Method, mobile device, and access network node

The method for exchanging resource configuration and assistance information for UE-to-UE PRS transmission addresses the challenge of resource allocation for sidelink positioning, improving accuracy and efficiency in out-of-coverage scenarios.

JP2025529658APending Publication Date: 2025-09-09NEC CORP
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Patent Information

Application Number
JP2025505513
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2022-08-12
Filing Date
2023-07-31
Publication Date
2025-09-09

AI Technical Summary

Technical Problem

Current communication technologies lack efficient methods for configuring and scheduling resources for sidelink positioning reference signals (SL-PRS) in wireless communication systems, particularly in scenarios where UEs are out of network coverage.

Method used

A method for UE-to-UE communication involving the exchange of resource configuration information for direct UE-to-UE positioning reference signal (PRS) transmission, including frequency resources, symbol durations, and comb patterns, as well as assistance information for resource allocation by access network nodes.

Benefits of technology

Enables precise and efficient sidelink positioning even in out-of-coverage scenarios by optimizing resource allocation and configuration for SL-PRS, enhancing positioning accuracy and reducing resource conflicts.

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Abstract

A UE is disclosed that receives information from another user equipment (UE) regarding at least one resource configuration for direct UE-to-UE positioning reference signal (PRS) transmission by the other UE, and the UE selects at least one resource for transmission of the at least one direct UE-to-UE PRS based on the information and transmits the at least one direct UE-to-UE PRS using the at least one resource.
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Description

[Technical Field]

[0001] The present disclosure relates to communication systems. The present disclosure particularly, but not exclusively, to wireless communication systems and devices operating in accordance with the 3rd Generation Partnership Project (3GPP)® standard or an equivalent or derivative thereof (including LTE-Advanced, Next Generation or 5G networks, future generations, and beyond). The present disclosure particularly, but not necessarily exclusively, relates to resource allocation for sidelink positioning in new radio (NR) communication systems. [Background technology]

[0002] Previous developments in 3GPP standards include what are called the Long Term Evolution (LTE) of the Evolved Packet Core (EPC) network and the Evolved UMTS Terrestrial Radio Access Network (E-UTRAN), also commonly referred to as "4G." More recently, the terms "5G" and "new radio" (NR) have been used to refer to evolving communications technologies that are expected to support a variety of applications and services, such as MTC / IoT communications, vehicular communications and autonomous vehicles, high-definition video streaming, and / or smart city services. Various details of 5G networks are described, for example, in Non-Patent Document 1. 3GPP intends to support 5G with the so-called 3GPP Next Generation (NextGen) radio access network (RAN) and 3GPP NextGen core (NGC) network.

[0003] Under 3GPP standards, a NodeB (or eNB in ​​LTE, gNB in ​​5G) is a radio access network (RAN) node (or simply "access node," "access network node," or "base station") through which communication devices (user equipment or "UE") connect to the core network and communicate with other communication devices or remote servers. Communication between UEs and base stations is controlled using the so-called Radio Resource Control (RRC) protocol. For simplicity, this application uses the term RAN node or base station to refer to any such access node.

[0004] In current 5G architectures, the gNB structure can be divided into two parts known as the Central Unit (CU) and the Distributed Unit (DU), connected by an F1 interface. This allows for the use of a "split" architecture, whereby the "upper" CU layer (e.g., typically, but not necessarily or exclusively, the Packet Data Convergence Protocol (PDCP) layer) and the "lower" DU layer (e.g., typically, but not necessarily or exclusively, the radio link control (RLC) layer / media access control (MAC) layer / physical (PHY) layer) are implemented separately. Thus, for example, in each gNB, some gNB upper layer CU functions can be implemented centrally (e.g., by a single processing unit or in a cloud-based or virtualized system) while keeping some gNB lower layer DU functions local.

[0005] For simplicity, this application uses the terms communication device, user device, or UE to refer to any communication device that can connect to a core network via one or more base stations. While this application may refer to mobile or user devices in the description, it will be understood that the described techniques can be implemented in any (mobile and / or generally fixed) communication device that can connect to a communication network to transmit / receive data, regardless of whether such communication device is controlled by human input or software instructions stored in memory. For example, such communication devices may be human-operable or may be partially or fully automated (MTC / IoT) devices.

[0006] The ability to precisely determine the location of a UE has long been a key development in cellular communications technology. Initially driven by regulatory requirements for emergency calling, cellular positioning technologies have been developed to provide significant improvements in accuracy, coverage range (both indoor and outdoor), latency, reliability, etc.

[0007] Positioning in 5G is expected to support many diverse positioning use cases, each with its own respective performance requirements. These use cases include, for example, improved indoor navigation (e.g., in shopping malls, hospitals, or underground facilities), tracking of unmanned (autonomous) vehicles, public safety applications (e.g., helping first responders reach emergency situations more quickly or monitoring the location of vulnerable people), smart factories, localized sensing, digital twins, augmented / virtual reality, etc.

[0008] Positioning methods supported by 5G include RAT-dependent methods including Observed Time Difference Of Arrival (OTDOA)-based positioning, Uplink Time Difference of Arrival (UTDOA)-based positioning, Roundtrip time (RTT)-based positioning, Angle of Arrival (AOA)-based positioning, among others, and RAT-independent methods including Global Navigation Satellite System (GNSS)-based positioning, barometric sensor-based positioning, and Bluetooth-based positioning.

[0009] To support improved (e.g., more accurate / precise) NR positioning-related measurements (compared to LTE), new reference signals and associated measurements are introduced in 5G. These signals include newly defined dedicated positioning reference signals (PRS) for downlink positioning and sounding reference signals (SRS) for uplink positioning. For example, a UE can perform downlink reference signal time difference (DL RSTD) measurements of each base station's PRS for downlink positioning and report these to a location server for downlink positioning. Similarly, each base station can measure uplink relative time of arrival (UL-RTOA) and report the measurements to a location server for uplink positioning. In addition, channel state information reference signals (CSI-RS) and synchronization signal blocks (SSBs) can also be used (e.g., as part of the enhanced cell ID (E-CID) positioning method).

[0010] More recent NR developments include providing positioning for UEs in RRC inactive states, on-demand transmission and reception of downlink PRS, improvements to angle-based methods, improved reporting of information from UEs and base stations to support mitigation of multipath / non-line of sight (NLOS) effects, improved signaling and procedures to reduce positioning latency, and signaling and procedures to support global navigation satellite system (GNSS) positioning integrity.

[0011] Current communication technologies also offer various ways for UEs to communicate data directly with each other without using base station resources (although in some cases, the UEs require at least some control signaling from the base station). Such communication is often referred to as UE-to-UE direct communication, device-to-device (D2D) communication, or sidelink communication. D2D communication was initially specified as part of the Proximity Service (ProSe) service in Releases 12 and 13 of the 3GPP specifications. As part of the ProSe service, a new D2D interface was introduced. This D2D interface is referred to as "PC5" or "sidelink" in the physical layer. Sidelink provides a direct link for device-to-device communication, regardless of network coverage. As D2D technology develops, sidelink has been further refined for vehicular use cases to address high-speed (up to 250 km / h along roads and 500 km / h along railroads) and high-density (thousands of nodes) scenarios.

[0012] Sidelink has several application areas / use cases, such as proximity services, public safety, IoT including machine-type communications and sensors, and wearable devices, among others. The term Vehicle-to-Everything (V2X) covers the special application area of ​​Sidelink / PC5 aimed at vehicle-to-vehicle communications using a direct link. V2X encompasses at least the following categories: Vehicle-to-Vehicle (V2V); Vehicle-to-Infrastructure (V2I); Vehicle-to-Pedestrian (V2P); Vehicle-to-Home (V2H); and enhanced Vehicle-to-Everything (eV2X).

[0013] Because sidelink communication involves direct communication between UEs, it supports various use cases in which the UEs are not necessarily within the coverage of the base station. These use cases include the in-coverage use case, in which both UEs involved in the sidelink communication are within the coverage of the base station; the partial coverage use case, in which one UE involved in the sidelink communication is within the coverage of the base station while the other UE involved in the sidelink communication is not; and the out-of-coverage use case, in which neither UE of a given pair of UEs involved in the sidelink communication is within the coverage of the base station. Of course, a given UE may alternate between the in-coverage, partial coverage, and out-of-coverage scenarios.

[0014] Many of these sidelink use cases require positioning, and therefore there is a general need to develop technologies and improvements to support sidelink positioning. To develop such technologies and improvements to support sidelink positioning, specific scenarios and / or requirements that sidelink positioning may need to support must be fully considered. Coverage scenarios to consider include, for example, the various coverage scenarios introduced above (in-coverage, partial coverage, and out-of-coverage). Various use cases to consider include, for example, V2X use cases (e.g., those described in Non-Patent Document 2), public safety use cases (e.g., those also described in Non-Patent Document 2), commercial use cases (e.g., those described in Non-Patent Document 3), and / or industrial internet of things (IIOT) use cases (e.g., those described in Non-Patent Document 4). Requirements to consider include, for example, those specified in Non-Patent Document 2, Non-Patent Document 3, and / or Non-Patent Document 4. Additionally, it is necessary to consider spectrum (including FR2) that may be used for sidelink use cases, including both dedicated intelligent transportation system (ITS) spectrum and spectrum licensed to mobile network operators.

[0015] Sidelink communication between UEs uses physical channels similar to the corresponding physical channels used for communication between the base station and the UE. These sidelink physical channels include the Physical Sidelink Shared Channel (PSSCH) and the Physical Sidelink Control Channel (PSCCH). Control information for controlling sidelink communication, called sidelink control information (SCI), can be transmitted directly between UEs. The SCI is transmitted in two parts (called "stages"). The first stage is carried by the PSCCH, and the second stage is carried by the corresponding PSSCH associated with the PSCCH.

[0016] When a UE is within the base station's coverage, the base station can allocate and manage resources used for sidelink communication (e.g., V2V communication) from that UE to another UE using base station-to-UE communication over the air interface (e.g., the so-called Uu interface). In NR, this network-managed resource allocation is known as Mode 1 resource allocation, which is similar to the type of resource allocation known as Mode 3 in LTE (for V2X). In network-controlled resource allocation, sidelink radio resources can be allocated from a sidelink-only licensed carrier or from a licensed carrier that shares resources between the UE-to-UE sidelink and the UE-to-base station uplink. In NR, scheduling in the network-controlled resource allocation mode (Mode 1) can include dynamic grant (DG) scheduling (like LTE V2X Mode 3 scheduling) or configured grant (CG) scheduling (LTE V2X Mode 3 uses semi-persistent scheduling).

[0017] In DG scheduling, a UE requests resources from the base station for each transport block (TB) transmission (and for each possible blind or hybrid automatic repeat request (HARQ) retransmission). Specifically, the UE transmits a scheduling request (SR) to the base station on the uplink using the physical uplink control channel (PUCCH). The base station responds with downlink control information (DCI) using the physical downlink control channel (PDCCH) indicating the allocated sidelink resources (e.g., time resources in the form of one or more slots and frequency resources in the form of one or more subchannels). The allocated sidelink resources can be used for the transmission of the TB and up to two possible retransmissions of the same TB. Thus, DG scheduling offers high flexibility in resource scheduling and relatively low latency, although the need to request resources introduces some delay and increases signaling overhead.

[0018] In CG scheduling, the base station allocates a set of sidelink resources (called a configured grant (CG)) to the UE that can be used (persistently or semi-persistently) to transmit several TBs. The CG is configured using a set of parameters including a CG index, at least one time-frequency allocation, and the periodicity of the allocated SL resources. To support CG scheduling, the UE can provide UE assistance information to the base station. Therefore, CG scheduling potentially reduces signaling overhead and latency compared to DG, at the expense of resource scheduling flexibility.

[0019] When a UE is out of the coverage of any base station, the network cannot allocate and manage resources used for sidelink communication. Therefore, to enable sidelink communication by out-of-coverage UEs, the UE can apply autonomous resource selection techniques. In NR, this autonomous resource selection is known as Mode 2 resource allocation, which is similar to the type of resource allocation (for V2X) known as Mode 4 in LTE. Specifically, when operating in autonomous resource selection mode, the UE can autonomously select sidelink resources (one or several subchannels) from a resource pool that can be pre-configured and / or configured by the base station when the UE is in network coverage. NR autonomous mode (Mode 2) resource allocation supports dynamic and semi-persistent scheduling methods. When using the dynamic method, the UE can select new resources for each TB and reserve them (by notifying in-range UEs) only for future retransmissions of that TB. The semi-persistent method can be enabled or disabled within a given resource pool by (pre-)configuration. When a UE reserves resources for a future transmission, it informs nearby ("neighboring") UEs using a first stage SCI sent directly from one UE to another using the physical sidelink control channel (PSCCH). When using a semi-persistent scheduling scheme, the UE can select and reserve resources for the transmission (and their retransmissions) of several TBs.

[0020] In autonomous mode, the UE selects new sidelink resources when it generates a new TB. In the semi-persistent scheme, the selection can also be triggered if the new TB is too large to be transmitted on the previously reserved resources. To select new sidelink resources (either dynamic or semi-persistent), the UE first sets a time interval (corresponding to a set of slots) called the selection window which contains resources (called candidate resources) from which new sidelink resources will be selected for the transmission of the TB.

[0021] When not transmitting, the UE performs sensing to identify available candidate resources. The sensing is performed during a time interval called the sensing window, which corresponds to a series of slots. During the sensing process, the UE decodes first-stage SCIs received from other UEs on the sensed sidelink resources. Each first-stage SCI received from each UE indicates the sidelink resources reserved for retransmissions of the TB associated with the first-stage SCI and the resources reserved for the initial transmission and retransmissions of the next TB. The UE also measures the transmissions associated with each first-stage SCI received from other UEs (e.g., reference signal received power (RSRP)). The UE stores the sensed information (decoded first-stage SCIs and RSRP measurements) and, based on the sensed information, determines which candidate resources should be excluded from the selection window (and therefore which candidate resources can be selected) if a new selection is triggered.

[0022] The sidelink radio resources may be configured such that network-controlled (Mode 1) resource allocation and autonomous (Mode 2) resource selection use separate resource pools. However, it is also possible to configure the sidelink radio resources such that network-controlled (Mode 1) resource allocation and autonomous (Mode 2) resource allocation share the same resource pool. Pool sharing has the advantage of potentially increasing resource efficiency, at the expense of conflicts (e.g., potential collisions) between transmissions scheduled using different modes. To address this, a UE operating in network-controlled resource allocation mode informs other autonomous resource selection mode UEs of the allocated resources for their future (re)transmissions, e.g., using the first stage SCI transmitted directly from one UE to another using the PSCCH as described above. [Prior art documents] [Non-patent literature]

[0023] [Non-Patent Document 1] 'NGMN 5G White Paper' V1.0 by the Next Generation Mobile Networks (NGMN) Alliance,<https: / / www.ngmn.org / 5g-white-paper.html> [Non-patent document 2] 3GPP TR 38.845 V1.0.1 [Non-patent document 3] 3GPP TS 22.261 V18.3.0 [Non-patent document 4] 3GPP TS 22.104 V18.3.0 Summary of the Invention [Problem to be solved by the invention]

[0024] To support positioning involving the sidelink, it has been proposed to introduce sidelink positioning reference signals (SL-PRS or S-PRS), i.e., positioning reference signals transmitted / received on the sidelink and used for positioning purposes. Therefore, an efficient method for configuring and scheduling resources for such SL-PRS signals is needed.

[0025] The present disclosure aims to provide an apparatus and associated methods that are intended to contribute at least in part to meeting one or more of the above needs. [Means for solving the problem]

[0026] In one aspect, the present disclosure provides a method performed by a user equipment (UE), the method including receiving, from another UE, information regarding at least one resource configuration for direct UE-to-UE positioning reference signal (PRS) transmission by the other UE, selecting, based on the information, at least one resource for transmission of the at least one direct UE-to-UE PRS, and transmitting the at least one direct UE-to-UE PRS using the at least one resource.

[0027] The information may indicate at least one of at least one frequency resource reserved for direct UE-to-UE PRS transmission, a frequency offset of the resources reserved for direct UE-to-UE PRS transmission, a number of symbols per slot for direct UE-to-UE PRS transmission, or a comb pattern for direct UE-to-UE PRS transmission.

[0028] The information may be received periodically according to a periodicity. The information may indicate the periodicity. The information may be received in a first stage and may indicate that further information is to be transmitted in a second stage, the method further including receiving the further information. The further information may include at least one parameter related to at least one of muting or repetition applied with respect to at least one direct-to-UE PRS transmitted by another UE. The information may be received periodically according to a first periodicity, and the further information is received according to a second periodicity different from the first periodicity. The information may indicate enabling or disabling of at least one resource configuration. The method may further include communicating with the other UE to identify at least one shared resource for transmission of at least one direct-to-UE PRS by the UE that is multiplexed with transmission of at least one other direct-to-UE PRS by the other UE.

[0029] In one aspect, the present disclosure provides a method performed by a user equipment (UE), the method including transmitting assistance information to an access network node to assist in allocation of at least one resource for direct UE-to-UE positioning reference signal (PRS) transmissions, receiving from the access network node an allocation of at least one resource for direct UE-to-UE PRS transmissions based on the assistance information, and transmitting the at least one direct UE-to-UE PRS using the at least one resource.

[0030] The assistance information may indicate at least one of the following: availability of a UE to be used as an anchor node, a speed of the UE, a direction of travel of the UE, or a current location of the UE. The allocation of at least one resource for direct UE-to-UE PRS transmission may be allocation of at least one shared resource for multiplexing transmission of at least one direct UE-to-UE PRS with transmission of at least one other direct UE-to-UE PRS by another UE.

[0031] In one aspect, the present disclosure provides a method performed by a user equipment (UE), the method including transmitting information regarding at least one resource configuration for direct UE-to-UE positioning reference signal (PRS) transmission by the UE to another UE for selection by the other UE of at least one resource for transmission of the at least one direct UE-to-UE PRS based on the information, and receiving the at least one direct UE-to-UE PRS using the at least one resource.

[0032] In one aspect, the present disclosure provides a method performed by an access network node, the method including receiving assistance information from a UE to assist in allocation of at least one resource for direct UE-to-UE positioning reference signal (PRS) transmissions, and transmitting to the UE an allocation of the at least one resource for direct UE-to-UE PRS transmissions based on the assistance information.

[0033] In one aspect, the present disclosure provides a user equipment (UE), comprising: means for receiving, from another UE, information regarding at least one resource configuration for direct UE-to-UE positioning reference signal (PRS) transmission by the other UE; means for selecting, based on the information, at least one resource for transmission of the at least one direct UE-to-UE PRS; and means for transmitting the at least one direct UE-to-UE PRS using the at least one resource.

[0034] In one aspect, the present disclosure provides a user equipment (UE), comprising: means for transmitting information regarding at least one resource configuration for direct UE-to-UE positioning reference signal (PRS) transmission by the UE to another UE for selection by the other UE of at least one resource for transmission of the at least one direct UE-to-UE PRS based on the information; and means for receiving the at least one direct UE-to-UE PRS using the at least one resource.

[0035] In one aspect, the present disclosure provides a method performed by an access network node, the method including means for receiving assistance information from a UE for assisting in allocation of at least one resource for direct UE-to-UE positioning reference signal (PRS) transmissions, and means for transmitting to the UE an allocation of the at least one resource for direct UE-to-UE PRS transmissions based on the assistance information. [Brief explanation of the drawings]

[0036] Embodiments of the present disclosure will now be described, by way of example, with reference to the accompanying drawings, in which: [Figure 1] FIG. 1 illustrates schematically a mobile (“cellular” or “wireless”) communications system. [Figure 2] FIG. 2 shows a typical frame structure that may be used in the telecommunications system of FIG. [Figure 3] FIG. 3 shows an exemplary configuration of a sidelink resource pool that may be used in the telecommunications system of FIG. [Figure 4A] FIG. 4A illustrates another type of slot format that may be used in telecommunications system 1. [Figure 4B] FIG. 4B illustrates another type of slot format that may be used in telecommunications system 1. [Figure 5] FIG. 5 is a simplified sequence diagram illustrating an exemplary dynamic grant procedure that may be implemented in the telecommunications system of FIG. [Figure 6] FIG. 6 is a simplified sequence diagram illustrating an exemplary configuration grant procedure that may be implemented in the telecommunications system of FIG. [Figure 7] FIG. 7 is a simplified diagram of how each CG may be configured in the telecommunications system of FIG. [Figure 8] FIG. 8 is a simplified diagram of how autonomous mode resource selection may operate in the telecommunications system of FIG. [Figure 9]FIG. 9 is a simplified schematic block diagram illustrating the main components of a UE for the telecommunications system of FIG. [Figure 10] FIG. 10 is a simplified schematic block diagram illustrating the main components of a base station for the telecommunications system of FIG. [Figure 11] FIG. 11 is a simplified sequence diagram illustrating a procedure involving sidelink control information transfer between two UEs in the telecommunications system of FIG. [Figure 12A] FIG. 12A is a simplified diagram of ways in which sidelink-downlink control may be provided in the telecommunications system of FIG. [Figure 12B] FIG. 12B is a simplified diagram of ways in which sidelink-downlink control may be provided in the telecommunications system of FIG. [Figure 13A] FIG. 13A is a simplified diagram of alternative ways in which sidelink-downlink control may be provided in the telecommunications system of FIG. [Figure 13B] 13B is a simplified diagram of another manner in which sidelink-downlink control may be provided in the telecommunications system of FIG. 1. [Figure 14] FIG. 14 is a simplified sequence diagram illustrating how UEs may be provisioned in the telecommunications system of FIG. [Figure 15] FIG. 15 is a simplified sequence diagram illustrating a method for resource allocation / selection in the telecommunications system of FIG. [Figure 16] FIG. 16 is a simplified diagram of multiplexing of three different UEs in the telecommunications system of FIG. [Figure 17] FIG. 17 is a simplified sequence diagram illustrating a method for joint resources in the telecommunications system of FIG. [Figure 18] FIG. 18 is a simplified diagram of one application of the method shown in FIG. [Figure 19] FIG. 19 is a simplified diagram of one application of the method shown in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0037] overview An exemplary telecommunications system will now be outlined, by way of example only, with reference to Figures 1 to 8.

[0038] FIG. 1 illustrates schematically a mobile (“cellular” or “wireless”) communications system 1 to which embodiments of the present disclosure are applicable.

[0039] In network 1, user equipment (UE) 3-1, 3-2, 3-3, 3-4 (e.g., mobile phones and / or other mobile devices) can communicate with one another via radio access network (RAN) nodes 5 that operate according to one or more compatible radio access technologies (RATs). In the illustrated example, the RAN nodes 5 comprise NR / 5G base stations or "gNBs" 5 that operate one or more associated cells 9. Communications via the base stations 5 are typically routed through a core network 7 (e.g., a 5G core network or evolved packet core network (EPC)).

[0040] As will be appreciated by those skilled in the art, while FIG. 1 shows four UEs 3 and one base station 5 for illustrative purposes, the system, when implemented, will typically include other base stations and UEs.

[0041] Each base station 5 controls one or more associated cells, either directly or indirectly via one or more other nodes (such as home base stations, repeaters, remote radio heads, distributed units, and / or transmission reception points (TRPs)). It will be appreciated that the base stations 5 may be configured to support both 4G and 5G, and / or any other 3GPP or non-3GPP communication protocols.

[0042] A UE 3 and its serving base station 5 are connected via a suitable air interface (such as, for example, the so-called "NG-Uu" interface). Neighboring base stations 5 may be connected to each other via a suitable inter-base station interface (such as, for example, the so-called "X2" interface, "Xn" interface, etc.).

[0043] The core network 7 includes several logical nodes (or "functions") for supporting communications in the telecommunications system 1. In this example, the core network 7 comprises a control plane function (CPF) 10 and one or more user plane functions (UPF) 11. The CPF 10 includes one or more Access and Mobility Management Functions (AMF) 10-1, one or more Session Management Functions (SMF) 10-2, one or more Location Management Functions (LMF) 10-3, and several other functions 10-n.

[0044] The base stations 5 are connected to core network nodes via appropriate interfaces (or "reference points"), such as the N2 reference point between the base stations 5 and the AMF 10-1 for communication of control signaling, and the N3 reference point between the base stations 5 and each UPF 11 for communication of user data. The UEs 3 are each connected to the AMF 10-1 via a logical non-access stratum (NAS) connection over the N1 reference point (similar to the S1 reference point in LTE). It will be appreciated that the N1 communications are transparently routed via the base stations 5.

[0045] The one or more UPFs 11 are connected to an external data network 20 (eg, an IP network such as the Internet) via a reference point N6 for the communication of user data.

[0046] The AMF 10-1 performs mobility management related functions, maintains a non-NAS signaling connection with each UE 3, and manages UE registrations. The AMF 10-1 is also responsible for managing paging. The SMF 10-2 is connected to the AMF 10-1 via the N11 reference point. The SMF 10-2 provides session management functions (forming part of the MME functions in LTE) and also combines some control plane functions (provided by the Serving Gateway and Packet Data Network Gateway in LTE). The SMF 10-2 is also responsible for allocating IP addresses to each UE 3.

[0047] The LMF 10-3 manages support for various location services for a UE 3 whose location is unknown and needs to be determined (the "target UE"), including positioning the UE 3 and delivering assistance data to the UE 3. The LMF 10-3 may interact with the serving base station 5 of the target UE 3 to obtain location measurements for the target UE 3, including uplink measurements (e.g., of SRS) obtained by the base station and downlink measurements (e.g., of PRS / SL-PRS) obtained by the UE 3 and provided to the base station 5. The LMF 10-3 may interact with the target UE 3 to deliver assistance data if a particular location service is requested, or to obtain a position estimate if requested.

[0048] For positioning of the target UE 3, the LMF 10-3 determines the positioning method to be used based on factors that may include, for example, location service (LCS) client type, required quality of service (QoS), UE positioning capabilities, and / or base station positioning capabilities. The LMF 10-3 may invoke these positioning methods in the UE 3 and / or the serving base station. The positioning methods may result in position estimates for UE-based positioning methods and / or positioning measurements for UE-assisted and network-based positioning methods. The LMF 10-3 may combine the received results to determine a single position estimate for the target UE 3. Additional information, such as the accuracy and speed of the position estimate, may also be determined.

[0049] The LMF 10-3 is connected to the AMF 10-1 via an NL reference point. The LMF 10-3 is configured to receive measurement results and assistance information (e.g., of PRS) from the base station 5 and / or the UE 3 over the NL interface via the AMF 10-1 and calculate the position of the UE 3 based on the measurement results. Communication of positioning information between the base station 5 and the LMF 10-3 utilizes an appropriate protocol (such as NR Positioning Protocol A (NRPPa)). The LMF 10-3 is also configured to configure the UE 3 using an appropriate protocol (e.g., LTE positioning protocol (LPP)) via the AMF 10-1.

[0050] The base station 5 is configured for the transmission of control information and user data via several downlink (DL) physical channels and for the transmission of several physical signals, and the UE 3 is configured for the reception of control information and user data via several downlink (DL) physical channels and for the transmission of several physical signals, where the DL physical channels correspond to resource elements (REs) carrying information originated from higher layers and the DL physical signals correspond to REs used by the physical layer and do not carry information originated from higher layers.

[0051] The physical channels may include, for example, a physical downlink shared channel (PDSCH), a physical broadcast channel (PBCH), and a physical downlink control channel (PDCCH). The PDSCH carries data that shares the capacity of the PDSCH on a time and frequency basis. The PDSCH can carry various data items, including, for example, user data, UE-specific higher-layer control messages mapped downward from higher-level channels, system information blocks (SIBs), and paging. The PDCCH carries downlink control information (DCI) to support several functions, including, for example, scheduling downlink transmissions on the PDSCH and uplink data transmissions on the physical uplink shared channel (PUSCH). The PBCH provides a master information block (MIB) to the UE. It also supports time and frequency synchronization in conjunction with the PDCCH, which aids in cell acquisition, selection, and reselection.

[0052] DL physical signals may include, for example, reference signals (RS) and synchronization signals (SS). Reference signals (sometimes known as pilot signals) are signals having a pre-defined special waveform known to both the UE 3 and the base station 5. Reference signals may include, for example, cell-specific reference signals, UE-specific reference signals (UE-RS), the aforementioned positioning reference signals (PRS), and channel state information reference signals (CSI-RS).

[0053] Similarly, UE 3 is configured for transmitting control information and user data via several uplink (UL) physical channels corresponding to REs carrying information originated from higher layers and UL physical signals corresponding to REs used at the physical layer that do not carry information originated from higher layers, and base station 5 is configured for receiving control information and user data via several uplink (UL) physical channels corresponding to REs carrying information originated from higher layers and UL physical signals corresponding to REs used at the physical layer that do not carry information originated from higher layers. The physical channels may include, for example, a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), and / or a physical random access channel (PRACH). The UL physical signals may include, for example, a demodulation reference signal (DMRS) for UL control / data signals and / or a sounding reference signal (SRS) used for UL channel measurements and / or UL positioning.

[0054] 2, which illustrates a typical frame structure that may be used in telecommunications system 1, base stations 5 and UEs 3 of telecommunications system 1 communicate with each other using resources organized in the time domain into frames of 10 ms length. Each frame contains 10 equally sized subframes of 1 ms length. Each subframe is divided into one or more slots comprising 14 Orthogonal Frequency-Division Multiplexing (OFDM) symbols of equal length.

[0055] As can be seen in FIG. 2, the telecommunication system 1 supports a number of different numerologies (subcarrier spacing (SCS), slot length, and therefore OFDM symbol length). Specifically, each numerology is identified by a parameter μ, where μ=0 represents 15 kHz (corresponding to the LTE SCS). Now, the SCS for other values ​​of μ can in fact be derived from μ=0 by scaling up by powers of two (i.e., SCS=15×2 μ kHz). The relationship between the parameter μ and SCS (Δf) is shown in Table 1. [Table 1]

[0056] In the communication system 1, the cell bandwidth can be divided into multiple bandwidth parts (BWPs), each of which starts at a respective starting resource block (RB) and includes a set of consecutive RBs with a given numerology (sub-carrier spacing (SCS) and cyclic prefix (CP)) on a given carrier. Configuring a small BWP for a UE 3 can reduce the computational complexity and power consumption of the UE 3. Because each BWP can have a different bandwidth and numerology, the BWPs enable flexible and efficient use of resources by dividing the carrier bandwidth to multiplex transmissions with different configurations and requirements.

[0057] Thus, the UE 3 and base station 5 of the communication system 1 are configured to operate using BWPs. For each serving cell of the UE 3, the base station 5 can configure at least one downlink (DL) BWP (e.g., the first DL BWP). The base station 5 can configure the UE 3 with up to (typically four) additional DL BWPs, with only a single DL BWP active at a given time. The UE 3 is not expected to receive PDSCH, PDCCH, or CSI-RS outside the active bandwidth portion (except for radio resource management (RRM)). If the serving cell is configured with an uplink (UL), the base station 5 can configure at least one UL BWP (e.g., the first UL BWP). The base station 5 can configure the UE 3 with up to (typically four) additional UL BWPs, with only one UL BWP active at a given time. The UE 3 does not transmit PUSCH or PUCCH outside the active bandwidth portion. In an active cell, the UE 3 does not transmit SRS outside the active bandwidth portion.

[0058] A BWP identifier or index (BWP-ID) is used to refer to a BWP (independently in UL and DL), so that various radio resource control (RRC) configuration procedures can use the BWP-ID to associate them with a particular BWP.

[0059] The UE 3 and base stations 5 are configured to support positioning in the telecommunications system 1, e.g., by transmitting appropriate reference signals (e.g., SRS on the uplink and PRS on the downlink, respectively) for position determination, performing appropriate measurements on those reference signals (e.g., PRS on the downlink and SRS on the uplink, respectively), and reporting the results to the LMF 10-3. The UE 3 may perform measurements of the time at which reference signals (e.g., PRS) are received from different base stations 5 to determine a downlink reference signal time difference (DL RSTD), e.g., for purposes of DL time difference of arrival (DL-TDOA)-based positioning. The UE 3 may perform measurements of downlink reference signal received power (DL RSRP) per beam / base station, e.g., for use in determining a downlink angle of departure (DL AoD) based on the UE beam position for each base station. The LMF 10-3 can then use the AoD to estimate the UE position. The base station 5 may perform measurements of the time at which a reference signal (e.g., SRS) is received at the base station 5 to determine the uplink relative time of arrival (UL RTA), e.g., for purposes of UL time difference of arrival (UL-TDOA)-based positioning. The base station 5 may perform measurements of the angle of arrival of the received reference signal based on the beam in which the UE is located, e.g., for purposes of UL angle of arrival (UL-AOA)-based positioning. The UE 3 and the base station 5 may also perform receiver-transmitter (Rx-Tx) time difference measurements of the signals in each cell. Measurement reports containing the results of these measurements from the UE 3 and the base station 5 can then be used by the LMF 10-3 to derive the corresponding round trip time (RTT) for purposes of multi-cell RTT-based positioning.

[0060] In the telecommunications system 1, at least some of the UEs 3-1, 3-2, and 3-4, when within range, can perform direct (UE-to-UE) or "sidelink" communication with one another via a direct UE-to-UE interface (e.g., a "sidelink" or "PC5" interface). This direct communication can be in-coverage sidelink communication involving a pair of UEs 3-1, 3-2 both within the coverage of a base station 5 (e.g., as shown between UE 3-2 and UE 3-1), partial-coverage sidelink communication involving a UE 3-1 within the coverage of a base station 5 and a UE 3-4 not within the coverage of the base station 5 (e.g., as shown between UE 3-4 and UE 3-1), or out-of-coverage sidelink communication involving a pair of UEs 3-4 both outside the coverage of a base station 5.

[0061] The sidelink-capable UEs 3-1, 3-2, 3-4 are configured for communication via several dedicated sidelink physical channels and for transmission / reception of several SL physical signals, including the Physical Sidelink Broadcast Channel (PSBCH), the Physical Sidelink Feedback Channel (PSFCH), the Physical Sidelink Shared Channel (PSSCH), and the Physical Sidelink Control Channel (PSCCH).

[0062] The PSBCH carries the sidelink broadcast transport channel (SL-BCH) used for periodic (e.g., every 160 ms) transmission of the sidelink Master Information Block (MIB). The MIB carries system information for UE-to-UE communication. The information carried by the PSBCH is transmitted using the Sidelink Primary Synchronization Signal / Sidelink Secondary Synchronization Signal (S-PSS / SSS) as part of the sidelink-synchronization signal block (S-SSB).

[0063] The PSFCH is used to transmit hybrid automatic repeat request (HARQ) feedback from the receivers UE 3-1, 3-2, 3-4 to the transmitters UE 3-1, 3-2, 3-4 in the SL for unicast or groupcast communication.

[0064] The PSSCH contains the transport blocks (i.e., user data traffic) of the sidelink shared transport channel (SL-SCH) and is typically associated with the PSCCH transmitted in the same slot.

[0065] The sidelink-capable UEs 3-1, 3-2, 3-4 can transmit two stages of sidelink control information (SCI) for general sidelink communication: the first stage is carried by a PSCCH and the second stage is carried by a corresponding PSSCH associated with the PSCCH.

[0066] The UEs 3-1, 3-2, and 3-4 may use the first stage SCI to inform other UEs 3-1, 3-2, and 3-4 of resources allocated by the base station for a particular dynamic grant (DG) / configured grant (CG) period (e.g., in Mode 1) or resources autonomously selected by the UE (e.g., in Mode 2). The UEs 3-1, 3-2, and 3-4 may use the second stage SCI to inform other UEs 3-1, 3-2, and 3-4 of information used to decode the PSSCH and information used to support HARQ feedback and CSI reporting.

[0067] The first stage SCI may include, for example, information to enable sensing, information regarding resource allocation for the PSSCH, and, if necessary, an indication that the UE can receive conflict information in a coordinated manner. The first stage SCI typically includes, for example, a frequency resource (e.g., subchannel) allocation for the PUSCH, a time resource allocation, a resource reservation period for up to two further transmissions of the associated TB, a priority of the associated PUSCH, a demodulation reference signal (DMRS) pattern, information identifying the format and size of the second stage SCI, the modulation and coding scheme of the data payload carried in the associated PSSCH, one or more reserved bits, a beta offset indicator, and / or a DMRS port number.

[0068] The second stage SCI may carry information necessary to identify and decode the associated SL-SCH, as well as control for the HARQ procedure, triggers for channel state information (CSI) feedback, UE-UE coordination requests and information, etc. The second stage SCI typically includes, for example, an HARQ process ID, a new data indicator, a redundancy version, a source ID, a destination ID, and / or a CSI request.

[0069] Referring to FIG. 3, which illustrates a typical configuration of a sidelink resource pool that may be used in the telecommunications system of FIG. 1, the base station 5 can configure at least one respective dedicated sidelink BWP (SL-BWP) for each of the sidelink-capable UEs 3-1, 3-2, and 3-4. Each SL BWP occupies a contiguous portion of the bandwidth within the component carrier to which the cell 9 is served. Sidelink transmission and reception for a given UE 3-1, 3-2, and 3-4 are contained within the SL BWP configured for that UE 3-1, 3-2, and 3-4 and use the same numerology. Therefore, all physical channels, reference signals, and synchronization signals in the sidelink are transmitted within the corresponding SL BWP. This also means that in the sidelink, the UEs 3-1, 3-2, and 3-4 are not expected to receive or transmit using more than one numerology. The SL BWP is divided into common RBs, each consisting of 12 contiguous subcarriers with the same SCS, which is given by the numerology of the SL BWP.

[0070] The communication resources available for the sidelink include time resources (e.g., slots) and frequency resources (e.g., common RBs) within the SL BWP. A subset of these available sidelink resources may be pre-configured / configured by one or more UEs 3-1, 3-2, 3-4 to be used for their sidelink communications (transmission / reception). This subset of available resources may be referred to as a "resource pool."

[0071] A given UE 3-1, 3-2, 3-4 may be pre-configured / configured with multiple resource pools, including one or more resource pools for transmission (TX resource pools) and one or more resource pools for reception (RX resource pools). Thus, a UE 3-1, 3-2, 3-4 may receive data on a resource pool used by another UE 3-1, 3-2, 3-4 for SL transmission, while the UE 3-1, 3-2, 3-4 may further transmit on the sidelink using its transmit resource pool. Resource pools may be used for all transmission types (e.g., unicast, groupcast, and / or broadcast).

[0072] The common resource blocks in a resource pool may also be referred to as physical resource blocks (PRBs). As can be seen in Figure 3, the illustrated resource pool consists of consecutive PRBs and consecutive or non-consecutive slots pre-configured / configured for sidelink communication. The resource pool is configured to be in a SL BWP, and therefore a single numerology is used within the resource pool. If UEs 3-1, 3-2, and 3-4 are configured with an active UL BWP, the SL BWP also uses the same numerology as the UL BWP if both BWPs are on the same carrier.

[0073] The resource pool is divided in the frequency domain into a pre-configured / configured number ("L") of contiguous sub-channels (representing the smallest frequency unit for sidelink data transmission / reception), each of which contains a group of contiguous PRBs within a slot. The size of the sub-channel (in units of PRBs) is "M sub ” and may be pre-configured / configured to be any suitable size (e.g., 10, 12, 15, 20, 25, 50, 75, or 100 PRBs). Each sidelink transmission may use one or more subchannels.

[0074] In the time domain, the slots that are part of a resource pool are pre-configured / configured and occur at a preset period corresponding to a resource pool period (a resource pool period is typically, for example, 10240 ms). The slots that form the resource pool may be pre-configured / configured, for example, by a bitmap that may be of any suitable length (e.g., 10, 11, 12, ..., 160 bits).

[0075] Several different techniques for implementing SL-PRS using appropriate resource pools may be used. For example, one or more dedicated resource pools may be (pre)configurable in the UEs 3-1, 3-2, 3-4 for transmission / reception of SL-PRS and / or for transmission / reception of measurement reports carrying SL-PRS measurement results. In this case, a given dedicated SL-PRS resource pool may be (pre)configured as a transmitter (Tx) resource pool for transmission of SL-PRS or as a receiver (Rx) resource pool for reception of SL-PRS. Similarly, a given dedicated measurement report resource pool may be (pre)configured as a transmitter (Tx) resource pool for transmission of measurement reports or as a receiver (Rx) resource pool for reception of measurement reports. Resources from one or more pre-configured shared sidelink resource pools may be used for transmission / reception of SL-PRS and conventional sidelink (data) communications. If the dedicated resource pools are (pre)configurable, one or more separate dedicated resource pools may be (pre)configured for SL-PRS transmission / reception and measurement report transmission / reception, respectively. In this case, the SL-PRS resource pool typically contains SL-PRS transmission without transmission of measurement reports or other data. Nevertheless, the PSCCH carrying the first stage SCI and the PSSCH carrying the second stage SCI may be included in one timeslot together with the SL-PRS.

[0076] 4A and 4B respectively show different slot formats that may be used in the telecommunication system 1. As can be seen in FIGS. 4A and 4B, each slot may include a PSSCH, a PSCCH, a PSFCH, an automatic gain control (AGC), and a guard symbol. The AGC and guard symbols are transmitted as specific symbols. The AGC symbol may be used for level control in the sidelink receiver, while the guard symbol may be used as a guard period for switching between sidelink reception and transmission. The guard symbol is placed as a symbol directly after the PSSCH, PSFCH, or S-SSB.

[0077] The PSSCH is transmitted in consecutive symbols of a slot. The starting symbol and number of symbols for transmitting the PSSCH are configured by a higher layer (e.g., media access control (MAC)). The PSSCH cannot be transmitted in the same symbol configured for transmitting the PSFCH or the last symbol of a slot configured as a placeholder for a guard symbol.

[0078] Each sidelink UE 3-1, 3-2, 3-4 and the base station 5 are mutually configured to operate in a network-managed resource allocation mode (e.g., Mode 1 resource allocation) resource allocation (e.g., when the UE 3-1, 3-2, 3-4 is within the coverage of the base station 5). Scheduling in the network-controlled resource allocation mode may involve dynamic grant (DG) scheduling or may involve configured grant (CG) scheduling.

[0079] The network-managed resource allocation mode will now be described, by way of example only, with reference to Figures 5 to 7.

[0080] FIG. 5 is a simplified sequence diagram illustrating an exemplary dynamic grant procedure that may be implemented in communication system 1.

[0081] As can be seen in FIG. 5, in the illustrated example, a dynamic grant is used to transmit two TBs (TB1 and TB2). When UEs 3-1, 3-2, and 3-4 generate a transport block (TB1) at S510-1, they transmit a scheduling request to base station 5 at S512-1 (e.g., on the PUCCH) to request resources for transmitting TB1. Base station 5 responds at S514-1 with downlink control information (DCI) indicating the resources 500-1 that UEs 3-1, 3-2, and 3-4 should use for transmitting TB1 (and up to two possible retransmissions). UEs 3-1, 3-2, and 3-4 can then transmit TB1 at S516-1 using the scheduled resources 500-1 (e.g., using the PSSCH). A similar process occurs when another transport block (TB2) is generated at S510-2. Specifically, UEs 3-1, 3-2, and 3-4 send another scheduling request to base station 5 at S512-2 (e.g., on the PUCCH) to request resources 500-2 for transmitting TB2. Base station 5 responds at S514-2 with downlink control information indicating the resources 500-2 that UEs 3-1, 3-2, and 3-4 should use for transmitting TB2 (and up to two possible retransmissions). UE 3 can then transmit TB2 at S516-2 using the scheduled resources 500-2 (e.g., using the PSSCH).

[0082] FIG. 6 is a simplified sequence diagram illustrating an exemplary configuration grant procedure that may be implemented in communication system 1.

[0083] As can be seen in Figure 6, in the illustrated example, a configured grant is used to transmit two TBs (TB1 and TB2). When the UEs 3-1, 3-2, and 3-4 generate a transport block (TB1) in step S610-1, they do not request resources as they would with a dynamic grant, but instead wait until the base station 5 provides the UEs 3-1, 3-2, and 3-4 with a configured grant (CG) to use for transmitting data in step S612-1 (e.g., using radio resource control (RRC) signaling). The CG specifies a set of resources 600-1 that are periodically allocated to the UE 3. The CG is configured using a set of parameters including a CG index, a time-frequency resource allocation, and a periodicity of the allocated sidelink resources 600-1.

[0084] There are two possible CG types that can be used by the base station 5 and the UEs 3-1, 3-2, and 3-4: CG Type 1 and CG Type 2. Both can be configured using RRC signaling (as shown in S612-1). For CG Type 1, the CG resource 600-1 can be used immediately by the UEs 3-1, 3-2, and 3-4 until the CG is released by the base station 5 (also using RRC signaling). For CG Type 2, the CG resource 600-1 can be used by the UEs 3-1, 3-2, and 3-4 only after the CG is enabled by the base station 5 (e.g., using DCI signaling), as shown in S614-1. An enabled Type 2 CG remains enabled until it is disabled (e.g., using DCI signaling). In this case, the enable / disable DCI can also include a CG index and a time-frequency allocation for the CG Type 2. Once the CG is received (and in the case of CG type 2, once the CG is enabled), UEs 3-1, 3-2, and 3-4 may transmit TB1 (e.g., using PSSCH) using scheduled resource 600-1 at S616-1.

[0085] When another transport block (TB2) is generated in S610-2, the UEs 3-1, 3-2, and 3-4 wait until the CG period is complete (i.e., when the resources 600-1 of the configured grant are effectively reallocated) and then transmit TB2 using the scheduled resources 600-1 (e.g., using the PSSCH) in S616-2. The period configured for the CG may be adjusted to be equal to (or approximately equal to) the expected time between TBs based on information indicated by the UEs 3-1, 3-2, and 3-4 (e.g., in UE assistance information).

[0086] The CG scheme reduces the time required to transmit two TBs compared to the DG scheme. However, the DG scheme may be more resource efficient (since resources are allocated only when specifically needed for TB transmission), especially when handling aperiodic traffic.

[0087] Referring to FIG. 7, which is an illustrative example of how each CG may be configured in the communication system 1, CG Type 2 may be used to configure multiple different CGs for UEs 3-1, 3-2, and 3-4. With CG Type 2, a subset of the configured CGs may be enabled for each UE 3-1, 3-2, and 3-4 based on the UE's requirements (while resources of other CGs that are not enabled may be assigned to other UEs). CG Type 1 may also be used to configure multiple CGs, but in this case, the UE must enable each CG at the time of its configuration. Therefore, CG Type 1 reduces the signaling and time required to initiate transmission compared to CG Type 2, but if any of the multiple CG Type 1 CGs are not used by the UE, those resources are unavailable to other UEs.

[0088] To support scheduling in the network-managed resource allocation mode (mode 1), the UEs 3-1, 3-2, and 3-4 can provide UE assistance information to the base station 5. The UE assistance information can, for example, indicate sidelink-related information that allows the base station 5 to infer expected sidelink traffic characteristics. The UE assistance information typically includes, for example, the periodicity of TBs in the sidelink, the maximum TB size, and quality of service information. QoS information can include, for example, KPIs such as latency and reliability required by TBs and their priorities. The base station 5 can then use the UE assistance information to identify an appropriate CG that meets the expected future sidelink traffic requirements.

[0089] The base station 5 can use the UE assistance information to identify a CG for uplink communication that best matches the characteristics and requirements of traffic on the air interface. The UE assistance information can also help improve sidelink UE-to-network (e.g., vehicle-to-network) communication, where sidelink communication and communication with the base station 5 over the air interface share the same radio resources. The base station 5 can use the UE assistance information on sidelink traffic characteristics, for example, to schedule uplink transmissions to the base station 5 and identify an appropriate CG for uplink communication that minimizes interference with the sidelink communication. The UE assistance information reported to the base station 5 can include information for network-managed mode (Mode 1) or autonomous mode (Mode 2) sidelink scheduling. The UE assistance information can include, for example, information about sidelink traffic (e.g., sidelink channel busy rate of the sidelink resource pool) and UE-related location / mobility information (e.g., location, velocity). For example, the base station 5 can use the location information to determine that UEs are far enough apart from each other to allocate the same resources to them (or avoid allocating the same resources to relatively close UEs) in the network-managed resource allocation mode. In the case of autonomous mode, sidelink scheduling, location / mobility information can be used, e.g., to assign the same resource pool to sidelink UEs that are close to each other.

[0090] Each sidelink UE 3-1, 3-2, 3-4 is also configured to operate in an autonomous resource selection mode (e.g., Mode 2 resource selection) in which the UE 3-1, 3-2, 3-4 can autonomously select sidelink resources (one or several sub-channels) from a resource pool (e.g., when the UE 3-1, 3-2, 3-4 is not within the coverage of the base station 5). The autonomous allocation mode will now be described, by way of example only, with reference to Figure 8, which is a simplified illustration of how autonomous mode resource selection may operate in the telecommunications system of Figure 1.

[0091] Specifically, when operating in autonomous resource selection mode, the UEs 3-1, 3-2, and 3-4 can autonomously select sidelink resources (one or several subchannels) from a resource pool (which can be preconfigured and / or configured by the base station when the UEs 3-1, 3-2, and 3-4 are in network coverage). NR autonomous mode (Mode 2) resource allocation supports dynamic and semi-persistent scheduling methods. When using the dynamic method, the UEs 3-1, 3-2, and 3-4 can select new resources for each TB and reserve them only for future retransmissions of that TB (by notifying in-range UEs). The semi-persistent method can be enabled or disabled within a given resource pool by (pre)configuration. When reserving resources for future transmissions, the UEs 3-1, 3-2, and 3-4 notify nearby (“neighboring”) UEs using a first-stage SCI, which is transmitted directly from one UE to another using the physical sidelink control channel (PSCCH). When using a semi-persistent scheduling scheme, the UEs 3-1, 3-2, 3-4 can select and reserve resources for the transmission (and their retransmission) of several TBs.

[0092] In autonomous mode, the UE selects new sidelink resources when it generates a new TB. In semi-persistent mode, the selection can also be triggered if the new TB is too large to be transmitted on the previously reserved resources. To select new sidelink resources (either dynamic or semi-persistent), the UE 3-1, 3-2, 3-4 first sets a time interval (corresponding to a series of slots) called the selection window which contains resources (called candidate resources) from which new sidelink resources are selected for the transmission of the TB.

[0093] When a UE is not transmitting, it performs sensing to identify available candidate resources. The sensing is performed during a time interval called a sensing window, which corresponds to a series of slots. During sensing, the UE decodes the first-stage SCI received from other UEs 3-1, 3-2, and 3-4 on the sensed sidelink resources. Each first-stage SCI received from each UE 3-1, 3-2, and 3-4 indicates the sidelink resources reserved for retransmission of the TB associated with the first-stage SCI and the resources reserved for the initial transmission and retransmission of the next TB. The UEs 3-1, 3-2, and 3-4 also measure the transmissions (e.g., reference signal received power (RSRP)) associated with each first-stage SCI received from the other UEs 3-1, 3-2, and 3-4. The UEs 3-1, 3-2, 3-4 store the detected information (decoded first stage SCI and RSRP measurements) and, based on the detected information, determine the candidate resources that should be excluded from the selection window (and therefore the candidate resources that can be selected) if a new selection is triggered.

[0094] When selecting resources from the selection window to be used for transmission, the UE can use a two-step procedure. In the first step, the UE 3-1, 3-2, 3-4 limits the candidate resources it can select by excluding from the selection window those candidate resources that are reserved or for which the UE 3-1, 3-2, 3-4 cannot determine whether a reservation has been made. For example, the UE 3-1, 3-2, 3-4 excludes candidate resources in the selection window for which it may not have received a corresponding reservation (e.g., because the UE 3-1, 3-2, 3-4 was transmitting at a time when a corresponding reservation would have been announced by another UE 3-1, 3-2, 3-4). The UE 3-1, 3-2, 3-4 also excludes candidate resources reserved by other UEs 3-1, 3-2, 3-4 in the corresponding first-stage SCI detected and decoded during the detection window (according to a measured RSRP exceeding a threshold associated with the reservation). In a second step, the UEs 3-1, 3-2, 3-4 make a random selection of sidelink resources from the list of available candidate resources (i.e. candidate resources remaining after the exclusion step).

[0095] The start of the selection window T1 is the time resource (slot) n at which a new resource (re)selection is triggered (and resource selection begins) and the processing time (in slots) T required by the UE to identify candidate resources and select a new sidelink resource for transmission. proc,1 The end T2 (and therefore the size) of the selection window (for (re)selection triggering) depends on the UE implementation, but must be less than the packet delay budget (PDB) in slots.

[0096] The end of the sensing window is defined as the time resource (slot) n at which the next new resource (re)selection is triggered, and the time (in slots) T required to complete the sensing procedure (typically equal to 1 slot for 15 or 30 kHz SCS, and 2 or 4 slots for 60 or 120 kHz SCS, respectively).proc,0 The start of the detection window (and therefore its size) is set by referencing an integer T0 specified in number of slots (before trigger n). T0 depends on the SCS configuration (e.g., has a value equivalent to 1100 ms or 100 ms in number of slots). The selected value can be determined based on the (pre)configuration of the resource pool.

[0097] The sidelink-capable UEs 3-1, 3-2, 3-4 and the base station 5 of the communication system 1 are configured to support sidelink-based positioning. Specifically, the UEs 3-1, 3-2, 3-4 are configured to transmit, receive, measure, and report sidelink positioning reference signals (SL-PRS) via the base station 5. In particular, the sidelink-capable UEs 3-1, 3-2, 3-4 may be configured by the base station 5 and / or pre-configured with one or more resource pools to which resources for SL-PRS transmission and / or reception may be assigned.

[0098] Several various useful techniques for supporting sidelink-based positioning, and in particular for efficient resource allocation / selection for SL-PRS, are described in more detail below, merely by way of example. These exemplary techniques include, for example, the use of sidelink control information (SCI) design for SL-PRS, the use of sidelink UE assistance information for SL-PRS, resource allocation / selection for multiplexing SL-PRS from separate UEs, and joint / joint resource allocation / selection for SL-PRS for multiple UEs. For completeness, it will be understood that each of the various techniques for supporting sidelink-based positioning described herein may provide benefits to a communication system in its own right. Thus, these techniques are not mutually exclusive and may therefore be implemented in the same communication system, although implementation of all techniques is not required.

[0099] User Equipment Figure 9 is a schematic block diagram illustrating the main components of a UE 3 for the communication system 1 shown in Figure 1. In this example, the UE 3 is a UE capable of performing sidelink communication.

[0100] As shown, the UE 3 has transceiver circuitry 31 operable to transmit signals to and receive signals from a base station 5 via one or more antennas 33. The UE 3 includes a subscriber identity module (SIM) 36, which may be embodied in any suitable manner, for example, physically (e.g., as a universal integrated circuit card (UICC) or the like) or virtually (e.g., as an embedded SIM (eSIM) or the like). The UE 3 also has a controller 37 for controlling the operation of the UE 3. The controller 37 is associated with a memory 39 and is connected to the transceiver circuitry 31.

[0101] Although not necessary for the operation of the UE 3, the UE 3 may of course have all the usual functionality of a conventional UE 3 (e.g., a user interface 35 such as a touchscreen / keypad / microphone / speaker to allow direct control and interaction by a user), which may be provided by any one or any combination of hardware, software, and firmware, as appropriate. Software may be pre-installed in memory 39 and / or downloaded, for example, over a telecommunications network or from a removable data storage device (RMD).

[0102] In addition to subscriber and security information (such as the UE's international mobile subscriber identity (IMSI) and encryption keys), the SIM 36 may store UE pre-configuration information 38 for pre-configuring the UE 3. This pre-configuration information may include, for example, pre-configuration information for configuring the UE 3 with one or more resource pools (e.g., dedicated SL-PRS or measurement reporting resource pools) that can be applied autonomously by the UE 3 (without network involvement).

[0103] Controller 37, in this example, is configured to control the overall operation of UE 3 via program or software instructions stored in memory 39. As shown, these software instructions include, among other things, an operating system 41, a communications control module 43, a direct communications module 45, and a positioning module 47.

[0104] The communications control module 43 is operable to control overall communications between the UE 3 and its one or more serving base stations 5 (as well as other communications devices connected to the base stations 5, such as additional UEs and / or core network nodes). The communications control module 43 handles, for example, the generation / transmission / reception of signaling messages and sidelink / uplink / downlink data packets between the UE 3 and other nodes and devices. The signaling may include control signaling related to UE positioning (e.g., via system information or RRC). It will be understood that the communications control module 43 may include several sub-modules (“layers” or “entities”) to support specific functions. For example, the communications control module 43 may include a PHY sub-module, a MAC sub-module, an RLC sub-module, a PDCP sub-module, an IP sub-module, an RRC sub-module, etc. The communications control module 43 is also responsible for overall processing of uplink communications over associated uplink channels (e.g., via a physical uplink control channel (PUCCH) and / or a physical uplink shared channel (PUSCH)), including both dynamic and quasi-static signaling (e.g., SRS). The communications control module 43 is also configured for overall processing of reception of downlink communications over associated downlink channels (e.g., via a physical downlink control channel (PDCCH) and / or a physical downlink shared channel (PDSCH)), including both dynamic and quasi-static signaling (e.g., PRS). The communications control module 43 is responsible for determining resources to be used by UE 3, for determining how frequency resources and / or slots / symbols are configured (e.g., for UL or DL ​​communications, etc.), and for determining which one or more bandwidth portions are configured for UE 3.

[0105] The direct communication module 45 operates under the overall control of the communication control module 43 and is responsible for direct UE-to-UE (i.e., sidelink) communication. Direct UE-to-UE communication includes, for example, transmission / reception of SL-PRS and transmission / reception of SL-PRS-related measurement reports. Direct UE-to-UE communication may be based on control / configuration information received (e.g., via the communication control module 43) from base stations 5 (e.g., in downlink control information (DCI) provided in PDCCH, RRC, or MAC signaling) or from other UEs 3 (e.g., in sidelink control information (SCI) provided in PSCCH or PSSCH, or in RRC signaling transmitted / forwarded over the PC5 interface (e.g., using PC5-RRC signaling)). Nevertheless, it will be understood that direct UE-to-UE communication may be based fully or partially on configuration information obtained from the SIM 36 (e.g., stored as UE pre-configuration information 38). The direct communication module 45 is also responsible for determining, based on control / configuration information, the (shared and / or dedicated) resource pools and associated resources within these pools to be used by the UE 3 for direct UE-to-UE communication, including transmission / reception of SL-PRS and / or transmission / reception of SL-PRS related measurement reports.

[0106] The positioning module 47 is responsible for positioning related procedures, including, for example, performing measurements on sidelink positioning reference signals (SL-PRS) from other UEs and on PRS from the serving base station and / or other base stations, and generating associated measurement reports (e.g., time difference of arrival, etc.).

[0107] The positioning module 47 may communicate with other UEs 3 (via the direct communication module 45) over an appropriate UE-to-UE interface, such as a sidelink / PC5. The positioning module 47 may also communicate (via the communication control module 43) with positioning function entities in the core network 7, such as base stations 5 and / or LMFs 10-3. Such communication with positioning function entities may be used, for example, to assist the UE 3 in determining the location of the UE (or the location of another device) and / or providing that location to the UE 3 (if determined by the positioning function entity itself).

[0108] base station FIG. 6 is a schematic block diagram illustrating the main components of a base station 5 for the communication system 1 shown in FIG. 1. As shown, the base station 5 has transceiver circuitry 51 for transmitting signals to and receiving signals from communication devices (such as UEs 3) via one or more antennas 53 (e.g., antenna arrays / massive antennas), and a core network interface 55 (e.g., including N2, N3, and other reference points / interfaces) for transmitting signals to and receiving signals from network nodes in the core network 7. Although not shown, the base station 5 may also be connected to other base stations via appropriate interfaces (e.g., so-called “Xn” interfaces in NR). The base station 5 has a controller 57 for controlling the operation of the base station 5. The controller 57 is associated with a memory 59. Software may be pre-installed in the memory 59 and / or downloaded, for example, via the communication network 1 or from a removable data storage device (RMD). The controller 57, in this example, is configured to control the overall operation of the base station 5 by program or software instructions stored in the memory 59.

[0109] As shown, these software instructions include, among other things, an operating system 61, a communications control module 63, a direct communications management module 65, and a positioning module 67.

[0110] The communications control module 63 is operable to control communications between the base station 5 and the UE 3 and other network entities connected to the base station 5. The communications control module 63 is configured for overall control of reception of uplink communications over associated uplink channels (e.g., over a physical uplink control channel (PUCCH) and / or a physical uplink shared channel (PUSCH)), including both dynamic and quasi-static signaling (e.g., SRS). The communications control module 63 is also configured for overall processing of transmission of downlink communications over associated downlink channels (e.g., over a physical downlink control channel (PDCCH) and / or a physical downlink shared channel (PDSCH)), including both dynamic and quasi-static signaling (e.g., PRS).

[0111] The direct communication management module 65 is responsible for managing the network-controlled aspects of direct UE-to-UE (i.e., sidelink) communications (e.g., for in-coverage UEs or out-of-coverage UEs communicating with in-coverage UEs in partial-coverage sidelink scenarios). The direct communication module 65 is responsible, for example, for managing transmission control / configuration information for direct UE-to-UE communications to UEs 3 (e.g., in downlink control information (DCI) provided in PDCCH, RRC, or MAC signaling) for relaying by the receiving UE to the out-of-coverage UE (e.g., over the PC5 interface (e.g., PC5-RRC signaling)), as the case may be. The control / configuration information may include, for example, information for configuring (shared and / or dedicated) resource pools and / or information for allocating associated resources within these pools to be used by UEs 3 for direct UE-to-UE communications (e.g., including transmission / reception of SL-PRS and / or transmission / reception of SL-PRS-related measurement reports).

[0112] The positioning module 67 is responsible for network-side positioning-related procedures, including, for example, performing measurements on SRS from the UE and generating associated measurement reports (e.g., time difference of arrival, etc.) The positioning module 67 may communicate with positioning function entities in the core network 7, such as the LMF 10-3 (via the communication control module 63).

[0113] Sidelink control information for SL-PRS As mentioned above, sidelink control information (SCI) used to support resource scheduling for data (TB) transmitted from one UE 3-1, 3-2, 3-4 to another UE 3-1, 3-2, 3-4 on the sidelink may need to include various different types of information. The SCI typically includes a first stage SCI used by one UE 3-1, 3-2, 3-4 to inform another UE 3-1, 3-2, 3-4 of resources allocated by the base station 5 during a particular DG / CG period in network-managed mode or resources autonomously selected by the UE 3-1, 3-2, 3-4 in autonomous selection mode. The SCI also typically includes a second stage SCI carrying information used, for example, to decode the PSSCH and support HARQ feedback and CSI reporting.

[0114] The first stage SCI may typically include, for example, frequency resources (e.g., subchannels) of the PSSCH, resource reservations for up to two further retransmissions of the TB, information specifying the priority of the associated PSSCH, the format and size of the second stage SCI, and the MCS of the data payload to be carried on the associated PSSCH.

[0115] Beneficially, a communication system implements an SCI design for SL-PRS to provide information supporting resource scheduling for SL-PRS, which may provide signaling efficiency. Specifically, the SCI design for SL-PRS is based on the recognition that at least some of the information identifying frequency resources (e.g., subchannels) of the PSSCH typically used for scheduling resources for data (TB) may be unnecessary. Similarly, at least some of the resource reservation information may be unnecessary, priority information is likely unnecessary, and the format and size of the second-stage SCI may be unnecessary. The MCS of the data payload carried on the associated PSSCH is also not particularly relevant to SL-PRS scheduling. However, there may be SL-PRS-related information that, if provided, can provide improvements in resource selection (e.g., in efficiency, signaling overhead, etc.).

[0116] There are various possible ways in which the SCI design for SL-PRS may be implemented, and several different SCI design variations for SL-PRS may be configured in UEs 3-1, 3-2, 3-4 depending on the specific requirements of a given scenario.

[0117] Some possible SCI design implementations for SL-PRS will now be described, by way of example only, with reference to Figures 11 to 13.

[0118] FIG. 11 is a simplified sequence diagram illustrating sidelink control information transfer between two UEs in the communication system 1.

[0119] 11, in one SL-PRS SCI design variation, UE 3-1 provides a first-stage SCI (as seen in S1110), and no additional second-stage SCI is provided (or required). Providing an SL-PRS SCI in this manner is possible because, in the case of a dedicated S-PRS resource pool, only S-PRS may be transmitted, and no data traffic may be transmitted, so a two-stage SCI is not necessarily required. It will be appreciated that this SL-PRS SCI design variation may be applicable to both network-configured resource allocation (Mode 1) and pre-configured / autonomous resources (Mode 2).

[0120] In this example, the first stage SCI typically includes information indicating the frequency resources (e.g., subchannels) reserved exclusively for the SL-PRS, the frequency offset of the SL-PRS, the number of symbols (e.g., per slot) for the SL-PRS, the starting symbol of the SL-PRS, and / or possibly the comb pattern for the SL-PRS. It will be appreciated that all or any portion of the SCI may be provided at a particular time. Furthermore, different portions of the SCI may be transmitted at different times.

[0121] 11, in another SCI for SL-PRS design variation, UE 3-1 provides the first stage SCI (as seen at S1112-1) and an additional second stage SCI is provided (as seen at S1112-2). It will be appreciated that this SCI for SL-PRS design variation may be applicable to both network-configured resource allocation (mode 1) and pre-configured / autonomous resources (mode 2).

[0122] In this example, the first stage SCI typically includes information indicating the frequency resources (e.g., subchannels) reserved exclusively for the SL-PRS, the frequency offset of the SL-PRS, the number of symbols (e.g., per slot) for the SL-PRS, the starting symbol of the SL-PRS, possibly the comb pattern for the SL-PRS, whether a second stage SCI is being transmitted, and / or the format and size of the second stage SCI (if a second stage SCI is being transmitted).

[0123] The second stage SCI typically includes information indicating additional possible S-PRS configuration information (eg, including muting and / or repetition related parameters associated with the transmission of the SL-PRS).

[0124] It will be appreciated that all or any portion of the SCI may be provided at a particular time. Additionally, different portions of the SCI may be transmitted at different times.

[0125] 12A and 12B and 13A and 13B are simplified diagrams of ways in which sidelink-downlink control may be provided in the telecommunications system of FIG. 1, respectively.

[0126] 12A illustrates how only the first stage SCI may be provided, in this example, periodically. Specifically, the PSCCH carrying the first stage SCI is transmitted only every n slots (e.g., n=2 in this example, but may be another (pre)configured periodicity). Thus, there is no first stage SCI in slot 2.

[0127] In this example, there is a hypothetical risk that another UE may assume that resources in slots not containing a first stage SCI are not used for SL-PRS and therefore select resources with a risk of collision.

[0128] This risk can be avoided by including in the first stage SCI the period at which the first stage SCI is repeated, so that another UE can assume that the resources indicated by the first stage SCI are reserved / occupied and will not be released even in slots where no first stage SCI is detected (e.g., slots k+1 and k+3 in the illustrated example).

[0129] FIG. 12B illustrates another method in which only the first-stage SCI may be provided, but in this case, the first-stage SCI provides implicit or explicit enablement and / or disablement instructions for the indicated resource configuration and / or a previously configured resource configuration (e.g., indicates when the indicated configuration of the specified resources is enabled or when the previously indicated configuration of the specified resources is disabled). Thus, the first-stage SCI may be transmitted only when the configuration of the S-PRS needs to be changed; otherwise, only the S-PRS is transmitted (beneficially providing improved resource utilization). In this case, the UE may attempt to blindly detect the first-stage SCI every slot, and if no SCI is detected, may assume that the S-PRS pattern configured by the last received SCI remains applicable.

[0130] In this example, there is a hypothetical risk that a collision may occur if a transmitted first stage SCI is not detected (e.g., in slots k+1, k+2, k+3). To mitigate this potential problem, the UE may be configured to continue treating configured resources as in use until a deactivation signal is received so that the associated resources can be released.

[0131] 13A illustrates how both the first stage SCI and the second stage SCI may be provided, in this example, periodically. However, in this example, the periodic first stage SCI may be provided with a different period than the period of the second stage SCI (e.g., the first stage SCI has a shorter period than the second stage SCI). In the illustrated example, the first stage SCI is transmitted only every n slots (e.g., n=2), and the second stage SCI is transmitted only every m slots (e.g., m=4).

[0132] 13B illustrates another way in which both first and second stage SCIs may be provided, where the first stage SCI provides implicit or explicit enable and / or disable indications for the indicated resource configuration and / or the configured resource configuration as described. The first stage SCI may also indicate whether a second stage SCI is included in a particular slot (and possibly the format / size of the second stage SCI).

[0133] UE SL-PRS support information As mentioned above, in the case of network-managed resource allocation (mode 1), the base station 5 may allocate a set of sidelink resources to the UEs 3-1, 3-2, 3-4 for transmitting several TBs. To support this, the UEs 3-1, 3-2, 3-4 may first send a message containing UE assistance information to the base station 5 to indicate information about the expected sidelink traffic, including, for example, the TB periodicity, the maximum TB size, and QoS information (including, for example, KPIs such as latency and reliability required by the TBs and their priorities).

[0134] Beneficially, a communication system implements a UE assistance information design for SL-PRS to provide information supporting resource scheduling for SL-PRS, which may provide signaling efficiency.

[0135] Specifically, the UE assistance information design for SL-PRS is based on the recognition that at least some of the UE assistance information typically used for scheduling data (TB) resources may be unnecessary. For example, TBs may not need to be transmitted, and therefore at least some of the related information (e.g., related TB periodicity, TB size, and / or related KPIs) may be unnecessary. On the other hand, there may be SL-PRS-related information that, if provided, can provide improvements in resource selection (e.g., in efficiency, signaling overhead, etc.).

[0136] There are various possible ways in which the UE assistance information design can be implemented, and several different UE assistance information design variations can be configured in the UEs 3-1, 3-2, and 3-4 depending on the specific requirements of a given scenario.

[0137] One possible particularly useful SCI design implementation for SL-PRS will now be described by way of example only, with reference to FIG.

[0138] FIG. 14 is a simplified sequence diagram showing UE assistance information transfer between the UE 3-1 and the base station 5 in the communication system 1.

[0139] As can be seen in FIG. 14, the UE 3-1 provides UE assistance information to the base station 5 (as can be seen at S1410).

[0140] In this example, the UE assistance information typically includes information indicating the availability of the transmitting UE to be used as a so-called "anchor" node (a UE from which the location of another UE can be determined) for positioning purposes. This information is particularly useful as it allows the implementation of SL-PRS resource allocation methods for anchor UEs. The indication of availability to be used as an anchor node may be part of the UE's inherent capabilities (i.e., part of the UE capabilities) via a "static" indication (so the base station 5 can assume that the availability of a UE to be used as an anchor node remains unchanged). The indication of availability to be used as an anchor node may be provided as a dynamic or semi-static indication.

[0141] The UE assistance information may alternatively or additionally include mobility and / or location related information, such as UE velocity, as appropriate, UE heading or orientation, as appropriate, and / or current location, as appropriate. It will be understood that all or any portion of this information may be provided at a particular time. Furthermore, different portions of this information may be transmitted at different times.

[0142] SL-PRS multiplexing As described above, in network-managed resource allocation (mode 1), the base station 5 can allocate resources to the sidelink-capable UEs 3-1, 3-2, 3-4 for normal data transmission, and these resources cannot be used for data transmission by other sidelink-capable UEs. In autonomous mode (mode 2), the UEs 3-1, 3-2, 3-4 can exclude candidate resources based on reservations received (e.g., in the first stage SCI) from other UEs 3-1, 3-2, 3-4 detected during the detection window. In this case, candidate resources can be excluded if the UEs 3-1, 3-2, 3-4 measure an RSRP higher than the RSRP threshold associated with the reservation. Once a resource block has been reserved for normal data transmission, it cannot be used by another UE 3-1, 3-2, 3-4.

[0143] Beneficially, the communication system implements a resource scheduling / selection method for SL-PRS that may provide signaling and / or resource utilization efficiencies compared to reuse methods for normal data transmissions.

[0144] This resource scheduling / selection method is based on the recognition that the S-PRS can be multiplexed using an appropriate comb pattern so that for SL-PRS transmission the same resources can be used by two or more UEs 3-1, 3-2, 3-4 transmitting S-PRS.

[0145] One possible method for autonomous resource selection will now be described, by way of example only, with reference to FIG.

[0146] FIG. 15 is a simplified sequence diagram illustrating a method for resource allocation / selection in the communication system 1.

[0147] As shown in Figure 15, the UE 3-4 detects SCI (at least the first stage SCI) from another sidelink-capable UE 3-1 in the detection window (S1510-1 to S1510-3). It will be understood that SCI can be received from both a UE that is to transmit SL-PRS and a UE that is to transmit normal data (TB).

[0148] During the detection phase, the UE 3-4 (at S1512) eliminates candidate resources based on reservations received from other UEs 3-1 in the first stage SCIs detected during the detection window. Advantageously, when a first stage SCI for an SL-PRS is received (e.g., as described with reference to FIGS. 11 to 13), the UE 3-4 determines relevant information regarding the SL-PRS transmission. This relevant information may include, for example, a comb size associated with the SL-PRS transmission of the other UE 3-1, a frequency offset associated with the SL-PRS transmission of the other UE 3-1, and a number of symbols associated with the SL-PRS transmission of the other UE 3-1. Thus, the receiving UE 3-4 can determine whether any symbols / resource elements remain for transmitting its own SL-PRS.

[0149] Beneficially, in this example, the measurement of the RSRP threshold for resources reserved for SL-PRS and the associated comparison to the threshold are omitted. In addition to providing processing and other efficiencies, avoiding this step may help avoid SL-PRS collisions where either RSRP measurement may fall below the threshold.

[0150] Beneficially, a given UE 3-4 can support multiple SL-PRS patterns, with each UE using a different SL-PRS pattern.

[0151] For example, referring to Figure 16, which illustrates the multiplexing of three different UEs in two resource blocks (RB1 and RB2), a first UE (UE1) is multiplexed with a second UE (UE2) in one resource block (RB1) with a comb size of 2. Also shown is the first UE (UE1) multiplexed with a third UE (UE3) in another resource block (RB1) with a comb size of 4. Thus, UE1 supports two comb sizes, namely 2 and 4, with two possible associated SL-PRS patterns deployed on separate resource blocks (RBs).

[0152] Joint resource allocation / selection for SL-PRS As mentioned above, in network-managed resource allocation (mode 1), the base station 5 can allocate resources to the sidelink-capable UEs 3-1, 3-2, 3-4 for normal data transmission, and these resources cannot be used for data transmission by other sidelink-capable UEs. In autonomous mode (mode 2), the UEs 3-1, 3-2, 3-4 can randomly select sidelink resources from the list of available candidate resources (in "step 2" after filtering out some candidate resources).

[0153] However, allocation by the base station 5 to a single UE 3-1, 3-2, 3-4 (mode 1) or random selection in autonomous mode (mode 2) may be suitable when a resource block is used by a single UE 3-1, 3-2, 3-4, which may be inefficient for SL-PRS resource allocation / selection.

[0154] Thus, beneficially, the communication system implements joint / joint resource allocation / selection of SL-PRS for multiple UEs. Such joint selection may be particularly efficient for SL-PRS multiplexing scenarios (e.g., such as those described with reference to FIG. 16 ) where different UEs can share resources of the same one or more resource blocks using an appropriate comb pattern.

[0155] Two methods for joint / joint resource allocation / selection will now be described, by way of example only, with reference to FIG.

[0156] FIG. 17 is a simplified sequence diagram illustrating a method for joint resource allocation / selection in communication system 1.

[0157] In the first method, joint resource allocation is performed in a network-managed mode (mode 1). As can be seen in Figure 17, after receiving appropriate UE-specific SL-PRS assistance information from several UEs 3-1, 3-3 in steps S1710-1 and S1710-2 (e.g., including an indication regarding the availability of UEs to be used as anchor nodes and / or mobility / location information, as described above), the UEs are grouped into one or more groups based on their respective assistance information (in step S1711), and each group of UEs selects respective resources to use in a multiplexing manner. The base station 5 then grants group common resources to the UEs in each group (in steps S1712-1 and S1712-2).

[0158] In the second method, joint resource allocation is performed in autonomous resource selection mode (mode 2). As shown in FIG. 17, in this example, multiple UEs negotiate with each other to adjust the resources to be used and possibly shared among a group of UEs. This negotiation may be based on assistance information shared directly between UEs in the sidelink (e.g., SL-PRS-dedicated UE assistance information (sidelink)). For example, a first UE 3-3 can send assistance information to a second UE 3-1, including a priority indication (high, low), self-selection resource allocation information, an S-PRS pattern index, a comb size, etc. The second UE 3-1 can respond with its own resource selection based on the resource allocation of the first UE 3-3. If a resource selection message of another UE is received after the UE has sent its resource selection and there is a resource allocation conflict, both UEs can perform a resource reselection procedure, or the UE with the higher priority service can maintain its resource selection. If multiple UEs have the same priority level, the UE with the lower UE identifier can maintain its resource selection, while one or more other UEs can perform resource reselection.

[0159] Figure 18 is a simplified diagram of an application of the network-managed method shown in Figure 17 in an example application where the (anchor) UE is a roadside unit (RSU). Figure 19 is a simplified diagram of an application of the autonomous method shown in Figure 17 in an example application where the (anchor) UE is a roadside unit (RSU).

[0160] Modifications and Alternatives Detailed examples are described above along with several variations and alternatives. As those skilled in the art will appreciate, several modifications and alternatives can be made to the above examples while still benefiting from the disclosure embodied therein.

[0161] In the above description, for ease of understanding, the UE and base station are described as having several separate functional components or modules. While these modules may be provided in this manner in certain applications, such as when an existing system is modified to implement the present disclosure, in other applications, such as in systems designed from the beginning with the features of the present invention in mind, these modules may be incorporated into an overall operating system or code such that they may not be identifiable as separate entities.

[0162] In the above embodiments, several software modules have been described. As will be appreciated by those skilled in the art, the software modules may be provided in compiled or uncompiled form and may be supplied to the base station, mobility management entity, or UE via a computer network or as a signal on a recording medium. Furthermore, the functions performed by some or all of this software may be performed using one or more dedicated hardware circuits. However, the use of software modules is preferred as it facilitates updating the base station or UE to update its functionality.

[0163] Each controller may comprise any suitable form of processing circuitry, including, but not limited to, for example, one or more hardware-implemented computer processors, microprocessors, central processing units (CPUs), arithmetic logic units (ALUs), input / output (IO) circuitry, internal memory / cache (program and / or data), processing registers, communication buses (e.g., control, data, and / or address buses), direct memory access (DMA) facilities, hardware or software-implemented counters, pointers, and / or timers, etc. Various other modifications will be apparent to those skilled in the art and will not be described in further detail herein.

[0164] The base station may comprise a "distributed" base station having a central unit "CU" and one or more individual distributed units (DUs).

[0165] User equipment (or "UE," "mobile station," "mobile device," or "wireless device") in this disclosure is an entity that connects to a network via an air interface.

[0166] It should be noted that the present disclosure is not limited to dedicated communication devices, but can be applied to any device having communication capabilities as described in the following paragraphs.

[0167] The terms "user equipment" or "UE" (as that term is used in 3GPP), "mobile station," "mobile device," and "wireless device" are generally intended to be synonymous with each other and include standalone mobile stations such as terminals, cell phones, smartphones, tablets, cellular IoT devices, IoT devices, and machines. It will be understood that the terms "mobile station" and "mobile device" also encompass devices that remain stationary for extended periods of time.

[0168] A UE may be, for example, an item of production or manufacturing equipment and / or an item of energy-related machinery (e.g., equipment or machinery such as boilers, engines, turbines, solar panels, wind turbines, hydroelectric generators, thermal generators, nuclear generators, batteries, nuclear systems and / or related equipment, heavy electrical machinery, pumps including vacuum pumps, compressors, fans, blowers, hydraulic equipment, pneumatic equipment, metalworking machinery, manipulators, robots and / or application systems thereof, tools, dies or molds, rolls, conveying equipment, elevators, material handling equipment, textile machinery, sewing machinery, printing and / or related machinery, paper converting machinery, chemical machinery, mining and / or construction machinery and / or related equipment, machinery and / or implements for agriculture, forestry and / or fisheries, safety and / or environmental protection equipment, tractors, precision bearings, chains, gears, power transmission equipment, lubrication equipment, valves, pipe fittings, and / or application systems for any of the foregoing equipment or machinery, etc.).

[0169] A UE may be, for example, an item of transportation equipment (e.g., a rail car, a car, a motorcycle, a bicycle, a train, a bus, a cart, a rickshaw, a boat or other watercraft, an aircraft, a rocket, a satellite, a drone, a balloon, etc.).

[0170] A UE may be, for example, an item of information and communications equipment (eg, information and communications equipment such as electronic computers and related equipment, communications and related equipment, electronic components, etc.).

[0171] The UE may be, for example, a refrigerator, a refrigerator application product, an item of trade and / or service industry equipment, a vending machine, an automated service machine, an office machine or equipment, a home appliance or electronic device (e.g., a household appliance such as audio equipment, video equipment, loudspeakers, radios, televisions, microwave ovens, rice cookers, coffee machines, dishwashers, washing machines, dryers, electronic fans or related equipment, vacuum cleaners, etc.).

[0172] The UE may be, for example, an electrical application system or device (eg, an electrical application system or device such as an x-ray system, a particle accelerator, a radioisotope device, a sonic device, an electromagnetic application device, a power application device, etc.).

[0173] The UE may be, for example, an electronic lamp, a lighting fixture, a measuring instrument, an analyzer, a tester, or a surveying or detecting device (e.g., a smoke alarm, a human alarm sensor, a motion sensor, a radio tag, or other surveying or detecting device), a watch or clock, laboratory equipment, optical equipment, medical equipment and / or systems, a weapon, cutlery, a hand tool, etc.

[0174] The UE may be, for example, a wirelessly equipped personal digital assistant or related equipment, such as a wireless card or module designed for attachment or insertion into another electronic device (eg, a personal computer, electrical measuring instrument).

[0175] The UE may be a device or part of a system that uses various wired and / or wireless communication technologies to provide the applications, services, and solutions described below with respect to the "internet of things (IoT)."

[0176] Internet of Things devices (or "Things") may be equipped with appropriate electronics, software, sensors, and / or network connectivity that enable them to collect and exchange data with each other and other communication devices. IoT devices may comprise automated equipment that follows software instructions stored in internal memory. IoT devices may operate without the need for human supervision or interaction. IoT devices may also remain stationary and / or inactive for extended periods of time. IoT devices may be implemented as part of (typically) stationary equipment. IoT devices may also be incorporated into non-stationary equipment (e.g., vehicles) or attached to animals or people being monitored / tracked.

[0177] It will be appreciated that IoT technology may be implemented in any communication device that can connect to a communication network to send / receive data, whether such communication device is controlled by human input or software instructions stored in memory.

[0178] It will be understood that an IoT device may also be referred to as a Machine-Type Communication (MTC) device or a Machine-to-Machine (M2M) communication device. It will be understood that a UE may support one or more IoT applications or MTC applications. Some examples of MTC applications are listed in the table below. This list is not exhaustive and is intended to indicate some examples of machine-type communication applications.

[0179] [Table 2]

[0180] The applications, services, and solutions may be MVNO (Mobile Virtual Network Operator) services, emergency wireless communication systems, PBX (Private Branch eXchange) systems, PHS / digital cordless telecommunications systems, POS (Point of sale) systems, incoming advertising systems, MBMS (Multimedia Broadcast and Multicast Service), V2X (Vehicle to Everything) systems, train radio systems, location-related services, disaster / emergency wireless communication services, community services, video streaming services, femtocell application services, VoLTE (Voice over LTE) services, billing services, wireless on-demand services, roaming services, activity monitoring services, telecommunications carrier / communication network selection services, function restriction services, PoC (Proof of Concept) services, personal information management services, ad hoc networks / DTN (Delay Tolerant Networking) services, etc.

[0181] Furthermore, the above-mentioned UE categories are merely examples of applications of the technical concepts and embodiments described in this document, and it goes without saying that these technical concepts and embodiments are not limited to the above-mentioned UEs and can be modified in various ways.

[0182] Various other modifications will be apparent to those skilled in the art and will not be described in further detail here.

[0183] Although the present disclosure has been specifically illustrated and described with reference to its embodiments, the present disclosure is not limited to these embodiments. Those skilled in the art will understand that various changes in form and details can be made without departing from the spirit and scope of the present disclosure as defined by the claims. Furthermore, each embodiment can be appropriately combined with at least one of the embodiments.

[0184] Each drawing or figure is merely an example for illustrating one or more embodiments. Each figure may not be associated with just one particular embodiment, but may be associated with one or more other embodiments. As one skilled in the art will understand, various features or steps described with reference to any one of the figures can be combined with features or steps shown in one or more other figures to create, for example, an embodiment not explicitly shown or described. Not all features or steps shown in any one of the figures are necessarily required to describe an embodiment, and some features or steps may be omitted. The order of steps described in any of the figures may be changed as appropriate.

[0185] All or part of the embodiments disclosed above may be described as, but are not limited to, the following supplementary notes. (Appendix 1) 1. A method performed by a user equipment (UE), comprising: receiving, from another UE, information regarding at least one resource configuration for direct UE-to-UE positioning reference signal (PRS) transmission by the other UE; selecting at least one resource for transmission of at least one direct UE-to-UE PRS based on the information; and transmitting the at least one direct UE-to-UE PRS using the at least one resource; A method comprising: (Appendix 2) The information is at least one frequency resource reserved for direct UE-to-UE PRS transmission; the frequency offset of resources reserved for direct UE-to-UE PRS transmissions; Number of symbols per slot for direct UE-to-UE PRS transmission, or Comb Patterns for Direct UE-to-UE PRS Transmission 2. The method of claim 1, wherein the method comprises: (Appendix 3) 3. The method of claim 1 or 2, wherein the information is received periodically according to a periodicity. (Appendix 4) 4. The method of claim 3, wherein the information indicates the period. (Appendix 5) the information is received in a first stage, the information indicating that further information is to be transmitted in a second stage; 3. The method of claim 1 or 2, further comprising receiving the further information. (Appendix 6) 6. The method of claim 5, wherein the further information includes at least one parameter related to at least one of muting or repetition applied for at least one direct UE-to-UE PRS transmitted by the other UE. (Appendix 7) 7. The method of claim 5 or 6, wherein the information is received periodically according to a first periodicity, and the further information is received according to a second periodicity different from the first periodicity. (Appendix 8) 8. The method of any one of claims 1 to 7, wherein the information indicates enabling or disabling of the at least one resource configuration. (Appendix 9) 9. The method of any one of Supplementary Notes 1 to 8, further comprising communicating with the other UE to identify at least one shared resource for transmission of at least one direct UE-to-UE PRS by the UE to be multiplexed with transmission of at least one other direct UE-to-UE PRS by the other UE. (Appendix 10) 1. A method performed by a user equipment (UE), comprising: transmitting assistance information to an access network node to assist in allocation of at least one resource for direct UE-to-UE positioning reference signal (PRS) transmission; receiving from the access network node an allocation of at least one resource for direct UE-to-UE PRS transmission based on the assistance information; transmitting the at least one direct UE-to-UE PRS using the at least one resource; A method comprising: (Appendix 11) The support information is the availability of UEs to be used as anchor nodes, UE speed, The direction of travel of the UE, or Current location of the UE 11. The method of claim 10, wherein the method instructs at least one of: (Appendix 12) 12. The method of claim 10 or 11, wherein the allocation of at least one resource for direct inter-UE PRS transmission is allocation of at least one shared resource for multiplexed transmission of at least one direct inter-UE PRS with a transmission of at least one other direct inter-UE PRS by another UE. (Appendix 13) 1. A method performed by a user equipment (UE), comprising: transmitting information regarding at least one resource configuration for direct UE-to-UE positioning reference signal (PRS) transmission by the UE to another UE for selection, by the other UE, of at least one resource for transmission of the at least one direct UE-to-UE PRS based on the information; receiving the at least one direct UE-to-UE PRS using the at least one resource; A method comprising: (Appendix 14) 1. A method performed by an access network node, comprising: receiving assistance information from the UE to assist in allocation of at least one resource for direct UE-to-UE positioning reference signal (PRS) transmission; transmitting to the UE an allocation of at least one resource for direct UE-to-UE PRS transmission based on the assistance information; and A method comprising: (Appendix 15) A user equipment (UE), means for receiving, from another UE, information regarding at least one resource configuration for direct UE-to-UE positioning reference signal (PRS) transmission by the other UE; means for selecting at least one resource for transmission of at least one direct UE-to-UE PRS based on said information; means for transmitting the at least one direct UE-to-UE PRS using the at least one resource; UE equipped with. (Appendix 16) A user equipment (UE), means for transmitting information regarding at least one resource configuration for direct UE-to-UE positioning reference signal (PRS) transmission by the UE to another UE for selection, by the other UE, of at least one resource for transmission of at least one direct UE-to-UE PRS based on the information; means for receiving the at least one direct UE-to-UE PRS using the at least one resource; UE equipped with. (Appendix 17) 1. A method performed by an access network node, comprising: receiving assistance information from the UE to assist in allocation of at least one resource for direct UE-to-UE positioning reference signal (PRS) transmission; transmitting to the UE an allocation of at least one resource for direct UE-to-UE PRS transmission based on the assistance information; and A method comprising:

[0186] This application is based on and claims the benefit of priority from UK Patent Application No. 2211854.1 filed on August 12, 2022, the disclosure of which is incorporated herein by reference in its entirety. [Explanation of symbols]

[0187] 1 Mobile (cellular or wireless) telecommunications systems 3. User Equipment 5 radio access network (RAN) nodes 7 Core Network 9 cells 10 control plane function (CPF) 10-1 Access and Mobility Management Function (AMF) 10-2 Session Management Function (SMF) 10-3 Location Management Function (LMF) 10-n Other Features 11 User Plane Function (UPF) 20 External Data Network 31 Transceiver Circuit 33 Antenna 35 User Interface 36 subscriber identity module(SIM) 37 Controller 38 UE pre-configuration information 39 Memory 41 Operating Systems 43 Communication Control Module 45 Direct Communication Module 47 Positioning Module 51 Transceiver circuit 53 Antenna 55 Core Network Interface 57 Controller 59 Memory 61 Operating Systems 63 Communication Control Module 65 Direct Communication Management Module 67 Positioning Module

Claims

1. 1. A method performed by a user equipment (UE), comprising: receiving, from another UE, information regarding a resource configuration for transmission of a direct UE-to-UE positioning reference signal (PRS) by the other UE; selecting resources for transmission of direct-to-UE PRS based on the information and a timing of transmission of the information; transmitting the direct-to-UE PRS using the resources; and A method comprising:

2. the timing of transmitting the information is a period of transmitting the information; The method of claim 1.

3. the timing of transmitting the information is a timing of enabling or disabling the resource configuration for transmitting the direct-to-UE PRS. The method of claim 1.

4. The information is frequency resources reserved for transmission of the direct-to-UE PRS; a frequency offset of resources reserved for transmission of the direct-to-UE PRS; the number of symbols per slot for transmission of the direct-to-UE PRS; or Comb pattern for transmission of the direct UE-to-UE PRS and the method includes excluding resources for transmitting the direct-to-UE PRS based on information indicated by the information.

4. The method according to any one of claims 1 to 3.

5. the information is received in first stage sidelink control information; the information indicating that further information is to be transmitted in second stage sidelink control information; The method further includes receiving the additional information; the further information includes parameters for at least one of muting or repetition to be applied for the direct UE-to-UE PRS transmitted by the other UE. The method of claim 4.

6. the information is received periodically according to a first period; the further information is received according to a second periodicity different from the first periodicity. The method of claim 5.

7. and identifying shared resources for transmission of the direct-to-UE PRS by the UE that are multiplexed with transmission of another direct-to-UE PRS by the other UE.

7. The method according to any one of claims 1 to 6.

8. Identifying the shared resources is performed by negotiating resources to be used with the other UE. The method of claim 7.

9. identifying the shared resource is signaled by an access network node; The method of claim 7.

10. transmitting assistance information to the access network node to assist in allocation of resources for transmission of a direct UE-to-UE positioning reference signal (PRS); receiving information from the access network node indicating allocation of the resources for transmission of the direct-to-UE PRS based on the assistance information; further comprising identifying the shared resources based on the information indicating allocation of the resources for transmission of the direct-to-UE PRS; 10. The method of claim 9.

11. The support information is the availability of the UE to be used as an anchor node; the speed of the UE; the direction of travel of the UE, or the current location of the UE The method of claim 10 , wherein the method indicates at least one of:

12. 1. A method performed by a user equipment (UE), comprising: transmitting information regarding a resource configuration for transmission of a direct UE-to-UE positioning reference signal (PRS) by the UE to another UE for selection, by the another UE, of resources for transmission of the direct UE-to-UE PRS based on the information and a timing of transmission of the information; receiving the direct-to-UE PRS using the resources; and A method comprising:

13. 1. A method performed by an access network node, comprising: receiving assistance information from a user equipment (UE) to assist in allocating resources for transmission of a direct UE-to-UE positioning reference signal (PRS); transmitting, to the UE, information indicating allocation of the resources for transmission of the direct-to-UE PRS based on the assistance information; Including, the information indicating the allocation of resources for transmission of the direct-to-UE PRS is used by the UE in identifying shared resources for transmission of the direct-to-UE PRS by the UE to be multiplexed with transmission of another direct-to-UE PRS by another UE; method.

14. A user equipment (UE), means for receiving, from another UE, information regarding a resource configuration for transmission of a direct UE-to-UE positioning reference signal (PRS) by the other UE; means for selecting resources for transmission of direct UE-to-UE PRS based on said information; means for transmitting the direct-to-UE PRS using the resources; A UE comprising:

15. A user equipment (UE), means for transmitting assistance information to an access network node to assist in allocation of resources for transmission of a direct UE-to-UE positioning reference signal (PRS); means for receiving information from the access network node indicating allocation of the resources for transmission of the direct-to-UE PRS based on the assistance information and timing of transmission of the information; means for transmitting the direct UE-to-UE PRS using the resources; A UE comprising:

16. A user equipment (UE), means for transmitting information regarding a resource configuration for transmission of a direct UE-to-UE positioning reference signal (PRS) by the UE to another UE for selection, by the another UE, of resources for transmission of the direct UE-to-UE PRS based on the information and a timing of transmission of the information; means for receiving the direct-to-UE PRS using the resources; A UE comprising:

17. an access network node, means for receiving assistance information from a user equipment (UE) for assisting in allocation of resources for transmission of a direct UE-to-UE positioning reference signal (PRS); means for transmitting, to the UE, information indicating allocation of the resources for transmission of the direct inter-UE PRS based on the assistance information; Equipped with the information indicating the allocation of resources for transmission of the direct-to-UE PRS is used by the UE in identifying shared resources for transmission of the direct-to-UE PRS by the UE to be multiplexed with transmission of another direct-to-UE PRS by another UE; Access network node.

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