the method described in item 11. (Item 13) The first user device is pre-configured with the multiple maximum number of consecutive HARQ DTX as described in item 11. (Item 14) The first maximum number of consecutive HARQ DTXs is used for one or more unlicensed carriers, and the second maximum number of consecutive HARQ DTXs among the multiple maximum numbers of consecutive HARQ DTXs is used for one or more licensed carriers. Selecting the first maximum number includes selecting the first maximum number depending on whether the sidelink transmission is on the unlicensed carrier. The method described in item 11. (Item 15) The aforementioned first maximum number of consecutive HARQ DTX includes multiple maximum values, where each maximum value in the set is: Associated with one or more ranges of channel occupancy, Associated with one or more ranges of Received Signal Strength Indicator (RSSI) values, or Associated with one or more priority values, The method described in item 14. (Item 16) Each of the multiple maximum values ​​in the set corresponds to each of one or more ranges of the channel occupancy value, and the method further includes determining a first channel occupancy value. Selecting the first maximum number of consecutive HARQ DTX includes selecting the first maximum number such that the first maximum number corresponds to a range of channel occupancy values ​​into which the first channel occupancy values ​​are located. The method described in item 15. (Item 17) Each of the multiple maximum values ​​in the set corresponds to each of one or more ranges of the RSSI value, and the method further includes determining a first RSSI value. Selecting the first maximum number of consecutive HARQ DTX includes selecting the first maximum number such that the first maximum number corresponds to a range of RSSI values ​​into which the first RSSI value falls. The method described in item 15. (Item 18) Each of the multiple maximum values ​​in the set corresponds to each of the one or more priority values, and the method further includes determining a first priority value. Selecting the first maximum number of consecutive HARQ DTXs includes selecting the first maximum number in such a way that the first maximum number corresponds to a priority value among the one or more priority values ​​that match the first priority value. The method described in item 15. (Item 19) The first user device detects a sidelink consistency LBT failure in the unlicensed carrier based on the LBT procedure, The first user device transmits sidelink consistency LBT failure indication information indicating the sidelink consistency LBT failure to the second user device. The method described in item 1, further including the method described in item 1. (Item 20) The first user device detects a sidelink consistency LBT failure in the unlicensed carrier according to the LBT procedure, The first user device transmits sidelink consistency LBT failure indication information indicating the sidelink consistency LBT failure to the wireless access node. The method described in item 1, further including the method described in item 1. (Item 21) The method described in item 20, wherein the sidelink consistency LBT failure indication information includes at least one of the following: carrier indication, destination identification information indication, or failure type indication. (Item 22) The first user device described above, Expiration of a timer initiated in response to an LBT failure indication from the LBT procedure or a sidelink consistency LBT failure triggered by the LBT procedure, The result of the LBT procedure is successful, or Channel occupancy is lower than a predetermined threshold. In accordance with at least one of the following, determine LBT failure recovery with respect to the unlicensed carrier for the sidelink transmission. The method described in item 1, further including the method described in item 1. (Item 23) Depending on whether the first user device is within the coverage of the wireless access node, the first user device receives from the wireless access node a timer value indicating when the timer has expired and a predetermined threshold. The method described in item 22, further including the method described in item 22. (Item 24) The timer value indicating when the timer expires and the predetermined threshold are configured in advance by the first user device, according to the method described in item 22. (Item 25) The method according to item 1, wherein the LBT success corresponds to a recovery, and further, in response to the determination that the result is the LBT success, the first user device transmits information indicating the LBT success to the radio access node, wherein the information indicating the LBT success includes at least one of the unlicensed carrier, destination identification information, or a recovery type indicator indicating that the recovery is from a sidelink consistent LBT failure. (Item 26) The first user device prioritizes the sidelink transmission over the second transmission in the event that the sidelink transmission is on the unlicensed carrier and the second transmission is on the licensed carrier. The first user device prioritizes the second transmission over the sidelink transmission in accordance with the fact that the second transmission is on the unlicensed carrier and the sidelink transmission is on the licensed carrier. The method described in item 1, further including the method described in item 1. (Item 27) The second transmission described above is the method described in item 26, including uplink transmission. (Item 28) The method according to item 27, wherein the sidelink transmission on the unlicensed carrier is given priority over the uplink transmission on the licensed carrier in accordance with the fact that the uplink transmission is not given priority by a layer entity higher than the non-access layer (NAS) layer entity or the physical (PHY) layer entity of the first user device. (Item 29) The first user device determines a first sidelink prioritization threshold for transmission on an unlicensed carrier and a second sidelink prioritization threshold for transmission on a licensed carrier. It further includes, Prioritizing the sidelink transmission over the second transmission is based on the first sidelink prioritization threshold and the second sidelink prioritization threshold. The method described in item 26. (Item 30) The first user device receives the first sidelink prioritization threshold and the second sidelink prioritization threshold from the wireless access node. The method described in item 29, further including the method described in item 29. (Item 31) The method according to item 29, wherein the first user device is pre-configured with the first sidelink prioritization threshold and the second sidelink prioritization threshold. (Item 32) The first user device determines a first uplink prioritization threshold for transmission on an unlicensed carrier and a second uplink prioritization threshold for transmission on a licensed carrier. The method further includes, The first user device prioritizes uplink transmission over sidelink transmission based on the first uplink prioritization threshold and the second uplink prioritization threshold. The method described in item 29, further including the method described in item 29. (Item 33) The first user device receives the first uplink prioritization threshold and the second uplink prioritization threshold from the wireless access node. The method described in item 32, further including the method described in item 32. (Item 34) The method according to item 32, wherein the first user device is pre-configured with the first uplink prioritization threshold and the second uplink prioritization threshold. (Item 35) A wireless communication device comprising a processor and memory, wherein the processor is configured to read a code from the memory in order to carry out the method described in any of items 1 to 34. (Item 36) A computer program product comprising a computer-readable program medium, the computer-readable program medium including code stored thereon, the code causing the processor to perform any of the methods described in items 1 to 34 when executed by the processor. [Brief explanation of the drawing]

[0007] [Figure 1] Figure 1 shows a block diagram of an example of a wireless communication system.

[0008] [Figure 2] Figure 2 shows a block diagram of an example of the configuration of layer entities for a communication node.

[0009] [Figure 3] Figure 3 shows a flowchart of an example method for wireless communication, including the detection of listen-before-talk (LBT) faults.

[0010] [Figure 4] Figure 4 shows a flowchart of an example method for wireless communication, which includes detecting wireless link failures based on the number of continuous hybrid automatic retransmission requests (HARQ) discontinuous transmissions (DTX).

[0011] [Figure 5] Figure 5 shows a flowchart of an example of a method for wireless communication, including prioritizing unlicensed transmission over licensed transmission.

[0012] [Figure 6] Figure 6 shows a flowchart of an example method for wireless communication, which includes determining whether to prioritize sidelink transmission or uplink transmission based on at least one of a first sidelink prioritization threshold for licensed carriers or a second sidelink prioritization threshold for unlicensed carriers.

[0013] [Figure 7] Figure 7 shows a flowchart of an example method for wireless communication, which includes determining whether to prioritize sidelink transmission or uplink transmission based on at least one of a first uplink prioritization threshold for licensed carriers or a second uplink prioritization threshold for unlicensed carriers. [Modes for carrying out the invention]

[0014] Detailed explanation This specification describes various embodiments of systems, apparatus, devices, and methods for wireless communication, including sidelink transmission, including those in unlicensed carriers.

[0015] Figure 1 shows a diagram of an exemplary wireless communication system 100, which includes a plurality of communication nodes (or simply nodes) configured to communicate wirelessly with one another. Generally, a communication node includes at least one user device 102 and at least one wireless access node 104. The exemplary wireless communication system 100 in Figure 1 is shown as including two user devices 102, including a first user device 102(1) and a second user device 102(2), and one wireless access node 104. However, various other examples of wireless communication system 100, which include any of the various combinations of user devices 102 and wireless access nodes 104, include two or more user devices 102 with no wireless access nodes 104, just one user device 102 and just one wireless access node 104, just one user device 102 and two or more wireless access nodes 104, two or more user devices 102 and one or more wireless access nodes 104, or two or more wireless access nodes 104 with no user devices 102.

[0016] Generally, user devices described herein, such as user device 102, may include a single electronic device or apparatus capable of communicating wirelessly over a network, or a group of electronic devices or apparatus (e.g., such a network). A user device may include, or otherwise be referred to as, a user terminal, user terminal device, or user equipment (UE). Furthermore, a user device may be, or may include, a mobile device (a mobile phone, smartphone, smartwatch, tablet, laptop computer, vehicle or other vessel (non-limited examples include a car, airplane, train, ship, or other human, motor, or engine-driven vehicle or vessel)) or a fixed or stationary device (non-limited examples include equipment, other relatively heavy devices including the Internet of Things (IoT), or computing devices used in commercial or industrial environments, such as a desktop computer or other computing device that is not typically moved for long periods)). In various embodiments, user device 102 may include a transceiver circuit 106 coupled to an antenna 108 for wireless communication with a wireless access node 104. The transceiver circuit 106 may also be coupled to a processor 110 which may be coupled to memory 112 or other storage devices. Memory 112 may store instructions or code that, when read and executed by the processor 110, cause the processor 110 to perform various methods of the methods described herein.

[0017] Furthermore, generally speaking, the radio access nodes described herein, such as radio access node 104, may include a single electronic device or apparatus, or a plurality of electronic devices or apparatuses (e.g., a network thereof), and may comprise one or more base stations or other radio network access points that can wirelessly communicate with one or more user devices and / or one or more other radio access nodes 104 over the network. For example, in various embodiments, radio access node 104 may comprise a 4G LTE base station, a 5G NR base station, a 5G central unit base station, a 5G distributed unit base station, a next-generation node B (gNB), an extended node B (eNB), or other similar or next-generation (e.g., 6G) base station. Radio access node 104 may include a transceiver circuit 114 coupled to an antenna 116, which may include an antenna tower 118 in various ways, for wireless communication with a user device 102 or another radio access node 104. The transceiver circuit 114 may also be coupled to one or more processors 120, which may be coupled to a memory 122 or other storage device. Memory 122 may store instructions or code that, when read and executed by processor 120, cause processor 120 to perform one or more of the methods described herein.

[0018] In various embodiments, two communication nodes within a wireless system 100, such as a user device 102 and a radio access node 104, two user devices 102 without a radio access node 104, or two radio access nodes 104 without user devices 102, may be configured to wirelessly communicate with each other within or over a mobile network and / or radio access network, according to one or more standards and / or specifications. Generally, standards and / or specifications may define rules or procedures that communication nodes can wirelessly communicate, and in various embodiments, may include those for communication in the millimeter (mm) wave band and / or with multi-antenna schemes and beamforming capabilities. In addition to or instead of this, standards and / or specifications may, as non-limiting examples, define radio access technologies and / or cellular technologies such as fourth-generation (4G) Long-Term Evolution (LTE), fifth-generation (5G) New Radio (NR), or New Radio Unlicensed (NR-U).

[0019] Figure 2 shows a block diagram of multiple modules in a communication node (e.g., user device 102 or radio access node 104), including physical layer (PHY) entities or modules (also referred to herein simply as PHY layers, PHY modules, or PHY entities) 202, medium access control (MAC) layer entities or modules (also referred to herein simply as MAC layers, MAC modules, or MAC entities) 204, radio link control (RLC) layer entities or modules (also referred to herein simply as RLC layers, RLC entities, or RLC modules) 206, package data convergence protocol (PDCP) layer entities or modules (also referred to herein simply as PDCP layers, PDCP entities, or PDCP modules) 208, radio resource control (RRC) layer entities or modules (also referred to herein simply as RRC layers, RRC entities, or RRC modules) 210, and non-access layer (NAS) layer entities or modules (also referred to herein simply as NAS layers, NAS entities, or NAS modules) 212.

[0020] Generally, as used herein, unless otherwise specified, the terms “layer,” “entity,” and “module,” used individually or in combination with one or more components of a communication node, refer to electronic devices such as electronic circuits, including hardware or a combination of hardware and software. In various embodiments, a module or entity may be implemented using some, some, or one or more components of the communication node in Figure 1, including a processor 110 / 120, memory 112 / 122, transceiver circuit 106 / 114, or antenna 108 / 116. For example, the processor 110 / 120 may perform functions of a module or entity, such as when executing computer code stored in memory 112 / 116. Furthermore, in various embodiments, the functions performed by a module or entity may be defined by one or more standards or protocols, such as 5G NR.

[0021] Furthermore, the layer entities 202-212 in Figure 2 may be higher or lower layers relative to each other, where the PHY layer entity 202 is the lowest layer of the layer entities 202-212, the MAC layer entity 204 is higher than the PHY layer entity 202 and lower than the other layer entities 206-212, the RLC layer entity 206 is higher than the PHY layer entity and the MAC layer entities 202,204, the PDCP layer entity, the RRC layer entity, and The PDCP layer entity 208 is lower than the NAS layer entities 208-212, the PHY, MAC, and RRC layer entities 202-206, and lower than the RRC and NAS layer entities 210,212, the RRC layer entity 210 is higher than the PHY, MAC, RRC, and PDCP layer entities 202-208, and lower than the NAS layer entity 212, the NAS layer entity 212 being the highest layer entity among the layer entities 202-220 shown in Figure 2. In various embodiments, the communication nodes of system 100 may include modules and / or layer entities other than those shown in Figure 2.

[0022] Furthermore, in various embodiments, two or more of the communication nodes within the wireless system 100 may be configured to communicate in accordance with vehicle network standards and / or specifications. As used herein, vehicle networking refers to a large-scale system for wireless communication and information exchange, including vehicles, pedestrians, roadside equipment, and the internet, in accordance with any of the various communication protocols and data exchange standards. Vehicle network communication can improve vehicle performance in terms of driving safety, traffic efficiency, usability or user convenience features, or entertainment. Furthermore, in any of the various embodiments, vehicle networking communication can be classified into three types: vehicle-to-vehicle communication (also called vehicle-to-vehicle (V2V)), communication between vehicles and roadside equipment / network infrastructure (referred to as vehicle-to-infrastructure / vehicle-to-network (V2I / V2N)), and communication between vehicles and pedestrians (referred to as vehicle-to-pedestrian (V2P)). These types of communication are collectively referred to as V2X (vehicle-to-all) communication. Communication nodes involved in V2X can communicate with each other in accordance with any of the various V2X standards or specifications.

[0023] In the wireless system 100, communication nodes are configured to wirelessly transmit signals to each other. Generally, communication in the wireless system 100 between two communication nodes can be either transmission or reception, or include both transmission and reception, and generally, both occur simultaneously, depending on the perspective of a particular node in the communication. For example, in a given communication between a first node and a second node, where the first node transmits a signal to the second node and the second node receives a signal from the first node, the first node may be called the source or transmission node or device, the second node may be called the destination or reception node or device, and the communication can be considered transmission for the first node and reception for the second node. Naturally, since communication nodes in the wireless system 100 can both transmit and receive signals, a single communication node may be both a transmission / source node and a reception / destination node simultaneously, or it may switch between being a transmitting node and a receiving node.

[0024] Furthermore, certain signals may be characterized or defined as uplink (UL) signals, downlink (DL) signals, or sidelink (SL) signals. Uplink signals are signals transmitted from user device 102 to radio access node 104. Downlink signals are signals transmitted from radio access node 104 to user device 102. Sidelink signals are signals transmitted from one user device 102 to another user device 102, or from one radio access node 104 to another radio access node 104. Also, for sidelink transmission, the first / source user device 102 transmits the sidelink signal directly to the second / destination user device 102 without forwarding the sidelink signal to the radio access node 104.

[0025] In at least some embodiments, including V2X communication, user devices 102 can perform sidelink transmission. Such sidelink communication in V2X is sometimes referred to as PC5-based V2X communication or V2X communication. Furthermore, for sidelink communication in V2X, user devices 102 can communicate sidelink signals with each other using the PC5 interface, where PC5 refers to a reference point from which user device 102 communicates directly with another user device 102 via a channel.

[0026] As V2X technology advances, including in the automation industry, V2X communication scenarios are becoming increasingly diverse and require higher performance. Examples of advanced V2X services include vehicle platooning, enhanced sensors, advanced driving (semi-autonomous and fully autonomous driving), and remote driving. Exceptional performance requirements for these advanced V2X services, in non-limiting examples, may include supporting data packets with a size of 50 to 12,000 bytes, a transmission rate of 2 to 50 messages per second, a maximum end-to-end delay of 3 to 500 milliseconds, 90% to 99.999% reliability, a data rate of 0.5 to 1,000 megabytes per second (Mbps), or a transmission range of 50 to 1,000 meters.

[0027] In addition, communication nodes using NR radio access operating on shared spectrum channel access may be configured to operate in different modes, and primary cells (PCell), primary secondary cells (PSCell), or secondary cells (SCell) may be within the shared spectrum, and SCells may or may not be configured for uplink transmission. Furthermore, in both channel access modes, the radio access node 104 and user device 102 may be configured to apply or perform a listen-before-talk (LBT) procedure before performing transmissions in cells configured for shared spectrum channel access.

[0028] Figure 3 shows an exemplary method 300 for wireless communication including sidelink communication between a first user device 102(1) and a second user device 102(2) in an unlicensed carrier. Embodiments of method 300 include a first user device 102(1) which functions as a source or transmitting user device that transmits a sidelink signal to a second user device 102(2), and a second user device 102(2) which functions as a destination or receiving user device that receives a sidelink signal from the first user device 102(1).

[0029] Generally speaking, a licensed carrier is a carrier, frequency band, or spectrum that is licensed to a service provider for exclusive use by a government or other trusted entity (e.g., the U.S. Federal Communications Commission (FCC) or the European Telecommunications Standards Institute (ETSI)). An unlicensed carrier, also called a shared spectrum, is a carrier, frequency band, or spectrum that is not licensed by a government or other trusted entity.

[0030] In block 302, the first user device 102(1) may perform a listen-before-talk (LBT) procedure on an unlicensed carrier for the transmission of a sidelink signal. Generally, if user device 102 wants to transmit a signal (e.g., an uplink signal or a sidelink signal) on a channel of a particular carrier (unlicensed), user device can perform an LBT procedure on the carrier before transmitting the signal. During the LBT procedure, user device 102 can listen to or sense the channel to determine whether the channel is available (free) or busy. Depending on or as a result of performing the LBT procedure, user device 102 can determine whether the LBT procedure was successful or failed. Success indicates that the channel is available and user device 102 can proceed with transmitting the signal. Failure indicates that the channel is busy and user device 102 decides not to transmit the signal.

[0031] In various embodiments, in block 302, the first user device 102(1) can perform the LBT procedure according to the sidelink channel access priority. In particular, the amount of time that the first device 102 must monitor the channel during the LBT procedure may depend on the value of the sidelink channel access priority. Also, if the LBT procedure is successful, the amount of time resources occupied by the channel may depend on the value of the sidelink channel access priority.

[0032] In some of these embodiments, the sidelink channel access priority is the sidelink channel access priority of the sidelink logic. For example, the first user device 102(1) may consist of multiple logical channels, each of which may have or be mapped to an associated priority value of the sidelink channel access priority. The priority values ​​may be the same or different for different logical channels. Correspondingly, if the first user device 102(1) decides to transmit data (e.g., data from a MAC protocol data unit (PDU)) as part of a sidelink signal, the first user device 102(1) can determine the logical channel corresponding to the data and then determine the priority value corresponding to the logical channel. The first user device 102(1) can then perform an LBT procedure according to the determined priority value.

[0033] Furthermore, in at least some embodiments, data (e.g., of a MAC PDU) can correspond to multiple logical channels. Accordingly, the first user device 102(1) can determine multiple priority values ​​for the multiple logical channels and then select the value corresponding to the highest priority from among the multiple priority values.

[0034] In other embodiments, the sidelink channel access priority is the sidelink channel access priority of the Quality of Service (QoS) profile. The QoS profile can identify a set of QoS parameters corresponding to the data being transmitted, such as the sidelink PC5 QoS identifier (PQI), sidelink guaranteed flow bitrate (GFBR), sidelink maximum flow bitrate (MFBR), and / or sidelink range. In such embodiments, the first user device 102(1) can identify the QoS profile corresponding to the data being transmitted in the sidelink transmission. The first user device 102(1) can then identify the priority value corresponding to the QoS profile. The first user device 102(1) can then perform the LBT procedure according to the determined priority value.

[0035] In addition to or instead of the above, the first user device 102(1) may receive sidelink channel access priority via RRC messages depending on whether the first user device 102(1) is in an RRC connected state, may receive sidelink channel access priority via system information depending on whether the first user device 102(1) is in an RRC idle state, and / or may be pre-configured with sidelink channel access priority depending on whether the UE is outside coverage.

[0036] In addition to or instead of the above, in various embodiments, the first user device 102(1) can use the Channel Access Priority Class (CAPC) and MAC Control Element (CE) of a radio bearer (RB) for the priority value of the LBT procedure. In some embodiments, the CAPC of the RB and MAC CE is fixed or configurable. For example, the CAPC may be fixed to the highest priority for a sidelink signaling radio bearer (SRB) and one or more sidelink MAC CEs, configured by the network (radio access node 104) for a sidelink data radio bearer (DRB), or fixed to the lowest priority for other sidelink MAC CEs. When selecting the CAPC for a given DRB, the radio access node 104 can take into account the PQI of all QoS flows multiplexed on the given DRB, while considering fairness between different traffic types and transmissions. A communication node in system 100 can use the CAPC of a standardized PQI that best matches the QoS characteristics of the unstandardized PQI of the QoS flow corresponding to the unstandardized PQI.

[0037] In addition to or instead of the above, in various embodiments, the first user device 102(1) can select a CAPC as the priority for the LBT procedure by selecting the highest priority CAPC of the sidelink DRBs in accordance with the transport block (TB) of the sidelink signal being transmitted, which includes multiple sidelink DRBs; by selecting the highest priority CAPC in accordance with the transport block which includes at least one sidelink SRB, sidelink broadcast control channel (SBCCH), or sidelink MAC CE having the highest priority CAPC; or by selecting the lowest priority CAPC in accordance with the transport block which includes only one or more sidelink MAC CEs having the lowest priority CAPC.

[0038] In block 304, the first user device 102(1) can determine whether LBT is successful or unsuccessful based on the LBT procedure performed in block 302, that is, based on whether the LBT procedure results in LBT success or failure. In block 306, the first user device 102(1) may transmit a sidelink signal to the second user device 102(2) in response to the determination of LBT success, or may not transmit a sidelink signal in response to the determination of LBT failure.

[0039] Furthermore, in at least some embodiments, in block 306, the first user device 102(1) can determine whether a sidelink consistent LBT failure exists according to the LBT procedure performed in block 302 and / or the result of the LBT procedure determined in block 304. In various embodiments, the first user device 102(1) can determine a sidelink consistent LBT failure by counting LBT failures over several LBT procedures or iterations of an LBT procedure. For example, the user device 102 may be configured with a sidelink maximum LBT failure count (SL-lbt-FailureMaxCount) for sidelink consistent LBT failure detection, which may be initially set to zero, a sidelink failure detection timer (SL-lbt-FailureDetectionTimer) for sidelink consistent LBT failure detection, and a sidelink LBT counter (SL-LBT_COUNTER) for LBT failures. If the first user device 102(1) detects an LBT failure in an LBT procedure, the first user device 102(1) can start or restart the sidelink failure detection timer. The first user device 102(1) may also increment the sidelink LBT counter by 1. Subsequently, the first user device 102(1) may compare the current value of the sidelink LBT counter with the sidelink maximum LBT failure count. If the current value is greater than or equal to the sidelink maximum LBT failure count, the first user device 102(1) can detect a sidelink consistent LBT failure. In at least some embodiments, the first user device 102(1) can use a sidelink failure detection timer in conjunction with the count. For example, the first user device 102(1) can count during a duration measured by the sidelink failure detection timer. That is, the first user device 102(1) may determine whether a sidelink consistent LBT failure has occurred based on the sidelink LBT counter counted during the time the sidelink LBT failure detection timer is active (not expired).In response to the expiration of the sidelink LBT failure detection timer, or when the sidelink LBT failure detection timer or the sidelink maximum LBT failure count is reset by MAC layer 204 (or another higher layer), the user device 102 may reset the sidelink LBT counter to 0 or another initial value.

[0040] In addition, in at least some embodiments, the PHY layer 202 of the first user device 102(1) can perform an LBT procedure in block 302 and / or determine in block 304 whether the LBT procedure was successful or failed. If the PHY layer 202 determines an LBT failure in block 304, in block 306, the PHY layer 202 can send a sidelink failure indication to the MAC layer 204 indicating the LBT failure detected by the PHY layer 202. The MAC layer 204 may also consist of a sidelink maximum LBT failure count, a sidelink failure detection timer, and a sidelink LBT counter, as described above, and may determine or detect a sidelink consistent LBT failure in response to the reception of the sidelink failure indication.

[0041] Furthermore, in at least some embodiments, in response to a determination of a sidelink consistent LBT failure, the first user device 102(1) may switch the active bandwidth portion from one bandwidth portion to another. In addition to or alternative to this, in response to a determination of a sidelink consistent LBT failure, the first user device 102(1) may generate a sidelink LBT failure MAC CE which includes a MAC subheader containing logical channel identification information (LCID), or is otherwise identified by the MAC subheader. In addition to or alternative to this, the sidelink LBT failure MAC CE may include N octets, where N is an integer greater than or equal to 1. Furthermore, the N octets include 8*N X fields. In some embodiments, for a given carrier i, the corresponding i-th X field of the N octet may be set to a value of 1 ("1") in response to a consistent LBT failure being triggered and not canceled, and to a value of 0 ("0") in response to a consistent LBT failure not being triggered or canceled, etc. In other embodiments, for a given destination index i, the corresponding i-th X field may be set to a value of 1 ("1") depending on whether a consistent LBT failure is triggered and not canceled, and to a value of 0 ("0") depending on whether a consistent LBT failure is not triggered or canceled, etc. In addition to or instead of this, the sidelink LBT failure MAC CE may include a list of destination indices that triggered the sidelink consistent LBT failure. Each destination index in the list identifies the corresponding destination identification information (ID). In addition to or instead of this, the sidelink LBT failure MAC CE may include a list of carrier indices that triggered the sidelink consistent LBT failure.

[0042] Furthermore, in at least some embodiments, the first user device 102(1) cancels a triggered or detected sidelink-consistent LBT failure. In some of these embodiments, the first user device 102(1) can cancel a triggered or detected sidelink-consistent LBT failure in response to the first user device 102(1) transmitting a MAC PDU containing an LBT failure MAC CE, and the MAC layer 204 does not receive an LBT failure indication from the PHY layer 202.

[0043] In at least some embodiments, depending on whether a sidelink consistent LBT failure is triggered and not canceled, and further depending on whether uplink shared channel (UL-SCH) resources are available for a new uplink transmission and these UL-SCH resources can be adapted to the LBT failure MAC CE and its subheaders as a result of logical channel prioritization, the first user device 102(1) may perform multiplexing and assembly procedures (e.g., as defined by a wireless communication standard or protocol (e.g., TS38.321) that configures the user device 102 to determine which MAC CEs and / or MAC service data units (SDUs) to include in the MAC PDU of an authorized resource.

[0044] In addition to or instead of this, the first user device 102(1) may trigger a scheduling request for the sidelink LBT failure MAC CE in response to determining a sidelink consistent LBT failure according to the results of the LBT procedure performed in block 302 and / or the LBT procedure determined in block 304. In at least some of these embodiments, the first user device 102(1) can trigger a scheduling request instead of performing the multiplexing and assembly procedure. In addition to or instead of this, in at least some of these embodiments, the first user device 102(1) may receive a scheduling resource configuration for the sidelink LBT failure MAC CE from the radio access node 104 (network) before triggering a scheduling request for the sidelink LBT failure MAC CE. In addition to or instead of this, in at least some of these embodiments, the first user device 102(1) may transmit a scheduling request to the radio access node 104 in response to determining a sidelink consistent LBT failure, and further in response to the unavailability of uplink shared channel (UL-SCH) resources.

[0045] In addition to or instead of the above, the first user device 102(1) may transmit sidelink-consistent LBT failure indication information to the second user device 102(2) in response to detecting a sidelink-consistent LBT failure. In at least some of these embodiments, if the first user device 102(1) is composed of multiple carriers, and a sidelink-consistent LBT failure is triggered for a first sidelink carrier, the first user device 102(1) may transmit the sidelink-consistent LBT failure indication information via another carrier. Furthermore, the sidelink-consistent LBT failure indication information may include at least one of the following: an indication of the first sidelink carrier from which the sidelink-consistent LBT failure was triggered, or an indication that a sidelink-consistent LBT failure has been triggered or detected.

[0046] Furthermore, if the first user device 102(1) consists of only one carrier and a sidelink consistent LBT failure is triggered for only that one carrier, the first user device 102(1) does not need to transmit sidelink consistent LBT failure indication information until it determines that it has available resources. For example, suppose the first user device 102(1) decides to use time resource t1. Correspondingly, the first user device 102(1) can perform LBT from at least t1-x, where x depends on the CAPC value. If the first user device 102(1) detects an LBT failure at time resource t1, it does not use time resource t1. Then, the first user device 102(1) performs another LBT procedure for the next time resource, for example, t10. For example, suppose the first user device 102(1) determines that the LBT procedure is successful at t10. Accordingly, the first user device 102(1) determines that it has available resources at time t10, and then transmits sidelink consistency LBT failure information at time resource t10.

[0047] In addition to or instead of the above, the first user device 102(1) may, upon detecting a sidelink consistent LBT failure, transmit sidelink consistent LBT failure indication information to the radio access node 104. The sidelink consistent LBT failure indication information may include at least one of the following: an indication of the first sidelink carrier from which the sidelink consistent LBT failure was triggered; an identification of the destination (e.g., the second user device 102(1), or the connection between the first user device and the second user device); and a failure type indication indicating that the indicated failure is a sidelink consistent LBT failure.

[0048] Furthermore, in various embodiments, when a first user device 102(1) wants to communicate with a second user device 102(2) via unicast mode, the first and second user devices 102 can first establish a PC5-RRC connection (also called a PC5 link) with each other. Since a user device can communicate with multiple user devices for different types of services, etc., a user device can establish multiple PC5-RRC connections with multiple user devices. A user device can use a destination ID to uniquely identify the PC5-RRC connection it establishes with another user device. Once the first and second user devices 102 have established a PC5-RRC connection, they can exchange various information, including, but not limited to, UE capability information, RRC configuration messages containing measurement configuration information, or bearer configuration information.

[0049] Furthermore, the first user device 102(1) can detect a radio link fault (RLF) in the PC5-RRC connection established by the first user device with the second user device 102(2). Upon detecting an RLF, the first user device 102(1) can release the PC5-RRC connection or destination, which may include releasing the DRB for the PC5-RRC connection and / or discarding the NR sidelink communication configuration information for the PC5-RRC connection.

[0050] In various embodiments, the first user device 102(1) may determine an RLF for the PC5-RRC connection in response to detection that the maximum number of continuous hybrid automatic retransmission requests (HARQ) discontinuous transmissions (DTXs) ​​has reached the maximum number of continuous HARQ DTXs (sl-maxNumConsecutiveDTX). Generally, the user device can detect the number of HARQ DTXs, which is the number of continuous time slots consisting of physical sidelink feedback channels (PSFCHs) that do not receive HARQ feedback messages. The first user device 102(1) can continue to track the current number of continuous DTXs (numConsecutiveDTX). If the current number reaches or exceeds the maximum number, the first user device 102(1) can detect an RLF. Thus, in various embodiments, the first user device 102(1) can determine whether there is no PSFCH reception in a PSFCH reception opportunity. If so, the first user device 102(1) can increment the current count by 1. Next, the first user device 102(1) can compare whether the current count has reached the maximum number. If so, the first user device 102(1) can detect an RLF (also known as a HARQ-based sidelink RLF). Furthermore, in at least some embodiments, the MAC layer 204 tracks the current count and determines whether an RLF has occurred by comparing the current count to the maximum number. If the MAC layer 204 detects an RLF, it may notify the RRC layer 210.

[0051] In some situations where the first and second user devices 102 communicate over an unlicensed carrier or shared spectrum, if the second user device 102(2) performs an LBT procedure and the result is an LBT failure, the second user device 102(2) may not be able to send HARQ feedback to the first user device 102(1). In situations where the first and second user devices 102 communicate over a licensed carrier, consecutive HARQ DTXs occur most frequently due to the first and second user devices 102 moving away from each other. In situations where the first and second user devices 102 communicate over an unlicensed carrier, consecutive HARQ DTXs occur due to the first and second user devices 102 moving away from each other, and also because it is easier to reach the maximum number of consecutive HARQ DTXs for a particular destination. However, if the maximum number of consecutive HARQ DTXs is due to consistent LBT failures, the user device may not want to release the PC5-RRC connection for the destination.

[0052] Figure 4 shows a flowchart of another exemplary method 400 for wireless communication. Method 400 relates to determining the maximum number of consecutive HARQ DTXs that a user device 102 can use to detect an RLF. Thus, in various embodiments, the first user device 102(1) may be configured with a plurality of maximum numbers of consecutive HARQ DTXs that the first user device 102(1) selects to detect an RLF. In some embodiments, the first user device 102(1) can receive a plurality of maximum numbers of consecutive HARQ DTXs from a radio access node 104. In other embodiments, the first user device 102(1) may be pre-configured with a plurality of maximum numbers of consecutive HARQ DTXs. Generally, by being pre-configured with certain information, such as a plurality of maximum numbers of consecutive HARQ DTXs, the user device has internal access to the information and, accordingly, does not need to receive that information from another communication node, such as the radio access node 104, to determine or identify the information.

[0053] In block 402, the first user device 102(1) can select one maximum number of consecutive HARQ DTX from a plurality of maximum numbers of consecutive HARQ DTX. In some embodiments, the maximum number of consecutive HARQ DTX selected by the first user device 102(1) is a first maximum number of consecutive HARQ DTX used for one or more unlicensed carriers. Furthermore, in at least some embodiments, the plurality of maximum numbers of consecutive HARQ DTX include a second maximum number of consecutive HARQ DTX used for one or more licensed carriers. Thus, the first user device 102(1) can select either the first or second maximum number based on whether the first user device 102(1) is transmitting or wants to transmit on an unlicensed carrier, or is transmitting or wants to transmit on a licensed carrier. That is, if the first user device 102(1) is transmitting on an unlicensed carrier or wants to transmit on an unlicensed carrier, the first user device 102(1) can select a first maximum number of consecutive HARQ DTXs, and if the first user device 102(1) is transmitting on a licensed carrier or wants to transmit on a licensed carrier, the first user device 102(1) can select a second maximum number of consecutive HARQ DTXs. Furthermore, in at least some embodiments, the first maximum number of consecutive HARQ DTXs for an unlicensed carrier is greater than the second maximum number of consecutive HARQ DTXs for a licensed carrier.

[0054] In addition, in at least some embodiments, the first maximum number of consecutive HARQ DTX for unlicensed carriers includes multiple values. In some of these embodiments, each maximum value corresponds to one of one or more ranges of channel occupancy values. For example, the first value may correspond to a first range of channel occupancy values, the second value may correspond to a second range of channel occupancy values, and so on. The channel occupancy is the percentage of samples of received signal strength indicator (RSSI) that are above a predetermined threshold (channelOccupanyThreshold). The RSSI is either a linear average of the total received power observed in the configured orthogonal frequency division multiplexing (OFDM) symbols, or indicates such a value. In addition to or instead of this, the RSSI may include a linear average of the total received power in a configured measurement bandwidth across N resource blocks corresponding to an LBT bandwidth having a center frequency of the configured absolute radio frequency channel number (ARFCN) by the user device from all sources, including serving and non-serving cells on the same channel, adjacent channel interference, and thermal noise. In these embodiments, the first user device 102(1) can determine a first channel occupancy value. Next, the first user device 102(1) can determine a range of channel occupancy values ​​from one or more ranges of channel occupancy values ​​into which the first channel occupancy value falls. Then, the first user device 102(1) can determine the maximum value corresponding to the determined range of channel occupancy and select that maximum value for a first maximum number of consecutive HARQ DTX.

[0055] In these embodiments, each maximum value of a plurality of values ​​corresponds to one of one or more ranges of channel busy rate (CBR). Generally, CBR may be or represent the percentage of subchannels of sidelink RSSI (s-RSSI) that exceeds a predetermined threshold within a given period (e.g., 100 milliseconds). In these embodiments, the first user device 102(1) can determine a first CBR value. The first user device 102(1) can then determine a range of CBR values ​​from one or more ranges of CBR values ​​into which the first CBR value falls. The first user device 102(1) can then determine a first maximum value corresponding to the determined range of CBR values ​​and select that first maximum value for a first maximum number of consecutive HARQ DTXs.

[0056] In other embodiments, the maximum value of a plurality of values ​​corresponds to one of each of one or more ranges of RSSI values. In these embodiments, the first user device 102(1) can determine a first RSSI value. The first user device 102(1) can then determine from one or more ranges of RSSI values ​​the range in which the first RSSI value falls. Next, the first user device 102(1) can determine a first maximum value corresponding to the determined range of CBR values ​​and select that value for a first maximum number of consecutive HARQ DTX.

[0057] In yet another embodiment, the maximum value of each of the multiple values ​​corresponds to one of each of the one or more priority values. In these embodiments, the first user device 102(1) can determine a first priority value. The first user device 102(1) can then determine a priority value from one or more priority values ​​that match the first priority value, determine a first maximum value corresponding to the determined priority value, and select that value for a first maximum number of consecutive HARQ DTX.

[0058] In block 404, after selecting the maximum number of consecutive HARQ DTXs, the first user device 102(1) can determine whether an RLF exists for the PC5-RRC connection established with the second user device 102(2), based on the current number of consecutive HARQ DTXs and the selected maximum number of consecutive HARQ DTXs. For example, as mentioned above, the first user device 102(1) can continue to track the current count of consecutive HARQ DTXs by determining whether there is no PSFCH reception on a PSFCH reception opportunity and whether the current count has reached the maximum number selected from block 402. If the current count has reached the selected maximum number, the first user device 102(1) can determine that an RLF exists. In addition, if the current count has not reached the selected maximum number, the first user device 102(2) can determine that an RLF does not exist. In block 406, if the first user device 102(1) detects an RLF in block 404, the first user device 102(1) may release the PC5-RRC connection, which may include releasing the DRB for the PC5-RRC connection and / or discarding the NR sidelink communication configuration information for the PC5-RRC connection, as described above. Furthermore, if the first user device 102(1) does not detect an RLF in block 404, the first user device 102(2) may maintain or keep the PC5-RRC connection it has established. If the first user device 102(1) decides to maintain the PC5-RRC connection, it may continue to exchange (transmit and / or receive) information with the second user device 102(2) using the PC5-RRC connection.

[0059] Furthermore, in various embodiments, a user device may perform a sidelink RRC reconfiguration procedure if it decides to change its PC5-RRC connection with another user device. As a non-limiting example, a user device may decide to change its PC5-RRC connection for any of several reasons, such as deciding to establish, change, and / or release a sidelink DRB, configure NR sidelink measurement and reporting, or configure sidelink channel status information (CSI) reference signal resources and CSI reporting latency bounds. If a user device decides to perform a sidelink RRC reconfiguration procedure for a PC5-RRC connection, it initiates the reconfiguration procedure with the other user device by transmitting an RRCReconfigurationSidelink message to the other user device that established the PC5-RRC connection. If the other user device successfully performs or completes the sidelink RRC reconfiguration procedure in accordance with the RRCReconfigurationSidelink message, the other user device may respond to the sidelink RRC reconfiguration message by transmitting an RRCReconfigurationCompleteSidelink message to the initiating user device. Furthermore, if another user device fails to successfully perform or complete the sidelink RRC reconfiguration procedure in accordance with the RRC reconfiguration sidelink message, the other user device can respond to the RRC reconfiguration sidelink message by transmitting an RRCRreconfigurationFailureSidelink message to the initiating user device.

[0060] Furthermore, in various embodiments, the first user device 102(1) can decide to recover from an LBT failure. Generally, congestion of the unlicensed carrier caused by too many user devices wanting to occupy the unlicensed carrier can increase the likelihood that the first user device 102(1) will detect an LBT failure in the LBT procedure. Therefore, it may be preferable for the first user device 102(1) to stop using the unlicensed carrier. However, after a certain period of time, the number of user devices wanting to occupy the unlicensed carrier may decrease, and at that point, it may be desirable, or at least feasible, for the first user device 102(1) to communicate again on the unlicensed carrier. Also, if the first user device 102(1) detects a sidelink consistent LBT failure, it can report an LBT failure indication regarding the sidelink consistent LBT failure to the radio access node 104. In response, the radio access node 104 can stop allocating sidelink resources on the unlicensed carrier for the reporting first user device 102(1). However, the wireless access node 104 may not know when the number of user devices occupying the unlicensed carrier decreases (the congestion on the unlicensed carrier decreases), which would be desirable for the first user device 102(1) to communicate on the unlicensed carrier again. Therefore, the first user device 102(1) can continue to perform LBT procedures on the unlicensed carrier after detecting an LBT failure. If an LBT success is detected during a subsequent LBT procedure on the unlicensed carrier, it can report LBT success information to the wireless access node 104. The LBT success information may include at least one of the following: an indication of the first sidelink carrier where the sidelink consistent LBT failure was recovered, an identification of the destination (e.g., the second user device 102(1), or the connection between the first user device and the second user device), and a recovery type indication showing that the recovery indicated is a sidelink consistent LBT failure recovery.Accordingly, the wireless access node 104 may allocate a sidelink resource for the unlicensed carrier to the first user device 102(1). As used herein, the term carrier LBT failure recovery refers to a decision that a user device can communicate within the carrier, following a previous decision, such as the detection of an LBT failure, that the user device should not communicate within the carrier.

[0061] In various embodiments, the first user device 102(1) can determine LBT failure recovery for a sidelink carrier (unlicensed) in response to at least one of the following: the expiration of a timer started by the first user device 102(1) in response to detection of an LBT failure in an LBT procedure, and / or an LBT failure indication generated for the detected LBT failure; the expiration of a timer started by the first user device 102(1) in response to a sidelink consistency LBT failure triggered or detected in one or more LBT procedures; the success result of an LBT procedure; or the channel occupancy rate being below a predetermined threshold. In various embodiments of these embodiments, the first user device 102(1) can receive from the radio access node 104 a timer value indicating when the timer has expired and a predetermined threshold for channel occupancy. In other embodiments, the first user device 102(1) may be pre-configured with a timer value and a predetermined threshold for channel occupancy.

[0062] Furthermore, the first user device 102(1) can determine LBT failure recovery in various embodiments of method 300 in Figure 3. For example, in various embodiments, if the first user device 102(1) determines LBT success for the LBT procedure in block 304, the first user device 102(1) can determine LBT failure recovery. As another example, if the first user device 102(1) determines LBT failure for the LBT procedure in block 304, the first user device 102(1) can start a timer. When the timer expires, the first user device 102(1) can determine LBT failure recovery. In addition to or instead of this, if the first user device 102(1) determines sidelink consistent LBT failure in block 306, the first user device 102(1) can start a timer. When the timer expires, the first user device 102(1) can determine LBT failure recovery.

[0063] Furthermore, in various embodiments, the first user device 102(1) can prioritize some transmissions over others. In some situations, if the first user device 102(1) prioritizes the first transmission over the second transmission, the first user device 102(1) can drop the second transmission. If the second transmission is an unlicensed carrier sidelink transmission, and the sidelink transmission is not performed, the first user device 102(1) may lose the resources acquired for the sidelink transmission. This causes the first user device 102(1) to acquire additional resources again for the sidelink transmission. Correspondingly, the data package delay budget (PDB) for the sidelink transmission may expire, which may lead to failures in sidelink data transmission and reception.

[0064] To minimize such interference, in various embodiments, the first user device 102(1) can determine whether to prioritize transmission on an unlicensed carrier over transmission on a licensed carrier, and / or whether to prioritize sidelink transmission over uplink transmission.

[0065] Figure 5 shows an exemplary method 500 for wireless communication, including transmission prioritization. In block 502, the first user device 102(1) may prioritize the sidelink transmission over the second transmission depending on whether the sidelink transmission is on an unlicensed carrier and the second transmission is on a licensed carrier, or the first user device 102(1) may prioritize the second transmission over the sidelink transmission depending on whether the second transmission is on an unlicensed carrier and the sidelink transmission is on a licensed carrier.

[0066] Furthermore, in various embodiments, the first user device 102(1) may decide to prioritize transmissions if it is not possible to perform the sidelink transmission and the second transmission simultaneously. The first user device 102(1) may prioritize the sidelink transmission over the second transmission because the sidelink transmission is performed on an unlicensed carrier. In other embodiments, if the second transmission is performed on an unlicensed carrier and the sidelink transmission is performed on a licensed carrier, the first user device 102 may prioritize the second transmission over the sidelink transmission because the second transmission is performed on an unlicensed carrier. Furthermore, as previously stated, the second transmission may be another sidelink transmission or an uplink transmission. In various embodiments, the first user device 102(1) may prioritize the sidelink transmission on an unlicensed carrier depending on whether the uplink transmission is not prioritized by the non-access layer (NAS) layer entity 212 of the first user device 102(1) or by a layer entity higher than the PHY layer entity 202 of the first user device 102(1).

[0067] In block 504, the first user device 102(1) can perform sidelink transmission on an unlicensed carrier which takes precedence over the second transmission on the licensed carrier, for example, by transmitting sidelink signals related to sidelink transmission to the second user device 102(2). In response to this, the first user device 102(1) can drop the second transmission on the licensed carrier.

[0068] Furthermore, in various embodiments, the first user device 102(1) can decide whether to prioritize sidelink transmissions over uplink transmissions or vice versa. In some of these embodiments, the prioritization may be based on a first sidelink prioritization threshold for sidelink transmissions on a licensed carrier and a second sidelink prioritization threshold for sidelink transmissions on an unlicensed carrier. In some embodiments, the first user device 102(1) can receive the first and second sidelink prioritization thresholds from the radio access node 104. In other embodiments, the first user device 102(1) may be pre-configured with the first and second sidelink prioritization thresholds.

[0069] Figure 6 shows an exemplary method 600 for wireless communication, including prioritizing sidelink and uplink transmissions. In block 602, the first user device 102(1) can decide to prioritize sidelink transmission over uplink transmission, or vice versa, based on at least one of a first sidelink prioritization threshold or a second sidelink prioritization threshold. In at least some of these embodiments, the first user device 102(1) may prioritize sidelink transmission over uplink transmission if it cannot perform uplink and sidelink transmissions simultaneously, if uplink transmissions are not prioritized by MAC layer 204, if the first user device 102(1) will perform sidelink transmissions on a license carrier, and if the highest priority value of a logical channel or MAC CE in the MAC PDU for sidelink transmissions is less than the value of the first sidelink prioritization threshold of the license carrier. Furthermore, if the first user device 102(1) performs sidelink transmission on an unlicensed carrier, and the highest priority value of the logical channel or MAC CE in the MAC PDU for sidelink transmission is smaller than the value of the second sidelink prioritization threshold of the unlicensed carrier, the first user device 102(1) may prioritize sidelink transmission over uplink transmission.

[0070] In block 604, the first user device 102(1) can perform priority transmission by transmitting signals related to priority transmission. In response, the first user device 102(1) can drop other transmissions that have not been prioritized.

[0071] Figure 7 shows another exemplary method 700 for wireless communication, including prioritizing sidelink and uplink transmissions. In block 702, the first user device 102(1) can determine whether to prioritize sidelink transmissions over uplink transmissions, or vice versa, based on at least one of a first uplink prioritization threshold for uplink transmissions on a licensed carrier, or a second sidelink prioritization threshold for uplink transmissions on an unlicensed carrier. In some embodiments, the first user device 102(1) can receive the first and second uplink prioritization thresholds from the wireless access node 104. In other embodiments, the first user device 102(1) may be pre-configured with the first and second uplink prioritization thresholds. Furthermore, in at least some of these embodiments using the first and second uplink prioritization thresholds, if the first user device 102(1) performs sidelink transmission on a licensed carrier and the highest priority value of the logical channels in the MAC PDU for uplink transmission is less than the value of the first uplink prioritization threshold of the licensed carrier, the first user device 102(1) may prioritize uplink transmission over sidelink transmission. Also, if the first user device 102(1) performs sidelink transmission on an unlicensed carrier and the highest priority value of the logical channels in the MAC PDU for uplink transmission is lower than the value of the second uplink prioritization threshold of the unlicensed carrier, the first user device 102(1) may prioritize uplink transmission over sidelink transmission.

[0072] In block 704, the first user device 102(1) can perform priority transmission by transmitting signals related to priority transmission. In response, the first user device 102(1) can drop other transmissions that have not been prioritized.

[0073] Furthermore, in various embodiments, some or all of methods 300, 400, 500, 600, and 700 described with reference to Figures 3 to 7 may be performed independently of each other or in combination with each other. For example, the LBT procedure and operations related to the detection of LBT failures and sidelink consistency LBT failures described with reference to Figure 3 may be performed, for example, by one or more operations performed for the same sidelink transmission, in combination with the maximum number of consecutive HARQ DTX selections and / or RLF detections described with reference to Figure 4, and / or in combination with one or more of the prioritization schemes described with reference to Figures 5 to 7. As another example, the maximum number of consecutive HARQ DTX selections and / or RLF detections described with reference to Figure 4 may be performed, for example, by one or more operations performed for the same sidelink transmission, in combination with one or more of the prioritization schemes described with reference to Figures 5 to 7. Various combinations may be possible.

[0074] The above description and accompanying drawings provide specific exemplary embodiments and implementations. However, the subject matter described may be embodied in a variety of different forms, and it is intended that the subject matter included or claimed is not limited to any exemplary embodiments described herein. A reasonably broad range of subject matter to be described or included in the claims is intended. In particular, for example, the subject matter may be embodied as a method, device, component, system, or non-temporary computer-readable medium for storing computer code. Thus, embodiments may take the form of, for example, hardware, software, firmware, storage medium, or any combination thereof. For example, an embodiment of the method described above may be implemented by a component, device, or system including memory and a processor by executing computer code stored in memory.

[0075] Throughout this specification and the claims, terms may have nuances implied or suggested in context beyond their expressly stated meanings. Similarly, the phrase “in one embodiment / implementation” as used herein does not necessarily refer to the same embodiment, and the phrase “in another embodiment / implementation” as used herein does not necessarily refer to a different embodiment. For example, the subject matter described in the claims is intended to include combinations of embodiments that are exemplary in whole or in part.

[0076] In general, terms can be understood at least partially from their use in context. For example, terms such as “and,” “or,” or “and / or” as used herein may have various meanings that may at least partially depend on the context in which such terms are used. Typically, when “or” is used to relate a list such as A, B, or C, it is intended to mean A, B, and C, used here in an inclusive sense, and A, B, or C, used here in an exclusive sense. Furthermore, the term “one or more” as used herein may be used at least partially, depending on the context, to describe any feature, structure, or characteristic in a singular sense, or to describe a combination of features, structures, or characteristics in a plural sense. Similarly, terms such as “a,” “an,” or “the” can likewise be understood, at least partially, depending on the context, to convey either a singular or plural usage. Furthermore, the term “based on” may be understood not necessarily to convey an exclusive set of factors, but instead, at least partially, depending on the context, to allow for the presence of additional factors that are not necessarily explicitly described.

[0077] Throughout this specification, references to features, benefits, or similar terms do not imply that all features and benefits that may be realized by the Solution should or will be included in any single implementation thereof. Rather, any terms referring to features and benefits should be understood to mean that certain features, benefits, or characteristics described in relation to an embodiment are included in at least one embodiment of the Solution. Accordingly, descriptions of features and benefits and similar terms throughout this specification may, but not necessarily, refer to the same embodiment.

[0078] Furthermore, the features, advantages, and characteristics described herein can be combined in any suitable manner in one or more embodiments. Those skilled in the art will recognize, in light of the description herein, that the present solution can be implemented without one or more of the particular features or advantages of a particular embodiment. In other examples, further features and advantages may be recognized in certain embodiments that may not be present in all embodiments of the present solution.

[0079] Furthermore, the subject matter of this disclosure may relate to, or include, the following aspects:

[0080] A first aspect includes a method for wireless communication, the method comprising: a first user device performing a listen-before-talk (LBT) procedure on an unlicensed carrier for sidelink transmission; the first user device determining the result of the LBT procedure;, in response to the determination that the result is an LBT success, the first user device transmitting a sidelink signal on the channel on the unlicensed carrier to a second user device; and, in response to the determination that the result is an LBT failure, the physical layer entity of the first user device transmitting an LBT failure indication to the medium access control (MAC) layer entity of the first user device.

[0081] The second aspect includes the first aspect, further comprising the execution of the LBT procedure on an unlicensed carrier by the first user device according to the sidelink channel access priority or quality of service (QoS) profile of the sidelink logical channel.

[0082] A third embodiment includes either the first or second embodiment, further comprising: the sidelink signal includes a sidelink transport block; the method further comprises by a first user device selecting a channel access priority class (CAPC) for an LBT procedure, wherein the selection includes one of the following: selecting the highest priority CAPC of a sidelink data radio bearer in a transport block including a plurality of sidelink data radio bearers; selecting the highest priority CAPC in a transport block including at least one sidelink signaling radio bearer, a sidelink broadcast control channel (SBCCH), or a sidelink medium access control (MAC) control element (CE) having the highest priority CAPC; or selecting the lowest priority CAPC in a transport block including only one or more sidelink medium access control (MAC) control elements (CE) having the lowest priority CAPC.

[0083] A fourth aspect includes any of the first to third aspects, further comprising a first user device determining a sidelink consistent LBT failure according to the LBT procedure.

[0084] A fifth aspect includes the fourth aspect, further comprising switching the active sidelink bandwidth portion from one bandwidth portion to another in response to determining a sidelink consistency LBT failure.

[0085] A sixth aspect includes either the fourth or fifth aspect, and further includes the first user device generating a sidelink LBT failure MAC control element (CE) in response to determining a sidelink consistent LBT failure according to the LBT procedure.

[0086] The seventh aspect includes the sixth aspect, further, the sidelink LBT failure MAC CE is identified by a MAC subheader containing logical channel identification information (LCID).

[0087] The eighth aspect includes the sixth aspect, further comprising: a sidelink LBT failure MAC CE, a list of destination indices triggered by a sidelink consistent LBT failure, where each destination in the list identifies destination identifiers; a list of carrier indices triggered by a sidelink consistent LBT failure; or N octets containing 8*N X fields, where N is an integer greater than or equal to 1, wherein the i-th X field is set to a value of 1 depending on whether a consistent LBT failure is triggered and not canceled with respect to carrier index i, and the i-th X field is set to a value of 0 depending on whether a consistent LBT failure is not triggered or canceled; or the i-th X field is set to a value of 1 depending on whether a consistent LBT failure is triggered and not canceled with respect to destination index i, and the i-th X field is set to a value of 0 depending on whether a consistent LBT failure is not triggered or canceled.

[0088] The ninth aspect includes the sixth aspect, further comprising triggering a scheduling request for a sidelink LBT failure MAC CE by a first user device.

[0089] A tenth aspect includes a ninth aspect, further comprising the first user device receiving a scheduling request resource configuration for a sidelink LBT failure MAC CE from a wireless access node before triggering a scheduling request.

[0090] The eleventh aspect includes any of the first to tenth aspects, further comprising a first user device selecting a first maximum number of continuous hybrid automatic retransmission request (HARQ) discontinuous transmissions (DTX) from a plurality of maximum numbers of continuous HARQ DTX.

[0091] A twelfth aspect includes the eleventh aspect, further comprising a first user device receiving a multiple maximum number of consecutive HARQ DTX from a wireless access node.

[0092] The thirteenth aspect includes the eleventh aspect, further comprising the first user device pre-configured with a maximum number of consecutive HARQ DTXs.

[0093] The 14th aspect includes any of the 11th to 13th aspects, further comprising: a first maximum number of consecutive HARQ DTXs used for one or more unlicensed carriers; a second maximum number of consecutive HARQ DTXs among a plurality of maximum numbers of consecutive HARQ DTXs used for one or more licensed carriers; and the selection of the first maximum number includes selecting the first maximum number depending on whether the sidelink transmission is on an unlicensed carrier.

[0094] The 15th aspect includes the 14th aspect, further comprising a first maximum number of continuous HARQ DTXs, wherein each maximum number in the set is associated with one of each of one or more ranges of channel occupancy values, one of each of one or more ranges of received signal strength indicator (RSSI) values, or one of each of one or more priority values.

[0095] The sixteenth aspect includes the fifteenth aspect, further comprising each of a set of multiple maximum numbers corresponding to each of one or more ranges of channel occupancy, the method further comprising determining a first channel occupancy, and selecting a first maximum number of consecutive HARQ DTXs includes selecting a first maximum number in such a way that the first maximum number corresponds to a range of channel occupancy into which the first channel occupancy falls.

[0096] The 17th aspect includes the 15th aspect, further comprising each of a set of multiple maximum numbers corresponding to each of one or more ranges of RSSI values, the method further comprising determining a first RSSI value, and selecting a first maximum number of consecutive HARQ DTXs includes selecting a first maximum number in such a way that the first maximum number corresponds to a range of RSSI values ​​into which the first RSSI value falls.

[0097] The 18th aspect includes the 15th aspect, further comprising each of a plurality of maximum numbers of values ​​in a set corresponding to each of one or more priority values, the method further comprising determining a first priority value, and selecting a first maximum number of consecutive HARQ DTXs comprising selecting a first maximum number in such a way that the first maximum number corresponds to a priority value among one or more priority values ​​that match the first priority value.

[0098] The 19th aspect includes any of the first to 18 aspects, further comprising: a first user device detecting a sidelink consistent LBT failure in an unlicensed carrier based on an LBT procedure; and the first user device transmitting sidelink consistent LBT failure indication information indicating a sidelink consistent LBT failure to a second user device.

[0099] The 20th aspect includes any of the first to 19 aspects, further comprising: a first user device detecting a sidelink consistent LBT failure on an unlicensed carrier in accordance with the LBT procedure; and the first user device transmitting sidelink consistent LBT failure indication information indicating a sidelink consistent LBT failure to a radio access node.

[0100] The 21st aspect includes the 20th aspect, further comprising sidelink consistency LBT failure indication information including at least one of carrier indication, destination identification information indication, or failure type indication.

[0101] The 22nd aspect includes any of the first to 21st aspects, and is performed by a first user device. The system further includes determining LBT failure recovery for an unlicensed carrier for sidelink transmission based on at least one of the following: LBT failure indication from the LBT procedure or expiration of a timer started in response to a sidelink consistency LBT failure triggered by the LBT procedure, success of the LBT procedure, or channel occupancy being below a predetermined threshold.

[0102] A 23rd aspect includes the 22nd aspect, further comprising the first user device receiving from the wireless access node a timer value indicating when the timer has expired and a predetermined threshold, depending on whether the first user device is within the coverage of the wireless access node.

[0103] The 24th aspect includes the 22nd aspect, further comprising a timer value indicating when the timer expires and a predetermined threshold value pre-configured by the first user device.

[0104] The 25th aspect includes any of the first to 24 aspects, further comprising: LBT success corresponding to recovery; and further comprising: in response to the determination that the result is LBT success, the first user device transmits information indicating LBT success to the radio access node, the information indicating LBT success comprising at least one of an unlicensed carrier, destination identification information, or recovery type indication indicating that the recovery is from a sidelink consistent LBT failure.

[0105] The 26th aspect includes any of the first to 25 aspects, further comprising the first user device prioritizing the sidelink transmission over the second transmission in accordance with the fact that the sidelink transmission is on an unlicensed carrier and the second transmission is on a licensed carrier, and the first user device prioritizing the second transmission over the sidelink transmission in accordance with the fact that the second transmission is on an unlicensed carrier and the sidelink transmission is on a licensed carrier.

[0106] The 27th aspect includes the 26th aspect, further comprising a second transmission including uplink transmission.

[0107] The 28th aspect includes the 27th aspect, and further, prioritizing sidelink transmission on an unlicensed carrier over uplink transmission on a licensed carrier corresponds to the fact that uplink transmission is not prioritized by layer entities higher than the non-accessable layer (NAS) layer entities or the physical (PHY) layer entities of the first user device.

[0108] The 29th aspect includes any of the 26th to 28th aspects, further comprising a first user device determining a first sidelink prioritization threshold for transmission on an unlicensed carrier and a second sidelink prioritization threshold for transmission on a licensed carrier, wherein prioritizing sidelink transmission over second transmission is based on the first and second sidelink prioritization thresholds.

[0109] The 30th aspect includes the 29th aspect, further comprising the first user device receiving a first sidelink prioritization threshold and a second sidelink prioritization threshold from a wireless access node.

[0110] The 31st aspect includes the 29th aspect, further comprising a first user device pre-configured with a first sidelink prioritization threshold and a second sidelink prioritization threshold.

[0111] The 32nd aspect includes any of the 29th to 31st aspects, further comprising a first user device determining a first uplink prioritization threshold for transmission on an unlicensed carrier and a second uplink prioritization threshold for transmission on a licensed carrier, the method further comprising the first user device prioritizing uplink transmission over sidelink transmission based on the first uplink prioritization threshold and the second uplink prioritization threshold.

[0112] The 33rd aspect includes the 32nd aspect, further comprising the first user device receiving a first uplink prioritization threshold and a second uplink prioritization threshold from a wireless access node.

[0113] The 34th aspect includes the 32nd aspect, further comprising a first user device pre-configured with a first uplink prioritization threshold and a second uplink prioritization threshold.

[0114] The 35th embodiment includes a wireless communication device comprising a processor and memory, wherein the processor is configured to read code from the memory in order to carry out any of the first to 34 embodiments.

[0115] The 36th aspect is a computer program product comprising a computer-readable program medium storing and containing code, wherein the code, when executed by a processor, causes the processor to implement any of the first to 34 aspects.

[0116] In addition to the features mentioned in each of the independent embodiments listed above, some examples, either individually or in combination, may exhibit optional features mentioned in the dependent embodiments and / or disclosed and illustrated in the above description.

Claims

1. A method for wireless communication, wherein the method is The first user device performs the Listen Before Talk (LBT) procedure on an unlicensed carrier for sidelink transmission, The first user device determines the result of the LBT procedure, In response to the determination that the above result is an LBT success, the first user device transmits a sidelink signal on the channel in the unlicensed carrier to the second user device, wherein the sidelink signal includes a sidelink transport block. In response to the determination that the above result is an LBT failure, the physical layer entity of the first user device transmits an LBT failure indication to the media access control (MAC) layer entity of the first user device. The first user device selects the channel access priority class (CAPC) for the LBT procedure. Includes, The aforementioned selection means, Depending on whether the transport block includes multiple sidelink data radio bearers, the highest priority CAPC of the sidelink data radio bearers is selected. Depending on whether the transport block includes at least one sidelink signaling radio bearer or sidelink broadcast control channel (SBCCH), the highest priority CAPC is selected, or Selecting the lowest priority CAPC in accordance with the fact that the transport block includes only one or more sidelink medium access control (MAC) control elements (CEs) with the lowest priority CAPC. A method that includes one of the following.

2. The method according to claim 1, wherein executing the LBT procedure on the unlicensed carrier includes the first user device executing the LBT procedure according to the sidelink channel access priority or quality of service (QoS) profile of the sidelink logical channel.

3. The first user device determines the sidelink consistent LBT failure according to the LBT procedure. The method according to claim 1, further comprising:

4. In response to determining the aforementioned sidelink consistency LBT failure, the active sidelink bandwidth portion is switched from one bandwidth portion to another. The method according to claim 3, further comprising:

5. In response to determining the sidelink consistent LBT failure according to the LBT procedure, the first user device generates a sidelink LBT failure MAC control element (CE). The method according to claim 3, further comprising:

6. The method according to claim 5, wherein the sidelink LBT failure MAC CE is identified by a MAC subheader containing logical channel identification information (LCID).

7. The first user device triggers a scheduling request for the sidelink LBT failure MAC CE. The method according to claim 5, further comprising:

8. The method according to claim 7, further comprising the first user device receiving a scheduling request resource configuration for the sidelink LBT failure MAC CE from the wireless access node before triggering the scheduling request.

9. The first user device detects a sidelink consistency LBT failure in the unlicensed carrier according to the LBT procedure, The first user device transmits sidelink consistent LBT failure indication information indicating the sidelink consistent LBT failure to the wireless access node. The method according to claim 1, further comprising:

10. The first user device, Expiration of a timer initiated in response to an LBT failure indication from the LBT procedure or a sidelink consistency LBT failure triggered by the LBT procedure, The result of the LBT procedure is successful, or Channel occupancy is lower than a predetermined threshold. In accordance with at least one of the following, determining LBT failure recovery with respect to the unlicensed carrier for the sidelink transmission. The method according to claim 1, further comprising:

11. Depending on whether the first user device is within the coverage of the wireless access node, the first user device receives from the wireless access node a timer value indicating when the timer has expired and a predetermined threshold value. The method according to claim 10, further comprising:

12. The method according to claim 10, wherein the timer value indicating when the timer expires and the predetermined threshold are pre-configured by the first user device.

13. A wireless communication device comprising a processor and memory, wherein the processor is configured to read a code from the memory in order to carry out the method according to any one of claims 1 to 12.

14. A computer program product comprising a computer-readable program medium, the computer-readable program medium storing code, and the code, when executed by a processor, causes the processor to carry out the method according to any one of claims 1 to 12.

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