Positioning setting method and electronic device
Patent Information
- Application Number
- JP2023532832
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-12-23
- Filing Date
- 2022-04-29
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2042-04-29
AI Technical Summary
Existing wireless communication systems only support UE positioning in RRC connected mode, limiting positioning capabilities when the UE is in an inactive state.
A method and apparatus for UE positioning in wireless communication systems that allow positioning-related settings to be reserved and not released when the UE enters an inactive state, enabling continued positioning measurements and configurations.
Supports UE positioning in RRC inactive state, maintains positioning continuity, reduces interruption time during UE movement, and minimizes power consumption and positioning delay.
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Abstract
Description
[Technical field]
[0001] The present disclosure relates to the technical field of wireless communication, and more particularly to a positioning setting method and electronic device. [Background technology]
[0002] Fifth generation (5G) mobile communication technology defines a wide frequency band to enable high transmission rates and new services, and can be implemented not only in the 'Sub 6GHz' band such as 3.5GHz, but also in the 'Above 6GHz' band, which includes 28GHz and 39GHz and is called mmWave. In addition, it has been considered to implement sixth generation (6G) mobile communication technology (called the Beyond 5G system) in the terahertz band (e.g., 95GHz to 3THz band) to achieve a transmission rate 50 times faster than 5G mobile communication technology and ultra-low latency that is one-tenth of that of 5G mobile communication technology.
[0003] In the early stages of 5G mobile communications technology development, standardization is underway on beamforming and massive multiple input multiple output (MIMO) to mitigate radio-wave path loss and increase transmission distance in mmWave in order to support services related to eMBB (enhanced Mobile Broadband), URLLC (Ultra Reliable Low Latency Communications), and mMTC (massive Machine-Type Communications) and meet performance requirements, numerologies (e.g., multiple subcarrier spacing operation) support and dynamic operation of slot formats to efficiently utilize mmWave resources, initial access technology to support multiple beam transmission and wideband, definition and operation of BandWidth Part (BWP), new channel coding methods such as Low Density Parity Check (LDPC) code for large-volume data transmission and polar code for reliable transmission of control information, layer 2 (L2) preprocessing, and network slicing to provide dedicated networks specialized for specific services.
[0004] Currently, discussions are underway regarding improvements and performance enhancements to the initial 5G mobile communications technology in terms of the services supported by 5G mobile communications technology. Physical layer standardization is being carried out for technologies such as Vehicle-to-Everything (V2X), which helps autonomous vehicles make driving decisions based on information on the vehicle's location and status transmitted by the vehicle to improve user convenience, New Radio Unlicensed (NR-U), which aims to operate a system that complies with various regulatory requirements in unlicensed bands, NR UE Power Saving, Non-Terrestrial Network (NTN), which is direct communication between UE and satellite to provide coverage in areas where communication with terrestrial networks is unavailable, and positioning.
[0005] In addition, standardization is underway for radio interface architecture / protocols related to technologies such as Industrial Internet of Things (IIoT) to support new services through linkage and integration with other industries, Integrated Access and Backhaul (IAB) to provide nodes for expanding network service areas by integrating wireless backhaul links and access links, mobility improvement including conditional handover and Dual Active Protocol Stack (DAPS) handover, and 2-step random access (2-step RACH for NR) to simplify random access procedures. In addition, standardization is underway for 5G baseline architecture (e.g., service-based architecture or service-based interface) to combine Network Functions Virtualization (NFV) and Software-Defined Networking (SDN) technologies, and system architecture / services related to Mobile Edge Computing (MEC) to receive services based on UE location.
[0006] As 5G mobile communication systems are commercialized, the number of connected devices, which is increasing exponentially, will be connected to communication networks, and it is expected that the improved functions and performance of 5G mobile communication systems and the integrated operation of connected devices will be required. For this reason, new research is planned on improving 5G performance and reducing complexity by utilizing extended reality (XR) to efficiently support augmented reality (AR), virtual reality (VR), mixed reality (MR), artificial intelligence (AI) and machine learning (ML), AI service support, metaverse service support, drone communication, etc.
[0007] In addition, the development of such 5G mobile communication systems will be the basis for the development of 6G mobile communication technologies such as multi-antenna transmission technologies such as FD-MIMO (Full Dimensional MIMO), array antennas and large antennas, meta-material-based lenses and antennas to improve the coverage of terahertz band signals, high-dimensional spatial multiplexing technology using OAM (Orbital Angular Momentum), and new waveforms to provide terahertz band coverage using RIS (Reconfigurable Intelligent Surface). It will also be the basis for the development of full-duplex technology to improve the frequency efficiency of 6G mobile communication technologies and improve system networks, AI-based communication technologies that realize system optimization by utilizing satellites and artificial intelligence (AI) from the design stage and incorporate end-to-end AI support functions, and next-generation distributed computing technologies that realize services at a level of complexity that overcomes the limits of UE operation capabilities by utilizing ultra-high performance communication and computing resources. Summary of the Invention [Problem to be solved by the invention]
[0008] In a legacy system, UE positioning is only supported in an RRC connected mode. The present disclosure provides a method and apparatus for positioning configuration in a wireless communication system. [Means for solving the problem]
[0009] Aspects and advantages of the disclosed embodiments will be set forth in part in the description that follows, and may be learned from the description, or may be learned by practice of the embodiments.
[0010] To achieve the above objectives, the present disclosure adopts the following technical solutions:
[0011] According to one aspect of an embodiment of the present disclosure, a method is provided for use by a first node in a wireless communication system, the method including identifying that a user equipment (UE) is entering an inactive state, and transmitting a message including information associated with a reservation of a positioning related configuration to a second node, where the positioning related configuration is not released for the UE in the inactive state based on the message.
[0012] According to another aspect of an embodiment of the present disclosure, a first node in a wireless communication system is provided, the first node including a memory and a processor coupled to the memory, the processor configured to identify a user equipment (UE) entering an inactive state and to transmit a message including information associated with a reservation of a positioning related configuration to a second node, where the positioning related configuration is not released for the UE in the inactive state based on the message.
[0013] According to another aspect of an embodiment of the present disclosure, there is provided a method performed by a second node in a wireless communication system, the method including receiving a message from a first node based on a user equipment unit (UE) entering a deactivated state, the message including information associated with a reservation of a positioning related configuration, and determining, based on the message, not to release a positioning related configuration for the UE in the deactivated state.
[0014] According to another aspect of an embodiment of the present disclosure, a first node in a wireless communication system is provided. The first node includes a memory and a processor coupled to the memory. The processor is configured to receive a message from the first node based on a user equipment (UE) entering an inactive state, where the message includes information associated with a reservation of a positioning related configuration. The processor is further configured to determine not to release a positioning related configuration for the UE in the inactive state based on the message.
[0015] According to another aspect of an embodiment of the present disclosure, there is provided a method performed by a user equipment (UE) in a wireless communication system, the method including entering an inactive state, receiving a message from a first node including information associated with a reservation of a positioning related configuration, and performing positioning measurements in the inactive state based on the positioning related configuration not released based on the message.
[0016] According to another aspect of an embodiment of the present disclosure, a user equipment (UE) in a wireless communication system is provided, the UE including a memory and a processor coupled to the memory, the processor configured to enter an inactive state, receive a message from a first node including information associated with a reservation of a positioning related configuration, and perform positioning measurements in the inactive state based on the positioning related configuration that is not released based on the message.
[0017] According to another aspect of the embodiment of the present disclosure, there is provided a positioning configuration method in a wireless communication system, the method including: a second node receiving first information related to a positioning of a user equipment (UE) under the first node from a first node; and the second node transmitting second information related to a positioning of the UE under the second node according to the first information to a third node; or the second node determining whether to release a configuration related to a positioning of the UE under the second node according to the first information; or the second node determining to activate a positioning measurement of the UE according to the first information.
[0018] According to an example embodiment, the third node makes a decision based on the first information.
[0019] According to an exemplary embodiment, the method further includes a step of the second node transmitting third information related to positioning of the UE under the second node to a node for location management and / or the UE directly or via the first node via the first information.
[0020] According to an exemplary embodiment, the first information comprises: (1) Related information indicating the node for location management; (2) relevant information indicating the transaction or measurement ID of the positioning procedure; (3) Information regarding the configuration of the UE's positioning signal; (4) relevant information for the requested positioning signal transmission characteristics; (5) relevant information for positioning activation; (6) Relevant information for positioning measurement requests; (7) Information indicating not to disable positioning-related setting information; (8) Information indicating that positioning-related settings have been deactivated; or (9) including at least one of information regarding a scheduled time for activating positioning measurements;
[0021] According to an exemplary embodiment, the third information is set (is set) based on related information indicating a node for location management and / or information indicating a transaction or measurement ID of a positioning procedure and / or information related to the configuration of a positioning signal of the UE in the first information and is set (is set) based on related information for a positioning signal transmission characteristic requested in the first information; the third information includes related information indicating the configuration of the positioning signal of the UE under the second node and / or whether the configuration of the positioning signal is changed.
[0022] According to an exemplary embodiment, based on the information of the node or cell in which the positioning reference point is located, included in the first information, the third node is determined as the node in which the node or cell is located.
[0023] According to an exemplary embodiment, the second information is: (1) Related information indicating the node for location management; (2) relevant information indicating the transaction or measurement ID of the positioning procedure; (3) Relevant information for the positioning measurement request; (4) Related information for positioning activation; or (5) At least one of third information related to the positioning of the UE under the second node is included.
[0024] According to an exemplary embodiment, the step of receiving, by the second node, from the first node, first information related to positioning of the UE under the first node comprises: (1) receiving first information from a node for location management by a base station; (2) receiving first information from the UE by the base station; (3) receiving first information from the first base station by the second base station; (4) a distributed unit (DU) of the base station receiving first information from a centralized unit (CU) of the base station; (5) receiving first information from a core network node by the base station; or (6) The method includes at least one of steps of: a core network receiving the first information from the base station.
[0025] According to an exemplary embodiment, the second node receives the first information from the first node via a UE context search related message or a handover related message, or the second node receives the first information from the UE via a radio resource control (RRC) related message.
[0026] According to an exemplary embodiment, the method further includes at least one of the following situations: (1) The second node transmits third information to a node for location management through an associated message for a next generation application protocol (NGAP) route change, or an associated message for transmitting a first non-access stratum (NAS) message of the UE, or an associated message for an uplink non-UE associated NR positioning protocol A (NRPPa) transmission; (2) The second node receives information on a positioning activation request from the node for location management through an associated message for route switching or an associated message for disconnection of the NG Application Protocol (NGAP); (3) the second node transmits third information to the node for location management via the Xn message via the first node; (4) The second node receives information regarding the positioning activation request sent from the node for position management via the first node through the Xn message.
[0027] According to another aspect of the present disclosure, there is provided a positioning configuration method in a wireless communication system, the system including: a third node receiving, based on first information related to positioning of a user equipment (UE) under the first node received by the second node from the first node, second information related to positioning of the UE under the second node from the second node.
[0028] According to an exemplary embodiment, the first information comprises: (1) Related information indicating the node for location management; (2) relevant information indicating the transaction or measurement ID of the positioning procedure; (3) Information regarding the configuration of the UE's positioning signal; (4) relevant information for the requested positioning signal transmission characteristics; (5) Related information for positioning activation; or (6) Includes at least one of the relevant information for the positioning measurement request.
[0029] According to an exemplary embodiment, the third node receives second information from the second node by information of a node or cell in which a positioning reference point indicated by relevant information for a positioning measurement request in the first information is located.
[0030] According to an exemplary embodiment, the second information is: (1) Related information indicating the node for location management; (2) relevant information indicating the transaction or measurement ID of the positioning procedure; (3) Relevant information for the positioning measurement request; (4) Related information for positioning activation; or (5) At least one of third information related to the positioning of the UE under the second node is included.
[0031] According to another aspect of the embodiment of the present disclosure, there is provided a positioning configuration method in a wireless communication system, the method including: a first node transmitting first information related to positioning of a UE under the first node to a second node, the first information being used by the second node to transmit second information related to positioning of the UE under the second node to a third node.
[0032] According to another aspect of the embodiment of the present disclosure, there is provided a positioning configuration method in a wireless communication system, the method including: a node for position management generating information on candidate positioning reference points; and the node for position management transmitting the information on the candidate positioning reference points to a first node.
[0033] According to an exemplary embodiment, the information for the candidate positioning reference points is: (1) relevant information indicating the positioning scope; or (2) including at least one of related information indicating a positioning reference point corresponding to the positioning range;
[0034] According to an exemplary embodiment, the information for the candidate positioning reference point or the related information of the positioning reference point in the information for the candidate positioning reference point is: (1) relevant information indicating a candidate positioning reference point or a base station in which the positioning reference point is located; (2) relevant information indicating the candidate positioning reference point or the positioning reference point under the base station; or (3) It includes at least one of information indicating a candidate positioning reference point or positioning support for the positioning reference point.
[0035] According to an exemplary embodiment, the method further includes a step of the node for location management transmitting information on a positioning activation time to the first node.
[0036] According to another aspect of the present disclosure, there is provided a method for positioning in a wireless communication system, the method comprising: (1) a step in which a first node receives information on a candidate positioning reference point from a node for position management; (2) determining a positioning reference point by the first node based on the information for the candidate positioning reference points; or (3) sending a message requesting positioning related information to a node where the positioning reference point is located;
[0037] According to an exemplary embodiment, the message requesting positioning related information comprises: (1) Information regarding positioning reference points; (2) Information regarding indications of requests for supporting information; (3) ID information of positioning measurement; (4) Information regarding the configuration of positioning signals; or (5) At least one of information regarding a reporting mode for positioning measurements is included.
[0038] According to another aspect of an embodiment of the present disclosure, an electronic device is provided that includes a processor and a memory, where the memory stores a program; and the processor executes the program to implement one of the methods described above.
[0039] The above and other features, aspects, and advantages of various embodiments of the present disclosure will become better understood with reference to the following description and appended claims. The accompanying drawings, which form a part of this disclosure, illustrate exemplary embodiments of the present disclosure and, together with the description, serve to explain relevant principles. Details of one or more implementations of the subject matter of the present disclosure are set forth in the accompanying drawings and the following description. Other potential features, aspects, and advantages of the subject matter of the present disclosure will become further apparent from the description, drawings, and claims.
[0040] Before proceeding with the detailed description below, it is necessary to define certain words and phrases used throughout this patent specification. The terms "include" and "comprise," as well as derivatives thereof, refer to inclusion without limitation. The term "or" is inclusive, meaning and / or. The term "associated therewith" as well as derivatives thereof means "include," "included within," "interconnect with," "contain," "be contained within," "connect to or with," "couple to or with," "be communicable with," "cooperate with," "interleave with," "juxtapose with," "be proximate to," "be bound to or with," "have," and "have a property of." The term "controller" refers to any device, system, or portion thereof that controls at least one operation, and such a device may be embodied in hardware, firmware, or software, or some combination of at least two of these. It should be noted that the functionality associated with any particular controller may be centralized or distributed, either locally or remotely.
[0041] Furthermore, various functions described below may be embodied or supported by one or more computer programs, each computer program being formed from computer readable program code and embodied in a computer readable medium. The terms "application" and "program" refer to one or more computer programs, software components, sets of instructions, procedures, functions, objects, classes, instances, associated data, or portions thereof, adapted for implementation in suitable computer readable program code. The phrase "computer readable program code" includes any type of computer code, including source code, object code, and executable code. The phrase "computer readable medium" includes any type of medium that can be accessed by a computer, such as read only memory (ROM), random access memory (RAM), hard disk drive, compact disc (CD), digital video disc (DVD), or any other type of memory. "Non-transitory" computer-readable media excludes wired, wireless, optical, transitory electrical or other communication links that convey signals. Non-transitory computer-readable media includes media on which data is permanently stored, and media on which data is stored and subsequently overwritten, such as rewritable optical disks or erasable memory devices.
[0042] Definitions of certain words and phrases are provided throughout this patent document, and those of skill in the art should understand that in many, if not most, cases, such definitions apply to prior and future uses of such defined words and phrases. Effect of the Invention
[0043] According to one embodiment of the present disclosure, positioning of UEs in an RRC inactive state or in idle mode can be supported.
[0044] According to an embodiment of the present disclosure, positioning continuity can be maintained even if a UE in an RRC inactive state resumes to a new serving base station.
[0045] According to one embodiment of the present disclosure, the interruption time of positioning measurements during UE movement can be reduced and the positioning procedure can be completed more quickly.
[0046] According to an embodiment of the present disclosure, repeated transmission of positioning setting information can be prevented, and positioning delay and power consumption of the device for positioning can be reduced. [Brief description of the drawings]
[0047] The present disclosure will be more readily understood from the following detailed description when taken in conjunction with the accompanying drawings.
[0048] [Figure 1] 1 is a diagram illustrating an example system architecture of system architecture evolution (SAE). [Diagram 2] 1 illustrates an example system architecture according to various embodiments of the present disclosure. [Diagram 3] 1 is a diagram showing the positioning architecture and flowchart of a 5G network. [Figure 4a] 1 is a diagram showing a flowchart of a positioning setting method according to an embodiment of the present disclosure. [Figure 4b] 1 is a diagram showing a flowchart of a positioning setting method according to an embodiment of the present disclosure. [Figure 4c] 1 is a diagram showing a flowchart of a positioning setting method according to an embodiment of the present disclosure. [Diagram 5] 1 is a diagram showing a first embodiment of a positioning setting method according to an embodiment of the present disclosure. [Figure 6] 13 is a diagram showing a second embodiment of a positioning setting method according to an embodiment of the present disclosure. [Figure 7] 13 is a diagram showing a third embodiment of a positioning setting method according to an embodiment of the present disclosure. [Figure 8] 13 is a diagram showing a fourth embodiment of a positioning setting method according to an embodiment of the present disclosure. [Figure 9] 13 is a diagram showing a fifth embodiment of a positioning setting method according to an embodiment of the present disclosure. [Figure 10] 13 is a diagram showing a sixth embodiment of a positioning setting method according to an embodiment of the present disclosure. [Figure 10a] 6A is a diagram showing an example 6A of a positioning setting method according to an embodiment of the present disclosure. [Figure 10b] 13 is a diagram showing an example 6B of a positioning setting method according to an embodiment of the present disclosure. [Figure 11] 13 is a flowchart illustrating another positioning setting method according to an embodiment of the present disclosure. [Figure 12] 1 is a diagram showing a first embodiment of another positioning setting method according to an embodiment of the present disclosure. [Figure 13] 13 is a diagram showing a second embodiment of another positioning setting method according to an embodiment of the present disclosure. [Figure 14] FIG. 1 illustrates a block diagram of an electronic device according to an embodiment of the present disclosure. [Figure 15] 13 is a flowchart illustrating another positioning setting method according to an embodiment of the present disclosure;
[0049] In the various drawings, the same or similar reference numbers and symbols indicate the same or similar elements. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0050] 1 through 15 discussed below, and the various embodiments used in this patent document to explain the principles of the present disclosure, are for illustrative purposes only and should not be construed as limiting the scope of the present disclosure in any manner. Those of ordinary skill in the art will appreciate that the principles of the present disclosure may be embodied in any appropriately configured system or device.
[0051] FIG. 1 illustrates an exemplary system architecture 100 of the System Architecture Evolution (SAE). A user equipment (UE) 101 is a terminal device for receiving data. An evolved universal terrestrial radio access network (E-UTRAN) 102 is a radio access network including a macro base station (eNodeB / NodeB) that provides an interface for the UE to access the radio network. A mobility management entity (MME) 103 is responsible for managing the mobility context, session context, and security information of the UE. A serving gateway (SGW) 104 mainly provides user plane functions, and the MME 103 and the SGW 104 may be in the same physical entity. A packet data network gateway (PGW) 105 is responsible for functions such as charging, lawful interception, etc., and may be in the same physical entity as the SGW 104. A policy and charging rules function entity (PCRF) 106 provides quality of service (QoS) policies and charging criteria. The general packet radio service support node (SGSN) 108 is a network node device that provides routing for data transmission in the Universal Mobile Telecommunications System (UMTS). The home subscriber server (HSS) 109 is a home sub system for the UE and serves to protect user information including the current location of the user equipment, the address of the serving node, user security information, and the packet data context of the user equipment.
[0052] 2 illustrates an example system architecture 200 according to various embodiments of the present disclosure. Other embodiments of the system architecture 200 may be used without departing from the scope of the present disclosure.
[0053] The user equipment (UE) 201 is a terminal device for receiving data. The NG-RAN (Next Generation Radio Access Network) 202 is a radio access network including base stations (gNB or eNB connected to a 5G core network (5GC), and eNB connected to a 5GC is also called ng-gNB) that provide an interface for the UE to access a radio network. The access control and mobility management function entity (AMF) 203 is responsible for managing the mobility context and security information of the UE. The UPF (User Plane Function Entity) 204 mainly provides user plane functions. The session management function entity (SMF) 205 is responsible for session management. The data network (DN) 206 includes, for example, operator services, Internet access, and third party services.
[0054] With the development of wireless technology, functional modules that were originally located in the same base station are separated in the 5G architecture. Some functional modules are closer to the user, while others are pooled and virtualized for centralized deployment. That is, a base station can be divided into two parts, one is a central unit (CU) and the other is a distributed unit (DU). The DU is closer to the user, while the CU is farther away from the antenna and can support multiple antenna connections to improve network performance. One CU can be connected to multiple DUs, and functions on the CU can be virtualized. The CU and DU are connected through the F1 interface, which is also called the fronthaul interface or fronthaul connection. The functions of Radio Resource Control (RRC) and Packet Data Convergence Protocol (PDCP) are implemented in the CU, and the functions of Radio Link Control (RLC), Media Access Control (MAC) and physical layer are implemented in the DU.
[0055] With the development of mobile communications and the diversification of services, user positioning has gradually become one of the most important applications in communication networks, and the requirements for positioning latency and accuracy are becoming increasingly higher. In many positioning applications, precise positioning is generally achieved by a combination of various technologies, including: 1) solutions based on the Global Navigation Satellite System (GNSS); 2) wireless technologies (e.g., LTE networks, Wi-Fi networks, terrestrial beacon systems, etc.); and 3) inertial measurement units (MUs) or sensors (e.g., accelerometers, gyroscopes, magnetometers, or barometric sensors for tracking user position based on vertical positioning). These technologies are expected to play an important role in achieving precise user positioning in the future.
[0056] New radio technologies used in NG-RAN, such as abundant frequency band resources, multiple antenna technologies with larger bandwidth and large-scale antenna arrays, and flexible deployment methods such as the use of non-terrestrial radio access networks, all provide more freedom and dimensions to improve positioning capabilities, enabling more accurate user positioning.
[0057] Hereinafter, exemplary embodiments of the present disclosure will be further described with reference to the accompanying drawings.
[0058] The text and drawings are provided only as examples to aid in the understanding of the present disclosure, and should not be interpreted as limiting the scope of the present disclosure in any manner. Although some embodiments and examples have been provided, it is obvious to those of ordinary skill in the art that, based on the disclosure herein, modifications to the exemplified embodiments and examples can be made without departing from the scope of the present disclosure.
[0059] According to the positioning configuration method provided by the present disclosure, the interruption time of positioning measurements during UE movement can be reduced, and the positioning procedure can be completed more quickly; at the same time, the positioning configuration method further enables a node selected for positioning to pre-acquire positioning-related configuration information, avoiding repeated transmission of configuration information, reducing positioning delays and signaling exchanges between nodes, helping to apply positioning results to other functions more quickly, and reducing the power consumption of network devices to enhance the benefits of operators.
[0060] Depending on the entity that ultimately evaluates and calculates the UE's position, positioning can be divided into UE-based positioning and LMF (Location Management Function Entity)-based positioning, and the next generation radio access network (NG-RAN) can participate in supporting the two positioning methods mentioned above.
[0061] Figure 3 shows the positioning architecture and flowchart in a 5G network.
[0062] As shown in Fig. 3, a user equipment (UE) 301 is a terminal device that receives data. The NG-RAN 302 is a radio access network that may be a terrestrial access network and / or a non-terrestrial radio access network, such as a network that provides coverage by satellites, unmanned aerial vehicles, etc. The LMF (Location Management Function Entity) 303 serves to manage the overall resource coordination and scheduling required to position the UE location.
[0063] UE-based positioning means that the UE calculates its own location information based on positioning support information and signal measurement results. The location support information may be transmitted to the UE by the LMF 304a or transmitted to the UE by the NG-RAN according to a command from the LMF 304b. The signal measurement results may be measurement results obtained by the UE through the received GNSS signal X and / or NG-RAN signal Y. After calculating the location information, the UE may report the location information to the LMF (305).
[0064] LMF-based positioning means that the LMF calculates the location information of the UE according to the positioning support information and the signal measurement result. Here, the positioning support information can be transmitted by the NG-RAN to the LMF (306). The signal measurement result can be a measurement result obtained by the NG-RAN through the received signal Z (307), and the measurement result can be transmitted to the LMF; the signal measurement result can also be a measurement result obtained by the UE through the GNSS signal X and / or the NG-RAN signal Y (305), and the measurement result is further transmitted to the LMF. After the LMF obtains or calculates the location information of the UE, the UE can transmit the location information according to the request of the client. For example, the client can be a UE or a core network node.
[0065] One of the positioning methods of the present disclosure is illustrated in Fig. 4a. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0066] In step 4A01, the first node transmits first information related to the UE under the first node to the second node. The first node may be, for example, a UE, a base station, a CU, a CU-CP (control plane), or a core network node, or the first node may be a node for location management (e.g., LMF), which may be embodied, for example, on the UE, the base station, and / or the core network node. The second node may be, for example, a base station, a CU, or a UE. There may be a situation in which the first message can be transmitted by the first base station to the second base station in the handover procedure, i.e., a situation in which the first message can be transmitted by the source base station to the target base station, a situation in which the first message can be transmitted by the last serving base station transmitted to the new serving base station in the procedure of searching for the UE context, a situation in which the first message can be transmitted by the UE to the base station, etc.
[0067] According to an example embodiment, the first information may be at least one of the following information: -Related information for indicating a node for location management, such as information for indicating an LMF. The node for location management refers to a node that manages UE positioning, and information indicating the node for location management may be information indicating the identification of a node, such as an LMF routing ID; - related information for indicating transaction or measurement IDs of positioning procedures used to indicate unique positioning procedures on different nodes or interfaces, which may include at least one of NRPPa transaction IDs and LMF measurement IDs; - Information on UE positioning signal configuration, which refers to resource configuration of the positioning signal. The resource configuration of the positioning signal may be an uplink or downlink positioning signal configuration such as SRS configuration and / or time information related to SRS configuration, Related information for the requested positioning signal transmission characteristic, which may be a requested positioning signal transmission characteristic or a requested signal transmission characteristic. However, the related information for the requested positioning signal transmission characteristic of the present disclosure is not limited thereto and may be, for example, a positioning signal, a positioning reference signal, or other positioning related signal.
[0068] According to an exemplary embodiment, the requested signal transmission characteristic may be generated by the first node itself or may be received from another node, such as a node with a Location Management Function (LMF) or another base station. The requested signal transmission characteristic is used to indicate to the UE's serving node to allocate a positioning signal and the serving node of the positioning UE may determine signal configuration, such as physical resource allocation and / or transmission periodicity of signals and / or channels according to the transmission characteristic, where the positioning signal and / or channel may be another signal and / or channel, such as an uplink sounding reference signal (SRS) and / or DMRS, etc.
[0069] - Related information for positioning activation, which may include the type of positioning signal and transmission time information of the positioning signal; and - Related information for a positioning measurement request that can indicate how a node selected for positioning receives and measures a positioning signal and how to report the measurement result. Such information can include information for indicating a positioning reference point that indicates a reference point selected for positioning, for example, a transmission point (TP) or a transmission and reception point (TRP). This information can be, for example, a TRP measurement request list, a reporting configuration, and / or the number of TRP measurements, where the TRP measurement request list includes information related to the node where the TRP is located, as well as related information for identifying the node.
[0070] Although specific examples of related information for indicating a node for location management, information for indicating a transaction or measurement ID of a positioning procedure, information for UE positioning signal configuration, related information for requested positioning signal transmission characteristics, related information for positioning activation, and / or related information for a positioning measurement request are described above, the present disclosure is not limited thereto. For example, the related information for requested signal transmission characteristics may be for all signals and / or channels for positioning, and may be resource configuration requirements for requested signal and / or channel transmission, etc.
[0071] Step 4A02: The second node transmits second information related to the UE under the second node to the third node and / or the UE according to the received first information. According to an exemplary embodiment, the second node can determine (or determine) the third node according to the first information and set a positioning signal.
[0072] For example, the second node (1) setting a UE positioning signal under a second node according to information related to setting of a UE positioning signal included in first information (this information may be information related to setting of a UE positioning signal under a first node); (2) setting a positioning signal of the UE under a second node according to information related to setting a positioning signal of the UE under a first node retrieved (e.g., queried) by related information for indicating a node for location management and / or information for indicating a transaction or measurement ID of a positioning procedure included in the first information; (3) configuring a positioning signal of the UE under a second node according to information related to the requested positioning signal transmission characteristic included in the first information; (4) obtaining information of a node where a TRP selected for positioning measurement is located according to related information for the positioning measurement request included in the first information, determining a third node, and sending the second information to the third node; and (5) At least one of determining a third node based on associated information for indicating a node for location management included in the first information and transmitting the second information to the third node and / or the UE can be performed.
[0073] According to an exemplary embodiment, the second information is information related to a positioning of the UE under the second node; - related information for indicating the node for the same location management as described in step 4A01; - information for indicating a transaction or measurement ID of the same positioning procedure as described in step 4A01; -Relevant information for a positioning measurement request indicating how the node selected for positioning receives and measures positioning signals and how to report the measurement results (this information may include a TRP measurement request list, a reporting configuration, and / or the number of TRP measurements); - related information for positioning activation, which may include the type of positioning signal and transmission time information of the positioning signal; - configuring a positioning signal of the UE under the second node indicating information such as a time-frequency resource location for transmission of the positioning signal of the UE under the second node; or -It may include at least one of related information indicating whether the configuration of the positioning signal is changed and indicating whether the time-frequency resource location for transmitting the positioning signal of the UE under the second node is the same as the time-frequency resource location for transmitting the positioning signal of the UE under the first node.
[0074] Step 4A03: The third node performs a procedure for positioning according to the received second information, which may be, for example, a positioning configuration procedure, a positioning activation procedure, and / or a positioning measurement request procedure.
[0075] In this manner, the positioning setting method achieves at least the following beneficial effects: after the UE is handed over or reselected to a new cell or node, the new serving node or cell can set a positioning signal for the UE more quickly, and the node selected for positioning and the UE can further obtain a new positioning setting more quickly, which not only reduces signaling exchanges with core network nodes, but also reduces positioning interruptions and positioning delay times, obtains positioning results more quickly, and better supports the requirements of various commercial use cases and industrial Internet use cases.
[0076] Above, the positioning setting method of the present disclosure has been described, through which the UE can more quickly complete the positioning procedure in handover or reselection procedure, reduce the delay of positioning and signaling exchange between nodes, help the positioning result to be applied to other functions more quickly, further reduce the power consumption of network devices, and increase the revenue of operators.
[0077] The positioning method of the present disclosure is illustrated in Fig. 4b. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0078] In one example of step 4B00, the first node generates or receives information related to the positioning of the UE (e.g., information related to positioning configuration and measurement) from a third node when the first node serves. The first node may be a UE, a base station, a CU, a CU-CP (control plane), or a core network node, or may be a node supporting a location management function that may be implemented on the UE, the base station, and / or the core network node. The third node may be a base station, an LMF, or a UE.
[0079] According to an exemplary embodiment, this information may be at least one of the following: -Information for indicating a node for a location management function used to indicate a node having a location management function for managing UE positioning, such as an LMF routing ID; -Associated information for indicating a transaction or measurement ID of a positioning procedure used to indicate a unique positioning procedure on a different node or interface, the ID information may include at least one of an NRPPa transaction ID and an LMF measurement ID; - Information regarding the configuration of a UE positioning signal that may indicate the configuration of an uplink positioning signal, such as SRS configuration and / or time information regarding SRS configuration;
[0080] -Requested signal transmission characteristics, which may be generated by the first node itself or received from another node, such as a node with a Location Management Function (LMF) or another base station. The requested signal transmission characteristics are used to indicate that the serving node of the UE for allocating the positioning signal and the node serving the positioning UE can determine the signal configuration, such as the physical resource allocation and / or transmission period of the signal and / or channel, according to the transmission characteristics, and the positioning signal and / or channel may be another signal and / or channel, such as an uplink sounding reference signal (SRS) and / or DMRS.
[0081] - Related information for positioning activation, including the type of positioning signal and transmission time information of the positioning signal; or - Information for a positioning measurement request indicating how a node selected for positioning receives and measures positioning signals and how to report measurement results, where such information may include a TRP measurement request list, a reporting configuration, and / or the number of TRP measurements.
[0082] Although specific examples of the UE positioning related measurement ID, positioning signal configuration information, requested positioning signal transmission characteristics, information for positioning activation, and / or information for the positioning measurement request are described above, the disclosure is not limited thereto. For example, the requested signal transmission characteristics may be for all signals and / or channels for positioning, and may further include resource configuration requirements for the requested signal and / or channel transmissions.
[0083] In one example of step 4B01, when the UE moves into the coverage of the second node, the first node transmits positioning-related information to the second node, which may include information for indicating the node for location management, UE positioning-related ID information, configuration information for the UE positioning signal, requested signal transmission characteristics, information for positioning activation, and / or information for positioning measurement request. The second node may be a base station or a DU. That is, the UE may transmit the positioning-related information to the base station; the first base station may transmit the positioning-related information to the second base station; the CU may transmit the information in the DU; or the core network node may transmit the positioning-related information to the base station.
[0084] In one example of step 4B02, the second node sets a positioning signal after the UE moves under the second node in consideration of the received information related to positioning. According to the received information, there are two processing situations for the second node:
[0085] In an example of situation 1, if the information includes a measurement ID related to UE positioning and / or configuration information related to UE positioning signals, the second node checks whether the second node has a measurement ID of an ongoing positioning measurement that matches the measurement ID of the received positioning measurement information, for example, whether the LMF measurement ID is the same. If the measurement ID is the same, it means that the second node is one of the nodes selected to position the UE. Instead of or in addition to the measurement ID being the same, the second node can further check whether the corresponding cell information and / or SRS configuration in the measurement matches that of the positioning measurement related information received in step 4B01, and can further confirm whether the second node is one of the nodes selected for UE positioning. If the second node is (or is) one of the nodes selected to position the UE and the cell in which the TRP involved in positioning is located is a target cell for UE handover, this means that the second node already has the positioning configuration information of the UE and is connected to a location management function node that manages the positioning of the UE. If the second node supports the current positioning signal configuration of the UE, i.e., if the second node can allocate the same positioning signal resource to the UE, the second node indicates to the location management function node, the first node and / or the UE that the positioning signal configuration of the UE will not be changed, and the second node may further indicate to the location management function node that the UE will move to the second node and will be assigned a positioning signal for the UE itself, and the positioning signal will be maintained unchanged. In this manner, even if the UE moves to a new node, the positioning signal configuration of the UE can be maintained unchanged, and the location management function node can reselect the node selected for positioning measurement for the UE according to the information provided by the second node. This procedure prevents positioning interruptions and reduces positioning delay problems during movement.
[0086] In an example of situation 2, if the information includes the requested signal transmission characteristics and / or location management node information and / or information related to the UE at the location management node, or there is no matching ongoing positioning measurement at the second node, the second node may consider the requested signal transmission characteristics, configure a new positioning signal for the UE under the second node, and transmit the new positioning signal to the UE and / or the location management function node. The second node may exchange information related to updated positioning signal configuration and / or activation of positioning procedures with the location management function node according to the location management function node information and / or UE information at the location management function node. The exchanged information may be exchanged through a route change procedure or a non-UE associated NR Positioning Protocol A (NRPPa) transmission procedure if the UE context is not fully configured on the second node, so that the positioning interruption time and positioning delay may be reduced.
[0087] In one example of step 4B03, the second node sends a positioning activation to the UE.
[0088] After UE positioning is activated, if the positioning signal setting is changed, the other node selected to position the UE needs to obtain updated positioning measurement information, which can be sent directly to the other node by the second node or sent by the location management function node to the other node, which may be a base station.
[0089] If the second node transmits updated positioning measurement information directly to other nodes, the second node obtains information of the other nodes through the positioning measurement request information and transmits the positioning activation information and / or the positioning measurement request information received in step 4B02 to the other nodes.
[0090] If the location management node transmits the updated positioning measurement information to other nodes, the location management node transmits the positioning signal setting information received in step 4B02 to other nodes that need to participate in the positioning measurement, where the other nodes may be base stations, and the other nodes receive and measure the UE's positioning reference signal on the corresponding time-frequency resource according to the signal setting information, and then respond to the location management function node with the measurement result, and the location management function node calculates and obtains the position of the UE according to all the received positioning measurement results.
[0091] In this manner, after handover or reselection to a new cell or node, the UE can acquire positioning signal settings more quickly and the network can acquire the UE's location information more quickly, which further saves signaling exchanges between nodes and reduces positioning latency.
[0092] Above is the description of the positioning setting method of the present disclosure, through which the UE can more quickly complete the positioning procedure in handover or reselection procedure, which reduces the delay of positioning and signaling exchange between nodes, helps the positioning result to be applied to other functions more quickly, and further reduces the power consumption of network devices and increases the revenue of operators.
[0093] The positioning method of the present disclosure is illustrated in Fig. 4c. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0094] In one example of step 4C01, the second node receives signal configuration information from the first node, where the second node may be a base station and the first node may be a base station or an LMF. For example, the signal configuration information may be information related to UE positioning configuration, but is not limited thereto, and may be other configuration information (e.g., SRB4 configuration used to transmit a message in INACTIVE state). The information related to UE positioning configuration may be requested positioning signal (e.g., SRS) transmission characteristics and / or positioning signal transmission characteristics currently configured for the UE (e.g., positioning signal transmission period, positioning signal spatial relationship, etc.). It is understood that the above is only an example, and the information related to UE positioning configuration is not limited thereto. According to one embodiment, the second node is a current serving node for the UE, which may be considered as a non-anchor node of the UE, and the first node is a node where the UE context is located, which may be considered as an anchor node of the UE. The information related to the UE positioning configuration may be included in a UE context search response message, a UE context search failure message, a positioning information request message, or other XnAP messages. It should be understood that the above embodiments are merely examples, and the messages including information related to the first node, the second node, and the UE positioning configuration are not limited thereto.
[0095] When the second node receives information related to the UE positioning configuration from the first node, the second node may use the information related to the UE positioning configuration when configuring positioning signal transmission for the UE.
[0096] In one example of step 4C02, the second node transmits positioning signal configuration information of the UE under the second node to the UE. According to one embodiment, the second node transmits the positioning signal configuration information to the UE through an RRC release message including the positioning signal configuration information of the UE under the second node, which is assembled by the first node. For example, the second node transmits the positioning signal configuration information of the UE under the second node to the first node, and the first node transmits a container including the RRC release message including the positioning signal configuration information to the second node, and the second node transmits the RRC release message in the container transparently to the UE. In this case, the second node can directly forward the RRC release message in the container to the UE without reading the RRC release message.
[0097] According to one embodiment, the positioning signal configuration information can be included in an XnAP message sent from the second node to the first node, and the XnAP message can be, for example, a positioning information response message. It should be understood that the above embodiment is merely an example, and the messages including information related to the first node, the second node, and the UE positioning configuration are not limited thereto.
[0098] According to one embodiment, the first node receives positioning signal configuration information from the second node. When the first node sends an RRC release message to the UE, the positioning signal configuration information may be included in the RRC release message, where the positioning signal configuration information may be a configuration for the UE to transmit a positioning signal under the second node.
[0099] The first node may send a message including an RRC container to the second node, and the RRC container includes an RRC release message. According to an embodiment, the message including the RRC container may be a UE context search failure message, a UE context search response message, or a UE context release message. It should be understood that the above embodiment is merely an example, and the message including the RRC container is not limited thereto.
[0100] The second node may receive a message including an RRC container from the first node, and the second node may transparently transmit the RRC release message in the RRC container to the UE. The UE may receive the RRC release message and transmit an uplink positioning signal for positioning according to the positioning signal configuration of the UE under the second node included in the RRC release message. In this manner, when the UE moves to a new base station, the anchor node of the UE may remain unchanged, and even if the UE state remains unchanged, the configuration information of the UE under the new base station may be acquired, and uplink positioning of the UE in the RRC_INACTIVE state may be realized.
[0101] Above, the positioning setting method of the present disclosure is described. Through this method, when the anchor node of the UE is maintained in an unchanged state and the state is maintained in an unchanged state, that is, when the setting information of the positioning signal of the non-anchor node is sent to the UE, it can support setting the signal for the UE, so that the UE can complete the positioning procedure more quickly, reduce the delay of the positioning and signaling exchange between nodes, help the positioning result to be applied to other functions more quickly, and further reduce the power consumption of the network device and increase the revenue of the operator.
[0102] A first embodiment of the positioning method of the present disclosure is illustrated in Fig. 5. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0103] In one example of step 500, a first node sends an RRC message to the UE, where the first node may be a base station serving the UE, a CU, or a CU-CP. The RRC message includes positioning signal configuration information, which may be a positioning signal configuration for an idle or inactive state.
[0104] The UE enters the inactive state and starts positioning in the inactive state.
[0105] In one example of step 501, when the UE moves to a second node, which may be a base station, the UE sends an RRC Restart Request message to the second node, where the RRC Restart Request message may include a first cause, and the first cause is used to indicate to the second node that the purpose of the connection resumption initiated by the UE is to support a positioning function in an inactive state. The RRC Restart Request message may further include information of the last serving node for the UE and an ID of the UE.
[0106] In one example of step 502, the second node sends a UE context search request message to the first node, which may include a first cause, a UE ID and / or a last serving node ID information.
[0107] In one example of step 503, the first node receives the information, and the first node learns that the UE needs to be placed in an inactive state according to the first cause and the UE ID, and the first node sends a UE context search response message to the second node, which may include at least one of the following information: - A positioning-related measurement ID, which may be an LMF measurement ID or other form, used to indicate positioning measurements at a specific location management function node; -Positioning signal setting information indicating the positioning signal setting under the positioning related measurement ID, where the signal setting may be SRS setting or other information; - the type and time settings of the positioning signal, which are used to indicate whether the positioning signal is semi-permanent, aperiodic or periodic, and trigger time information of the positioning signal; - requested signal transmission characteristics, which may be requested positioning signal transmission characteristics, or requested SRS signal transmission characteristics, etc. The transmission characteristics include information such as frequency resources that the signal may use and a transmission period; Location management function node information, which may include ID information (such as a routing ID) of the location management function node for the second node to find a corresponding location management function node and / or a transaction ID for positioning the UE, thereby allowing the second node to exchange positioning information with the location management function node; - information for positioning activation, including the type of positioning signal and transmission time information of the positioning signal; or - Information for a positioning measurement request indicating how a node selected for positioning receives and measures a positioning signal and how to report the measurement result, where such information may include a TRP measurement request list, a reporting configuration, and / or the number of TRP measurements, and the TRP measurement request list may include information on the gNB ID and / or cell ID in which the TRP is located.
[0108] Although a specific example of the UE context search response message is described above, the present disclosure is not limited thereto. For example, the UE context search response message may be any message that responds to the UE context search request message.
[0109] The second node receives the message and the information, and the second node assigns a positioning signal configuration according to the received information and its own resource configuration. The signal configuration may be the same as the original positioning signal configuration or may be a new positioning signal configuration, and the positioning signal configuration may be a first indication and / or a specific positioning signal configuration. The first indication is used to indicate that the positioning signal configuration is not changed, and the configuration may include information such as time-frequency resources and / or transmission mode of the transmitted signal, and the configuration may be a configuration set including one or more signal configurations, and the UE may select one configuration in the configuration set to use according to the network indication.
[0110] The second node determines the positioning signal configuration of the UE under the second node. According to the received information, there are two processing situations.
[0111] In an example of situation 1, if the information includes a positioning related measurement ID, the second node checks whether the information has a measurement ID of an ongoing positioning measurement that matches the measurement ID of the received positioning measurement information, for example, whether the LMF measurement ID is the same. If the measurement ID is the same, it means that the second node is one of the nodes selected to position the UE. Instead of or in addition to the measurement ID being the same, the second node can also check whether the corresponding cell information and / or SRS configuration in the measurement matches that of the positioning measurement related information received in step 503, and can further confirm whether the second node is one of the nodes selected for UE positioning. If the second node is (or is) one of the nodes selected to position the UE and the cell in which the TRP involved in positioning is located is a target cell for UE handover, this means that the second node already has the positioning configuration information of the UE and is connected to a location management function node that manages the positioning of the UE. If the second node supports the current positioning signal configuration of the UE, that is, the second node can allocate the same positioning signal resource to the UE.
[0112] In an example of situation 2, if the information includes the requested signal transmission characteristics or there is no matching positioning measurement at the second node, the second node can consider the requested signal transmission characteristics and determine a new positioning signal configuration for the UE under the second node, and transmit the new positioning signal configuration to the UE and / or the location management function node, and the second node can exchange information related to the updated positioning signal configuration and / or activation of the positioning procedure with the location management function node according to the location management function node information and / or UE information at the location management function node. The exchanged information can be exchanged through a route change procedure or a non-UE associated NRPPa transmission procedure if the UE context is not fully established on the second node, so that the positioning interruption time and the positioning delay can be reduced.
[0113] In one example of step 504, the second node sends an RRC message to the UE. The RRC message may be an RRC release message, an RRC resume message, an RRC setup message, etc. A first indication used to indicate that the positioning signal configuration is to be maintained unchanged after the UE reselects to the second node; or - It may include at least one of information being a positioning signal setting, which may be a new positioning signal setting or a previous positioning signal setting.
[0114] Although specific examples of RRC messages are described above, the present disclosure is not limited thereto. For example, an RRC message may be any message transmitted through RRC signaling.
[0115] The UE receives and stores the messages and information.
[0116] In one example of step 505, the second node indicates to the location management function node, the first node, and / or the UE that the positioning signal configuration of the UE is not changed, and the second node may further indicate to the location management function node that the UE has moved to the second node and is assigned a positioning signal for the UE by itself, and the positioning signal is maintained unchanged. In this manner, even if the UE moves to a new node, the positioning signal configuration of the UE can be maintained unchanged, and the location management function node can reselect a node selected for positioning measurement for the UE according to the information provided by the second node, which prevents positioning interruption and reduces positioning latency problems during movement. According to the location management function node information of step 503, the second node transmits a location information update to the location management function node indicated in the location management function node information, and this information includes a UE ID and / or a transaction ID for indicating the location management function, and updated positioning information. The positioning information update may be transmitted through a core network node, which may be an AMF.
[0117] The positioning information update may be included in an NG Application Protocol (NGAP) message, which may be a message related to route redirection, such as a route redirection request message, or a message related to a first NAS message for transmission to the UE, such as an initial UE message, or a message related to an uplink non-UE associated NRPPa transmission, and the NGAP message may include at least one of the following information: - an ID of the location management function node, such as a routing ID used to indicate to the core network the location management function node to which the positioning information update is sent; - A transaction ID used to indicate a specific positioning UE; - NRPPa PDU containing positioning information updates; - a first indication to a location management function node that positioning signal configuration information is maintained unchanged after the UE moves to a new node; or - Positioning reference time indication used to indicate the UE's positioning reference time to the location management function node, which may be the system frame number (SFN) initialization time after arriving at a new node.
[0118] Although specific examples of NGAP messages are described above, the disclosure is not limited thereto.
[0119] After receiving the message including the location information update, the core network node sends the location information update to the corresponding location management function node according to the ID information of the location management function node, including the transaction ID and / or the UE ID. The location management function node knows what UE location information is updated according to the UE ID and / or the transaction ID, and selects a new location information configuration for the UE according to the updated location signal configuration (the configuration may include a signal configuration set).
[0120] In one example of step 506, the location management function node sends a location activation request to the second node, where the request is used to inform the UE of what location signal configuration to use and to initiate positioning signaling according to the configuration. The positioning activation request can be forwarded by a core network node. The positioning activation request can be included in an NGAP message, which can be a reroute acknowledgement message, a detachment message, or a downlink non-UE associated NRPPa transmission message, etc. Although specific examples of NGAP messages are described above, the present disclosure is not limited thereto.
[0121] The second node receives the message and obtains the positioning activation request.
[0122] In one example of step 507, the second node sends a positioning activation to the UE according to the positioning activation request received in step 506, where the positioning activation may be sent by a message of the MAC layer.
[0123] After receiving the positioning activation, the UE starts signaling a positioning signal via the signal resources indicated in the activation, where the signal may be an SRS.
[0124] In one example of step 508, after the second node completes the positioning activation, the second node sends a positioning activation response to the location management function node, and the positioning activation response can be included in an NGAP message, which is first sent to a core network node, and then the core network node sends the positioning activation response to the location management function node. The core network node may be an AMF. The NGAP message may be an uplink UE associated NRPPa transmission message, etc.
[0125] In steps 505 and 507, the information exchanged between the second node and the location management function node can be transmitted by a UE associated NRPPa transmission message or a non-UE associated NRPPa message. If UE associated, the message must establish a UE context on the NGAP after the UE has established the context, i.e., before step 505.
[0126] In one example of step 509, after the UE starts signaling a positioning signal, the other node selected for positioning starts receiving and measuring the UE's positioning signal based on an indication from the location management function node or the second node, and transmits the measurement result to the location management function node, which then calculates the location of the UE according to the measurement result and other related information.
[0127] If the second node indicates the positioning information configuration and measurement configuration of the other node selected for UE positioning, the second node acquires the information of the other node selected for positioning according to the gNB ID and / or cell ID information of the TRP request list of the information for the positioning measurement request acquired in step 503, and transmits the updated positioning signal configuration and activation configuration to the other node. In this manner, the other node selected for positioning can acquire the updated positioning signal configuration more quickly to perform the positioning procedure more quickly.
[0128] In this manner, after the UE reselects to a new cell or node, the UE can acquire a new positioning signal configuration more quickly, and the network can acquire the location information of the UE more quickly, which further saves signaling exchanges between nodes and reduces positioning delays.
[0129] Above is a description of the embodiment 1 of the positioning configuration method of the present disclosure. This method allows the UE to complete the positioning procedure more quickly in a handover or reselection procedure, which reduces the delay of positioning and signaling exchange between nodes, helps the positioning result to be applied to other functions more quickly, and further reduces the power consumption of network devices and increases the revenue of operators.
[0130] A second embodiment of the positioning method of the present disclosure is illustrated in Fig. 6. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0131] In one example of step 600, a first node sends an RRC message to a UE, where the first node may be a base station, a CU, or a CU-UP. The RRC message includes positioning signal configuration information, which may be a positioning signal configuration for an active state.
[0132] The UE receives the message and starts positioning in the active state.
[0133] In one example of step 601, when the UE moves to a second node, which may be a base station, a CU or a CU-UP, the UE sends a measurement report to the first node to indicate that the cell signal quality of the UE under the second node is better, or the first node decides to handover the UE to the second node by a strategy (such as load balancing).
[0134] In one example of step 602, the first node transmits a handover request message to the second node, which may include at least one of the following information: - A positioning-related measurement ID, which may be an LMF measurement ID or other form, used to indicate positioning measurements at a specific location management function node; - Positioning signal setting information indicating the positioning signal setting under the positioning measurement ID, where the signal setting may be an SRS setting or other information; - the type and time settings of the positioning signal, which are used to indicate whether the positioning signal is semi-permanent, aperiodic or periodic, and trigger time information of the positioning signal; - requested signal transmission characteristics, which may be requested positioning signal transmission characteristics, or requested SRS signal transmission characteristics, etc. The transmission characteristics include information such as frequency resources that the signal may use and a transmission period; Location management function node information, which may include ID information (such as a routing ID) of the location management function node for the second node to find a corresponding location management function node and / or a transaction ID for positioning the UE, thereby allowing the second node to exchange positioning information with the location management function node; - information for positioning activation, including the type of positioning signal and transmission time information of the positioning signal; or - Information for a positioning measurement request indicating how a node selected for positioning receives and measures a positioning signal and how to report the measurement result, where such information may include a TRP measurement request list, a reporting configuration, and / or the number of TRP measurements, and the TRP measurement request list may include information on the gNB ID and / or cell ID in which the TRP is located.
[0135] The second node receives the message and the information, and the second node generates a positioning signal configuration and / or a first indication according to the received information and its own resource configuration, where the signal configuration may include information such as time-frequency resources and / or a transmission mode of the transmitted signal, and the configuration may be a configuration set including one or more signal configurations, and the UE may select one configuration in the configuration set to use by the network indication. The first indication is used to indicate that the positioning signal configuration for the UE is not changed. Details are as described in the two situations in step 503.
[0136] In one example of step 603 , the second node transmits a handover request acknowledgement message to the first node, which may include the positioning configuration or the first indication generated in step 602 .
[0137] In one example of step 604 , the first node transmits a handover command message to the UE, where the message includes the positioning signal configuration and / or the first indication obtained in step 603 .
[0138] The UE receives and stores the messages and information.
[0139] In one example of step 605, the positioning information update procedure is as described in step 505 of FIG. 5, the positioning activation is as described in steps 506 to 508 of FIG. 5, and the positioning measurement procedure is as described in step 509 of FIG. 5, and will not be described in detail in this specification.
[0140] In this manner, after the UE is handed over to a new cell or node, the UE can acquire a new positioning signal configuration more quickly, and the network can acquire the location information of the UE more quickly, which further saves signaling exchange between nodes and reduces positioning delay.
[0141] Above, the second embodiment of the positioning setting method of the present disclosure is described, which allows the UE to complete the positioning procedure more quickly in the handover or reselection procedure, which reduces the delay of positioning and signaling exchange between nodes, helps the positioning result to be applied to other functions more quickly, and further reduces the power consumption of network devices and increases the revenue of operators.
[0142] A third embodiment of the positioning method of the present disclosure is illustrated in Fig. 7. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0143] Steps 700 to 702 are as described in steps 500 to 502 of FIG. 5 and will not be repeated here.
[0144] In one example of step 703, the first node receives the information, and the first node learns that the UE needs to be placed in an inactive state based on the first cause and the UE ID, and the first node sends a UE context search failure message to the second node, which message may include at least one of the following information: - A positioning-related measurement ID, which may be an LMF measurement ID or other form, used to indicate positioning measurements at a specific location management function node; - Positioning signal setting information indicating the positioning signal setting under the positioning measurement ID, where the signal setting may be an SRS setting or other information; - the type and time settings of the positioning signal, which are used to indicate whether the positioning signal is semi-permanent, aperiodic or periodic, and trigger time information of the positioning signal; - requested signal transmission characteristics, which may be requested positioning signal transmission characteristics, or requested SRS signal transmission characteristics, etc. The transmission characteristics include information such as frequency resources that the signal may use and a transmission period; - information for positioning activation, including the type of positioning signal and transmission time information of the positioning signal; or - Information for a positioning measurement request indicating how a node selected for positioning receives and measures a positioning signal and how to report the measurement result, where such information may include a TRP measurement request list, a reporting configuration, and / or the number of TRP measurements, and the TRP measurement request list may include information on the gNB ID and / or cell ID in which the TRP is located.
[0145] Although a specific example of a UE context search failure message is described above, the present disclosure is not limited thereto.
[0146] The second node receives the message and the information, and the second node assigns a positioning signal configuration and / or a first indication according to the received information and its own resource configuration, where the signal configuration may include information such as time-frequency resources and / or a transmission mode of the transmitted signal, and the configuration may be a configuration set including one or more signal configurations, and the UE may select one configuration in the configuration set to use by the network indication. The first indication is used to indicate that the positioning signal configuration for the UE is not changed. Details are as described in the two situations in step 503.
[0147] In one example of step 704, the second node sends an RRC message to the UE, where the message includes the positioning signal configuration and / or the first cause generated in step 703. The RRC message may be an RRC release message, an RRC resume message, an RRC setup message, etc. Although specific examples of RRC messages are described above, this disclosure is not limited thereto.
[0148] The UE receives and stores the messages and information.
[0149] In one example of step 705, the second node sends an Xn message to the first node, which may include a positioning signal configuration and / or a first indication, where the Xn message is a UE associated Xn message, which may be sent by a UE context search request message and / or a new Xn message, which may be a positioning information update message or another message.
[0150] In one example of step 706, the first node receives the message and the updated positioning signal configuration and sends a positioning configuration update message to the LMF, where the message includes the updated positioning signal configuration.
[0151] In one example of step 707, the LMF receives the message and decides to activate UE positioning, and the LMF sends a positioning activation request to the first node. Since the first node knows that the UE is under the second node, the first node forwards the positioning activation request to the second node, and the positioning activation can be included in an Xn message, where the Xn message is a UE associated Xn message, which can be a UE context search failure message and / or a new Xn message, where the new Xn message can be a positioning activation request message or other message.
[0152] In one example of step 709, UE positioning activation is as described in step 507 and will not be repeated here.
[0153] In one example of step 710, the second node sends an Xn message to the first node that may include a positioning activation response, where the Xn message is a UE associated Xn message, which may be sent by a UE context search request message and / or a new Xn message, which may be a positioning activation response or other message.
[0154] In one example of step 711, the first node receives an Xn message including a positioning activation response message and sends the positioning activation response message to the LMF.
[0155] In one example of step 712, the positioning measurement procedure is as described in step 509 of FIG. 5 and will not be described in detail herein. In this manner, after the UE reselects to a new cell or node, even if the UE cannot successfully establish a context on the new node, the UE can obtain a new positioning signal configuration, and the network can obtain the location information of the UE more quickly. If the UE performs a positioning function in an inactive state, the UE can further enter a connection establishment procedure or obtain a new positioning configuration without establishing a new connection, which can reduce the positioning delay and save the power consumption of the UE and the network device.
[0156] Above is a description of the third embodiment of the positioning configuration method of the present disclosure. When using this method, the UE can obtain a new positioning configuration in an inactive state without entering an access procedure or setting up a dedicated connection, and can complete positioning in an inactive state, which can complete the positioning procedure more quickly, reduce the positioning waiting time and signaling exchange between nodes, help the positioning result to be applied to other functions more quickly, further reduce the power consumption of network devices, and increase the revenue of operators.
[0157] A fourth embodiment of the positioning method of the present disclosure is illustrated in FIG. 8. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0158] Steps 800 to 801 are as described in steps 600 to 601 of FIG. 6 and will not be repeated here.
[0159] In one example of step 802, the first node sends a handover request message to the AMF, where the handover request message may include at least one of the following information: - A positioning-related measurement ID, which may be an LMF measurement ID or other form, used to indicate positioning measurements at a specific location management function node; -Positioning signal setting information indicating the positioning signal setting under the positioning measurement ID, where the signal setting may be SRS setting or other information; - the type and time settings of the positioning signal, which are used to indicate whether the positioning signal is semi-permanent, aperiodic or periodic, and trigger time information of the positioning signal; - requested signal transmission characteristics, which may be requested positioning signal transmission characteristics, or requested SRS signal transmission characteristics, etc. The transmission characteristics include information such as frequency resources that the signal may use and a transmission period; Location management function node information, which may include ID information (such as a routing ID) of the location management function node for the second node to find a corresponding location management function node and / or a transaction ID for positioning the UE, allowing the second node to exchange positioning information with the location management function node; - Positioning activation indication to indicate that a UE handed over by an AMF is undergoing a positioning procedure; - information for positioning activation, including the type of positioning signal and transmission time information of the positioning signal; or - Information for a positioning measurement request indicating how a node selected for positioning receives and measures a positioning signal and how to report the measurement result, where such information may include a TRP measurement request list, a reporting configuration, and / or the number of TRP measurements, and the TRP measurement request list may include information on the gNB ID and / or cell ID in which the TRP is located.
[0160] Although a specific example of a handover request message is described above, the present disclosure is not limited thereto.
[0161] The AMF receives the message and the information. If the message includes the requested signaling characteristics, the AMF can include such information directly in the handover request message and send the handover request message to the second node. If the message does not include the requested signaling characteristics but includes a positioning activation indication, the AMF can request the requested signaling characteristics from the LMF. The LMF sends the requested signaling characteristics of the corresponding UE to the AMF, which includes the information in the handover request message sent to the second node.
[0162] In one example of step 803, the AMF sends a handover request message to the second node, including at least one of the following information acquired in step 802: - A positioning-related measurement ID, which may be an LMF measurement ID or other form, used to indicate positioning measurements at a specific location management function node; -Positioning signal setting information indicating the positioning signal setting under the positioning measurement ID, where the signal setting may be SRS setting or other information; - the type and time settings of the positioning signal that are (or will be) used to indicate whether the positioning signal is semi-permanent, aperiodic or periodic, and triggering time information of the positioning signal; - requested signal transmission characteristics, which may be requested positioning signal transmission characteristics, or requested SRS signal transmission characteristics, etc. The transmission characteristics include information such as frequency resources that the signal may use and a transmission period; Location management function node information that allows the second node to exchange positioning information with the location management function node, which may include ID information (such as a routing ID) of the location management function node to allow the second node to find a corresponding location management function node and / or a transaction ID for positioning the UE.
[0163] The second node receives the message and the information, and the second node generates a positioning signal configuration and / or a first indication according to the received information and its own resource configuration, where the signal configuration may include information such as time-frequency resources and / or a transmission mode of the transmitted signal, and the configuration may be a configuration set including one or more signal configurations, and the UE may select one configuration in the configuration set to use by the network indication. The first indication is used to indicate that the positioning signal configuration for the UE is not changed. Details are as described in the two situations in step 503.
[0164] In one example of step 804, the second node sends a handover request acknowledgement message to the AMF that may include the new configuration generated in step 803.
[0165] In one example of step 805, the AMF sends a handover command message to the first node, which may include the new settings generated in step 803.
[0166] Steps 806 to 807 are as described in steps 604 to 605 of FIG. 6 and will not be described in detail here.
[0167] In this manner, after the UE is handed over to a new cell or node, the UE can acquire a new positioning signal configuration more quickly, and the network can acquire the location information of the UE more quickly, which further saves signaling exchange between nodes and reduces positioning delay.
[0168] Above is a description of the fourth embodiment of the positioning configuration method of the present disclosure. This method allows the UE to more quickly complete the positioning procedure in a handover or reselection procedure, which reduces the delay of positioning and signaling exchange between nodes, helps the positioning result to be applied to other functions more quickly, and further reduces the power consumption of network devices and increases the revenue of operators.
[0169] A fifth embodiment of the positioning method of the present disclosure is illustrated in Fig. 9. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0170] In one example of step 900, the first node sends an RRC message to the UE, where the first node may be a base station serving the UE, a CU, or a CU-CP, and the RRC message may be an RRC release message or an RRC reconfiguration message. - A positioning-related measurement ID, which may be an LMF measurement ID or other form, used to indicate positioning measurements at a specific location management function node; -positioning signal configuration information, which may be a positioning signal configuration for an idle state or an inactive state; - the type and time settings of the positioning signal, which are used to indicate whether the positioning signal is semi-permanent, aperiodic or periodic, and trigger time information of the positioning signal; - requested signal transmission characteristics used to indicate how a node serving the UE should allocate physical resources and transmission modes of a positioning signal / channel for the UE; - a routing ID used to indicate the ID of the location management node; or -It is used to indicate a transaction ID for positioning a UE in a location management node, and may include at least one of the transaction IDs that indicate where a specific UE is located.
[0171] The UE enters the inactive state and starts positioning in the inactive state.
[0172] Although specific examples of RRC messages are described above, the present disclosure is not limited thereto.
[0173] In one example of step 901, when the UE moves to a second node, the UE sends an RRC Restart Request message to the second node, where the message can include a first cause used to indicate to the second node that the purpose of the connection resumption initiated by the UE is to support a positioning function in an inactive state. The message can further include information of the last serving node for the UE and an ID of the UE. The message can further include: - A positioning-related measurement ID, which may be an LMF measurement ID or other form, used to indicate positioning measurements at a specific location management function node; - Positioning signal setting information indicating the positioning signal setting under the positioning measurement ID, where the signal setting may be an SRS setting or other information; - the type and time settings of the positioning signal, which are used to indicate whether the positioning signal is semi-permanent, aperiodic or periodic, and trigger time information of the positioning signal; - requested signal transmission characteristics used to indicate how a node serving the UE (i.e., the second node) should allocate physical resources and transmission modes of a positioning signal / channel for the UE; - a routing ID used to indicate the ID of the location management node; or It is used to indicate a transaction ID for positioning a UE in a location management node, and may include at least one of the transaction IDs in which a specific UE is known to be located.
[0174] Although a specific example of an RRC resume request message is described above, the present disclosure is not limited thereto.
[0175] The second node receives the message and the information, and generates a positioning signal configuration and / or a first indication according to the received information and its own resource configuration. The signal configuration may include information such as time-frequency resources and / or a transmission mode of the transmitted signal, and the configuration may be a configuration set including one or more signal configurations, and the UE may select one configuration in the configuration set to use by the network indication. The first indication is used to indicate that the positioning signal configuration for the UE is not changed. Details are as described in the two situations in step 503.
[0176] Step 902 is as described in step 504 of FIG. 5 and will not be repeated here.
[0177] Step 903 is as described in steps 705-712 of FIG. 7 or steps 505-509 of FIG. 5 and will not be repeated here.
[0178] In this manner, after the UE reselects to a new cell or node, the newly accessed node can obtain a new positioning signal configuration without further context search from the last node serving the UE, and the network can obtain the location information of the UE more quickly. If the UE performs a positioning function in an inactive state, a new positioning configuration can be obtained without entering a connection setup procedure or establishing a new connection, which can reduce positioning delay and save power consumption of the UE and the network device.
[0179] Above is a description of the fifth embodiment of the positioning configuration method of the present disclosure. When using this method, the UE can obtain a new positioning configuration in an inactive state without entering an access procedure or setting up a dedicated connection, and can complete positioning in an inactive state, which can complete the positioning procedure more quickly, which can reduce the delay of positioning and signaling exchange between nodes, help the positioning result to be applied to other functions more quickly, and further reduce the power consumption of network devices and increase the revenue of operators.
[0180] A sixth embodiment of the positioning method of the present disclosure is illustrated in Fig. 10. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0181] In one example of step 1001, a first node sends a UE context setup request message to a second node, where the first node may be a CU or a CU-CP, the second node may be a DU, and the second node decides to allocate physical resources. The message may include at least one of the following information: - A positioning-related measurement ID, which may be an LMF measurement ID or other form, used to indicate positioning measurements at a specific location management function node; -Positioning signal setting information indicating the positioning signal setting under the positioning measurement ID, where the signal setting may be SRS setting or other information; - the type and time settings of the positioning signal, which are used to indicate whether the positioning signal is semi-permanent, aperiodic or periodic, and triggering time information of the positioning signal; or -Requested signal transmission characteristics, which may be requested positioning signal transmission characteristics, or requested SRS signal transmission characteristics, etc. The transmission characteristics include information such as frequency resources that the signal may use and the transmission period.
[0182] Although a specific example of a UE context setup request message is described above, the present disclosure is not limited thereto.
[0183] The second node receives the message and the information, and the second node generates a positioning signal configuration and / or a first indication according to the received information and its own resource configuration, where the signal configuration may include information such as time-frequency resources and / or a transmission mode of the transmitted signal, and the configuration may be a configuration set including one or more signal configurations, and the UE may select one configuration in the configuration set to use by the network indication. The first indication is used to indicate that the positioning signal configuration for the UE is not changed. Details are as described in the two situations in step 503.
[0184] In one example of step 1002, the second node sends a UE context setup response message or a UE context setup failure message to the first node, where the message may include the new positioning signal configuration. Although specific examples of the UE context setup response message and the UE context setup failure message are described above, the present disclosure is not limited thereto.
[0185] After receiving the message and information, the first node can continue to send new positioning signal configurations to the UE or other nodes, which may be location management function nodes to complete other positioning procedures.
[0186] In this manner, after the UE reselects to a new cell or node, even in a separate architecture, the UE can acquire new positioning signal settings more quickly and the network can acquire the UE's location information more quickly, which further reduces the signaling exchange between nodes and reduces the positioning waiting time.
[0187] Above is the description of the sixth embodiment of the positioning setting method of the present disclosure. This method allows the UE to complete the positioning procedure more quickly even in the handover or reselection procedure, and even in the separate architecture, it helps the UE to reduce the positioning waiting time and signaling exchange between nodes, and apply the positioning result to other functions more quickly, further reducing the power consumption of network devices and increasing the revenue of operators.
[0188] The embodiment 6A of the positioning method of the present disclosure is illustrated in Fig. 10a. Detailed description of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0189] In one example of step 10A01, when a UE served by a first node is ready to enter an inactive state, if positioning measurement is configured for the UE in an inactive state or an idle mode, the first node transmits information indicating not to release positioning related configuration information to a second node. The first node may be a CU or a base station, and the second node may be a DU or a UE. The positioning related configuration information may be positioning related configuration information in an inactive or idle mode, and the information may be configuration information for an uplink positioning reference signal, configuration information for an SRS, configuration information for a PRACH, or configuration information for transmitting an uplink positioning reference signal.
[0190] If the first node is a CU and the second node is a DU, the information indicating that the positioning-related configuration information is not released may be sent by a UE context release command message or a UE context modification request message, or by another message indicating that the positioning-related configuration information is not released. If the first node is a base station and the second node is a UE, the information indicating that the positioning-related configuration information is not released may be sent by an RRC release message or another RRC message. It should be understood that the names of the above messages for transmitting the information indicating that the positioning-related configuration information is not released are provided for illustrative purposes, but are not meant to be limiting, and other messages may also be used to transmit information without departing from the scope of the present disclosure.
[0191] The message including the information indicating that the positioning-related setting information is not to be released may include at least one of the following information: The indication of not releasing the positioning related configuration is used to indicate to the second node that the positioning related configuration will not be released. Whether the second node will reserve the associated configuration for the UE even if the UE enters the inactive state and the idle mode; The condition information for releasing the positioning-related configuration is used to indicate to the second node a reservation condition for the positioning-related configuration, which may be a time condition or an event condition. If the condition is a time condition, for example, the condition may be a specific time for reserving the positioning-related configuration, which may be an absolute time or a remote time, and when the time condition is met, the second node can release or cannot reserve the positioning-related configuration; if the condition is an event condition, the event condition may be that if the second node does not receive any signal transmitted from the UE through the positioning-related configuration, or if the second node does not receive any signal transmitted from the UE through the positioning-related configuration for a certain number of times, or if the second node does not receive any signal transmitted from the UE through the positioning-related configuration within a certain period of time, the second node can consider that the UE has left the coverage of the second node, and the second node can release the positioning-related configuration.
[0192] After receiving the information indicating not to release the positioning related setting information, the second node determines whether to release the positioning related setting according to the indication and / or condition of the information.
[0193] In one example of step 10A02, when the first node receives an indication related to the cancellation of the positioning related setting, the first node transmits related information indicating the cancellation of the positioning related setting to the second node.
[0194] For indications regarding the deactivation of positioning related settings, the indications may include the following circumstances: - the LMF stops the positioning-related configuration procedure, for example, the LMF decides to stop positioning measurements of the UE in an inactive or idle state, and the LMF informs the first node that the positioning-related configuration procedure is stopped, so that the first node needs to send information to the second node to indicate the release of the positioning-related configuration; The UE moves to a new serving node, which may be a base station, or a child node under the first node, such as a DU different from the second node. The new serving node notifies the first node of a change in serving node, a change in the UE's serving cell, or a change in positioning-related setting context, so that the first node needs to send information to the second node to indicate the release of positioning-related settings.
[0195] If the first node is a CU and the second node is a DU, the information for indicating the release of the positioning related configuration is sent through a UE Context Release Command message or a UE Context Modification Request message, or through other messages for indicating to release the positioning related configuration information. If the first node is a base station and the second node is a UE, the information for indicating to release the positioning related configuration information can be sent by an RRC Release message or a system message or other RRC message. The names of the above messages for transmitting the information indicating the release of the positioning related configuration information are provided for illustration purposes, but this is not meant to be limiting, and it should be understood that other messages can also be used to transmit the information without departing from the scope of the present disclosure. The information for indicating the release of the positioning related configuration can include at least one of the following items: The indication to release the positioning related configuration is used to indicate to the second node to release the positioning related configuration, i.e. the second node will not reserve the related configuration for the UE.
[0196] It should be noted that after the positioning related settings are released or unreserved, the second node can decide whether to release or continue to reserve the positioning related settings based on the condition information for releasing the positioning related settings in step 10A01 or the indication for releasing the positioning related settings in step 10A02.
[0197] In this manner, when the UE enters an inactive state or an idle mode, it can be ensured that the node serving the UE can always reserve the configuration information required for positioning for the UE to ensure successful completion of positioning. Since the positioning related configuration maintained by the serving node for the UE is not assigned to other UEs, the positioning function is more appropriately implemented in the inactive state or the idle mode while avoiding interference between users.
[0198] Above is the description of embodiment 6A of the positioning configuration method of the present disclosure. When using this method, the UE can successfully complete the positioning procedure in an inactive or idle state, avoiding positioning interruption even in a separate architecture, avoiding interference problems, improving positioning accuracy, helping the positioning result to be applied to other functions more quickly, reducing the power consumption of network devices, and increasing the operator's revenue.
[0199] The embodiment 6B of the positioning method of the present disclosure is illustrated in FIG. 10b. Detailed description of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0200] In one example of step 10B01, the first node sends relevant information to the second node for indicating the scheduled time of positioning activation. The first node may be a CU, a UE, a base station, or a core network node, and the second node may be a DU, a base station, or a core network node. That is, possible situations include: the CU sends relevant information to the DU for indicating the scheduled time of positioning activation; the UE sends relevant information to the base station for indicating the scheduled time of positioning activation; the first base station sends relevant information to the second base station for indicating the scheduled time of positioning activation, i.e., the source base station sends relevant information to the target base station for indicating the scheduled time of positioning activation in a handover procedure; in the handover procedure, the base station sends relevant information to the core network node for indicating the scheduled time of positioning activation; in the handover procedure, the core network node sends relevant information to the base station for indicating the scheduled time of positioning activation. The relevant information indicating the scheduled time of positioning activation may be generated by the first node itself or may be received by the first node from another node, which may be an LMF, a base station or a core network node.
[0201] When the first node is a CU and the second node is a DU, the relevant information for indicating the scheduled time of positioning activation can be sent by a positioning measurement request message or another message for a relevant information message for indicating the scheduled time of positioning activation.
[0202] When the first node is a UE and the second node is a base station, the relevant information for indicating the scheduled time of positioning activation may be transmitted by an RRC message for relevant information for indicating the scheduled time of positioning activation.
[0203] If the first node is a first base station and the second node is a second base station, the relevant information for indicating the scheduled time of positioning activation may be transmitted by a handover request message or a UE context response message, or may be transmitted by another message for the relevant information for indicating the scheduled time of positioning activation.
[0204] If the first node is a base station and the second node is a core network node, the relevant information for indicating the scheduled time for positioning activation may be transmitted by a handover request message or another message for relevant information for indicating the scheduled time for positioning activation.
[0205] If the first node is a core network node and the second node is a base station, the relevant information for indicating the scheduled time for positioning activation may be transmitted by a handover request message or another message for the relevant information for indicating the scheduled time for positioning activation.
[0206] While the above names of the messages for the associated information indicating the scheduled time of positioning activation are provided for illustrative purposes, this is not meant to be limiting, and it should be understood that other messages can also be used to transmit the information without departing from the scope of the present disclosure. - It may include at least one of the scheduled times used to indicate the time to activate positioning measurements at which the node selected for positioning starts positioning measurements.
[0207] After receiving the relevant information indicating the scheduled time of positioning activation, the second node determines whether to start the positioning related measurements according to the scheduled time.
[0208] In this manner, it can be ensured that all nodes selected for positioning can receive the scheduled time for activating positioning, and when the scheduled time is reached, measurements can be started simultaneously. When using this method, the measurement configuration can be sent to the nodes selected for positioning in advance, and the nodes selected for positioning can start positioning measurements according to the scheduled time, thereby reducing the delay of the positioning procedure, and further ensuring that all nodes selected for positioning can start positioning measurements simultaneously when the UE is in a moving state or in an inactive or idle mode, ensuring the successful completion of the positioning procedure and reducing the delay of positioning.
[0209] Above, the embodiment 6B of the positioning setting method of the present disclosure has been described. With this method, the UE can ensure that all nodes selected for positioning can obtain the scheduled time of positioning activation under various conditions, such as during service under separate architecture, during UE mobility, or when the UE is inactive or idle, so that all nodes selected for positioning can simultaneously start positioning measurement, thereby reducing the positioning delay, ensuring the successful execution of positioning, and applying the positioning result to various network functions more quickly, thereby increasing the operator's revenue.
[0210] A seventh embodiment of the positioning method of the present disclosure is illustrated in Figure 15. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0211] In one example of step 1500, the LMF initiates a UE positioning setup procedure for the UE through the AMF and a first node, where the first node may be a base station, and the first node is a node having a UE context and may be considered as an anchor node for the UE. According to one embodiment, the UE positioning setup procedure may correspond to steps 1 to 21 in a deferred mobile terminated location request (MT-LR) procedure for periodic or triggered location events in the 3GPP communication standard. It should be understood that the above embodiment is merely an example, and the UE positioning setup procedure is not limited thereto.
[0212] In one example of step 1501, the UE enters an RRC_INACTIVE state. The UE is configured to transmit data and signaling related configurations in the RRC_INACTIVE or RRC_IDLE state. According to one embodiment, the data and signaling related configurations transmitted in the RRC_INACTIVE or RRC_IDLE state may be a Small Data Transmission (SDT) configuration used for transmitting a small amount of data or signaling. It should be understood that the above embodiment is merely an example, and the related configurations for transmitting data and signaling in the RRC_INACTIVE or RRC_IDLE state are not limited thereto.
[0213] In one example of step 1502 , for a UE that successfully performs a periodic or triggered position request at step 1500 , the UE monitors for the occurrence of the trigger event or periodic event requested at step 1500 .
[0214] In one example of step 1503, when a specific event is triggered or a timer expires, the UE transmits an event report to the network (e.g., LMF or AMF) that can be transmitted to a second node via an SDT. The second node may be a base station that is currently serving the UE and may be considered as a non-anchor node.
[0215] In one example of step 1504, the second node initiates a UE context lookup procedure towards the first node. At this stage, the first node determines the UE without context relocation, i.e., the UE context is maintained in the first node. At this stage, the first node can send partial UE context information to the second node, which is used to send data and / or signaling in the SDT to the core network.
[0216] In one example of step 1505, the second node sends a message including the event report received in step 1503 to the first node according to the partial UE context information acquired in step 1504, the first node sends a NAS (Non Access Stratum) message including the event report to the AMF, and the AMF sends the event report to the LMF.
[0217] In one example of step 1506, when the LMF receives the event report, if the LMF can process the event report, an acknowledgment response for the event report is further sent to the UE via the AMF, the first node, and the second node, where the event report acknowledgment response can be sent from the second node to the UE via the downlink SDT.
[0218] In one example of step 1507, if the event report requests a position estimate, the LMF may perform one or more positioning procedures. If the positioning procedures include an uplink (UL) or uplink+downlink (UL+DL) positioning procedure, the LMF sends a positioning information request message to the first node.
[0219] In one example of step 1508, if the first node knows that the UE is currently served by the second node (e.g., the first node may know this in step 1504), the first node sends a message to the second node for a positioning information request. In one embodiment, the message may be an XnAP message related to the UE, and the message may be a positioning information request message or another XnAP message. The above is by way of example only, and the message for the positioning information request is not limited thereto. The second node receives the message.
[0220] In one example of step 1509, if information related to UE positioning configuration is included in the positioning request message received in step 1508, the second node can use the information related to UE positioning configuration to configure a positioning signal for the UE. In one embodiment, the information related to UE positioning configuration may be requested SRS transmission characteristics or configured SRS transmission information. The above is merely an example, and the information related to UE positioning configuration is not limited thereto.
[0221] In one example of step 1510, the second node transmits a message for positioning information response to the first node. This message may include positioning signal configuration information configured by the second node for the UE. Although the positioning signal configuration information is transmitted to the UE by the second node, the second node cannot assemble the RRC message transmitted to the UE because the second node does not have all the context of the UE (e.g., encrypt and protect the integrity of the RRC message). The second node needs to transmit the positioning signal configuration information of the UE to the first node, and the first node includes the positioning signal configuration information in the RRC message and transmits the RRC message to the UE transparently through the second node. In one embodiment, the positioning signal configuration information is a configuration related to physical resources of how the UE transmits an uplink positioning signal under the second node, for example, the positioning signal configuration information may be a time-frequency resource configuration, a spatial relationship configuration, and / or a system frame number initialization time of the positioning signal. In one embodiment, the message may be a UE associated XnAP message, which may be a positioning information response message or another XnAP message. The above is only an example, and the message for sending the positioning information response is not limited thereto. Step 1511: The first node sends a message including an RRC release message to the second node, where the message including the RRC release message may be a UE context search response message, a UE context search failure message, a UE context release message, or a new XnAP message. It should be understood that the above is only an example, and the message including the RRC release message is not limited thereto.
[0222] According to one or more embodiments, the message, including the RRC release message, comprises: -The RRC release message assembled by the first node may include information of an RRC container including a positioning signal configuration of the UE under the second node received in step 1510.
[0223] In one example of step 1512, the second node transparently transmits an RRC release message in an RRC container to the UE, and the UE transmits a positioning signal according to a positioning signal configuration included in the received RRC release message.
[0224] In this manner, the UE can acquire a positioning signal configuration transmitted from a non-anchor node (i.e., a base station currently serving the UE) without changing the anchor node (i.e., without UE context relocation), where a non-anchor node means that there is no signaling connection (or no connection) for the UE between the node and the core network and there is no complete UE context information.
[0225] Here, steps 1511 and 1512 can occur before step 1513 or after step 1513 .
[0226] In one example of step 1513, the first node sends a location information response message to the LMF, where the location information response message includes the positioning signal settings of the UE under the second node acquired in step 1510.
[0227] In one example of stage 1514, a UE positioning procedure is performed.
[0228] Above, the positioning setting method of the present disclosure has been described, which can set signals to the UE under the condition that the anchor node of the UE is not changed and the state is not changed, that is, can support sending the positioning signal setting information of the non-anchor node to the UE, which allows the positioning procedure to be completed more quickly, reduces the positioning waiting time and signaling exchange between nodes, helps the positioning result to be applied to other functions more quickly, and further reduces the power consumption of network devices and increases the revenue of operators.
[0229] Another method of the positioning setting method of the present disclosure is illustrated in Figure 11. Detailed description of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps.
[0230] In one example of step 1101, the first node acquires information related to candidate positioning reference points. The positioning reference points refer to positioning signal transmission / reception points for positioning the UE, which may be antennas on a base station, and may further be referred to as TPs or TRPs. The candidate positioning reference points may be one or more positioning TRP sets, where a TRP is a positioning reference point for positioning. The one or more positioning TRP sets may include one or more candidate positioning TRPs (i.e., candidate positioning reference points) for selecting the TRP selected for positioning. The candidate positioning TRP set may be generated by the first node itself or received by the first node from another node. The first node may be a base station, and the other node may be a base station or a node having an LMF function.
[0231] In one or more positioning candidate TRP sets, each candidate positioning TRP set may include at least one of the following information: - Scope information used to indicate a specific positioning scope, which may be a coverage range, a time range, or a response to a positioning quality requirement. If the scope information is a coverage range, the range may be a cell coverage range, and the scope information may be a cell ID (e.g., CGI (Cell Global IDentifier), ECGI (E-UTRAN CGI), etc.); or, the scope information is a coverage range of an SSB beam in a cell, and the scope information may be a cell ID (e.g., CGI, ECGI, etc.) + SSB beam index; or, the scope information is a location coordinate range. Although specific examples of scope information have been described, the present disclosure is not limited thereto; -One or more TRP lists, each of which indicates information of a TRP related to positioning and includes one or more TRP information, each TRP information including at least one of the following information: (1) gNB ID indicating the base station where the TRP is located; (2) a cell ID indicating the cell in which the TRP is located, which may be a CGI or ECGI; (3) A TRP ID that identifies a specific TRP under the base station; or (4) Positioning support information indicating positioning support information for the TRP, such as information such as the settings of a positioning reference signal.
[0232] The candidate positioning TRP set may be per UE or per node.
[0233] If there is a candidate positioning TRP set for each UE, the candidate positioning TRP set may be a TRP list to be used for UE positioning or later. For example, the base station can determine which TRP list to use at a corresponding time according to the time information of the scope information.
[0234] When there are multiple TRP lists for each node with a candidate positioning TRP set, each list may be implicit, e.g., the order of the lists is a default priority order (e.g., top of the order means high priority or bottom of the order means high priority), or it may be direct, e.g., with a priority indication where the priority is expressed as a number (e.g., higher numbers mean higher priority or lower numbers mean higher priority).
[0235] Although specific examples of information related to candidate positioning reference points (e.g., candidate positioning TRP sets) have been described above, the present disclosure is not limited thereto and all forms of information related to candidate positioning reference points may be employed.
[0236] The first node generates or derives a positioning TRP set according to the TRP information and / or other supporting information transmitted by one or more base stations.
[0237] In one example of step 1102, the location management function node sends a location information request to the first node to request the UE to be positioned under the first node. If there is a set of candidate positioning TRPs for each UE, the first node can determine a list of TRPs currently selected for positioning the UE according to the UE's ID and / or other information.
[0238] If there is a candidate positioning TRP set for each node, the first node compares the current location information of the UE (e.g., information on the cell in which the UE is located and / or SSB beam index) with the location area information in the TRP set received in step 1101, and if the location of the UE is within the location area, the first node decides to use the TRP in the TRP list corresponding to the location area to position the UE. If there are multiple TRP lists that meet the location area condition when the first node selects a positioning TRP set, the first node can select a positioning TRP list according to its own strategy and / or list priority.
[0239] In one example of step 1103, the first node sends a request for positioning support information and / or a request for positioning measurement to a second node, which may be, for example, a base station that is a node corresponding to a gNB ID or cell ID in the TRP list in the used positioning TRP set determined in step 1103.
[0240] The first node transmits (or transmits) the acquired support information to the UE, and the first node transmits a positioning signal configuration to the UE and / or the second node, and simultaneously activates positioning, i.e. a positioning measurement procedure is initiated.
[0241] In this manner, the node serving the UE can acquire alternative positioning TRP schemes and / or support information in advance, and at the beginning of positioning, the TRP selected for positioning can be directly determined by the UE's current location information, without the need to exchange positioning information with the LMF, thereby reducing positioning delays and the load of signaling exchange.
[0242] When the UE is moving, the first node can send positioning measurement information directly to the node selected for UE positioning, thereby preventing positioning interruptions due to handover or reselection and reducing positioning waiting time and signaling exchanges in the positioning procedure.
[0243] The above describes the positioning configuration method of the present disclosure, which allows a node serving a UE to obtain positioning-related support information before the positioning procedure begins, thereby reducing positioning delay, accelerating the positioning procedure, reducing additional signaling overhead, and completing the positioning procedure more quickly in a more energy-saving manner.
[0244] Another embodiment 1 of the positioning method of the present disclosure is illustrated in Fig. 12. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0245] In one example of step 1200, before the positioning procedure is initiated, the serving node acquires information on candidate positioning reference points, which may be a set of candidate positioning TRPs. The serving node and neighboring nodes may be, for example, base stations. According to an exemplary embodiment, step 1200 may include the following steps 1200-1, 1200-2, and 1200-3.
[0246] In one example of step 1200-1, the LMF acquires TRP information and positioning configuration information corresponding to each TRP, such as time-frequency resource locations of positioning reference signals (PRS), from a serving node and / or multiple neighboring nodes.
[0247] In one example of step 1200-2, the LMF generates one or more candidate positioning TRP sets from the received TRP information and / or historical positioning TRP information, each candidate positioning TRP set may include at least one of the following information: - Scope information used to indicate a specific positioning scope, which may be a coverage range, a time range, or a positioning quality requirement. If the scope information is a coverage range, the range may be a cell coverage range, and the scope information may be a cell ID (e.g., CGI, ECGI, etc.); or the scope information is a coverage range of an SSB beam in a cell, and the scope information can be a cell ID (e.g., CGI, ECGI, etc.) + SSB beam index; or the scope information is a location coordinate range. Although specific examples of scope information have been described, the present disclosure is not limited thereto; -TRP list indicating TRPs related to positioning including one or more TRP information, each TRP information including at least one of the following information: (1) gNB ID indicating the base station where the TRP is located; (2) a cell ID indicating the cell in which the TRP is located, which may be a CGI or ECGI; (3) A TRP ID that identifies a specific TRP under the base station; or (4) Positioning support information indicating positioning support information for the TRP, such as information such as the settings of a positioning reference signal.
[0248] In one example of step 1200-3, the LMF transmits one or more TRP sets associated with the serving node and neighboring nodes, respectively, where "associated" means that the location area of the TRP is a cell and / or cell coverage area under the node.
[0249] The serving node and neighboring nodes store the received TRP set.
[0250] In one example of step 1201, the UE exchanges UE positioning capabilities with the LMF.
[0251] In one example of step 1202, the LMF determines to position the UE, and the LMF sends a positioning and activation request to a serving node where the UE is located, where the request includes positioning (location method and / or measurement reporting method) and / or activation information. -Uplink (UL) positioning method and reporting settings; -Downlink (DL) positioning method and reporting settings; -UL+DL positioning method and reporting settings; or - At least one of a positioning activation time indicating a specific time, which may be in the form of a system frame number or a timestamp, when the UE starts transmitting and / or receiving a positioning reference signal.
[0252] Although specific examples of positioning activation requests are described above, the disclosure is not limited thereto.
[0253] In one example of step 1203, the serving node receives the information and compares the information with the location area in the TRP set received in step 1200 according to the current location information of the UE (e.g., information of the cell and SSB beam in which the UE is located). If the location of the UE is within the location area, the first node decides to use the TRP in the TRP list corresponding to the location area to position the UE.
[0254] In one example of step 1204, if a UL positioning method and / or a UL+DL method is used, the first node transmits positioning configuration information to the UE, which may include at least one of the following information: - UL positioning reference signal configuration information indicating a transmission mode and time-frequency resources of the uplink positioning reference signal to the UE; - DL positioning support information indicating information on a TRP selected for downlink positioning and corresponding support information to a UE may be a configuration of a positioning reference signal transmitted on a TRP so that the UE receives and measures a downlink positioning reference signal; The positioning activation time indicates a specific time when the UE starts transmitting (or transmitting) and receiving a positioning reference signal, which may be in the form of a system frame number or a timestamp.
[0255] The information can be sent via an RRC reconfiguration message or an RRC release message.
[0256] In one example of step 1205, the serving node sends a positioning measurement request to a neighboring node selected for positioning, where the other node may be a base station, and the other node is a node corresponding to a gNB ID or a cell ID in the TRP list of the selected TRP set. The positioning measurement request may include ID information (e.g., LMF ID and transaction ID) for positioning measurement, TRP information for positioning measurement, signal configuration (e.g., SRS configuration) for positioning measurement, and / or reporting method for positioning measurement. The neighboring node receives such information.
[0257] If the serving node cannot obtain the TRP support information in step 1200, the serving node may send a request for positioning support information, which may include the requested TRP ID and a support information request indication, to a neighboring node. The neighboring node receives the information and transmits corresponding positioning service information.
[0258] In one example of step 1206, if a positioning activation time is not included in step 1204, the serving node may send a positioning activation to the UE to indicate to the UE to start transmitting uplink positioning signals.
[0259] In one example of step 1207, the serving node sends a positioning activation response to the LMF, where the response includes the TRP set selected in step 1203, so that after receiving the measurement report, the LMF calculates the UE's position based on the information.
[0260] In one example of step 1208, if the positioning method includes a DL positioning method and / or a UL+DL positioning method, the serving node provides the UE with positioning support information related to downlink positioning measurements that can be acquired in step 1200 or step 1205.
[0261] In one example of step 1209, if the positioning method includes a DL positioning method and / or a UL+DL positioning method, the serving node sends a request positioning information to the UE, where the information includes a request to measure positioning measurements related to downlink positioning. The information is obtained in step 1202.
[0262] After receiving the information, the UE may initiate downlink related positioning measurements according to the configuration and report the measurement results according to the configuration.
[0263] In one example of step 1210, UEs and / or nodes selected for positioning measurements report measurement results according to a reporting configuration.
[0264] The LMF calculates the UE's location based on the measurement results and the location information of the TRP related to positioning.
[0265] In this manner, the node serving the UE can acquire alternative positioning TRP methods and / or auxiliary information in advance, and at the beginning of positioning, the TRP selected for positioning is directly determined by the UE's current location information, and there is no need to exchange positioning information with the LMF. After positioning is started, downlink positioning and uplink positioning are directly activated by the serving node to reduce positioning delay and signaling exchange load.
[0266] Above is a description of embodiment 1 of another positioning configuration method of the present disclosure, in which a node serving a UE can obtain positioning related support information before starting a positioning procedure, and the positioning procedure is directly activated by the serving node, thereby reducing positioning delay, accelerating the positioning procedure, reducing additional signaling overhead, and completing the positioning procedure more quickly in a more energy-saving manner.
[0267] Another embodiment 2 of the positioning method of the present disclosure is illustrated in Fig. 13. Detailed descriptions of steps not related to the present disclosure will be omitted in this specification. The method includes the following steps:
[0268] In one example of step 1300, the LMF obtains TRP information and positioning configuration information corresponding to each TRP, such as time-frequency resource locations of PRSs, from a serving node and / or multiple neighboring nodes.
[0269] In one example of step 1301, the UE exchanges UE positioning capabilities with the LMF.
[0270] In one example of step 1302, the UE exchanges positioning information with the LMF, the positioning information indicating a positioning signal configuration assigned by a serving node, such as SRS configuration information and / or SFN initialization time. Using step 1302, the UE and the LMF acquire information.
[0271] In one example of step 1303, the LMF sends a location activation request to a serving node, where the request may include at least one of the following information: - Positioning settings, including information such as positioning method, positioning signal settings, etc.; - activation information used to indicate the type of positioning signal and / or the transmission time of the positioning signal, which may include the activation time; or -As a TRP set that may include one or more TRP lists indicating TRP information related to positioning, each TRP list further includes at least one of the following information: (1) gNB ID indicating the base station where the TRP is located; (2) a cell ID indicating the cell in which the TRP is located, which may be a CGI or ECGI; (3) A TRP ID that identifies a specific TRP under the base station; or (4) Positioning support information indicating positioning support information for the TRP, such as information such as the settings of a positioning reference signal.
[0272] In one example of step 1304, the serving node sends a positioning activation to the UE via a positioning activation configuration, which causes the UE to transmit (or transmit) an uplink positioning signal and start measuring a downlink positioning signal.
[0273] In one example of step 1305, the serving node sends a positioning measurement request to a neighboring node selected for positioning, where the other node may be a base station, and the other node is a node corresponding to a gNB ID or cell ID in the TRP list of the selected TRP set. The positioning measurement request includes: - ID information for the positioning measurement (e.g. LMF ID and transaction ID) used to indicate to neighboring nodes which positioning measurement procedure was initiated by the LMF to which the positioning measurement request belongs; -TRP information for positioning measurement, which is used to indicate which TRP under an adjacent node needs to participate in positioning measurement and may include TRP ID information; -Signal configuration for positioning measurement (e.g., SRS configuration) used to indicate how a TRP that needs to participate in positioning receives and measures uplink positioning signals; or - At least one of the reporting modes for positioning measurements may be included, which is used to indicate to neighboring nodes how to report positioning measurement results.
[0274] The neighboring nodes receive and apply the information and further transmit to the serving node or LMF whether the positioning measurement is successful or not.
[0275] In one example of step 1306, the serving node sends a positioning activation response to the LMF, where the response includes a result as to whether the positioning measurement request is successful or not, so that after receiving the measurement report, the LMF calculates the UE's position based on the information.
[0276] In one example of step 1307, the neighboring node and / or the serving node performs positioning measurements according to the configuration and reports the positioning measurement results to the LMF, and the UE performs positioning measurements according to the configuration and reports the measurement results.
[0277] The LMF calculates the UE's location based on positioning-related measurement results and TRP location information.
[0278] In this manner, the node serving the UE can directly send a positioning measurement request to the neighboring node selected for positioning, thereby avoiding repeated transmission of positioning signal configuration information and reducing positioning delays and signaling exchange load.
[0279] Above, the second embodiment of another positioning configuration method of the present disclosure has been described. With this method, a node serving a UE can directly send a positioning measurement request to a neighboring node selected for positioning without going through an LMF, thereby reducing positioning delay, accelerating the positioning procedure, reducing additional signaling overhead, and completing the positioning procedure more quickly under more energy-saving conditions.
[0280] FIG. 14 illustrates a block diagram of an electronic device according to an embodiment of the present disclosure. The electronic device may further be a wireless communication device, and may be any device in a wireless communication system, such as a user device, a base station, a core network, etc. As illustrated in FIG. 14, the electronic device 1400 includes a processor 1401 and a memory 1402. Under the control of the processor 1401 (which may be embodied as one or more processors), the electronic device 1400 may be configured to perform the associated operations performed by each electronic device in one of the methods described above. Although the processor 1401 and the memory 1402 are illustrated as separate entities, they may be embodied as a single entity, such as a single chip. The processor 1401 and the memory 1402 may be electrically connected or coupled to each other. The processor 1402 may be configured to execute instructions (including computer programs) stored in the memory 1402 to control the overall operation of the electronic device 1400, thereby implementing the operations in the method flow described above.
[0281] Those skilled in the art will understand that the present disclosure can be realized in different specific forms without changing the technical idea or essential characteristics of the present disclosure. Therefore, the above-described embodiments should be understood to be merely illustrative and not limiting. The scope of the present disclosure is defined by the appended claims, not the detailed description. Therefore, all modifications or changes derived from the meaning and scope of the appended claims and their equivalents should be understood to be within the scope of the present disclosure.
[0282] In the above-described embodiments of the present disclosure, all operations and messages may be selectively performed or omitted. Also, the operations in each embodiment need not be performed sequentially, and the order of operations may be changed. Messages need not be transmitted sequentially, and the order of transmission of messages may be changed. Each operation and each transmission of messages may be performed independently.
[0283] Although the present disclosure has been illustrated and described with reference to various embodiments, those of ordinary skill in the art will recognize that various changes in form and detail may be made therein without departing from the spirit and scope of the present disclosure, as defined by the appended claims and equivalents thereof. [Explanation of symbols]
[0284] 1400 Electronic equipment 1401 Processor 1402 Memory
Claims
1. 1. A method performed by a first node in a wireless communication system, comprising: transmitting a message including a Sounding Reference Signal (SRS) configuration for positioning to a second node; Identifying that a user equipment (UE) is entering a deactivation state; sending a UE context release command message to the second node, the message including information indicating a reservation of a positioning related configuration; A method performed by a first node, in which the SRS configuration for positioning is not released for the UE in the inactive state based on the information indicating the reservation of the positioning related configuration being included in the UE context release command message.
2. 2. The method performed by the first node according to claim 1, wherein the first node is a central unit (CU) of a base station and the second node is a distributed unit (DU) of the base station.
3. receiving a retrieve UE context request message from a third node; sending a search UE context response message to the third node in response to the search UE context request message; The search UE context request message includes an identifier (ID) of the UE; The method performed by the first node of claim 1 , wherein the search UE context response message includes positioning information for the UE.
4. The method performed by the first node of claim 3, wherein the positioning information for the UE includes at least one of a requested SRS transmission characteristic, a routing identifier (ID) or a transaction ID.
5. In a first node in a wireless communication system, Memory and a processor coupled to the memory, the processor comprising: Sending a message including a sounding reference signal (SRS) configuration for positioning to a second node; Identifying that a user equipment (UE) is entering a deactivation state; configured to send a UE context release command message to the second node, the message including information indicating a reservation of a positioning related configuration; A first node in a wireless communication system, wherein the SRS configuration for positioning is not released for the UE in the inactive state based on the information indicating the reservation of the positioning related configuration being included in the UE context release command message.
6. The first node in a wireless communication system according to claim 5, wherein the first node is a central unit (CU) of a base station and the second node is a distributed unit (DU) of the base station.
7. The processor, receiving a search UE context request message from a third node, the search UE context request message including an identifier (ID) of the UE; The first node in a wireless communication system of claim 5, further configured to: send a search UE context response message to the third node in response to the search UE context request message, the search UE context response message including positioning information for the UE.
8. the third node is a location to which the UE has moved from the first node; The first node in a wireless communication system of claim 7, wherein the positioning information for the UE includes at least one of a requested SRS transmission characteristic, a routing identifier (ID), or a transaction ID.
9. 1. A method performed by a second node in a wireless communication system, comprising: receiving a message including a sounding reference signal (SRS) configuration for positioning from a first node; receiving a UE context release command message from the first node based on a user equipment (UE) entering a deactivation state, the UE context release command message including information indicating reservation of a positioning related configuration; and determining not to release the SRS configuration for positioning for the UE in the inactive state based on the information indicating the reservation of the positioning-related configuration being included in the UE context release command message.
10. The method performed by the second node according to claim 9, further comprising reserving an SRS configuration for the positioning in the inactive state.
11. 10. The method performed by the second node of claim 9, wherein the first node is a central unit (CU) of a base station and the second node is a distributed unit (DU) of the base station.
12. 1. A method performed by a user equipment (UE) in a wireless communication system, comprising: receiving a Radio Resource Control (RRC) release message from the first node, the RRC release message including information indicating a reservation of a positioning related configuration; entering an inactive state; transmitting a sounding reference signal (SRS) for positioning in the inactive state; A method performed by a user equipment (UE), in which an SRS configuration of an SRS for positioning is not cancelled based on information indicating reservation of the positioning-related configuration being included in the RRC cancellation message.
13. moving from the first node to a third node; sending an RRC resumption request message to the third node; The method performed by the user equipment (UE) of claim 12, further comprising: receiving an RRC resumption message from the third node.
14. A method performed by the first node described in claim 3, wherein the third node is a location to which the UE has moved from the first node.
15. The transaction ID is a new radio positioning protocol A (NRPPa) transaction ID, The requested SRS transmission characteristics include a frequency resource for the SRS and a periodicity of the SRS; The method performed by the first node according to claim 4, wherein the routing ID is used to indicate an ID of a location management node.
16. A method performed by the first node described in claim 3, wherein the search UE context request message further includes information on the reason indicating that the resumption of radio resource control (RRC) connection by the UE is for inactive SRS-based positioning.