Physical Layer Requirements for UE Positioning
The UE in 5G networks requests and utilizes positioning assistance information to perform efficient UE-device positioning, addressing the need for low-latency and accurate location determination in 5G networks.
Patent Information
- Application Number
- JP2022554233
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-10
- Filing Date
- 2020-12-11
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2040-12-11
AI Technical Summary
Existing wireless communication systems, particularly 5G networks, lack efficient methods for obtaining the location of mobile devices with low latency and high accuracy, which is crucial for applications like emergency calling and asset tracking.
A user equipment (UE) sends a positioning assistance request via a physical layer uplink channel to a network entity, receives positioning assistance information, and performs UE-device positioning functions based on this information, utilizing parameters for signal exchange between the UE and another device.
This method enables low-latency and accurate positioning of mobile devices by optimizing resource usage and signal exchange, enhancing the spectral efficiency and signaling efficiency of 5G networks.
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Abstract
Description
[Background technology]
[0001] Wireless communication systems have evolved through various generations, including first-generation analog wireless telephone service (1G), second-generation (2G) digital wireless telephone service (including interim 2.5G and 2.75G networks), third-generation (3G) high-speed data, Internet-enabled wireless service, fourth-generation (4G) service (e.g., Long Term Evolution (LTE), or WiMax), fifth-generation (5G) service, etc. Currently, many different types of wireless communication systems are in use, including cellular systems and personal communications services (PCS) systems. Examples of known cellular systems include Cellular Analog Advanced Mobile Phone System (AMPS) and digital cellular systems based on code division multiple access (CDMA), frequency division multiple access (FDMA), time division multiple access (TDMA), Global System for Mobile Access (GSM) variants of TDMA, etc.
[0002] Among other improvements, the fifth-generation (5G) mobile standard calls for higher data transfer speeds, a greater number of connections, and better coverage. According to the Next Generation Mobile Network Alliance, the 5G standard is designed to provide data rates of tens of megabits per second to each of tens of thousands of users, providing 1 gigabit per second per office floor with dozens of employees. To support large-scale sensor deployments, hundreds of thousands of simultaneous connections should be supported. Therefore, the spectral efficiency of 5G mobile communications should be significantly increased compared to the current 4G standard. Furthermore, it should also increase signaling efficiency and significantly reduce latency compared to current standards.
[0003] Obtaining the location of a mobile device accessing a wireless network can be useful for many applications, including, for example, emergency calling, personal navigation, asset tracking, locating friends or family, etc. Existing positioning methods include methods based on measuring radio signals transmitted from various devices, including satellite vehicles (SVs) and terrestrial radio sources in the wireless network, such as base stations and access points. Standardization for 5G wireless networks is expected to include support for various positioning methods, which may use reference signals transmitted by base stations in a manner similar to how LTE wireless networks currently use positioning reference signals (PRS) and / or cell-specific reference signals (CRS) for position determination. Summary of the Invention [Means for solving the problem]
[0004] An exemplary user equipment (UE) includes a transceiver configured to wirelessly send and receive communication signals to and from a network entity, a memory, and a processor communicatively coupled to the transceiver and the memory, wherein the processor is configured to: send a positioning assistance request via a physical layer uplink channel by the transceiver to the network entity, for the network entity to provide positioning assistance information indicating one or more parameters for a signal exchange of one or more positioning reference signals between the UE and another device; receive the positioning assistance information from the network entity via the transceiver via a physical layer downlink channel; and perform one or more UE-device positioning functions according to the positioning assistance information.
[0005] Implementations of such a UE may include one or more of the following features: The positioning assistance request consists of a single bit. The positioning assistance request has a scheduling request format for the UE to request an uplink grant for transmission over a physical uplink shared channel. The processor is further configured to send, via the transceiver to the network entity over the physical layer uplink channel, one or more indications of positioning technique characteristics. The one or more indications of positioning technique characteristics include (i) one or more reference signal types to be transmitted by the UE, or (ii) a positioning technique the UE is configured to use to determine its position, or (iii) a signal technology the UE is configured to use to determine its position, or (iv) a measurement gap request, or (v) a bandwidth, time window, and resource request, or (vi) a band or carrier to be used by the UE for position determination, or (vii) a location, velocity, or orbit of a neighbor UE, or a combination of two or more thereof, or (viii) a combination of two or more of (i)-(vii).
[0006] Additionally or alternatively, implementations of such a UE may include one or more of the following features: The processor is configured to send the positioning assistance request over a semi-persistent physical uplink shared channel. The processor is configured to send the positioning assistance request over a physical uplink control channel. The processor is further configured to send one or more indications of positioning technique characteristics by the transceiver to a network entity over the physical uplink shared channel. The physical uplink shared channel is a semi-persistent physical uplink shared channel.
[0007] Additionally or alternatively, implementations of such a UE may include one or more of the following features: The processor is configured to determine, based on the positioning assistance information, which physical resources of the UE to use to perform one or more UE-device positioning functions. The processor is configured to determine, based on the positioning assistance information, at least one of a type of positioning signal to transmit for UE-device positioning, or a transmit power level for the positioning signal, or a positioning signal transmission duration, or a first measurement gap for transmitting the positioning signal, or a second measurement gap for receiving an incoming positioning signal from another UE. The processor is configured to descramble the positioning signal using a UE identity in the positioning assistance information.
[0008] Another exemplary UE includes means for sending a positioning assistance request to a network entity via a physical layer uplink channel, where the network entity provides positioning assistance information indicating one or more parameters for signal exchange of one or more positioning reference signals between the UE and another device; means for receiving the positioning assistance information from the network entity via a physical layer downlink channel; and means for performing one or more UE-device positioning functions according to the positioning assistance information.
[0009] Implementations of such a UE may include one or more of the following features: The positioning assistance request consists of a single bit. The positioning assistance request has a format of a scheduling request for the UE to request an uplink grant for transmission over a physical uplink shared channel. The means for sending the positioning assistance request is for sending, in association with the positioning assistance request, one or more indications of positioning technique characteristics to a network entity over the physical layer uplink channel. The one or more indications of positioning technique characteristics include (i) one or more reference signal types to be transmitted by the UE, or (ii) a positioning technique the UE is configured to use to determine its position, or (iii) a signal technology the UE is configured to use to determine its position, or (iv) a measurement gap request, or (v) a bandwidth, time window, and resource request, or (vi) a band or carrier to be used by the UE for position determination, or (vii) a location, velocity, or orbit of a neighbor UE, or a combination of two or more thereof, or (viii) a combination of two or more of (i)-(vii).
[0010] Additionally or alternatively, implementations of such a UE may include one or more of the following features: The means for sending the positioning assistance request is for sending the positioning assistance request over a semi-persistent physical uplink shared channel. The means for sending the positioning assistance request is for sending the positioning assistance request over a physical uplink control channel. The UE includes means for sending, to a network entity over the physical uplink shared channel, one or more indications of positioning technique characteristics associated with the positioning assistance request. The physical uplink shared channel is a semi-persistent physical uplink shared channel.
[0011] Additionally or alternatively, implementations of such a UE may include one or more of the following features: The UE includes determining means for determining, based on the positioning assistance information, which physical resources of the UE to use to perform one or more UE-device positioning functions. The determining means is for determining, based on the positioning assistance information, at least one of a type of positioning signal to transmit for UE-device positioning, or a transmit power level for the positioning signal, or a positioning signal transmission duration, or a first measurement gap for transmitting the positioning signal, or a second measurement gap for receiving an incoming positioning signal from another UE. The UE includes means for descrambling the positioning signal using a UE identity in the positioning assistance information.
[0012] An exemplary positioning method for a UE includes the steps of: sending a positioning assistance request from the UE to a network entity via a physical layer uplink channel, for the network entity to provide positioning assistance information indicating one or more parameters for signal exchange of one or more positioning reference signals between the UE and another device; receiving the positioning assistance information from the network entity at the UE via a physical layer downlink channel; and performing one or more UE-device positioning functions at the UE according to the positioning assistance information.
[0013] Implementations of such a method may include one or more of the following features: The positioning assistance request consists of a single bit. The positioning assistance request has a scheduling request format for the UE to request an uplink grant for transmission over a physical uplink shared channel. The method includes sending, in association with the positioning assistance request, one or more indications of positioning technique characteristics to a network entity over a physical layer uplink channel. The one or more indications of positioning technique characteristics include (i) one or more reference signal types to be transmitted by the UE, or (ii) a positioning technique the UE is configured to use to determine its position, or (iii) a signal technology the UE is configured to use to determine its position, or (iv) a measurement gap request, or (v) a bandwidth, time window, and resource request, or (vi) a band or carrier to be used by the UE for position determination, or (vii) a location, velocity, or orbit of a neighbor UE, or a combination of two or more thereof, or (viii) a combination of two or more of (i)-(vii).
[0014] Additionally or alternatively, implementations of such a method may include one or more of the following features: Sending the positioning assistance request includes sending the positioning assistance request over a semi-persistent physical uplink shared channel. Sending the positioning assistance request includes sending the positioning assistance request over a physical uplink control channel. The method includes sending one or more indications of positioning technique characteristics associated with the positioning assistance request from the UE to a network entity over the physical uplink shared channel. The physical uplink shared channel is a semi-persistent physical uplink shared channel.
[0015] Additionally or alternatively, implementations of such a method may include one or more of the following features: the method includes determining, based on the positioning assistance information, which physical resources of the UE to use to perform one or more UE-device positioning functions. The determining which physical resources of the UE to use to perform the one or more UE-device positioning functions includes determining, based on the positioning assistance information, at least one of a type of positioning signal to transmit for UE-device positioning, or a transmit power level for the positioning signal, or a positioning signal transmission duration, or a first measurement gap for transmitting the positioning signal, or a second measurement gap for receiving an incoming positioning signal from another UE. The method includes descrambling the positioning signal using a UE identity in the positioning assistance information.
[0016] An exemplary non-transitory processor-readable storage medium includes processor-readable instructions configured to cause a processor of a UE to send a positioning assistance request to a network entity via a physical layer uplink channel, for the network entity to provide positioning assistance information indicating one or more parameters for a signal exchange of one or more positioning reference signals between the UE and another device; receive the positioning assistance information from the network entity via a physical layer downlink channel; and perform one or more UE-device positioning functions according to the positioning assistance information.
[0017] Implementations of such a storage medium may include one or more of the following features: the positioning assistance request consists of a single bit; the positioning assistance request has a format of a scheduling request for the UE to request an uplink grant for transmission over a physical uplink shared channel; the instructions are configured to cause the processor to send, to a network entity over the physical layer uplink channel, one or more indications of positioning technique characteristics; the one or more indications of positioning technique characteristics include (i) one or more reference signal types to be transmitted by the UE, or (ii) a positioning technique the UE is configured to use to determine its position, or (iii) a signal technology the UE is configured to use to determine its position, or (iv) a measurement gap request, or (v) a bandwidth, time window, and resource request, or (vi) a band or carrier to be used by the UE for position determination, or (vii) a location, velocity, or orbit of a neighbor UE, or a combination of two or more thereof, or (viii) a combination of two or more of (i)-(vii).
[0018] Additionally or alternatively, implementations of such a storage medium may include one or more of the following features: the instructions are configured to cause the processor to send a positioning assistance request over a semi-persistent physical uplink shared channel; the instructions are configured to cause the processor to send the positioning assistance request over a physical uplink control channel; the instructions are further configured to cause the processor to send one or more indications of positioning technique characteristics to a network entity over the physical uplink shared channel; the physical uplink shared channel is a semi-persistent physical uplink shared channel.
[0019] Additionally or alternatively, implementations of such a storage medium may include one or more of the following features: the instructions are configured to cause the processor to determine which physical resources of the UE to use to perform one or more UE-device positioning functions; the instructions are configured to cause the processor to determine, based on the positioning assistance information, at least one of a type of positioning signal to transmit for UE-device positioning, or a transmit power level for the positioning signal, or a positioning signal transmission duration, or a first measurement gap for transmitting the positioning signal, or a second measurement gap for receiving an incoming positioning signal from another UE; and the instructions are configured to cause the processor to descramble the positioning signal using a UE identity in the positioning assistance information.
[0020] An example network entity includes a transceiver configured to wirelessly send and receive communication signals to and from a UE, a memory, and a processor communicatively coupled to the transceiver and the memory, wherein the processor is configured to: receive from the UE by the transceiver via a physical layer uplink channel a positioning assistance request for the network entity to provide positioning assistance information indicating one or more parameters for a signal exchange of one or more positioning reference signals between the UE and another device; determine the positioning assistance information; and send by the transceiver via the physical layer downlink channel in a physical layer message to the UE.
[0021] Implementations of such a network entity may include one or more of the following features: The positioning assistance information includes a first indication of physical resources that the UE is allowed to use to transmit reference signals for UE-device positioning. The positioning assistance information includes at least one of: a type of positioning signal that the UE is authorized to transmit for UE-device positioning, or a transmit power level that the UE is authorized to use to transmit signals for UE-device positioning, or a positioning signal transmission duration that the UE is authorized to use for UE-device positioning, or a measurement gap in which the UE is authorized to transmit positioning signals.
[0022] Additionally or alternatively, implementations of such a network entity may include one or more of the following features: The positioning assistance information includes a first indication of physical resources that the UE is allowed to use to receive reference signals for UE-device positioning. The positioning assistance information includes measurement gaps to be used by the UE to receive incoming positioning signals from another UE.
[0023] Additionally or alternatively, implementations of such a network entity may include one or more of the following features: the UE is a first UE, and the positioning assistance information includes (i) a UE identity of a second UE in the vicinity of the first UE, or (ii) a location of the second UE, or (ii) a velocity of the second UE, or (iii) an orbit of the second UE, or (iv) descrambling information for descrambling the positioning assistance information; the processor is configured to send a physical layer message as a unicast message over a physical downlink shared channel; the processor is configured to send the physical layer message as a group common message over a physical downlink control channel; the processor is configured to, in response to receiving a plurality of positioning assistance requests from a plurality of requesting UEs, create a physical layer message having a plurality of blocks, each block including grant information for granting a respective physical downlink shared channel to each of the plurality of requesting UEs; and the processor is configured to determine the positioning assistance information within the lower two layers of a 5G protocol stack.
[0024] Another example network entity includes means for receiving a positioning assistance request from the UE via a physical layer uplink channel, for the network entity to provide positioning assistance information indicating one or more parameters for a signal exchange of one or more positioning reference signals between the UE and another device, means for determining the positioning assistance information, and means for sending the positioning assistance information to the UE in a physical layer message via the physical layer downlink channel.
[0025] Implementations of such a network entity may include one or more of the following features: The positioning assistance information includes a first indication of physical resources that the UE is allowed to use to transmit reference signals for UE-device positioning. The positioning assistance information includes at least one of: a type of positioning signal that the UE is authorized to transmit for UE-device positioning, or a transmit power level that the UE is authorized to use to transmit signals for UE-device positioning, or a positioning signal transmission duration that the UE is authorized to use for UE-device positioning, or a measurement gap in which the UE is authorized to transmit positioning signals.
[0026] Additionally or alternatively, implementations of such a network entity may include one or more of the following features: The positioning assistance information includes a first indication of physical resources that the UE is allowed to use to receive reference signals for UE-device positioning. The positioning assistance information includes measurement gaps to be used by the UE to receive incoming positioning signals from another UE.
[0027] Additionally or alternatively, implementations of such a network entity may include one or more of the following features: the UE is a first UE, and the positioning assistance information includes (i) a UE identity of a second UE in the vicinity of the first UE, or (ii) a location of the second UE, or (ii) a velocity of the second UE, or (iii) an orbit of the second UE, or (iv) descrambling information for descrambling the positioning assistance information; the means for sending the positioning assistance information is for sending the physical layer message as a unicast message over a physical downlink shared channel; and the means for sending the positioning assistance information is for sending the physical layer message as a group common message over a physical downlink control channel. The network entity includes means for, in response to receiving a plurality of positioning assistance requests from a plurality of requesting UEs, creating a physical layer message having a plurality of blocks, each block including grant information for granting a respective physical downlink shared channel to each of the plurality of requesting UEs. The means for determining the positioning assistance information includes means for determining the positioning assistance information within the bottom two layers of the 5G protocol stack.
[0028] An exemplary method for providing positioning assistance information using a physical layer includes receiving, at the network entity, a positioning assistance request from a user equipment (UE) via a physical layer uplink channel to provide positioning assistance information indicating one or more parameters for signal exchange of one or more positioning reference signals between the UE and another device; determining the positioning assistance information; and sending the positioning assistance information to the UE via a physical layer downlink channel in a physical layer message.
[0029] Implementations of such methods may include one or more of the following features: The positioning assistance information includes a first indication of physical resources that the UE is allowed to use to transmit reference signals for UE-device positioning. The positioning assistance information includes at least one of: a type of positioning signal that the UE is authorized to transmit for the UE-device positioning, or a transmit power level that the UE is authorized to use to transmit signals for the UE-device positioning, or a positioning signal transmission duration that the UE is authorized to use for the UE-device positioning, or a measurement gap in which the UE is authorized to transmit positioning signals.
[0030] Additionally or alternatively, implementations of such methods may include one or more of the following features: the positioning assistance information includes a first indication of physical resources that the UE is allowed to use to receive reference signals for UE-device positioning; the positioning assistance information includes measurement gaps to be used by the UE to receive incoming positioning signals from another UE.
[0031] Additionally or alternatively, implementations of such a method may include one or more of the following features: the UE is a first UE, and the positioning assistance information includes (i) a UE identity of a second UE in the vicinity of the first UE, or (ii) a location of the second UE, or (ii) a velocity of the second UE, or (iii) an orbit of the second UE, or (iv) descrambling information for descrambling the positioning assistance information. Sending the positioning assistance information includes sending a physical layer message as a unicast message over a physical downlink shared channel. Sending the positioning assistance information includes sending the physical layer message as a group common message over a physical downlink control channel. The method includes responding to receiving multiple positioning assistance requests from multiple requesting UEs by creating a physical layer message having multiple blocks, each block including grant information for granting a respective physical downlink shared channel to each of the multiple requesting UEs. The positioning assistance information is determined within the bottom two layers of the 5G protocol stack.
[0032] An exemplary non-transitory processor-readable storage medium includes processor-readable instructions configured to cause a processor to receive, at a network entity, from a user equipment (UE) via a physical layer uplink channel, a positioning assistance request for the network entity to provide positioning assistance information indicating one or more parameters for a signal exchange of one or more positioning reference signals between the UE and another device; determine the positioning assistance information; and send the positioning assistance information to the UE in a physical layer message via a physical layer downlink channel.
[0033] Implementations of such a storage medium may include one or more of the following features: The positioning assistance information includes a first indication of physical resources that the UE is allowed to use to transmit reference signals for UE-device positioning. The positioning assistance information includes at least one of a type of positioning signal that the UE is authorized to transmit for UE-device positioning, or a transmit power level that the UE is authorized to use to transmit signals for UE-device positioning, or a positioning signal transmission duration that the UE is authorized to use for UE-device positioning, or a measurement gap in which the UE is authorized to transmit positioning signals.
[0034] Additionally or alternatively, implementations of such a storage medium may include one or more of the following features: The positioning assistance information includes a first indication of physical resources that the UE is allowed to use to receive reference signals for UE-device positioning. The positioning assistance information includes measurement gaps to be used by the UE to receive incoming positioning signals from another UE.
[0035] Additionally or alternatively, implementations of such a storage medium may include one or more of the following features: the UE is a first UE, and the positioning assistance information includes (i) a UE identity of a second UE in the vicinity of the first UE, or (ii) a location of the second UE, or (ii) a velocity of the second UE, or (iii) an orbit of the second UE, or (iv) descrambling information for descrambling the positioning assistance information; the instructions are configured to cause the processor to send a physical layer message as a unicast message over a physical downlink shared channel; the instructions are configured to cause the processor to send a physical layer message as a group common message over a physical downlink control channel; and the instructions are configured to cause the processor to create a physical layer message having a plurality of blocks, each block including grant information for granting a respective physical downlink shared channel to each of the plurality of requesting UEs, in response to receiving a plurality of positioning assistance requests from a plurality of requesting UEs. The instructions configured to cause the processor to determine positioning assistance information include instructions configured to cause the processor to determine positioning assistance information within the bottom two layers of a 5G protocol stack. [Brief explanation of the drawings]
[0036] [Figure 1] 1 is a simplified diagram of an example wireless communication system. [Figure 2] FIG. 2 is a block diagram of components of the exemplary user equipment shown in FIG. 1. [Figure 3] FIG. 2 is a block diagram of components of the exemplary transmit / receive point shown in FIG. 1. [Figure 4] FIG. 2 is a block diagram of components of the exemplary server shown in FIG. 1. [Figure 5] FIG. 1 is a simplified top view of a system for UE-device positioning showing the interaction between the UE and a base station. [Figure 6] FIG. 2 is a block diagram of an exemplary user equipment. [Figure 7] FIG. 4 is a block diagram of an example of a transmitting / receiving point shown in FIG. 3. [Figure 8] 1 is a signaling and process flow of physical layer communication for base station-assisted user equipment positioning. [Figure 9] FIG. 1 is a block flow diagram of a method for requesting positioning assistance information using a physical layer of a user equipment. [Figure 10] FIG. 1 is a block flow diagram of a method for providing positioning assistance information using the physical layer. DETAILED DESCRIPTION OF THE INVENTION
[0037] Techniques for physical layer requirements for base station-assisted positioning are discussed herein. For example, techniques are discussed for using the physical layer to provide positioning assistance information from a base station to user equipment and for using the positioning assistance information to perform one or more positioning operations, e.g., for UE-to-device positioning, such as UE-to-UE positioning. A base station may receive a request for positioning assistance information, determine the positioning assistance information within the base station's physical layer and data link layer (i.e., without using higher layers), and provide the positioning assistance information to the user equipment. The positioning assistance information may provide, for example, authorization and / or restrictions on resource usage by the user equipment and / or other information that the user equipment may use to determine which positioning functions to perform and / or how to perform the functions. These are examples, and other examples may be implemented.
[0038] The items and / or techniques described herein may provide one or more of the following capabilities, as well as other capabilities not mentioned: Low-latency signaling exchanges may be provided to assist user equipment in performing positioning functions. Assistance data may be provided to user equipment in messages that are created in the lower two layers of the protocol stack and occupy fewer bits than messages containing similar content created using higher layers of the protocol stack. Other capabilities may be provided, and every implementation according to the present disclosure need not provide any, much less all, of the capabilities discussed.
[0039] The descriptions refer to sequences of actions to be performed by, for example, elements of a computing device. The various actions described herein may be performed by specific circuitry (e.g., an application-specific integrated circuit (ASIC)), by program instructions executed by one or more processors, or by a combination of both. The sequences of actions described herein may be embodied in a non-transitory computer-readable medium storing a corresponding set of computer instructions that, when executed, cause an associated processor to perform the functions described herein. Accordingly, the various aspects described herein may be embodied in several different forms, all of which are within the scope of this disclosure, including claimed subject matter.
[0040] As used herein, the terms “user equipment” (UE) and “base station” are not specific to or otherwise limited to any particular radio access technology (RAT) unless otherwise specified. Generally, such a UE may be any wireless communication device (e.g., a mobile phone, a router, a tablet computer, a laptop computer, a consumer asset tracking device, an Internet of Things (IoT) device, etc.) used by a user to communicate over a wireless communication network. A UE may be mobile or may be stationary (e.g., at some times) and may communicate with a radio access network (RAN). As used herein, the term “UE” may be referred to interchangeably as an “access terminal” or “AT,” a “client device,” a “wireless device,” a “subscriber device,” a “subscriber terminal,” a “subscriber station,” a “user terminal” or UT,” a “mobile terminal,” a “mobile station,” or variations thereof. Generally, a UE may communicate with a core network via a RAN, through which the UE may be connected to external networks such as the Internet and to other UEs. Of course, other mechanisms for the UE to connect to the core network and / or the Internet are also contemplated, such as via a wired access network, a WiFi network (eg, based on IEEE 802.11, etc.), etc.
[0041] A base station may operate according to one of several RATs to communicate with UEs depending on the network in which it is deployed and may alternatively be referred to as an access point (AP), network node, Node B, evolved Node B (eNB), general Node B (gNode B, gNB), etc. Furthermore, in some systems, the base station may provide purely edge node signaling functionality, while in other systems it may provide additional control and / or network management functionality.
[0042] A UE may be embodied by any of several types of devices, including, but not limited to, a printed circuit (PC) card, a compact flash device, an external or internal modem, a wireless or wired phone, a smartphone, a tablet, a consumer asset tracking device, an asset tag, etc. A communication link through which a UE can send signals to a RAN is called an uplink channel (e.g., a reverse traffic channel, a reverse control channel, an access channel, etc.). A communication link through which a RAN can send signals to a UE is called a downlink channel or a forward link channel (e.g., a paging channel, a control channel, a broadcast channel, a forward traffic channel, etc.). As used herein, the term traffic channel (TCH) can refer to either an uplink / reverse traffic channel or a downlink / forward traffic channel.
[0043] As used herein, the terms “cell” or “sector” may correspond to one of multiple cells of a base station or to the base station itself, depending on the context. The term “cell” may refer to a logical communication entity used for communication with a base station (e.g., on a carrier) and may be associated with an identifier (e.g., physical cell identifier (PCID), virtual cell identifier (VCID)) to distinguish neighboring cells operating over the same or different carriers. In some examples, a carrier may support multiple cells, and different cells may be configured according to different protocol types (e.g., machine-type communication (MTC), narrowband Internet of Things (NB-IoT), enhanced mobile broadband (eMBB), or others) that may provide access for different types of devices. In some examples, the term “cell” may refer to a portion (e.g., sector) of a geographic coverage area over which the logical entity operates.
[0044] Referring to FIG. 1 , an example communication system 100 includes a UE 105, a UE 106, a radio access network (RAN) 135, here a fifth-generation (5G) next-generation (NG) RAN (NG-RAN), and a 5G core network (5GC) 140. The UE 105 and / or the UE 106 may be, for example, an IoT device, a location tracker device, a cellular phone, a vehicle, or other devices. A 5G network may also be referred to as a new radio (NR) network, the NG-RAN 135 may also be referred to as a 5G RAN or an NR RAN, and the 5GC 140 may also be referred to as an NG core network (NGC). Standardization of the NG-RAN and 5GC is underway in the 3rd Generation Partnership Project (3GPP). Thus, the NG-RAN 135 and the 5GC 140 may comply with current or future standards for 5G support from the 3GPP. RAN 135 may be another type of RAN, e.g., a 3G RAN, a 4G Long Term Evolution (LTE) RAN, etc. UE 106 may be configured to send and / or receive signals to / from similar other entities in system 100 and may be similarly coupled to UE 105, although such signaling is not shown in FIG. 1 for ease of illustration. Similarly, this discussion focuses on UE 105 for brevity. The communications system 100 may use information from a constellation 185 of satellite vehicles (SVs) 190, 191, 192, 193 for a satellite positioning system (SPS) (e.g., a Global Navigation Satellite System (GNSS)), such as the Global Positioning System (GPS), Global Navigation Satellite System (GLONASS), Galileo, or Beidou or some other local or regional SPS, such as the Indian Regional Navigation Satellite System (IRNSS), the European Geostationary Navigation Overlay Service (EGNOS), or the Wide Area Augmentation System (WAAS). Additional components of the communications system 100 are described below. The communications system 100 may include additional or alternative components.
[0045] 1, the NG-RAN 135 includes NR NodeBs (gNBs) 110a, 110b, and a next-generation eNodeB (ng-eNB) 114, and the 5GC 140 includes an Access and Mobility Management Function (AMF) 115, a Session Management Function (SMF) 117, a Location Management Function (LMF) 120, and a Gateway Mobile Location Center (GMLC) 125. The gNBs 110a, 110b, and the ng-eNB 114 are communicatively coupled to each other and each configured to wirelessly communicate bidirectionally with the UE 105, and each communicatively coupled to and configured to communicate bidirectionally with the AMF 115. The gNBs 110a, 110b, and the ng-eNB 114 may be referred to as base stations (BSs). The AMF 115, SMF 117, LMF 120, and GMLC 125 are communicatively coupled to each other, and the GMLC is communicatively coupled to an external client 130. The SMF 117 may serve as an initial point of contact for a Service Control Function (SCF) (not shown) to create, control, and delete media sessions. The BSs 110a, 110b, 114 may be macrocells (e.g., high-power cellular base stations), or small cells (e.g., low-power cellular base stations), or access points (e.g., short-range base stations) configured to communicate with short-range technologies such as WiFi, WiFi Direct (WiFi-D), Bluetooth, Bluetooth Low Energy (BLE), Zigbee, etc. One or more of the BSs 110a, 110b, 114 may be configured to communicate with the UE 105 over multiple carriers. Each of the BSs 110a, 110b, 114 may provide communication coverage for a respective geographic area, e.g., a cell. Each cell may be partitioned into multiple sectors depending on the base station antenna.
[0046] FIG. 1 provides a generalized illustration of various components; any or all of the components may be used as needed, and each may be duplicated or omitted as needed. Specifically, while only one UE 105 is illustrated, many UEs (e.g., hundreds, thousands, millions, etc.) may be used in communications system 100. Similarly, communications system 100 may include a greater (or lesser) number of SVs (i.e., more or less than the four SVs 190-193 illustrated), gNBs 110a, 110b, ng-eNB 114, AMF 115, external client 130, and / or other components. The illustrated connections connecting the various components in communications system 100 include data and signaling connections that may include additional (intermediary) components, direct or indirect physical and / or wireless connections, and / or additional networks. Furthermore, components may be rearranged, combined, separated, substituted, and / or omitted depending on the desired functionality.
[0047] 1 shows a 5G-based network, similar network implementations and configurations may be used for other communication technologies, such as 3G, Long Term Evolution (LTE), etc. Implementations described herein (whether for 5G technology and / or one or more other communication technologies and / or protocols) may be used to transmit (or broadcast) directional synchronization signals, receive and measure the directional signals at a UE (e.g., the UE 105), and / or provide location assistance to the UE 105 (via the GMLC 125 or other location server), and / or calculate a location for the UE 105 at a location-enabled device, such as the UE 105, gNBs 110a, 110b, or LMF 120, based on measurements received at the UE 105 of such directionally transmitted signals. The Gateway Mobile Location Center (GMLC) 125, Location Management Function (LMF) 120, Access and Mobility Management Function (AMF) 115, SMF 117, ng-eNB (eNodeB) 114 and gNBs (gNodeBs) 110a, 110b are examples and may be replaced by or include various other location server and / or base station functionality in various embodiments, respectively.
[0048] System 100 is capable of wireless communication in that components of system 100 can communicate with each other (at least sometimes using wireless connections) directly or indirectly, e.g., via BSs 110a, 110b, 114 and / or network 140 (and / or one or more other devices, not shown, such as one or more other base transceiver stations). For indirect communication, the communication may be altered during transmission from one entity to another, e.g., by changing header information of data packets, by changing format, etc. The UE 105 may include multiple UEs and may be a mobile wireless communication device, but capable of communicating wirelessly and via a wired connection. The UE 105 may be any of a variety of devices, e.g., a smartphone, a tablet computer, a vehicle-based device, etc., although these are merely examples and the UE 105 is not required to be any of these configurations, and other UE configurations may be used. Other UEs may include wearable devices (e.g., smart watches, smart jewelry, smart glasses, or headsets, etc.). Still other UEs, whether currently existing or developed in the future, may be used. Additionally, other wireless devices (whether mobile or not) may be implemented within the system 100 and may communicate with each other and / or with the UE 105, the BSs 110a, 110b, 114, the core network 140, and / or the external clients 130. For example, such other devices may include Internet of Things (IoT) devices, medical devices, home entertainment and / or automation devices, etc. The core network 140 may communicate with the external clients 130 (e.g., computer systems) to, for example, enable the external clients 130 to request and / or receive location information regarding the UE 105 (e.g., via the GMLC 125).
[0049] The UE 105 or other devices may be configured to communicate in different networks and / or for different purposes and / or using different technologies (e.g., 5G, Wi-Fi communications, multiple frequencies of Wi-Fi communications, satellite positioning, one or more types of communications (e.g., Global System for Mobile Communications (GSM), Code Division Multiple Access (CDMA), Long Term Evolution (LTE)), V2X (e.g., Vehicle-to-Pedestrian (V2P), Vehicle-to-Infrastructure (V2I), Vehicle-to-Vehicle (V2V), etc.), IEEE 802.11p, etc.). The V2X communications may be cellular (Cellular V2X (C-V2X)) and / or WiFi (e.g., DSRC (Dedicated Short-Range Connection)). The system 100 may support operation on multiple carriers (waveform signals of different frequencies). A multi-carrier transmitter can simultaneously transmit modulated signals on multiple carriers. Each modulated signal can be a code division multiple access (CDMA) signal, a time division multiple access (TDMA) signal, an orthogonal frequency division multiple access (OFDMA) signal, a single-carrier frequency division multiple access (SC-FDMA) signal, etc. Each modulated signal can be sent on a different carrier and can carry pilot signals, overhead information, data, etc. UEs 105, 106 can communicate with each other through UE-to-UE sidelink (SL) communications by transmitting over one or more sidelink channels, such as a physical sidelink synchronization channel (PSSCH), a physical sidelink broadcast channel (PSBCH), or a physical sidelink control channel (PSCCH).
[0050] The UE 105 may include and / or be referred to as a device, a mobile device, a wireless device, a mobile terminal, a terminal, a mobile station (MS), a Secure User Plane Location (SUPL)-enabled terminal (SET), or by some other name. Additionally, the UE 105 may correspond to a cell phone, a smartphone, a laptop, a tablet, a PDA, a consumer asset tracking device, a navigation device, an Internet of Things (IoT) device, an asset tracker, a health monitor, a security system, a smart city sensor, a smart meter, a wearable tracker, or some other portable or movable device. Typically, but not necessarily, the UE 105 may support wireless communication using one or more radio access technologies (RATs), such as Global System for Mobile Communications (GSM), Code Division Multiple Access (CDMA), Wideband CDMA (WCDMA), LTE, High Rate Packet Data (HRPD), IEEE 802.11 WiFi (also referred to as Wi-Fi), Bluetooth (BT), Globally Interoperable Microwave Access (WiMAX), 5G New Radio (NR) (e.g., with NG-RAN 135 and 5GC 140), etc. The UE 105 may support wireless communication using, for example, a wireless local area network (WLAN), which may connect to other networks (e.g., the Internet) using a digital subscriber line (DSL) or packet cable. Using one or more of these RATs, the UE 105 may be able to communicate with the external client 130 (e.g., via elements of the 5GC 140, not shown in FIG. 1, or possibly via the GMLC 125), and / or the external client 130 may be able to receive location information regarding the UE 105 (e.g., via the GMLC 125).
[0051] The UE 105 may comprise a single entity or may include multiple entities, for example, in a personal area network where a user may utilize audio, video, and / or data I / O (input / output) devices and / or body sensors and a separate wireline or wireless modem. An estimate of the UE 105's location may be referred to as a location, location estimate, location fix, fix, position, position estimate, or position fix and provides location coordinates (e.g., latitude and longitude) for the UE 105 that may or may not include an altitude component (e.g., elevation, height or depth above ground, floor, or underground). Alternatively, the UE 105's location may be expressed as a civic location (e.g., as an address or designation of a point somewhere in a building or a small area, such as a particular room or floor). The UE 105's location may be expressed as an area or volume (defined either geographically or in terms of city shape) within which the UE 105 is expected to be located with some probability or confidence level (e.g., 67%, 95%, etc.). The location of the UE 105 may be expressed as a relative location, including, for example, distance and direction from a known location. The relative location may be expressed as relative coordinates (e.g., X, Y (and Z) coordinates) defined relative to some origin in the known location, which may be defined, for example, geographically, in terms of cities, or by reference to a point, area, or volume shown on a map, floor plan, or building plan. In the description contained herein, use of the term location may include any of these variants unless otherwise indicated. When calculating the location of a UE, it is common to determine values for the local x, y, and possibly z coordinates and then, if desired, convert the local coordinates to absolute coordinates (e.g., for latitude, longitude, and altitude above or below mean sea level).
[0052] The UE 105 may be configured to communicate with other entities using one or more of a variety of technologies. The UE 105 may be configured to indirectly connect to one or more communication networks via one or more device-to-device (D2D) peer-to-peer (P2P) links. The D2D P2P links may be supported by any suitable D2D radio access technology (RAT), such as LTE Direct (LTE-D), WiFi Direct (WiFi-D), Bluetooth, etc. One or more of a group of UEs using D2D communication may be within a geographic coverage area of a transmission / reception point (TRP), such as one or more of the gNBs 110a, 110b, and / or ng-eNB 114. Other UEs in such a group may be outside such geographic coverage area or may otherwise be unable to receive transmissions from the base station. A group of UEs communicating via D2D communication may use a one-to-many (1:M) system in which each UE may transmit to other UEs in the group. A TRP may facilitate scheduling of resources for D2D communication. In other cases, D2D communication may be practiced between UEs without the involvement of a TRP. One or more of a group of UEs using D2D communication may be within the geographic coverage area of a TRP. Other UEs in such a group may be outside such geographic coverage area or may otherwise not be able to receive transmissions from the base station. A group of UEs communicating via D2D communication may use a one-to-many (1:M) system in which each UE may transmit to other UEs in the group. A TRP may facilitate scheduling of resources for D2D communication. In other cases, D2D communication may be practiced between UEs without the involvement of a TRP.
[0053] The base stations (BSs) in the NG-RAN 135 shown in FIG. 1 include NR Node Bs referred to as gNBs 110a and 110b. The pair of gNBs 110a, 110b in the NG-RAN 135 may be interconnected through one or more other gNBs. Access to the 5G network is provided to the UE 105 via wireless communication between the UE 105 and one or more of the gNBs 110a, 110b, which may provide wireless communication access to the 5G Central Grid 140 on behalf of the UE 105 using 5G. In FIG. 1, the serving gNB for the UE 105 is assumed to be gNB 110a, although another gNB (e.g., gNB 110b) may act as the serving gNB if the UE 105 moves to another location and may act as a secondary gNB to provide additional throughput and bandwidth to the UE 105.
[0054] 1 may include the ng-eNB 114, also referred to as a next generation evolved Node B. The ng-eNB 114 may be connected to one or more of the gNBs 110a, 110b in the NG-RAN 135, possibly via one or more other gNBs and / or one or more other ng-eNBs. The ng-eNB 114 may provide LTE wireless access and / or evolved LTE (eLTE) wireless access to the UE 105. One or more of the gNBs 110a, 110b and / or ng-eNB 114 may be configured to function as positioning-only beacons that may transmit signals to assist in determining the location of the UE 105 but may not receive signals from the UE 105 or from other UEs.
[0055] The BSs 110a, 110b, 114 may each comprise one or more TRPs. For example, each sector in the BS's cell may comprise a TRP, but the multiple TRPs may share one or more components (e.g., share a processor but have separate antennas). The system 100 may include only a macro TRP, or the system 100 may have different types of TRPs, such as macro, pico, and / or femto TRPs. A macro TRP may cover a relatively large geographic area (e.g., a few kilometers in radius) and may allow unrestricted access by terminals with service subscriptions. A pico TRP may cover a relatively small geographic area (e.g., a pico cell) and may allow unrestricted access by terminals with service subscriptions. A femto or home TRP may cover a relatively small geographic area (e.g., a femto cell) and may allow restricted access by terminals associated with the femto cell (e.g., a user's terminal in a home).
[0056] As noted, while FIG. 1 illustrates nodes configured to communicate according to a 5G communication protocol, nodes configured to communicate according to other communication protocols, such as the LTE protocol or the IEEE 802.11x protocol, may be used. For example, in an Evolved Packet System (EPS) providing LTE wireless access to the UE 105, the RAN may include an Evolved Universal Mobile Telecommunications System (UMTS) Terrestrial Radio Access Network (E-UTRAN), which may include base stations including evolved Node Bs (eNBs). The core network for the EPS may include an Evolved Packet Core (EPC). The EPS may include the E-UTRAN plus the EPC, where in FIG. 1 the E-UTRAN corresponds to the NG-RAN 135 and the EPC corresponds to the 5G Node B 140.
[0057] The gNBs 110a, 110b and ng-eNBs 114 may communicate with the AMF 115, which, for positioning functionality, communicates with the LMF 120. The AMF 115 may support the mobility of the UE 105, including cell changes and handovers, and may be responsible for supporting signaling connections to and possibly data and voice bearers for the UE 105. The LMF 120 may communicate with the UE 105 directly, e.g., through wireless communications, or directly with the BSs 110a, 110b, 114. The LMF 120 may support positioning of the UE 105 when the UE 105 accesses the NG-RAN 135 and may support position procedures / methods such as Assisted GNSS (A-GNSS), Observed Time Difference of Arrival (OTDOA) (e.g., downlink (DL) OTDOA or uplink (UL) OTDOA), Round Trip Time (RTT), Multi-cell RTT, Real Time Kinematics (RTK), Precise Point Positioning (PPP), Differential GNSS (DGNSS), Extended Cell ID (E-CID), Angle of Arrival (AoA), Angle of Departure (AoD), and / or other position methods. The LMF 120 may process location service requests for the UE 105 received, for example, from the AMF 115 or from the GMLC 125. The LMF 120 may be connected to the AMF 115 and / or to the GMLC 125. The LMF 120 may be referred to by other names, such as a location manager (LM), location function (LF), commercial LMF (CLMF), or value-added LMF (VLMF). A node / system implementing the LMF 120 may additionally or alternatively implement other types of location support modules, such as an enhanced serving mobile location center (E-SMLC) or a secure user plane location (SUPL) location platform (SLP). At least a portion of the positioning functionality (including derivation of the location of the UE 105) is performed at the UE 105 (e.g., from signal measurements obtained by the UE 105 for signals transmitted by wireless nodes, e.g., by the gNBs 110a, 110b and / or the ng-eNB 114, and / or from the LMF 120). The AMF 115 may be implemented using assistance data provided to the UE 105 by the AMF 115. The AMF 115 may act as a control node that handles signaling between the UE 105 and the core network 140 and may provide Quality of Service (QoS) flow and session management. The AMF 115 may support mobility of the UE 105, including cell changes and handovers, and may be responsible for supporting signaling connections to the UE 105.
[0058] The GMLC 125 may support location requests for the UE 105 received from the external client 130 and may forward such location requests to the AMF 115 for forwarding by the AMF 115 to the LMF 120, or may forward the location requests directly to the LMF 120. A location response from the LMF 120 (e.g., including a location estimate for the UE 105) may be returned to the GMLC 125 either directly or via the AMF 115, which may then return the location response (e.g., including the location estimate) to the external client 130. Although the GMLC 125 is shown connected to both the AMF 115 and the LMF 120, only one of these connections may be supported by the 5GC 140 in some implementations.
[0059] 1, the LMF 120 can communicate with the gNBs 110a, 110b and / or the ng-eNB 114 using the New Radio Location Protocol A (NPPa or NRPPa), which may be defined in 3GPP Technical Specification (TS) 38.455. NRPPa may be the same as, similar to, or an extension of the LTE Positioning Protocol A (LPPa), which is defined in 3GPP TS 36.455, and NRPPa messages are transferred between the gNB 110a (or gNB 110b) and the LMF 120 and / or between the ng-eNB 114 and the LMF 120 via the AMF 115. As further shown in FIG. 1, the LMF 120 and the UE 105 can communicate using the LTE Positioning Protocol (LPP), which may be defined in 3GPP TS 36.355. The LMF 120 and the UE 105 can also or instead communicate using a New Radio Positioning Protocol (which may be referred to as NPP or NRPP), which may be the same as, similar to, or an extension of LPP. Here, LPP and / or NPP messages may be transferred between the UE 105 and the LMF 120 via the AMF 115 and the serving gNB 110a, 110b, or the serving ng-eNB 114 for the UE 105. For example, LPP and / or NPP messages may be transferred between the LMF 120 and the AMF 115 using a 5G Location Services Application Protocol (LCS AP) and between the AMF 115 and the UE 105 using a 5G Non-Access Stratum (NAS) protocol. The LPP and / or NPP protocols may be used to support positioning of the UE 105 using UE-assisted and / or UE-based location methods, such as A-GNSS, RTK, OTDOA, and / or E-CID.The NRPPa protocol may be used to support positioning of the UE 105 using network-based location methods such as E-CID (e.g., when used in conjunction with measurements obtained by the gNB 110a, 110b, or ng-eNB 114) and / or may be used by the LMF 120 to obtain location-related information from the gNB 110a, 110b, and / or ng-eNB 114, such as parameters defining directional SS transmissions from the gNB 110a, 110b, and / or ng-eNB 114. The LMF 120 may be co-located or integrated with a gNB or TRP, or may be located remotely from the gNB and / or TRP, and may be configured to communicate directly or indirectly with the gNB and / or TRP.
[0060] Using the UE-assisted location method, the UE 105 can obtain location measurements and send the measurements to a location server (e.g., the LMF 120) for calculation of a location estimate for the UE 105. For example, the location measurements may include one or more of a received signal strength indication (RSSI), a round-trip signal propagation time (RTT), a reference signal time difference (RSTD), a reference signal received power (RSRP), and / or a reference signal received quality (RSRQ) for the gNBs 110a, 110b, the ng-eNB 114, and / or WLAN APs. The location measurements may additionally or instead include measurements of GNSS pseudorange, code phase, and / or carrier phase for the SVs 190-193.
[0061] Using the UE-based location method, the UE 105 can obtain location measurements (e.g., which may be the same as or similar to the location measurements for the UE-assisted location method) and can calculate the location of the UE 105 (e.g., with the help of assistance data received from a location server such as the LMF 120 or broadcast by the gNB 110a, 110b, ng-eNB 114, or other base station or AP).
[0062] With a network-based location method, one or more base stations (e.g., gNBs 110a, 110b, and / or ng-eNB 114) or APs may obtain location measurements (e.g., RSSI, RTT, RSRP, RSRQ, or Time of Arrival (ToA) measurements for signals transmitted by the UE 105) and / or receive measurements obtained by the UE 105. The one or more base stations or APs may send the measurements to a location server (e.g., LMF 120) for calculation of a location estimate for the UE 105.
[0063] Using the NRPPa, information provided by the gNBs 110a, 110b, and / or the ng-eNB 114 to the LMF 120 may include timing and configuration information for directional SS transmissions and location coordinates. The LMF 120 can provide some or all of this information to the UE 105 via the NG-RAN 135 and the 5GC 140 as assistance data in LPP and / or NPP messages.
[0064] An LPP or NPP message sent from the LMF 120 to the UE 105 can instruct the UE 105 to do any of a variety of things, depending on the desired functionality. For example, the LPP or NPP message may include instructions for the UE 105 to obtain measurements for GNSS (or A-GNSS), WLAN, E-CID, and / or OTDOA (or some other location method). In the case of E-CID, the LPP or NPP message may instruct the UE 105 to obtain one or more measurements (e.g., beam ID, beam width, average angle, RSRP, RSRQ measurements) of directional signals transmitted within a particular cell supported by one or more of the gNBs 110a, 110b, and / or ng-eNB 114 (or supported by some other type of base station, such as an eNB or WiFi AP). The UE 105 may send the measurement quantities back to the LMF 120 via the serving gNB 110a (or serving ng-eNB 114) and the AMF 115 in an LPP or NPP message (e.g., in a 5G NAS message).
[0065] As mentioned, although the communication system 100 is described in the context of 5G technology, the communication system 100 may be implemented to support other communication technologies (e.g., to implement voice, data, positioning, and other functionality) such as GSM, WCDMA, LTE, etc., used to support and interact with mobile devices such as the UE 105. In some such embodiments, the 5GC 140 may be configured to control different air interfaces. For example, the 5GC 140 may connect to a WLAN using a non-3GPP inter-network connectivity function (N3IWF, not shown in FIG. 1 ) in the 5GC 140. For example, the WLAN may support IEEE 802.11 WiFi access for the UE 105 and may comprise one or more WiFi APs. Here, the N3IWF may connect to the WLAN and to other elements in the 5GC 140, such as the AMF 115. In some embodiments, both the NG-RAN 135 and the 5GC 140 may be replaced with one or more other RANs and one or more other core networks. For example, in an EPS, the NG-RAN 135 may be replaced by an E-UTRAN including eNBs, and the 5GC 140 may be replaced by an EPC including a mobility management entity (MME) in place of the AMF 115, an E-SMLC in place of the LMF 120, and a GMLC that may be similar to the GMLC 125. In such an EPS, the E-SMLC may use LPPa instead of NRPPa to send and receive location information to and from the eNBs in the E-UTRAN and may use LPP to support positioning of the UE 105. In these other embodiments, positioning of the UE 105 using directional PRS may be supported in a manner similar to that described herein for a 5G network, with the difference being that the functions and procedures described herein for the gNBs 110a, 110b, ng-eNB 114, AMF 115, and LMF 120 may, in some cases, apply to other network elements instead, such as eNBs, WiFi APs, MMEs, and E-SMLCs.
[0066] As mentioned, in some embodiments, the positioning functionality may be implemented, at least in part, using directional SS beams sent by base stations (such as gNBs 110a, 110b, and / or ng-eNB 114) that are within range of a UE (e.g., UE 105 of FIG. 1) whose position is to be determined. The UE may, in some instances, use directional SS beams from multiple base stations (such as gNBs 110a, 110b, ng-eNB 114, etc.) to calculate the position of the UE 105.
[0067] 2, UE 200 is an example of one of UEs 105, 106 and comprises a computing platform including a processor 210, a memory 211 including software (SW) 212, one or more sensors 213, a transceiver interface 214 for a transceiver 215, a user interface 216, a satellite positioning system (SPS) receiver 217, a camera 218, and a position device (PD) 219. Processor 210, memory 211, sensors 213, transceiver interface 214, user interface 216, SPS receiver 217, camera 218, and position device 219 may be communicatively coupled to one another by bus 220 (e.g., which may be configured for optical and / or electrical communications). One or more of the illustrated devices (e.g., camera 218, position device 219, and / or one or more of sensors 213, etc.) may be omitted from UE 200. The processor 210 may include one or more intelligent hardware devices, such as a central processing unit (CPU), a microcontroller, an application-specific integrated circuit (ASIC), etc. The processor 210 may include multiple processors, including a general-purpose / application processor 230, a digital signal processor (DSP) 231, a modem processor 232, a video processor 233, and / or a sensor processor 234. One or more of the processors 230-234 may include multiple devices (e.g., multiple processors). For example, the sensor processor 234 may include a processor for, for example, radar, ultrasound, and / or lidar. The modem processor 232 may support dual SIM / dual connectivity (or even more SIMs). For example, one SIM (Subscriber Identity Module or Subscriber Identification Module) may be used by an original equipment manufacturer (OEM), and another SIM may be used for connectivity by an end user of the UE 200. The memory 211 is a non-transitory storage medium that may include random access memory (RAM), flash memory, disk memory, and / or read-only memory (ROM), etc.The memory 211 may store software 212, which may be processor-readable, processor-executable software code including instructions configured, when executed, to cause the processor 210 to perform various functions described herein. Alternatively, the software 212 may not be directly executable by the processor 210, but may be configured, for example, when compiled and executed, to cause the processor 210 to perform a function. The description may refer only to the processor 210 performing a function, but includes other implementations, such as the processor 210 executing software and / or firmware. The description may refer to the processor 210 performing a function as a shorthand for one or more of the processors 230-234 performing a function. The description may refer to the UE 200 performing a function as a shorthand for one or more of the appropriate components of the UE 200 performing a function. The processor 210 may include a memory with stored instructions in addition to and / or instead of the memory 211. The functionality of the processor 210 is discussed more fully below.
[0068] 2 is an example of the present invention, including the claims, and is not limiting, and other configurations may be used. For example, an exemplary configuration of a UE includes one or more of processors 230-234 of processor 210, memory 211, and wireless transceiver 240. Other exemplary configurations include one or more of processors 230-234 of processor 210, memory 211, wireless transceiver 240, one or more of sensors 213, user interface 216, SPS receiver 217, camera 218, PD 219, and / or wired transceiver 250.
[0069] The UE 200 may include a modem processor 232 that may be capable of performing baseband processing of signals received and downconverted by the transceiver 215 and / or the SPS receiver 217. The modem processor 232 may perform baseband processing of the signals to be upconverted for transmission by the transceiver 215. Additionally or alternatively, the baseband processing may be performed by the processor 230 and / or the DSP 231, although other configurations may be used to perform the baseband processing.
[0070] The UE 200 may include sensors 213, which may include one or more of various types of sensors, such as, for example, one or more inertial sensors, one or more magnetometers, one or more environmental sensors, one or more optical sensors, one or more weight sensors, and / or one or more radio frequency (RF) sensors. An inertial measurement unit (IMU) may include, for example, one or more accelerometers (e.g., collectively responsive to acceleration of the UE 200 in three dimensions) and / or one or more gyroscopes (e.g., 3-D gyroscopes). The sensors 213 may include, for example, one or more magnetometers (e.g., 3-D magnetometers) for determining orientation (e.g., relative to magnetic north and / or true north), which may be used for any of a variety of purposes, such as, for example, to support one or more compass applications. The environmental sensors may include, for example, one or more temperature sensors, one or more barometric pressure sensors, one or more ambient light sensors, one or more camera imagers, and / or one or more microphones, etc. Sensors 213 may generate analog and / or digital signal indications that may be stored in memory 211 and processed by DSP 231 and / or processor 230 in support of one or more applications, such as, for example, applications directed to positioning and / or navigation operations.
[0071] The sensors 213 can be used in relative location measurement, relative location determination, motion determination, etc. Information detected by the sensors 213 can be used for motion detection, relative displacement, dead reckoning, sensor-based location determination, and / or sensor-assisted location determination. The sensors 213 can be useful in determining whether the UE 200 is fixed (stationary) or mobile and / or whether certain useful information regarding the mobility of the UE 200 should be reported to the LMF 120. For example, based on information acquired / measured by the sensors, the UE 200 may notify / report to the LMF 120 that the UE 200 has detected movement or that the UE 200 has moved, and report the relative displacement / distance (e.g., via dead reckoning, or sensor-based location determination, or sensor-assisted location determination enabled by the sensors 213). In another example, for relative positioning information, the sensors / IMUs can be used to determine the angle and / or orientation of other devices relative to the UE 200, etc.
[0072] The IMU may be configured to provide measurements about the direction and / or speed of movement of the UE 200, and the measurements may be used in relative location determination. For example, one or more accelerometers and / or one or more gyroscopes of the IMU may detect the linear acceleration and speed of rotation of the UE 200, respectively. The linear acceleration and rotational speed measurements of the UE 200 may be integrated over time to determine the instantaneous direction and displacement of the UE 200's movement. The instantaneous direction and displacement of movement may be integrated to track the location of the UE 200. For example, a reference location of the UE 200 may be determined for a certain moment, e.g., using the SPS receiver 217 (and / or by some other means), and measurements from the accelerometers and gyroscopes taken after this moment may be used in dead reckoning to determine the UE 200's current location based on the UE 200's movement (direction and distance) relative to the reference location.
[0073] The magnetometer can determine magnetic field strength in different directions, which can be used to determine the orientation of the UE 200. For example, the orientation can be used to provide the UE 200 with a digital compass. The magnetometer can be a two-dimensional magnetometer configured to detect and provide an indication of magnetic field strength in two orthogonal dimensions. Alternatively, the magnetometer can be a three-dimensional magnetometer configured to detect and provide an indication of magnetic field strength in three orthogonal dimensions. The magnetometer can provide a means for sensing the magnetic field and providing an indication of the magnetic field, for example, to the processor 210.
[0074] The transceiver 215 may include a wireless transceiver 240 and a wired transceiver 250 configured to communicate with other devices over wireless and wired connections, respectively. For example, the wireless transceiver 240 may include a wireless transmitter 242 and a wireless receiver 244 coupled to one or more antennas 246 to transmit (e.g., on one or more uplink channels and / or one or more sidelink channels) and / or receive (e.g., on one or more downlink channels and / or one or more sidelink channels) wireless signals 248 and convert signals from the wireless signals 248 to wired (e.g., electrical and / or optical) signals and from the wired (e.g., electrical and / or optical) signals to the wireless signals 248. Thus, the wireless transmitter 242 may include multiple transmitters, which may be separate components or combined / integrated components, and / or the wireless receiver 244 may include multiple receivers, which may be separate components or combined / integrated components. The wireless transceiver 240 may be configured to communicate signals (e.g., with the TRP and / or one or more other devices) according to various radio access technologies (RATs), such as 5G New Radio (NR), GSM (Global System for Mobile Communications), UMTS (Universal Mobile Telecommunications System), AMPS (Advanced Mobile Phone System), CDMA (Code Division Multiple Access), WCDMA (Wideband CDMA), LTE (Long Term Evolution), LTE Direct (LTE-D), 3GPP LTE-V2X (PC5), IEEE 802.11 (including IEEE 802.11p), WiFi, WiFi Direct (WiFi-D), Bluetooth, Zigbee, etc. The new radio may use mm-wave frequencies and / or sub-6 GHz frequencies. The wired transceiver 250 may include, for example, a wired transmitter 252 and a wired receiver 254 configured for wired communication with the network 135.The wired transmitter 252 may include multiple transmitters, which may be separate components or combined / integrated components, and / or the wired receiver 254 may include multiple receivers, which may be separate components or combined / integrated components. The wired transceiver 250 may be configured for optical and / or electrical communication, for example. The transceiver 215 may be communicatively coupled to the transceiver interface 214, for example, by optical and / or electrical connections. The transceiver interface 214 may be at least partially integrated with the transceiver 215.
[0075] The user interface 216 may include one or more of several devices, such as, for example, a speaker, a microphone, a display device, a vibrating device, a keyboard, a touchscreen, etc. The user interface 216 may include multiple of any of these devices. The user interface 216 may be configured to allow a user to interact with one or more applications housed by the UE 200. For example, the user interface 216 may store analog and / or digital signal indications in the memory 211 for processing by the DSP 231 and / or the general-purpose processor 230 in response to actions from the user. Similarly, applications housed on the UE 200 may store analog and / or digital signal indications in the memory 211 for presenting output signals to the user. The user interface 216 may include audio input / output (I / O) devices, including, for example, a speaker, a microphone, digital-to-analog circuitry, analog-to-digital circuitry, amplifiers and / or gain control circuitry (including multiple of any of these devices). Other configurations of audio I / O devices may also be used. Also or alternatively, the user interface 216 may include one or more touch sensors that respond to contact and / or pressure, for example, on a keyboard and / or touchscreen of the user interface 216 .
[0076] The SPS receiver 217 (e.g., a global positioning system (GPS) receiver) may be capable of receiving and acquiring the SPS signals 260 via the SPS antenna 262. The antenna 262 is configured to convert the wireless signals 260 into wired signals, e.g., electrical or optical signals, and may be integrated with the antenna 246. The SPS receiver 217 may be configured to process the acquired SPS signals 260, in whole or in part, to estimate the location of the UE 200. For example, the SPS receiver 217 may be configured to determine the location of the UE 200 by trilateration using the SPS signals 260. The general-purpose processor 230, the memory 211, the DSP 231, and / or one or more specialized processors (not shown), in conjunction with the SPS receiver 217, may be used to process the acquired SPS signals, in whole or in part, and / or to calculate the estimated location of the UE 200. The memory 211 may store indications (e.g., measurements) of the SPS signals 260 and / or other signals (e.g., signals acquired from the wireless transceiver 240) for use in performing positioning operations. The general-purpose processor 230, the DSP 231, and / or one or more specialized processors, and / or the memory 211 may provide or support a location engine for use in processing the measurements to estimate the location of the UE 200.
[0077] The UE 200 may include a camera 218 for capturing still or video images. The camera 218 may comprise, for example, an imaging sensor (e.g., a charge-coupled device or CMOS imager), a lens, analog-to-digital circuitry, a frame buffer, etc. Additional processing, conditioning, encoding, and / or compression of signals representing the captured images may be performed by the general-purpose processor 230 and / or the DSP 231. Also or alternatively, a video processor 233 may perform conditioning, encoding, compression, and / or manipulation of signals representing the captured images. The video processor 233 can decode / decompress stored image data, for example, for display on a display device (not shown) of the user interface 216.
[0078] The position device (PD) 219 may be configured to determine the position of the UE 200, the movement of the UE 200, and / or the relative position of the UE 200, and / or time. For example, the PD 219 may be in communication with and / or include some or all of the SPS receiver 217. The PD 219 may interface with the processor 210 and memory 211 as needed to implement at least a portion of one or more positioning methods, although descriptions herein may refer only to the PD 219 being configured to or implementing in accordance with a positioning method. The PD 219 may also or alternatively be configured to determine the location of the UE 200 using terrestrial-based signals (e.g., at least some of the signals 248) for trilateration, to assist in acquiring and using SPS signals 260, or both. The PD 219 may be configured to use one or more other techniques for determining the location of the UE 200 (e.g., relying on the UE's self-reported location (e.g., as part of the UE's location beacon)), or may use a combination of techniques (e.g., SPS and terrestrial positioning signals) to determine the location of the UE 200. The PD 219 may include one or more of sensors 213 (e.g., gyroscopes, accelerometers, magnetometers, etc.) that can sense the orientation and / or movement of the UE 200 and provide an indication thereof that the processor 210 (e.g., processor 230 and / or DSP 231) can configure to use to determine the movement (e.g., velocity vector and / or acceleration vector) of the UE 200. The PD 219 may be configured to provide an indication of uncertainty and / or error in the determined position and / or movement.
[0079] 3, an example TRP 300 of the BS 110a, 110b, 114 comprises a computing platform including a processor 310, a memory 311 including software (SW) 312, and a transceiver 315. The processor 310, memory 311, and transceiver 315 may be communicatively coupled to each other by a bus 320 (e.g., which may be configured for optical and / or electrical communications). One or more of the illustrated devices (e.g., a wireless interface) may be omitted from the TRP 300. The processor 310 may include one or more intelligent hardware devices, such as a central processing unit (CPU), a microcontroller, an application-specific integrated circuit (ASIC), etc. The processor 310 may include multiple processors (e.g., including a general-purpose / application processor, a DSP, a modem processor, a video processor, and / or a sensor processor, as shown in FIG. 2). The memory 311 is a non-transitory storage medium that may include random access memory (RAM), flash memory, disk memory, and / or read-only memory (ROM), etc. The memory 311 may store software 312, which may be processor-readable, processor-executable software code that includes instructions configured, when executed, to cause the processor 310 to perform various functions described herein. Alternatively, the software 312 may not be directly executable by the processor 310, but may be configured, for example, when compiled and executed, to cause the processor 310 to perform a function. The description may refer only to the processor 310 performing a function, but also includes other implementations, such as when the processor 310 executes software and / or firmware. The description may refer to the processor 310 performing a function as shorthand for one or more of the processors included in the processor 310 performing the function. The description may refer to the TRP 300 performing a function as shorthand for one or more suitable components of the TRP 300 (and therefore one of the BSs 110a, 110b, 114) performing the function.Processor 310 may include memory with stored instructions in addition to and / or in place of memory 311. The functionality of processor 310 is discussed more fully below.
[0080] The transceiver 315 may include a wireless transceiver 340 and / or a wired transceiver 350 configured to communicate with other devices over wireless and wired connections, respectively. For example, the wireless transceiver 340 may include a wireless transmitter 342 and a wireless receiver 344 coupled to one or more antennas 346 to transmit (e.g., on one or more uplink channels and / or one or more downlink channels) and / or receive (e.g., on one or more downlink channels and / or one or more uplink channels) wireless signals 348 and convert signals from the wireless signals 348 to wired (e.g., electrical and / or optical) signals and from the wired (e.g., electrical and / or optical) signals to the wireless signals 348. Thus, the wireless transmitter 342 may include multiple transmitters, which may be separate components or combined / integrated components, and / or the wireless receiver 344 may include multiple receivers, which may be separate components or combined / integrated components. The wireless transceiver 340 may be configured to communicate signals (e.g., with the UE 200, one or more other UEs, and / or one or more other devices) in accordance with various radio access technologies (RATs), such as 5G New Radio (NR), GSM (Global System for Mobile Communications), UMTS (Universal Mobile Telecommunications System), AMPS (Advanced Mobile Phone System), CDMA (Code Division Multiple Access), WCDMA (Wideband CDMA), LTE (Long Term Evolution), LTE Direct (LTE-D), 3GPP LTE-V2X (PC5), IEEE 802.11 (including IEEE 802.11p), WiFi, WiFi Direct (WiFi-D), Bluetooth, Zigbee, etc. The wired transceiver 350 may include a wired transmitter 352 and a wired receiver 354 configured for wired communication, e.g., with the network 140, e.g., to send communications to and receive communications from the LMF 120.The wired transmitter 352 may include multiple transmitters, which may be separate components or combined / integrated components, and / or the wired receiver 354 may include multiple receivers, which may be separate components or combined / integrated components. The wired transceiver 350 may be configured for optical and / or electrical communications, for example.
[0081] 3 is an example, not a limitation, of the present invention, including the claims, and other configurations may be used. For example, the description herein discusses the TRP 300 being configured to or performing certain functions, but one or more of these functions may be performed by the LMF 120 and / or the UE 200 (i.e., the LMF 120 and / or the UE 200 may be configured to perform one or more of these functions).
[0082] Referring also to FIG. 4 , server 400, an example of LMF 120, comprises a computing platform including processor 410, memory 411 including software (SW) 412, and transceiver 415. Processor 410, memory 411, and transceiver 415 may be communicatively coupled to each other by bus 420 (which may be configured for optical and / or electrical communications, for example). One or more of the illustrated devices (e.g., a wireless interface) may be omitted from server 400. Processor 410 may include one or more intelligent hardware devices, such as a central processing unit (CPU), a microcontroller, an application-specific integrated circuit (ASIC), etc. Processor 410 may include multiple processors (e.g., including a general-purpose / application processor, a DSP, a modem processor, a video processor, and / or a sensor processor, as shown in FIG. 2 ). Memory 411 is a non-transitory storage medium that may include random access memory (RAM), flash memory, disk memory, and / or read-only memory (ROM), etc. The memory 411 may store software 412, which may be processor-readable, processor-executable software code including instructions configured, when executed, to cause the processor 410 to perform various functions described herein. Alternatively, the software 412 may not be directly executable by the processor 410, but may be configured, for example, when compiled and executed, to cause the processor 410 to perform a function. The description may refer only to the processor 410 performing a function, but also includes other implementations, such as the processor 410 executing software and / or firmware. The description may refer to the processor 410 performing a function as a shorthand for one or more of the processors included in the processor 410 performing the function. The description may refer to the server 400 performing a function as a shorthand for one or more of the appropriate components of the server 400 performing the function.Processor 410 may include memory with stored instructions in addition to and / or in place of memory 411. The functionality of processor 410 is discussed more fully below.
[0083] The transceiver 415 may include a wireless transceiver 440 and / or a wired transceiver 450 configured to communicate with other devices over wireless and wired connections, respectively. For example, the wireless transceiver 440 may include a wireless transmitter 442 and a wireless receiver 444 coupled to one or more antennas 446 to transmit (e.g., on one or more downlink channels) and / or receive (e.g., on one or more uplink channels) wireless signals 448 and convert signals from the wireless signals 448 to wired (e.g., electrical and / or optical) signals and from the wired (e.g., electrical and / or optical) signals to the wireless signals 448. Thus, the wireless transmitter 442 may include multiple transmitters, which may be separate components or combined / integrated components, and / or the wireless receiver 444 may include multiple receivers, which may be separate components or combined / integrated components. The wireless transceiver 440 may be configured to communicate signals (e.g., with the UE 200, one or more other UEs, and / or one or more other devices) in accordance with various radio access technologies (RATs), such as 5G New Radio (NR), GSM (Global System for Mobile Communications), UMTS (Universal Mobile Telecommunications System), AMPS (Advanced Mobile Phone System), CDMA (Code Division Multiple Access), WCDMA (Wideband CDMA), LTE (Long Term Evolution), LTE Direct (LTE-D), 3GPP LTE-V2X (PC5), IEEE 802.11 (including IEEE 802.11p), WiFi, WiFi Direct (WiFi-D), Bluetooth, Zigbee, etc. The wired transceiver 450 may include a wired transmitter 452 and a wired receiver 454 configured for wired communication, e.g., with the network 135, e.g., to send communications to and receive communications from the TRP 300.The wired transmitter 452 may include multiple transmitters, which may be separate components or combined / integrated components, and / or the wired receiver 454 may include multiple receivers, which may be separate components or combined / integrated components. The wired transceiver 450 may be configured for optical and / or electrical communications, for example.
[0084] The description herein may refer only to the processor 410 performing a function, but also includes other implementations, such as the processor 410 executing software (stored in memory 411) and / or firmware. The description herein may refer to the server 400 performing a function as shorthand for one or more of the appropriate components of the server 400 (e.g., the processor 410 and the memory 411) performing the function.
[0085] Positioning Technique For terrestrial positioning of UEs in cellular networks, techniques such as Advanced Forward Link Trilateration (AFLT) and Observed Time Difference of Arrival (OTDOA) often operate in a "UE-assisted" mode, in which measurements of reference signals (e.g., PRS, CRS, etc.) transmitted by base stations are taken by the UE and then provided to a location server. The location server then calculates the UE's position based on the measurements and the known locations of the base stations. Because these techniques use a location server, rather than the UE itself, to calculate the UE's position, these positioning techniques are not frequently used in applications such as car or cell phone navigation, which instead typically rely on satellite-based positioning.
[0086] UEs can use satellite positioning systems (SPS) (also known as global navigation satellite systems (GNSS)) for high-precision positioning using precise point positioning (PPP) or real-time kinematic (RTK) techniques. These techniques use assistance data, such as measurements from ground stations. With LTE Release 15, the data is encrypted so that only UEs that have subscribed to the service can read the information. Such assistance data changes over time. Therefore, UEs that have subscribed to the service cannot easily "break the encryption" for other UEs by passing the data to them, even if they have not paid for a subscription. This passing must be repeated each time the assistance data changes.
[0087] In UE-assisted positioning, the UE sends measurements (e.g., TDOA, angle of arrival (AoA), etc.) to a positioning server (e.g., LMF / eSMLC). The positioning server has a Base Station Almanac (BSA) that contains multiple "entries" or "records," one record per cell, each of which includes the geographic cell location but may also include other data. An identifier for a "record" among the multiple "records" in the BSA may be referenced. The measurements from the BSA and the UE may be used to calculate the UE's position.
[0088] In traditional UE-based positioning, the UE calculates its own position and thus avoids sending measurements to the network (e.g., a location server), thereby improving latency and scalability. The UE uses relevant BSA record information (e.g., the location of gNBs (or base stations more broadly)) from the network. The BSA information may be encrypted. However, because BSA information changes much less frequently than, for example, the previously described PPP or RTK assistance data, it may be easier (compared to PPP or RTK information) to make BSA information available to UEs that have not subscribed and paid for a decryption key. Transmission of reference signals by gNBs makes BSA information potentially accessible for crowdsourcing or wardriving, essentially allowing BSA information to be generated based on local and / or transboundary observations.
[0089] Positioning techniques may be characterized and / or evaluated based on one or more criteria, such as position determination accuracy and / or latency. Latency is the time elapsed between an event that triggers the determination of location-related data and the data becoming available at a positioning system interface, e.g., the interface of the LMF 120. At the initialization of the positioning system, the latency for location-related data to become available is referred to as the time-to-first-fix (TTFF) and is greater than the latency after the TTFF. The inverse of the time elapsed between two consecutive location-related data availability states is referred to as the update rate, i.e., the rate at which location-related data is generated after the first fix. Latency may depend, for example, on the processing capability of the UE. For example, a UE may report its processing capability as the duration of a DL PRS symbol in time (e.g., milliseconds) that the UE can process every amount of time T (e.g., T ms) assuming a 272 PRB (Physical Resource Block) allocation. Other examples of capabilities that may affect latency are the number of TRPs from which the UE can process PRSs, the number of PRSs the UE can process, and the bandwidth of the UE.
[0090] One or more of many different positioning techniques (also called positioning methods) may be used to determine the location of an entity, such as one of the UEs 105, 106. For example, known position determination techniques include RTT, multi-RTT, OTDOA (also called TDOA, including UL-TDOA and DL-TDOA), Extended Cell Identity (E-CID), DL-AoD, UL-AoA, etc. RTT uses the time it takes a signal to travel from one entity to another and vice versa to determine the range between the two entities. The range, plus the known location of a first one of the entities and the angle (e.g., azimuth) between the two entities, may be used to determine the location of a second one of the entities. In multi-RTT (also called multi-cell RTT), multiple ranges from one entity (e.g., UE) to another entity (e.g., TRP) and the known locations of the other entities may be used to determine the location of an entity. In TDOA techniques, the difference in travel time between one entity and another may be used to determine the relative range from the other entity, which, combined with the known location of the other entity, may be used to determine the location of the entity. The angle of arrival and / or departure may be used to help determine the location of the entity. For example, the angle of arrival or departure of a signal (determined using the signal, e.g., the signal's travel time, the signal's received power, etc.) combined with the range between the devices and the known location of one of the devices may be used to determine the location of the other device. The angle of arrival or departure may be an azimuth angle relative to a reference direction, such as due north. The angle of arrival or departure may be a zenith angle, directly upward from the entity (i.e., radiating outward from the center of the Earth).E-CID uses the identity of the serving cell, the timing advance (i.e., the difference between the receive time and the transmit time at the UE), the estimated timing and power of detected neighbor cell signals, and possibly the angle of arrival (e.g., of the signal at the UE from the base station, or vice versa) to determine the location of the UE. In TDOA, the difference in the arrival times at a receiving device of signals from different sources, along with the known locations of the sources and known offsets in the transmit times from the sources, are used to determine the location of the receiving device.
[0091] In network-centric RTT estimation, the serving base station instructs the UE to scan / receive RTT measurement signals (e.g., PRS) on the serving cells of two or more neighboring base stations (and typically the serving base station, since at least three base stations are required). One or more base stations transmit the RTT measurement signals on low reuse resources (e.g., resources used by base stations to transmit system information) allocated by the network (e.g., a location server such as the LMF 120). The UE records the arrival time (also referred to as receive time, reception time, time of reception, or ToA) of each RTT measurement signal relative to the UE's current downlink timing (e.g., derived by the UE from the DL signal received from its serving base station), transmits a common or individual RTT response message (e.g., SRS (Sounding Reference Signal) for positioning, i.e., UL-PRS) to one or more base stations (e.g., when commanded by its serving base station), and records the time difference T between the ToA of the RTT measurement signal and the transmission time of the RTT response message. Rx→Tx (i.e., UE T Rx-Tx or UE Rx-Tx ) can be included in the payload of each RTT response message. The RTT response message will contain a reference signal from which the base station can infer the ToA of the RTT response. The difference T between the transmission time of the RTT measurement signal from the base station and the ToA of the RTT response at the base stationTx→Rx , the time difference T Rx→Tx By comparing this with the propagation time between the base station and the UE, the base station can infer the propagation time between the base station and the UE, from which the base station can determine the distance between the UE and the base station by assuming the speed of light during this propagation time.
[0092] UE-centric RTT estimation is similar to the network-based method, except that the UE transmits an uplink RTT measurement signal (e.g., when instructed by the serving base station), which is received by multiple base stations in the UE's neighborhood. Each participating base station responds with a downlink RTT response message, which may include in the RTT response message payload the time difference between the ToA of the RTT measurement signal at the base station and the transmission time of the RTT response message from the base station.
[0093] For both network-centric and UE-centric procedures, the party performing the RTT calculation (network or UE) typically (but not always) sends a first message or signal (e.g., an RTT measurement signal), and the other side responds with one or more RTT response messages or signals that may include the difference between the ToA of the first message or signal and the transmission time of the RTT response message or signal.
[0094] Multi-RTT techniques may be used to determine location. For example, a first entity (e.g., a UE) may send one or more signals (e.g., unicast, multicast, or broadcast from a base station), and multiple second entities (e.g., base stations and / or other TSPs, such as UEs) may receive the signals from the first entity and respond to the received signals. The first entity receives responses from the multiple second entities. The first entity (or another entity, such as an LMF) may use the responses from the second entities to determine a range to the second entity, and may use the multiple ranges and the known location of the second entities to determine the location of the first entity by trilateration.
[0095] In some examples, additional information may be obtained in the form of a linear direction (e.g., which may be in the horizontal plane or in three dimensions), or possibly an angle of arrival (AoA) or angle of departure (AoD), which defines a range of directions (e.g., from the base station's location to the UE). The intersection of the two directions may provide another estimate of the location for the UE.
[0096] For positioning techniques (e.g., TDOA and RTT) that use PRS (positioning reference signal) signals, PRS signals sent by multiple TRPs are measured, and the signal arrival times, known transmission times, and known locations of the TRPs are used to determine the range from the UE to the TRPs. For example, a reference signal time difference (RSTD) may be determined for PRS signals received from multiple TRPs and used in TDOA techniques to determine the location of the UE. This positioning reference signal may be referred to as a PRS or PRS signal. PRS signals are typically sent using the same power, and PRS signals with the same signal characteristics (e.g., the same frequency shift) may interfere with each other, causing PRS signals from more distant TRPs to be overwhelmed by PRS signals from closer TRPs so that the signals from the more distant TRPs cannot be detected. PRS muting may be used to help reduce interference by muting some PRS signals (e.g., reducing the power of the PRS signal to zero, thus not transmitting the PRS signal). In this way, weaker PRS signals (at the UE) may be more easily detected by the UE without stronger PRS signals interfering with the weaker PRS signals. The term RS, and its variants (e.g., PRS, SRS), may refer to one reference signal or multiple reference signals.
[0097] Positioning reference signals (PRS) include downlink PRS (DL PRS) and uplink PRS (UL PRS), which may be referred to as SRS (Sounding Reference Signal) for positioning. A PRS may include a PRS resource or PRS resource set of a frequency layer. A DL PRS positioning frequency layer (or simply frequency layer) is a collection of DL PRS resource sets from one or more TRPs with common parameters configured by higher layer parameters DL-PRS-PositioningFrequencyLayer, DL-PRS-ResourceSet, and DL-PRS-Resource. Each frequency layer has a DL PRS resource set and a DL PRS subcarrier spacing (SCS) for the DL PRS resources in the frequency layer. Each frequency layer has a DL PRS resource set and a DL PRS cyclic prefix (CP) for the DL PRS resources in the frequency layer. In 5G, a resource block occupies 12 consecutive subcarriers and a specified number of symbols. Also, the DL PRS point A parameter defines the frequency of the reference resource block (and the lowest subcarrier of the resource block), and the DL PRS resources belong to the same DL PRS resource set with the same point A, and all DL PRS resource sets belong to the same frequency layer with the same point A. The frequency layers also have the same DL PRS bandwidth, the same start PRB (and center frequency), and the same value of comb size (i.e., the frequency of PRS resource elements per symbol, such that for comb N, every Nth resource element is a PRS resource element).
[0098] The TRP may be configured to send the DL PRS per schedule, for example, by instructions received from a server and / or by software in the TRP. According to the schedule, the TRP may send the DL PRS intermittently, for example, periodically at regular intervals from the initial transmission. The TRP may be configured to send one or more PRS resource sets. A resource set is a collection of PRS resources across one TRP, where the resources have the same periodicity, common muting pattern configuration (if any), and the same repetition factor across slots. Each PRS resource set includes multiple PRS resources, and each PRS resource includes multiple resource elements (REs) that may be located within multiple resource blocks (RBs) within N (one or more) consecutive symbols within a slot. An RB is a collection of REs across one or more consecutive symbols in the time domain and an amount of consecutive subcarriers in the frequency domain (12 for 5G RBs). Each PRS resource is configured with an RE offset, a slot offset, a symbol offset within the slot, and the number of consecutive symbols the PRS resource may occupy within the slot. The RE offset defines the starting RE offset of the first symbol in a DL PRS resource in frequency. The relative RE offsets of the remaining symbols in the DL PRS resource are defined based on the initial offset. The slot offset is the starting slot of the DL PRS resource relative to the corresponding resource set slot offset. The symbol offset determines the starting symbol of the DL PRS resource within the starting slot. The transmitted RE may repeat across slots, and each transmission is called a repetition, as there may be multiple repetitions in a PRS resource. DL PRS resources in a DL PRS resource set are associated with the same TRP, and each DL PRS resource has a DL PRS resource ID. A DL PRS resource ID in a DL PRS resource set is associated with a single beam transmitted from a single TRP (although a TRP may transmit one or multiple beams).
[0099] PRS resources may also be defined by quasi-co-location and start PRB parameters. The quasi-co-location (QCL) parameter may define any quasi-co-location information of DL PRS resources with other reference signals. A DL PRS may be configured to be QCL type D with DL PRS or SS / PBCH (Synchronization Signal / Physical Broadcast Channel) blocks from a serving or non-serving cell. A DL PRS may be configured to be QCL type C with SS / PBCH blocks from a serving or non-serving cell. The start PRB parameter defines the starting PRB index of the DL PRS resource relative to reference point A. The start PRB index has a granularity of one PRB and may have a minimum value of 0 and a maximum value of 2176 PRBs.
[0100] A PRS resource set is a collection of PRS resources with the same periodicity, the same muting pattern configuration (if any), and the same repetition factor across slots. Any time when all repetitions of all PRS resources in a PRS resource set are configured to be transmitted is called an "instance." Thus, an "instance" of a PRS resource set is a specified number of repetitions for each PRS resource and a specified number of PRS resources within the PRS resource set, whereby an instance is complete when the specified number of repetitions for each of the specified number of PRS resources have been transmitted. An instance may also be referred to as an "opportunity." A DL PRS configuration, including a DL PRS transmission schedule, may be provided to the UE to facilitate (or even enable) the UE to measure the DL PRS.
[0101] Multiple frequency layers of a PRS may be aggregated to provide an effective bandwidth greater than any one of the layer bandwidths. Multiple frequency layers of component carriers (which may be contiguous and / or distinct) that meet criteria such as being quasi-colocated (QCL) and have the same antenna ports may be stitched together to provide a larger effective PRS bandwidth (for DL PRS and UL PRS), increasing time-of-arrival measurement accuracy. When QCL'd, different frequency layers behave similarly, allowing for stitching of PRSs to provide a larger effective bandwidth. The larger effective bandwidth may be referred to as the bandwidth of the aggregated PRS or the frequency bandwidth of the aggregated PRS, and may provide better time-domain resolution (e.g., for TDOA). An aggregated PRS includes a collection of PRS resources, each of which may be referred to as a PRS component, and each PRS component may be transmitted on a different component carrier, band, or frequency layer, or on a different portion of the same band.
[0102] RTT positioning is an active positioning technique in that the RTT uses positioning signals sent by the TRP to the UE and by the UE (involved in the RTT positioning) to the TRP. The TRP can send DL-PRS signals that are received by the UE, and the UE can send SRS (Sounding Reference Signal) signals that are received by multiple TRPs. The sounding reference signal is sometimes called an SRS or SRS signal. In 5G multi-RTT, cooperative positioning can be used with the UE sending a single UL-SRS for positioning that is received by multiple TRPs, rather than sending a separate UL-SRS for positioning for each TRP. A TRP involved in multi-RTT typically searches for UEs currently camped on that TRP (served UEs, where the TRP is the serving TRP) and UEs camped on neighboring TRPs (neighbor UEs). The neighbor TRPs may be TRPs of a single BTS (e.g., gNB), or a TRP of one BTS and a TRP of a separate BTS. For RTT positioning, including multi-RTT positioning, the DL-PRS signal and the UL-SRS signal in a positioning PRS / SRS signal pair used to determine the RTT (and thus the range between the UE and the TRP) may occur close in time to each other so that errors due to UE movement and / or UE clock drift and / or TRP clock drift are within acceptable limits. For example, signals in a positioning PRS / SRS signal pair may be transmitted from the TRP and the UE, respectively, within approximately 10 ms of each other. Because the SRS signal is sent by the UE, and because the PRS and SRS signals are transmitted close in time to each other, it has been found that radio frequency (RF) signal congestion (which may cause excessive noise, etc.) may occur, particularly if many UEs attempt positioning simultaneously, and / or computational congestion may occur at the TRP attempting to measure many UEs simultaneously.
[0103] RTT positioning may be UE-based or UE-assisted. In UE-based RTT, the UE 200 determines the RTT and corresponding range to each TRP 300 and its location based on the range to the TRP 300 and the known location of the TRP 300. In UE-assisted RTT, the UE 200 measures positioning signals and provides the measurement information to the TRP 300, which determines the RTT and range. The TRP 300 provides the range to a location server, e.g., server 400, which determines the location of the UE 200, e.g., based on the range to different TRPs 300. The RTT and / or range may be determined by the TRP 300 receiving a signal from the UE 200, by a combination of the TRP 300 and one or more other devices, e.g., one or more other TRPs 300 and / or server 400, or by one or more devices other than the TRP 300 receiving a signal from the UE 200.
[0104] Various positioning techniques are supported in 5G NR. NR-specific positioning methods supported in 5G NR include DL-only positioning methods, UL-only positioning methods, and DL+UL positioning methods. Downlink-based positioning methods include DL-TDOA and DL-AoD. Uplink-based positioning methods include UL-TDOA and UL-AoA. Combined DL+UL-based positioning methods include RTT with one base station and RTT with multiple base stations (multi-RTT).
[0105] Base station assisted UE-device positioning 5, the TRP 300 and the UEs 200-1 and 200-2 may be configured for base station-assisted UE-to-UE positioning, where a base station, here the TRP 300, provides positioning assistance information to the UE 200-1 for use in a UE-device interaction (UE-to-UE interaction with the UE 200-2 in the example of FIG. 5) to determine location information (e.g., the relative location of the UE 200-2 with respect to another device, here the UE 200-1). The UEs 200-1 and 200-2 are implementations of the UE 200, although other UE implementations, such as the UE 600 discussed herein, may also be used. The positioning assistance information may be referred to as assistance information. The UE 200-1 may send a positioning search request 510 to the TRP 300, and the TRP 300 may respond by sending a positioning search response 520 with the positioning assistance information for the UE 200-1. The UE 200-1 may use the positioning assistance information to send a ranging signal 530 to the UE 200-2, and a response ranging signal 540 may be returned to the UE 200-1 (e.g., reflected to the UE 200-2 or sent by the UE 200-2 to the UE 200-1). Typically, signaling between the UEs 200-1, 200-2 is reported using LPP (LTE Positioning Protocol) or RRC (Radio Resource Control), both of which involve the 5G protocol stack above Layer 2.
[0106] The UE 200-1 may also communicate with the TRP 300 to request an uplink grant for transmitting data on a physical uplink shared channel (PUSCH). The UE 200-1 may send a scheduling request (SR), which is a special physical layer message for the UE 200-1 to request a network entity, for example, the TRP 300, to send an UL grant so that the UE 200-1 can transmit data on the PUSCH (which may be referred to as a transmission PUSCH). For example, in response to the UE 200-1 having data to be transmitted, the UE 200-1 may send an SR message via a physical uplink control channel (PUCCH) using a PUCCH format to request an UL grant from the TRP 300. The TRP 300 is configured to reply to the SR message from the UE 200-1 via a physical downlink control channel (PDCCH) with an UL grant in one or more downlink control information (DCI) messages in either a DCI0_0 format or a DCI0_1 format (used for the scheduling PUSCH). Using the UL grant provided by the TRP 300, the UE 200-1 transmits data to the TRP 300 via a PUSCH channel.
[0107] With reference to FIG. 6 and further to FIGS. 1-3, the UE 600 includes a processor 610, an interface 620, and a memory 630 communicatively coupled to each other by a bus 640. The UE 600 may include the components shown in FIG. 6 and may include one or more other components, such as any of those shown in FIG. 2, such that the UE 200 may be an example of the UE 600. The interface 620 may be configured similarly to all or a portion of the transceiver 215, and the memory 630 may be configured similarly to the memory 211, including, for example, software having processor-readable instructions configured to cause the processor 610 to perform a function. While the description may only refer to the processor 610 performing a function, this includes other implementations, such as when the processor 610 executes software (stored in the memory 630) and / or firmware. The description may refer to the UE 600 performing a function as an abbreviation for one or more appropriate components (e.g., the processor 610 and the memory 630) for the UE 600 to perform the function. The processor 610 (possibly together with the memory 630 and, optionally, the interface 620) includes a positioning request sending unit 650 and a UE-device positioning performing unit 660 configured to send a positioning request (PR) using the physical layer and to use the positioning assistance information to perform one or more UE-device positioning functions, respectively. The units 650, 660 are discussed further below, and the description may refer generally to the processor 610, or generally to the UE 600, as performing any of the functions of the units 650, 660.
[0108] 7 and with further reference to FIGS. 1 and 4, a TRP 700, which is an example of the TRP 300 shown in FIG. 3, includes a processor 710, an interface 720, and a memory 730 communicatively coupled to each other by a bus 740. The TRP 700 may include the components shown in FIG. 7 and may include one or more other components, such as any of those shown in FIG. 3. The interface 720 may be configured similarly to the transceiver 315, or at least all or a portion of the wireless transmitter 342 of the transceiver 315, and the memory 730 may be configured similarly to the memory 311, including, for example, software with processor-readable instructions configured to cause the processor 710 to perform functions. While the description may only refer to the processor 710 performing functions, this includes other implementations, such as when the processor 710 executes software (stored in the memory 730) and / or firmware. The description may refer to the TRP 700 performing a function as shorthand for one or more appropriate components for the TRP 700 that perform the function (e.g., the processor 710 and memory 730). The processor 710 (possibly along with the memory 730 and, optionally, the interface 720 and the antenna 346) includes a positioning search response determination and sending unit 750 configured to determine and send a positioning search response (PSR) in response to receiving a positioning search request, the PSR including positioning assistance information for performing one or more UE-device positioning functions. These functions are discussed further below, and the description may refer generally to the processor 710 or generally to the TRP 700 as performing any of these functions.
[0109] Referring also to Figure 8, a signaling and process flow 800 for requesting and providing positioning assistance information for UE-device positioning using the physical layer includes the steps shown. Although the discussion herein may use UE-to-UE positioning as an example of UE-to-device positioning, the discussion herein, including the claims, is applicable beyond UE-to-UE positioning. Flow 800 is merely an example, and steps may be added, reordered, and / or deleted. In flow 800, UE 600-1, which may be configured according to UE 600 shown in Figure 6, may seek to perform UE-to-device positioning with UE 600-2, which may also be configured according to UE 600 shown in Figure 6.
[0110] In step 810, the UE 600-1 may send a positioning request (PR) message 812 to the TRP 700. The positioning request sending unit 650 is configured to create and send a PR to the TRP 700 via the interface 620. The unit 650 may use the physical layer of the UE 600 to send the PR message 812 to the TRP 700 via a PUCCH channel such that the PR message 812 is carried in the PUCCH channel. The PR message 812 may request (explicitly or implicitly) one or more parameters for use in a signal exchange of one or more positioning reference signals between the UE 600-1 and another device such as a UE 600-2 (e.g., a handset, a tablet computer, a car, etc.), a base station (gNB), a repeater, etc. The PR message 812 may request one or more parameters for use in the UE exchanging one or more PRS with another UE. Unit 650 may be configured to create PR message 812 as a single bit, and / or unit 650 may be configured to create PR message 812 as a single bit and also provide other information, e.g., one or more indications of one or more positioning technique characteristics, in association with PR message 812 (e.g., in the same communication and / or with an indication that PR message 812 and one or more indications are associated). Unit 650 may be configured to create and send PR message 812 via PUCCH in accordance with a PUCCH format used for sending scheduling requests (SRs), as described above. Also or alternatively, unit 650 may be configured to create and send PR message 812 in accordance with a new PUCCH format. For example, currently, NR PUCCH format 0 (PF0) spans one to two symbols and typically carries one to two bits, which may be HARQ-ACK (hybrid automatic repeat request-acknowledgement) bits or SR bits, or both. The structure of PF0 may be DMRS (Demodulation Reference Signal) based or sequence based.For the DMRS-based structure, DMRS may be embedded in the UL control channel during UCI (uplink control information) transmission, allowing the TRP (e.g., a gNB such as an NR Node B) to coherently demodulate the HARQ-ACK at the receiver. For the sequence-based structure, a sequence-based structure is used instead of DMRS, which eliminates DMRS overhead because channel estimation is not required for the non-coherent detection used in the sequence-based structure. The new format carrying PR follows the approach of sequence-based PF0, but may now use a different type of sequence, or a different initialization sequence, or a different cyclic shift, or a new computer-generated sequence (CGS) compared to PF0.
[0111] The positioning request sending unit 650 may be configured to send a PR message 812 via a semi-persistent PUSCH channel (SP-PUSCH). The unit 650 may be configured to receive information for establishing the SP-PUSCH from the TRP 700. The unit 650 may be configured to respond to a request (e.g., need) by the UE 600-1 for a PR message to be sent by using available SP-PUSCH resources to transmit the PR message 812. The TRP 700 may provide the UE 600-1 with an open opportunity to obtain positioning information via the SP-PUSCH, for example, intermittently, such as periodically (e.g., every 20 ms).
[0112] Also or alternatively, the positioning request sending unit 650 may be configured to use both the PUCCH and the SP-PUSCH to send the PR message 812 and other information. The unit 650 may be configured to send the PR (e.g., as one bit) on the PUCCH and respond to the SP-PUSCH established (e.g., configured) in response to the PR message 812 by using the SP-PUSCH to send other information, such as positioning technique characteristics.
[0113] Also or alternatively, the positioning request sending unit 650 may be configured to use a PUSCH to send other information in connection with the PR message 812. The unit 650 may be configured, for example, to send the PR message 812 (e.g., as one bit) on a PUCCH and respond to a PUSCH grant issued to establish (e.g., configure) a standard (non-SP) PUSCH. The unit 650 may send other information (e.g., positioning technique characteristics) via the PUSCH channel.
[0114] The information associated with the PR message 812 may include one or more of various types of information (and may be considered part of the PR message 812 itself). For example, the information associated with the PR message 812 may include one or more reference signal types that the UE 600-1 is configured to transmit (whether statically or dynamically configured) for positioning purposes. As another example, the information associated with the PR message 812 may include which positioning method the UE 600-1 is configured (e.g., selected) to use for positioning. As another example, the information associated with the PR message 812 may include a technology that the UE 600-1 is configured to use for UE-device positioning. Examples of such technologies include radar, Bluetooth short-range wireless protocol technology, WLAN (Wireless Local Area Network), NR, LTE, etc. As another example, the information associated with the PR message 812 may include whether one or more measurement gaps are requested (and possibly the timing of the requested measurement gaps). As another example, the information associated with the PR message 812 may include the bandwidth, time window, and available resources of the UE 600-1 for performing positioning. As another example, the information associated with the PR message 812 may include a band and / or carrier that the UE 600-1 will use for positioning (e.g., wireless interaction with the UE 600-2) to determine location information (e.g., location, measurements, range to the UE 600-2, range such as a pseudorange to the UE 600-2, the location of the UE 600-2, measurement information of positioning signals exchanged between the UEs 600-1, 600-2, etc.). As another example, the information associated with the PR may include information that the UE 600-1 has about the UE 600-2, such as location, velocity, or orbit, or UE information (e.g., UE ID), or a combination of two or more of these.
[0115] In step 820, the TRP 700 performs L1 / L2 processing of the information received from the UE 600-1 and other information, as needed, to determine a PSR. For example, the PSR determination and sending unit 750 of the TRP 700 may be configured to respond to the PR message 812 received from the UE 600-1 in step 810 by processing appropriate information, e.g., information provided by the UE 600-1 in association with (or as part of) the PR message 812. The unit 750 may process information within the lower two layers, L1 and L2, of the 5G protocol stack of the TRP 700. The L1 layer is the physical layer, and the L2 layer is the data link layer (also referred to as the MAC (medium access control) layer, the RLC (radio link control) layer, or the PDCP (packet data convergence protocol) layer). By avoiding using higher layers of the protocol stack (above the MAC layer), the TRP700 need only provide low latency services for positioning to help limit processing latency and meet target latencies (e.g., request to position fix, or physical layer latency) of less than 100 ms or even less than 10 ms (e.g., for Industrial Internet of Things (IIoT) applications). Using higher layers (above the MAC layer) to determine and encode the PSR involves more processing and more data (more bits make up the PSR determined and encoded using higher layer processing) than determining and encoding the PSR directly using the physical and / or MAC layers without involving higher layers.
[0116] In step 830, the TRP 700 sends the PSR created in step 820 in a PSR message 832. The TRP 700 may be configured to send the PSR message 832 as a physical layer message including one or more types of various positioning assistance information. The PSR message 832 has fewer bits than a similar message created using one or more protocol layers above the MAC layer. The PSR message 832 may indicate one or more parameters for the signal exchange of one or more positioning reference signals between the UE and another device. For example, the PSR message 832 may include an indication of physical layer resources that the UE 600-1 (which may be referred to as the target UE) is authorized to use for the purpose of transmitting any required reference signals, e.g., positioning reference signals such as PRS or SRS (also referred to as UL-PRS). As another example, the PSR message 832 may include an indication of authorization for one or more actions by the UE 600-1, e.g., for the UE 600-1 to use an unlicensed band or for the UE 600-1 to use the band of the TRP 700. As another example, the PSR message 832 may include an indication of physical resources that the UE 600-1 may use for purposes of receiving one or more reference signals from one or more other UEs, e.g., the UE 600-2. The indication may be in the format of a start symbol, an end symbol, a start PRB, and an end PRB, or a standard PRS or SRS configuration. As another example, the PSR message 832 may include an indication of what type of signal the UE 600-1 is authorized to transmit, at what power level, and / or for how long (i.e., for what duration). As another example, the PSR message 832 may include an indication of one or more measurement gaps (i.e., times during which the UE 600-1 should not receive signals, e.g., PRS signals, from the TRP 700 that the UE 600-1 is expected to measure) configured to aid the UE 600-1 in transmitting, and / or receiving and measuring, the PSR message 832 by the TRP 700.For example, the TRP 700 may pre-schedule one or more measurement gaps (e.g., based on the location, speed, and / or trajectory of the UE 600-1) in anticipation of the UE 600-1 entering an area with high UE density (e.g., an intersection with many vehicles, a parking lot, a parking lot exit (e.g., from a stadium or other event venue (e.g., a theater))). As another example, the PSR message 832 may include an indication of one or more measurement gaps configured to assist the UE 600-1 in receiving and measuring one or more signals sent by one or more other UEs, e.g., the UE 600-2. As another example, the PSR message 832 may include information related to one or more other UEs that are neighbors of the UE 600-1 (e.g., within its communication range and / or within a threshold distance, etc.). Such information may include a list of one or more other UEs, possibly along with the UE IDs and / or location information of the other UEs. The location information may be in a global coordinate system or relative to a coordinate system with respect to a reference location, such as the location of the TRP 700, or the reported location of the target UE 600-1. As another example, the information related to the one or more other UEs may include the velocity and / or trajectory of each of the one or more UEs. As another example, the information related to the one or more other UEs may include a UE ID for identification / scrambling / descrambling purposes. Resources may be allocated to the UE 600, for example, by the TRP 700, in a code domain to implement signal scrambling to help avoid signal collisions. Information, such as information about a particular UE, may be coded (scrambled) using the UE ID of the particular UE, and the UE ID may be used to descramble the scrambled information.
[0117] The PSR message 832 may be sent in various formats and in multiple communications. For example, the unit 750 may be configured to send the PSR message 832 in a PDCCH format scrambled with an RNTI (Radio Network Temporary Identifier). For example, once a new RNTI is established, the associated UEs 600 may monitor a signal scrambled with the new RNTI for PSR information. The PDCCH communication may schedule a unicast PDSCH, and the PDSCH communication over the PDSCH may include information for the UE 600-1 to transmit any appropriate reference signal for positioning (e.g., UE-device positioning, such as UE-UE positioning). For example, such information may be provided if the information does not fit in the PDCCH communication (e.g., the information exceeds 100 bits). The unit 750 may be configured to format the PDCCH communication with the new RNTI as a group-common PDCCH communication, with a separate data block dedicated to each PR (i.e., for each different UE 600 sending a positioning request). For example, each block of the group-common PDCCH may include information for granting a PDSCH including PSR information. The group-common communication may have common scrambling, and the UEs 600 may determine which blocks in the group-common communication correspond to each UE 600 (e.g., by knowing where in the group-common communication the blocks for each UE 600 are located and / or by identifying information in each block, etc.).
[0118] At stage 840, the UE 600-1 may perform one or more positioning functions. For example, the UE-device positioning implementing unit 660 may be configured to use some or all of the positioning assistance information provided in the PSR message 832 to interact with one or more other devices (e.g., one or more base stations, one or more repeaters, one or more UEs 600, such as the UE 600-2, etc.) to determine location information. For example, the UE 600-1 may send one or more positioning signals 842, such as a radar signal, a positioning reference signal (PRS), a sounding reference signal (SRS), etc., according to the positioning assistance information, e.g., at a specified power level, for a specified duration, etc. The UE 600-1 may receive feedback 844 in response to the one or more positioning signals 842 and process the feedback 844. For example, the feedback 844 may include measurement information such as reflected radar signals, or received power of the positioning signals 842, or the time and / or angle of arrival of the positioning signals 842, the range between UEs 600-1, 600-2, the location and / or velocity and / or trajectory of UE 600-2, etc. UE 600-1 may perform one or more operations on the feedback for positioning 844 to determine, for example, the position of UE 600-1, the velocity and / or trajectory of UE 600-1, the rate of closure between UE 600-1 and UE 600-2, the range from UE 600-1 to UE 600-2, etc.
[0119] 9, and further with reference to FIGS. 1-8, a method 900 for requesting positioning assistance information using a physical layer of a UE includes the steps shown. However, method 900 is exemplary only and not limiting. Method 900 may be modified, for example, by adding, removing, reordering, combining, or simultaneously performing steps, and / or splitting a single step into multiple steps. For example, step 930 may be omitted.
[0120] At step 910, the method 900 may include sending a positioning assistance request from the UE to a network entity via a physical layer uplink channel, such that the network entity provides positioning assistance information indicating one or more parameters for signal exchange of one or more positioning reference signals between the UE and another device. For example, at step 810, the positioning request sending unit 650 of the UE 600 (e.g., the UE 600-1 shown in FIG. 8 ) may send a PR message 812 to a serving base station such as the TRP 700 (or to the server 400 (e.g., the LMF) or another network entity). The positioning assistance request may consist of a single bit. The positioning assistance request may have a positioning request format that is a format of a scheduling request for requesting an uplink grant for the UE to transmit over a physical uplink shared channel. The physical uplink shared channel may be a semi-persistent physical uplink shared channel. A means for sending a positioning assistance request to a network entity via a physical layer uplink channel, for the network entity to provide positioning assistance information, may include a processor 610, possibly in combination with a memory 630 and an interface 620 (e.g., a wireless transmitter 242).
[0121] At stage 920, the method 900 may include receiving, at the UE, positioning assistance information from a network entity via a physical layer downlink channel. For example, the UE 600-1 may receive a PSR message 832 from the TRP 700 at stage 830. The positioning assistance information may provide instructions (e.g., restrictions and / or authorizations) on how the UE 600-1 operates to perform one or more positioning functions (e.g., sending a positioning reference signal, etc.). Means for receiving the positioning assistance information from the network entity via a physical layer downlink channel may include the processor 610, possibly in combination with the memory 630 and the interface 620 (e.g., the wireless receiver 244).
[0122] At stage 930, method 900 may include performing one or more UE-device positioning functions at the UE according to the positioning assistance information. For example, UE 600-1 may perform one or more positioning functions described above with respect to stage 840. This may include interacting with UE 600-2, processing some or all of the feedback 844 received from UE 600-2 to determine location information, etc. Means for performing one or more UE-device positioning functions according to the positioning assistance information may include processor 610, possibly in combination with memory 630.
[0123] Implementations of method 900 may include one or more of the following features. In an example implementation, method 900 may include sending one or more indications of positioning technique characteristics to a base station over a physical layer uplink channel in association with a positioning assistance request. Means for sending the indication of positioning technique characteristics may include processor 610, possibly in combination with memory 630 and interface 620 (e.g., wireless transmitter 242). The one or more indications of positioning technique characteristics may include (i) one or more reference signal types to be transmitted by the UE, or (ii) a positioning technique the UE is configured to use to determine its position, or (iii) a signal technology the UE is configured to use to determine its position, or (iv) a measurement gap request, or (v) a bandwidth, time window, and resource request, or (vi) a band or carrier to be used by the UE for position determination, or (vii) a location, velocity, or orbit of a neighbor UE, or a combination of two or more thereof, or (viii) a combination of two or more of (i)-(vii). Examples of reference signal types include NR signals (such as SL PRS, PSSCH, DMRS, DL PRS) or signals of other (non-NR) technologies. In another example implementation, the method 900 may include sending a positioning assistance request over a semi-persistent physical uplink shared channel. As another example, the method 900 may include sending a positioning assistance request over a physical uplink control channel. The method 900 may include sending, from the UE to a base station on a physical uplink shared channel (which may be a semi-persistent PUSCH), one or more indications of positioning technique characteristics associated with the positioning assistance request. Means for sending the one or more indications of positioning technique characteristics may include the processor 610, possibly in combination with the memory 630 and the interface 620 (e.g., the wireless transmitter 242).
[0124] Additionally or alternatively, implementations of method 900 may include one or more of the following features. In certain example implementations, method 900 may include determining, based on the positioning assistance information, which physical resources of the UE to use to perform one or more UE-device positioning functions. For example, UE 600-1 (e.g., UE-device positioning implementing unit 660) may use the positioning assistance information to determine which resources of UE 600-1 to use to perform positioning. Determining which physical resources of the UE to use to perform the one or more UE-device positioning functions may include determining, based on the positioning assistance information, at least one of a type of positioning signal to transmit for UE-device positioning, or a transmit power level for the positioning signal, or a positioning signal transmission duration, or a first measurement gap for transmitting the positioning signal, or a second measurement gap for receiving an incoming positioning signal from another UE. Types of positioning signals include DL PRS, SRS, sidelink PRS, LTE PRS, new waveform signals, radar signals, Bluetooth signals, GNSS, etc. Means for determining which physical resources of the UE to use to perform one or more UE-device positioning functions may include the processor 610, possibly in combination with the memory 630. In another example implementation, the method 900 may include descrambling the positioning signals using the UE identity in the positioning assistance information. Means for descrambling the positioning signals may include the processor 610, possibly in combination with the memory 630 (and possibly with the interface 620, e.g., the wireless receiver 244).
[0125] 1-9, a method 1000 for providing positioning assistance information using a base station's physical layer includes the steps shown. However, method 1000 is exemplary only and not limiting. Method 1000 may be modified, for example, by adding, removing, reordering, combining, or simultaneously performing steps, and / or dividing a single step into multiple steps.
[0126] At step 1010, the method 1000 may include receiving, at a network entity from a user equipment (UE) via a physical layer uplink channel, a positioning assistance request for the network entity to provide positioning assistance information indicating one or more parameters for a signal exchange of one or more positioning reference signals between the UE and another device. For example, the TRP 700 (or another network entity) may receive a PR message 812 at step 810. Means for receiving, from the user equipment (UE) via a physical layer uplink channel, a positioning assistance request for the network entity to provide positioning assistance information may include the processor 710, possibly in combination with the memory 730 and the interface 720 (e.g., the wireless receiver 344).
[0127] In step 1020, the method 1000 may include determining positioning assistance information. For example, in step 820, the positioning search response determination and sending unit 750 may determine the positioning assistance information within layer 1 and / or layer 2 of the 5G protocol stack (without using any upper layer functionality of the 5G protocol stack). The TRP 700 may determine the positioning assistance information within the physical layer and data link layer. The positioning assistance information determined and encoded within layer 1 and / or layer 2 consists of fewer bits than similar assistance information (including the same content) determined and encoded using an upper layer (e.g., physical layer transmission of lower layer determined information uses fewer bits than physical layer transmission of upper layer determined information). The positioning assistance information may include a first indication of physical resources that the UE is allowed to use to transmit a reference signal for UE-device positioning. The positioning assistance information may include at least one of the following: a type of positioning signal the UE is authorized to transmit for UE-device positioning; a transmit power level the UE is authorized to use to transmit signals for UE-device positioning; a positioning signal transmission duration the UE is authorized to use for UE-device positioning; or a measurement gap in which the UE is authorized to transmit positioning signals. The positioning assistance information may include a first indication of physical resources the UE is allowed to use to receive reference signals for UE-device positioning. The positioning assistance information may include a measurement gap to be used by the UE to receive incoming positioning signals from another UE. The UE may be a first UE, and the positioning assistance information may include (i) a UE identity of a second UE in the vicinity of the first UE, or (ii) a location of the second UE, or (ii) a velocity of the second UE, or (iii) an orbit of the second UE, or (iv) descrambling information for descrambling the positioning assistance information. The positioning assistance information may be determined within the bottom two layers of the 5G protocol stack. The means for determining the positioning assistance information may include a processor 710 , possibly in combination with a memory 730 .
[0128] At step 1030, method 1000 may include sending the positioning assistance information to the UE via a physical layer downlink channel in a physical layer message. For example, TRP 700 (e.g., unit 750) sends the positioning assistance information in a PSR message 832 at step 830. Sending the positioning assistance information may include sending the physical layer message as a unicast message via a physical downlink shared channel. Sending the positioning assistance information may include sending the physical layer message as a group common message via a physical downlink control channel. Means for sending the positioning assistance information to the UE via a physical layer downlink channel in a physical layer message may include processor 710, possibly in combination with memory 730 and interface 720 (e.g., wireless transmitter 342).
[0129] Implementations of method 1000 may include one or more of the following features. In certain example implementations, method 1000 may include responding to receiving multiple positioning assistance requests from multiple requesting UEs by creating a physical layer message having multiple blocks, each block including grant information for granting a respective physical downlink shared channel to each of the multiple requesting UEs. For example, unit 750 may create a group common message having blocks of information, each block corresponding to a respective UE 600 from which the TRP 700 received the PR message 812. Means for responding to receiving multiple positioning assistance requests from multiple requesting UEs by creating a physical layer message having multiple blocks may include processor 710, possibly in combination with memory 730.
[0130] Other Considerations Other examples and implementations are within the scope of this disclosure and the appended claims. For example, due to the nature of software and computers, the functions described above may be implemented using software executed by a processor, hardware, firmware, hardwiring, or any combination thereof. The features that implement the functions may also be physically located in various locations, including being distributed such that portions of the functions are implemented in various physical locations.
[0131] As used herein, the singular forms "a," "an," and "the" include the plural forms unless the context clearly dictates otherwise. The terms "comprises," "comprising," "includes," and / or "comprising," as used herein, specify the presence of stated features, integers, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof.
[0132] As used herein, the term RS (Reference Signal) may refer to one or more reference signals and may refer to any form of the term RS, e.g., PRS, SRS, CSI-RS, etc., as appropriate.
[0133] As used herein, unless otherwise specified, a statement that a feature or action is "based on" an item or condition means that the feature or action is based on the stated item or condition, and may be based on one or more items and / or conditions in addition to the stated item or condition.
[0134] Also, as used herein, "or" in a list of items preceded by "at least one of" or "one or more of" indicates a disjunctive list, such that, for example, the list "at least one of A, B, or C" or the list "one or more of A, B, or C" means A, or B, or C, or AB (A and B), or AC (A and C), or BC (B and C), or ABC (i.e., A and B and C), or a combination of two or more elements (e.g., AA, AAB, ABBC, etc.). Thus, a statement that an item, e.g., a processor, is configured to perform a function related to at least one of A or B means that the item may be configured to perform a function related to A, or may be configured to perform a function related to B, or may be configured to perform a and B. For example, the phrase “a processor configured to measure at least one of A or B” means that the processor may be configured to measure A (and may or may not be configured to measure B), or may be configured to measure B (and may or may not be configured to measure A), or may be configured to measure A and measure B (and may be configured to select for measuring either A and / or B). Similarly, a recitation of a means for measuring at least one of A or B includes a means for measuring A (which may or may not be capable of measuring B), or a means for measuring B (which may or may not be configured to measure A), or a means for measuring A and B (which may be capable of selecting for measuring either A and / or B). As another example, a recitation that an item, e.g., a processor, is configured to perform at least one of performing function X or performing function Y means that the item may be configured to perform function X, or may be configured to perform function Y, or may be configured to perform function X and function Y.For example, the phrase "a processor configured to at least one of measuring X or measuring Y" means that the processor may be configured to measure X (and may or may not be configured to measure Y), or may be configured to measure Y (and may or may not be configured to measure X), or may be configured to measure X and measure Y (and may be configured to select between measuring either X or Y, or both).
[0135] Significant variations may be made according to particular requirements. For example, customized hardware might be used, and / or particular elements might be implemented in hardware, software executed by a processor (including portable software such as applets), or both. Additionally, connections to other computing devices, such as network input / output devices, may be utilized. Functional or other components shown in the figures and / or discussed herein as connected to or in communication with each other are communicatively coupled unless otherwise noted. That is, components may be connected directly or indirectly to enable communication therebetween.
[0136] The systems and devices described above are examples. Various configurations may omit, substitute, or add various procedures or components as appropriate. For example, features described with respect to some configurations can be combined in various other configurations. Different aspects and elements of the configurations can be similarly combined. Also, technology evolves, and thus many of the elements are examples and do not limit the scope of the disclosure or claims.
[0137] A wireless communication system is one in which communications are conveyed wirelessly, i.e., by electromagnetic and / or acoustic waves propagating through atmospheric space rather than through wires or other physical connections. A wireless communication network may not have all communications transmitted wirelessly, but is configured to have at least some communications transmitted wirelessly. Furthermore, the term "wireless communication device," or similar terms, does not require that the functionality of the device be exclusively, or equally primarily, for communication, or that the device be a mobile device, but indicates that the device includes wireless communication capabilities (unidirectional or bidirectional), e.g., at least one radio for wireless communication (each radio being part of a transmitter, receiver, or transceiver).
[0138] In the description, specific details are given to provide a thorough understanding of example configurations (including implementations). However, the configurations can be practiced without these specific details. For example, well-known circuits, processes, algorithms, structures, and techniques have been shown without unnecessary detail to avoid obscuring the configurations. This description provides only example configurations and does not limit the scope, applicability, or configuration of the claims. Rather, the foregoing description of the configurations provides a description for implementing the described techniques. Various changes may be made in the function and arrangement of elements.
[0139] As used herein, the terms "processor-readable medium," "machine-readable medium," and "computer-readable medium" refer to any medium that participates in providing data that causes a machine to operate in a specific fashion. With a computing platform, various processor-readable media may be involved in providing instructions / code to the processor for execution and / or be used for storing and / or carrying such instructions / code (e.g., signals). In many implementations, processor-readable media are physical and / or tangible storage media. Such media may take many forms, including, but not limited to, non-volatile media and volatile media. Non-volatile media include, for example, optical and / or magnetic disks. Volatile media include, but are not limited to, dynamic memory.
[0140] While several example configurations have been described, various modifications, alternative configurations, and equivalents may be used. For example, the above elements may be components of a larger system, in which other rules may take precedence over or otherwise modify the application of the invention. Also, some actions may occur before, during, or after the above elements are considered. Therefore, the above description does not limit the scope of the claims.
[0141] A statement that a value exceeds (or is greater than or exceeds) a first threshold is equivalent to a statement that the value meets or exceeds a second threshold that is slightly greater than the first threshold, e.g., the second threshold is a value that is higher than the first threshold at the resolution of the computing system. A statement that a value is less than (or is within or below) a first threshold is equivalent to a statement that the value is equal to or less than a second threshold that is slightly lower than the first threshold, e.g., the second threshold is a value that is lower than the first threshold at the resolution of the computing system. [Explanation of symbols]
[0142] 100 Communication system, system 105 UE 106 UE 110a NR Node B (gNB), BS, g Node B 110b NR Node B (gNB), BS, g Node B 114 Next Generation eNodeB (ng-eNB), BS, eNodeB 115 Access and Mobility Management Function (AMF) 117 Session Management Facility (SMF) 120 Location Management Function (LMF) 125 Gateway Mobile Location Center (GMLC) 130 external clients 135 Radio Access Network (RAN), Next Generation (NG) RAN (NG-RAN), Network 140 5G Core Network (5GC), Network, Core Network 185 Constellation 190 Satellite Vehicle (SV) 191 Satellite Vehicle (SV) 192 Satellite Vehicle (SV) 193 Satellite Vehicle (SV) 200, 200-1, 200-2 UE 210 processor 211 memory 212 Software (SW) 213 Sensor 214 Transceiver Interface 215 Transceiver 216 User Interface 217 Satellite Positioning System (SPS) Receiver 218 Camera 219 Position Device (PD) 220 Bus 230 General Purpose / Application Processors, Processors 231 Digital Signal Processor (DSP), Processor 232 modem processor, processor 233 Video Processor, Processor 234 Sensor Processor, Processor 240 Wireless Transceiver 242 Wireless Transmitter 244 Wireless Receiver 246 Antenna 250 Wired Transceiver 252 Wired Transmitter 254 Wired Receiver 262 SPS antenna, antenna 300 TRP 310 processor 311 memory 312 Software (SW) 315 Transceiver 320 Bus 340 Wireless Transceiver 342 Wireless Transmitter 344 Wireless Receiver 346 Antenna 350 Wired Transceiver 400 servers 410 processor 411 memory 412 Software (SW) 415 Transceiver 420 Bus 440 Wireless Transceiver 442 Wireless Transmitter 444 Wireless Receiver 446 Antenna 450 Wired Transceiver 452 Wired Transmitter 454 Wired Receiver 510 Positioning Search Request 520 Positioning Search Response 530 Ranging signal 540 response ranging signal 600 UE 610 processor 620 Interface 630 memory 640 Bus 650 positioning request transmission unit, unit 660 UE - device positioning implementation unit, unit 700 TRP 710 processor 720 Interface 730 memory 740 Bus 750 positioning search response judgment and sending unit, unit 800 Signaling and Process Flow, Flow 900 methods 1000 ways
Claims
1. A user equipment (UE), a transceiver configured to wirelessly send and receive communication signals to and from a network entity; Memory and a processor communicatively coupled to the transceiver and the memory, the processor comprising: sending, by the transceiver over a physical layer uplink channel to the network entity, a positioning assistance request, for the network entity to provide positioning assistance information indicating one or more parameters for a signal exchange of one or more positioning reference signals for UE-to-UE positioning between the UE and another UE; receiving, by the transceiver, the positioning assistance information from the network entity via a physical layer downlink channel; determining, based on the positioning assistance information, which physical resources of the UE to use for performing one or more UE-to-UE positioning functions, including determining at least one of a first measurement gap for transmitting a positioning signal to be transmitted for the UE-to-UE positioning or a second measurement gap for receiving an incoming positioning signal from the other UE; and performing the one or more UE-to-UE positioning functions according to the positioning assistance information.
2. The UE of claim 1 , wherein the positioning assistance request consists of a single bit.
3. The UE of claim 1 , wherein the positioning assistance request has a format of a scheduling request for the UE to request an uplink grant for transmission over a physical uplink shared channel.
4. 10. The UE of claim 1, wherein the processor is further configured to send one or more indications of positioning technique characteristics by the transceiver to the network entity via the physical layer uplink channel.
5. The one or more indications of positioning technique characteristics include: one or more reference signal types to be transmitted by the UE; or a positioning technique that the UE is configured to use to determine its location; or a signaling technique that the UE is configured to use to determine its location; or Measurement gap request, or Bandwidth, time windows, and resource requests, or the band or carrier to be used by the UE for position determination; or Location, or velocity, or trajectory, or a combination of two or more of the neighboring UEs The UE of claim 4, comprising one or a combination of two or more of:
6. The UE of claim 1 , wherein the processor is configured to send the positioning assistance request over a semi-persistent physical uplink shared channel.
7. The UE of claim 1 , wherein the processor is configured to send the positioning assistance request over a physical uplink control channel.
8. 8. The UE of claim 7, wherein the processor is further configured to send one or more indications of positioning technique characteristics to the network entity by the transceiver over a physical uplink shared channel.
9. The UE of claim 8 , wherein the physical uplink shared channel is a semi-persistent physical uplink shared channel.
10. 10. The UE of claim 1, wherein the processor is further configured to determine, based on the positioning assistance information, at least one of a type of positioning signal to transmit for the UE-to-UE positioning, a transmission power level for the positioning signal, or a positioning signal transmission duration.
11. A method for positioning a user equipment (UE), comprising: sending a positioning assistance request from the UE to a network entity over a physical layer uplink channel, wherein the network entity provides positioning assistance information indicating one or more parameters for signal exchange of one or more positioning reference signals for UE-to-UE positioning between the UE and another UE; receiving, at the UE, the positioning assistance information from the network entity via a physical layer downlink channel; determining, based on the positioning assistance information, which physical resources of the UE to use for performing one or more UE-to-UE positioning functions, including determining at least one of a first measurement gap for transmitting a positioning signal to be transmitted for the UE-to-UE positioning or a second measurement gap for receiving an incoming positioning signal from the other UE; and performing the one or more UE-to-UE positioning functions in the UE according to the positioning assistance information.
12. The method of claim 11 , wherein the positioning assistance request consists of a single bit.
13. The method of claim 11 , wherein the positioning assistance request has a format of a scheduling request for the UE to request an uplink grant for transmission over a physical uplink shared channel.
14. 1. A non-transitory processor-readable storage medium comprising processor-readable instructions, the processor-readable instructions causing a processor of a user equipment (UE) to: sending a positioning assistance request to a network entity via a physical layer uplink channel, wherein the network entity provides positioning assistance information indicating one or more parameters for signal exchange of one or more positioning reference signals for UE-to-UE positioning between the UE and another UE; receiving the positioning assistance information from the network entity via a physical layer downlink channel; determining, based on the positioning assistance information, which physical resources of the UE to use for performing one or more UE-to-UE positioning functions, including determining at least one of a first measurement gap for transmitting a positioning signal to be transmitted for the UE-to-UE positioning or a second measurement gap for receiving an incoming positioning signal from the other UE; and performing the one or more UE-to-UE positioning functions in accordance with the positioning assistance information.
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