Reconfigurable Intelligent Surface (RIS) Aided UE Passive RF Sensing
The Reconfigurable Intelligent Surface (RIS) aids in overcoming interference in RF sensing by redirecting RF signals for precise object location determination through time difference analysis.
Patent Information
- Application Number
- JP2023544105
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-01-28
- Filing Date
- 2021-12-21
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2041-12-21
AI Technical Summary
Existing RF sensing techniques in wireless communication networks face interference issues that prevent accurate reception of RF signals, hindering the determination of object location.
Utilizing a Reconfigurable Intelligent Surface (RIS) to redirect RF signals in a bistatic or multistatic radar configuration, determining object position by comparing the time of arrival of line-of-sight and echo signals reflected by the RIS.
Enhances the accuracy and reliability of RF sensing by overcoming interference, enabling precise location determination of objects using time difference analysis.
Smart Images

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Abstract
Description
[Technical Field]
[0001]
[0001] The present invention relates generally to the field of wireless communications, and more particularly to determining the location or position of an object using radio frequency (RF) signals using bistatic or multistatic radar techniques. [Background technology]
[0002] In wireless communication networks, RF sensing techniques may be used to determine the position of an object. Some of these positioning techniques may involve determining distance and / or angle information of RF signals transmitted by one or more base stations of the wireless communication network and received by one or more receiving devices. However, in some cases, interference may prevent reception of such RF signals by one or more receiving devices. Summary of the Invention
[0003]
[0003] Embodiments described herein provide for determining the location of an object using a Reconfigurable Intelligent Surface (RIS) to aid in RF sensing. More specifically, objects may be detected in a wireless data communications network using radar techniques in which one or more base stations act as transmitters and a receiving device acts as a receiver in a bistatic or multistatic radar configuration, where the RIS directs signals transmitted by one or more base stations to the receiving device. The object's position may be determined by comparing the time at which a line-of-sight (LOS) signal (redirected to the receiving device by the RIS) is received by the receiving device with the time of an echo signal (redirected to the receiving device by the RIS) from a reflection of the RF signal from the object. Depending on the desired functionality, this position may be determined by the receiving device or by a location server or other network entity.
[0004] An exemplary method for implementing radio frequency (RF) sensing using a receiving device and a reconfigurable intelligent surface (RIS) in a wireless communications system according to the present disclosure comprises configuring the RIS to reflect a line-of-sight (LOS) wireless signal toward the receiving device, where the LOS wireless signal may comprise a first wireless reference signal transmitted by a Transmission Reception Point (TRP) of the wireless communications system. The method also comprises configuring the RIS to reflect an echo signal toward the receiving device, where the echo signal may comprise a reflection, from an object, of a second wireless reference signal transmitted by the TRP of the wireless communications system. The method also comprises determining a position of the object based on a position of the RIS relative to the TRP and a time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device. The method also includes providing a location of the object.
[0005] An exemplary device according to the present disclosure includes a transceiver, a memory, and one or more processing units communicatively coupled to the transceiver and the memory. The one or more processing units are configured to configure a reconfigurable intelligent surface (RIS) to reflect a line-of-sight (LOS) wireless signal toward a receiving device, where the LOS wireless signal may comprise a first wireless reference signal transmitted by a transmit receive point (TRP) of the wireless communication system. The one or more processing units are also configured to configure the RIS to reflect an echo signal toward the receiving device, where the echo signal may comprise a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system. The one or more processing units are also configured to determine a position of the object based on a position of the RIS relative to the TRP and a time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device. The one or more processing units are also configured to provide the position of the object.
[0006] Another exemplary device according to the present disclosure comprises means for configuring a reconfigurable intelligent surface (RIS) to reflect a line-of-sight (LOS) wireless signal toward a receiving device, where the LOS wireless signal may comprise a first wireless reference signal transmitted by a transmit receive point (TRP) of a wireless communication system. The device also comprises means for configuring the RIS to reflect an echo signal toward the receiving device, where the echo signal may comprise a reflection, from an object, of a second wireless reference signal transmitted by the TRP of the wireless communication system. The device also comprises means for determining a position of the object based on a position of the RIS relative to the TRP and a time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device. The device also comprises means for providing the position of the object.
[0007] An exemplary non-transitory computer-readable medium according to the present disclosure stores instructions for performing radio frequency (RF) sensing using a receiving device and a reconfigurable intelligent surface (RIS) in a wireless communication system. The instructions include code for configuring the RIS to reflect a line-of-sight (LOS) wireless signal toward the receiving device, where the LOS wireless signal may comprise a first wireless reference signal transmitted by a transmit receive point (TRP) of the wireless communication system. The instructions also include code for configuring the RIS to reflect an echo signal toward the receiving device, where the echo signal may comprise a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system. The instructions also include code for determining a position of the object based on a position of the RIS relative to the TRP and a time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device. The instructions also include code for providing the position of the object.
[0008]
[0008] This Summary of the Invention is not intended to identify key or essential features of the claimed subject matter, nor is it intended to be used independently to determine the scope of the claimed subject matter. The subject matter should be understood by reference to the entire specification, any or all drawings, and appropriate portions of each claim of this disclosure. The above, along with other features and examples, are described in more detail below in the following specification, claims, and accompanying drawings. [Brief explanation of the drawings]
[0009] [Figure 1]
[0009] FIG. 1 is a diagram of a positioning system, according to one embodiment. [Figure 2]
[0010] 5G New Radio (NR) positioning system diagram illustrating one embodiment of a positioning system implemented within a 5G NR communication system (e.g., the positioning system of FIG. 1). [Figure 3]
[0011] Diagram showing beamforming in a 5G NR positioning system. [Figure 4A]
[0012] 1 is a simplified diagram illustrating how radio frequency (RF) sensing of a target can be performed using a reconfigurable intelligent surface (RIS), according to one embodiment. [Figure 4B] 1 is a simplified diagram illustrating how radio frequency (RF) sensing of a target can be performed using a reconfigurable intelligent surface (RIS), according to one embodiment. [Figure 5A]
[0013] Diagrams of a base station, target, and user equipment (UE) provided to illustrate how beams may be used differently in different embodiments and / or situations depending on desired functionality. [Figure 5B] Diagrams of a base station, target, and user equipment (UE) provided to illustrate how beams may be used differently in different embodiments and / or situations depending on desired functionality. [Figure 6]
[0014] FIG. 4B is a time-distance diagram illustrating how timing can be used to determine several mathematical values related to the configuration shown in FIG. 4A, according to one embodiment. [Figure 7] FIG. 4B is a time-distance diagram illustrating how timing can be used to determine several mathematical values related to the configuration shown in FIG. 4A, according to one embodiment. [Figure 8]
[0015] 1 is a call flow diagram of a process for performing target location determination using a RIS, according to some embodiments. [Figure 9] 1 is a call flow diagram of a process for performing target location determination using a RIS, according to some embodiments. [Figure 10]
[0016] 4A and 4B, showing how RF sensing of a target can be performed using a RIS, according to another embodiment. [Figure 11]
[0017] 1 is a flow diagram of a method for performing RF sensing, according to some embodiments. [Figure 12]
[0018] 1 is a block diagram of one embodiment of a receiving device that may be utilized in the embodiments described herein. [Figure 13]
[0019] FIG. 1 is a block diagram of one embodiment of a computer system that may be utilized in embodiments described herein. DETAILED DESCRIPTION OF THE INVENTION
[0010]
[0020] Like reference numerals in the various drawings indicate like elements according to some exemplary implementations. Furthermore, multiple instances of an element may be indicated by a first number for the element followed by a letter or a hyphen and a second number. For example, multiple instances of element 110 may be indicated as 110-1, 110-2, 110-3, etc., or as 110a, 110b, 110c, etc. When referring to such an element using only the first number, any instance of the element should be understood (e.g., element 110 in the previous example refers to elements 110-1, 110-2, and 110-3, or to elements 110a, 110b, and 110c).
[0011]
[0021] Several exemplary embodiments are now described with reference to the accompanying drawings, which form a part of this application. Although several embodiments in which one or more aspects of the present disclosure may be implemented are described below, other embodiments may be used, and various modifications may be made without departing from the scope of the present disclosure.
[0012]
[0022] The following description is directed to several implementations for purposes of illustrating the inventive aspects of various embodiments. However, those skilled in the art will readily recognize that the teachings herein can be applied in many different ways. The described implementations may be used to communicate within wireless, cellular, or Internet of Things (IoT) networks, such as systems utilizing 3G, 4G, 5G, 6G, or further implementations thereof, including any of the Institute of Electrical and Electronics Engineers (IEEE) IEEE 802.11 standards (including those identified as Wi-Fi technology), the Bluetooth standard, Code Division Multiple Access (CDMA), Frequency Division Multiple Access (FDMA), Time Division Multiple Access (TDMA), Global System for Mobile Communications (GSM), GSM / General Packet Radio Service (GPRS), Enhanced Data GSM Environment (EDGE), Terrestrial Based Radio (TETRA), Wideband CDMA (W-CDMA), Evolution Data Optimized (EV-DO), 1xEV-DO, EV-DO RevA, EV-DO 1xEV-DO ... It may be implemented in any device, system, or network capable of transmitting and receiving radio frequency (RF) signals according to any communications standard, such as RevB, High Rate Packet Data (HRPD), High Speed Packet Access (HSPA), High Speed Downlink Packet Access (HSDPA), High Speed Uplink Packet Access (HSUPA), Evolved High Speed Packet Access (HSPA+), Long Term Evolution (LTE), Advanced Mobile Phone System (AMPS), or other known signals.
[0013]
[0023] As used herein, an "RF signal" or "reference signal" comprises an electromagnetic wave that transports information through space between a transmitter (or transmitting device) and a receiver (or receiving device). As used herein, a transmitter may transmit a single "reference signal" or multiple "reference signals" to a receiver. However, that receiver (or different receivers) may receive multiple "reference signals" corresponding to each transmitted RF signal due to the propagation characteristics of RF signals through multipath channels. The same transmitted RF signal on different paths between the transmitter and receiver is sometimes referred to as a "multipath" RF signal.
[0014]
[0024] 1 is a simplified diagram of a positioning system 100 in which a user equipment (UE) 105, a location server 160, and / or other components of the positioning system 100 can use techniques provided herein to determine an estimated location of the UE 105 and further perform reconfigurable intelligent surface (RIS)-assisted UE passive RF sensing, according to one embodiment. However, it should be noted that the techniques described herein are not necessarily limited to the positioning system 100. The techniques described herein may be implemented by one or more components of the positioning system 100. The positioning system 100 may include a UE 105, one or more satellites 110 (also referred to as space vehicles (SVs)) for a global navigation satellite system (GNSS), such as Global Positioning System (GPS), GLONASS, Galileo, or Beidou, a base station 120, an access point (AP) 130, a location server 160, a network 170, and an external client 180. Generally speaking, the positioning system 100 can estimate the location of the UE 105 based on RF signals received by and / or transmitted from the UE 105 and the known locations of other components (e.g., GNSS satellites 110, base stations 120, APs 130) that transmit and / or receive the RF signals. Further details regarding specific location estimation techniques are described in more detail with respect to FIG. 2.
[0015]
[0025] It should be noted that FIG. 1 merely provides a generalized illustration of the various components, any or all of which may be utilized as appropriate, and each of which may be replicated as needed. In particular, while only one UE 105 is shown, it will be understood that many UEs (e.g., hundreds, thousands, millions, etc.) may utilize the positioning system 100. Similarly, the positioning system 100 may include a greater or lesser number of base stations 120 and / or APs 130 than shown in FIG. 1. The illustrated connections connecting the various components in the positioning system 100 comprise data and signaling connections that may include additional (intermediate) 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. In some embodiments, for example, the external client 180 may be directly connected to the location server 160. Those skilled in the art will recognize numerous modifications to the illustrated components.
[0016]
[0026] Depending on the desired functionality, network 170 may comprise any of a variety of wireless and / or wireline networks. Network 170 may comprise, for example, any combination of public and / or private networks, local and / or wide area networks, etc. Furthermore, network 170 may utilize one or more wired and / or wireless communication technologies. In some embodiments, network 170 may comprise, for example, a cellular or other mobile network, a wireless local area network (WLAN), a wireless wide area network (WWAN), and / or the Internet. Examples of network 170 include a Long Term Evolution (LTE) wireless network, a 5G wireless network (also referred to as a New Radio (NR) wireless network or a 5th Generation (5G) NR wireless network), a Wi-Fi WLAN, and the Internet. LTE, 5G, and NR are wireless technologies defined or being defined by the 3rd Generation Partnership Project (3GPP). Network 170 may also include two or more networks and / or two or more types of networks.
[0017]
[0027] The base stations 120 and access points (APs) 130 may be communicatively coupled to the network 170. In some embodiments, the base stations 120 may be owned, maintained, and / or operated by a cellular network provider and may employ any of a variety of wireless technologies, as described herein below. Depending on the technology of the network 170, the base stations 120 may comprise Node Bs, evolved Node Bs (eNode Bs or eNBs), base transceiver stations (BTSs), radio base stations (RBSs), NR Node Bs (gNBs), next-generation eNBs (ng-eNBs), etc. A base station 120 that is a gNB or ng-eNB may be part of a next-generation radio access network (NG-RAN) that may connect to a 5G core network (5GC) if the network 170 is a 5G network. The APs 130 may comprise, for example, a Wi-Fi AP or a Bluetooth AP or an AP with cellular capabilities (e.g., 4G LTE and / or 5G NR). Thus, the UE 105 can send and receive information to and from network-connected devices, such as the location server 160, by accessing the network 170 via the base station 120 using the first communication link 133. Additionally or alternatively, the UE 105 may communicate with network-connected and internet-connected devices, including the location server 160, using the second communication link 135 or via one or more other UEs 145, as the AP 130 may also be communicatively coupled to the network 170.
[0018]
[0028] The term “base station” as used herein may generally refer to a single physical transmission point or multiple co-located physical transmission points that may be located at a base station 120. A transmit receive point (TRP) (also known as a transmit / receive point) corresponds to this type of transmission point, and the term “TRP” may be used interchangeably with the terms “gNB,” “ng-eNB,” and “base station” herein. In some cases, a base station 120 may comprise multiple TRPs, e.g., each TRP associated with a different antenna or a different antenna array for the base station 120. A physical transmission point may comprise an array of antennas at the base station 120 (e.g., as in a multiple-input multiple-output (MIMO) system and / or when the base station employs beamforming). The term “base station” may further refer to multiple non-co-located physical transmission points, which may be a distributed antenna system (DAS) (a network of spatially separated antennas connected to a common source via a transport medium) or a remote radio head (RRH) (a remote base station connected to a serving base station).
[0019]
[0029] The term "cell," as used herein, may generally refer to a logical communication entity used for communication with base station 120 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), etc.) that may provide access to different types of devices. In some cases, the term "cell" may refer to a portion (e.g., a sector) of a geographic coverage area in which the logical entity operates.
[0020]
[0030] The location server 160 may comprise a server and / or other computing device configured to determine an estimated location of the UE 105 and / or provide data (e.g., “assistance data”) to the UE 105 to facilitate location measurements and / or location determination by the UE 105. According to some embodiments, the location server 160 may comprise a Home SUPL Location Platform (H-SLP), which may support the Secure User Plane Location (SUPL) user plane (UP) location solution defined by the Open Mobile Alliance (OMA) and may support location services for the UE 105 based on subscription information for the UE 105 stored in the location server 160. In some embodiments, the location server 160 may comprise a Discovery SLP (D-SLP) or an Emergency SLP (E-SLP). The location server 160 may also comprise an Enhanced Serving Mobile Location Center (E-SMLC), which supports the location of the UE 105 using a Control Plane (CP) location solution for LTE radio access by the UE 105. The location server 160 may further comprise a location management function (LMF) that supports the location of the UE 105 using a control plane (CP) location solution for NR or LTE radio access by the UE 105.
[0021]
[0031] In a CP location solution, signaling for controlling and managing the location of the UE 105 may be exchanged between elements of the network 170 and with the UE 105 using existing network interfaces and protocols, and as signaling from the perspective of the network 170. In a UP location solution, signaling for controlling and managing the location of the UE 105 may be exchanged between the location server 160 and the UE 105 as data from the perspective of the network 170 (e.g., data transported using Internet Protocol (IP) and / or Transmission Control Protocol (TCP)).
[0022]
[0032] As mentioned above (and described in more detail below), the estimated location of the UE 105 may be based on measurements of RF signals sent from and / or received by the UE 105. In particular, these measurements may provide information regarding the relative distance and / or angle of the UE 105 from one or more components (e.g., GNSS satellites 110, AP 130, base station 120) in the positioning system 100. The estimated location of the UE 105 may be estimated geometrically (e.g., using multiangulation and / or multilateration) based on the distance and / or angle measurements along with the known positions of the one or more components.
[0023]
[0033] Terrestrial components, such as the AP 130 and base station 120, may be fixed, although embodiments are not so limited. Mobile components may be used. For example, in some embodiments, the location of the UE 105 may be estimated based at least in part on measurements of RF signals 140 communicated between the UE 105 and one or more other UEs 145, which may be mobile or fixed. When one or more other UEs 145 are used in determining the position of a particular UE 105, the UE 105 whose position is to be determined may be referred to as a “target UE,” and each of the one or more other UEs 145 used may be referred to as an “anchor UE.” For purposes of determining the position of the target UE, the respective positions of the one or more anchor UEs may be known and / or may be determined together with the target UE. Direct communication between the one or more other UEs 145 and the UE 105 may comprise sidelink and / or similar device-to-device (D2D) communication technologies. Sidelink, as defined by 3GPP, is a form of D2D communication under the cellular-based LTE and NR standards.
[0024]
[0034] The estimated location of the UE 105 may be used in various applications, such as to assist direction finding or navigation for a user of the UE 105 or to assist another user (e.g., associated with the external client 180) in determining the location of the UE 105. As used herein, “location” may also be referred to as a “location estimate,” “estimated location,” “location,” “position,” “position estimate,” “position fix,” “estimated position,” “location fix,” or “fix.” The process of determining a location may be referred to as a “positioning,” “position determination,” “location determination,” or the like. The location of the UE 105 may comprise the absolute location of the UE 105 (e.g., latitude and longitude and possibly altitude) or the relative location of the UE 105 (e.g., a location expressed as a distance north or south, east or west, and possibly above or below some other known fixed location (e.g., including the location of a base station 120 or AP 130), or some other location, such as a location for the UE 105 at some known prior time or the location of another UE 145 at some known prior time). A location may be specified as a geodetic location comprising coordinates that may be absolute (e.g., latitude, longitude, and possibly altitude), relative (e.g., relative to some known absolute location), or local (e.g., X, Y, and possibly Z coordinates according to a coordinate system defined for a local area such as a factory, warehouse, university campus, shopping mall, sports stadium, or convention center). The location may instead be a civic location, in which case it may comprise one or more of a street address (e.g., including a country, state, county, city, name or label for a road and / or street, and / or road or street number), and / or a label or name for a place, building, part of a building, floor of a building, and / or room within a building, etc.The location may further include an indication of uncertainty or error, such as the horizontal and possibly vertical distance by which the location is expected to be incorrect, or an indication of an area or volume (e.g., a circle or ellipse) in which the UE 105 is expected to be located with some level of confidence (e.g., 95% confidence).
[0025]
[0035] The external client 180 may be a web server or remote application that may have some association with the UE 105 (e.g., that may be accessed by a user of the UE 105), or may be a server, application, or computer system that provides location services to some other user or users that may include obtaining and providing the location of the UE 105 (e.g., to enable services such as a friend or relative finder, asset tracking, or child or pet location). Additionally or alternatively, the external client 180 may obtain the location of the UE 105 and provide it to an emergency service provider, a government agency, or the like.
[0026]
[0036] As mentioned above, the exemplary positioning system 100 can be implemented using a wireless communication network, such as an LTE-based or 5G NR-based network. 5G NR is a wireless RF interface undergoing standardization by the Third Generation Partnership Project (3GPP). 5G NR is poised to provide enhanced capabilities over previous generation (LTE) technology, such as significantly faster and more responsive mobile broadband and enhanced connectivity through Internet of Things (IoT) devices. Additionally, 5G NR enables new positioning techniques for UEs, including angle-of-arrival (AoA) / angle-of-departure (AoD) positioning, UE-based positioning, and multi-cell round-trip signal propagation time (RTT) positioning. With regard to RTT positioning, this involves making RTT measurements between the UE and multiple base stations.
[0027]
[0037] 2 shows a diagram of a 5G NR positioning system 200 illustrating one embodiment of a positioning system (e.g., positioning system 100) implementing 5G NR. The 5G NR positioning system 200 may be configured to determine the location of the UE 105 by using access nodes, which may include NR Node Bs (gNBs) 210-1 and 210-2 (collectively and generically referred to herein as gNBs 210), an ng-eNB 214, and / or a WLAN 216, for implementing one or more positioning methods. The gNBs 210 and / or ng-eNBs 214 may correspond to the base stations 120 of FIG. 1, and the WLANs 216 may correspond to one or more access points 130 of FIG. 1. Optionally, the 5G NR positioning system 200 may additionally be configured to determine the location of the UE 105 by using an LMF 220 (which may correspond to location server 160) for implementing one or more positioning methods. Here, the 5G NR positioning system 200 comprises the UE 105 and components of a 5G NR network, including a Next Generation (NG) Radio Access Network (RAN) (NG-RAN) 235 and a 5G Core Network (5G CN) 240. The 5G network may also be referred to as an NR network, the NG-RAN 235 may also be referred to as a 5G RAN or an NR RAN, and the 5G CN 240 may also be referred to as an NG Core Network. The 5G NR positioning system 200 may further utilize information from GNSS satellites 110 from a GNSS system such as a Global Positioning System (GPS) or similar system (e.g., GLONASS, Galileo, Beidou, Indian Regional Navigation Satellite System (IRNSS)). Additional components of the 5G NR positioning system 200 are described below. The 5G NR positioning system 200 may include additional or alternative components.
[0028]
[0038] 2 provides only a generalized illustration of the various components, any or all of which may be utilized as appropriate, and each of which may be duplicated or omitted as necessary. In particular, while only one UE 105 is shown, it will be understood that many UEs (e.g., hundreds, thousands, millions, etc.) may utilize the 5G NR positioning system 200. Similarly, the 5G NR positioning system 200 may include a greater (or lesser) number of GNSS satellites 110, gNBs 210, ng-eNBs 214, wireless local area networks (WLANs) 216, access and mobility management functions (AMFs) 215, external clients 230, and / or other components. The illustrated connections connecting the various components in the 5G NR positioning system 200 include data and signaling connections, which may include additional (intermediate) components, direct or indirect physical and / or wireless connections, and / or additional networks. Additionally, components may be rearranged, combined, separated, substituted, and / or omitted depending on the desired functionality.
[0029]
[0039] The UE 105 may comprise 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. Moreover, the UE 105 may correspond to a cell phone, a smartphone, a laptop, a tablet, a personal digital assistant (PDA), a tracking device, a navigation device, an Internet of Things (IoT) device, or some other portable or movable device. Typically, although not necessarily, the UE 105 may support wireless communications using one or more radio access technologies (RATs), such as using GSM, CDMA, W-CDMA, LTE, High Rate Packet Data (HRPD), IEEE 802.11 Wi-Fi, Bluetooth, Worldwide Interoperability for Microwave Access (WiMAX), 5G NR (e.g., using NG-RAN 235 and 5G CN240), etc. The UE 105 may also support wireless communications using a WLAN 216, which may connect to other networks such as the Internet (as with one or more RATs and as described above with respect to FIG. 1). Use of one or more of these RATs may enable the UE 105 to communicate with and / or receive location information regarding the UE 105 (e.g., via elements of the 5G CN 240 not shown in FIG. 2 or possibly via a Gateway Mobile Location Center (GMLC) 225) external clients 230. The external clients 230 of FIG. 2 may correspond to the external clients 180 of FIG. 1 implemented in or communicatively coupled to a 5G NR network.
[0030]
[0040] The UE 105 may comprise a single entity, or may include multiple entities, such as in a personal area network where a user may employ audio, video, and / or data I / O devices, and / or body sensors and a separate wireline or wireless modem. An estimate of the location of the UE 105 may be referred to as a location, location estimate, location fix, fix, position, position estimate, or position fix, and may be geodetic and thus provide location coordinates (e.g., latitude and longitude) for the UE 105 that may or may not include an altitude component (e.g., height above sea level, height above or below ground level, floor level or basement level). Alternatively, the location of the UE 105 may be expressed as a civic location (e.g., as a postal address or as a designation of some point or small area in a building, such as a particular room or floor). The location of the UE 105 may also be expressed as an area or volume (defined either geodetically or in urban form) within which the UE 105 is expected to be located with a certain probability or confidence level (e.g., 67%, 95%, etc.). The location of the UE 105 may further be a relative location comprising distance and direction or relative X, Y (and Z) coordinates defined relative to some origin in a known location, which may be defined, for example, geodetically, with respect to a city, 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 comprise any of these variations unless otherwise specified. When calculating the location of a UE, it is common to determine the values of the local X, Y, and possibly Z coordinates and then, if necessary, convert the local coordinates to absolute coordinates (e.g., for latitude, longitude, and altitude above or below mean sea level).
[0031]
[0041] The base stations in the NG-RAN 235 shown in FIG. 2 may correspond to the base stations 120 in FIG. 1 and may include gNBs 210. Pairs of gNBs 210 in the NG-RAN 235 may be connected to each other (e.g., directly as shown in FIG. 2 or indirectly via other gNBs 210). The communication interface between the base stations (gNBs 210 and / or ng-eNBs 214) may be referred to as the Xn interface 237. 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 210, which may provide wireless communication access to the 5G CN 240 for the UE 105 using 5G NR. The wireless interface between the base stations (gNBs 210 and / or ng-eNBs 214) and the UE 105 may be referred to as the Uu interface 239. 5G NR radio access may also be referred to as NR radio access or 5G radio access. In Figure 2, the serving gNB for UE 105 is assumed to be gNB 210-1, but other gNBs (e.g., gNB 210-2) may act as serving gNBs if UE 105 moves to another location, or may act as secondary gNBs to provide additional throughput and bandwidth to UE 105.
[0032]
[0042] The base stations in the NG-RAN 235 shown in FIG. 2 may also or instead include next-generation evolved node Bs 214, also referred to as ng-eNBs. The ng-eNBs 214 may be connected to one or more gNBs 210 in the NG-RAN 235, e.g., directly or indirectly via other gNBs 210 and / or other ng-eNBs. The ng-eNBs 214 may provide LTE wireless access and / or evolved LTE (eLTE) wireless access to the UE 105. Some gNBs 210 (e.g., gNB 210-2) and / or ng-eNBs 214 in FIG. 2 may be configured to function as positioning-only beacons, which may transmit signals (e.g., positioning reference signals (PRS)) and / or broadcast assistance data to assist in positioning the UE 105, but may not receive signals from the UE 105 or other UEs. Some gNBs 210 (e.g., gNB 210-2 and / or another gNB not shown) and / or ng-eNB 214 may be configured to function as detection-only nodes, which may scan for signals containing, for example, PRS data, assistance data, or other location data. Such detection-only nodes may not transmit signals or data to UEs, but may transmit signals or data (e.g., related to PRS, assistance data, or other location data) to other network entities (e.g., one or more components of 5G CN 240, external client 230, or a controller), which may receive, store, or use the data for positioning of at least UE 105. Note that while only one ng-eNB 214 is shown in FIG. 2, some embodiments may include multiple ng-eNBs 214. Base stations (e.g., gNBs 210 and / or ng-eNBs 214) may communicate directly with each other via an Xn communication interface. Additionally or alternatively, the base station may communicate directly or indirectly with other components of the 5G NR positioning system 200, such as the LMF 220 and the AMF 215.
[0033]
[0043] The 5G NR positioning system 200 may also include one or more WLANs 216 that may connect to a non-3GPP interworking function (N3IWF) 250 in the 5G CN 240 (e.g., in the case of an untrusted WLAN 216). For example, the WLAN 216 may support IEEE 802.11 Wi-Fi access for the UE 105 and may comprise one or more Wi-Fi APs (e.g., AP 130 of FIG. 1). Here, the N3IWF 250 may connect to other elements in the 5G CN 240, such as the AMF 215. In some embodiments, the WLAN 216 may support another RAT, such as Bluetooth. The N3IWF 250 may provide support for secure access by the UE 105 to other elements in the 5G CN 240 and / or support interworking of one or more protocols used by the WLAN 216 and the UE 105 to one or more protocols used by other elements of the 5G CN 240, such as the AMF 215. For example, the N3IWF 250 may support IPSec tunnel establishment with the UE 105, termination of the IKEv2 / IPSec protocol with the UE 105, termination of the N2 and N3 interfaces to the 5G CN 240 for the control plane and user plane, respectively, and relay of uplink (UL) and downlink (DL) control plane Non-Access Stratum (NAS) signaling between the UE 105 and the AMF 215 across the N1 interface. In some other embodiments, the WLAN 216 may connect directly to an element in the 5G CN 240 (e.g., the AMF 215 as shown by the dashed line in FIG. 2 ) without going through the N3IWF 250. For example, direct connection of the WLAN 216 to the 5G CN 240 may occur when the WLAN 216 is a trusted WLAN for the 5G CN 240 and may be enabled using a Trusted WLAN Interworking Function (TWIF) (not shown in FIG. 2 ), which may be an element within the WLAN 216. It should be noted that although only one WLAN 216 is shown in FIG. 2, some embodiments may include multiple WLANs 216.
[0034]
[0044] An access node may comprise any of a variety of network entities that enable communication between the UE 105 and the AMF 215. This may include a gNB 210, an ng-eNB 214, a WLAN 216, and / or other types of cellular base stations. However, an access node providing the functionality described herein may additionally or alternatively include entities that enable communication to any of a variety of RATs not shown in FIG. 2, which may include non-cellular technologies. Thus, the term “access node,” as used in the embodiments described herein below, may include, but is not necessarily limited to, a gNB 210, an ng-eNB 214, or a WLAN 216.
[0035]
[0045] In some embodiments, an access node such as gNB210, ng-eNB214, and / or WLAN216 (alone or in combination with other components of 5G NR positioning system 200) may be configured to obtain location measurements of uplink (UL) signals (received from UE105) in response to receiving a request for location information from LMF220, and / or obtain downlink (DL) location measurements from UE105 obtained by UE105 for DL signals received by UE105 from one or more access nodes. As mentioned, FIG. 2 illustrates access nodes (gNB 210, ng-eNB 214, and WLAN 216) configured to communicate according to 5G NR, LTE, and Wi-Fi communication protocols, respectively, but access nodes configured to communicate according to other communication protocols may be used, such as, for example, a Node B using a Wideband Code Division Multiple Access (WCDMA) protocol for a Universal Mobile Telecommunications Service (UMTS) Terrestrial Radio Access Network (UTRAN), an eNB using an LTE protocol for an Evolved UTRAN (E-UTRAN), or Bluetooth Beacon using a Bluetooth protocol for a WLAN. For example, in a 4G Evolved Packet System (EPS) providing LTE wireless access to the UE 105, the RAN may comprise an E-UTRAN, which may comprise a base station with an eNB supporting LTE wireless access. The core network for the EPS may comprise an Evolved Packet Core (EPC). The EPS may then comprise an E-UTRAN+EPC, where E-UTRAN corresponds to the NG-RAN 235 and EPC corresponds to the 5G CN 240 in FIG. 2. The methods and techniques described herein for obtaining an urban location for a UE 105 may be applicable to such other networks.
[0036]
[0046] The gNB 210 and ng-eNB 214 may communicate with the AMF 215, which communicates with the LMF 220, for positioning functions. The AMF 215 may support mobility of the UE 105, including cell changes and handovers of the UE 105 from an access node of a first RAT (e.g., the gNB 210, the ng-eNB 214, or the WLAN 216) to an access node of a second RAT. The AMF 215 may also participate in supporting signaling connections to the UE 105 and possibly data and voice bearers for the UE 105. The LMF 220 may support positioning of the UE 105 using a CP location solution when the UE 105 accesses the NG-RAN 235 or the WLAN 216, and may support location procedures and methods, including UE-assisted / UE-based and / or network-based procedures / methods, such as Aided GNSS (A-GNSS), Observed Time Difference of Arrival (OTDOA) (sometimes called Time Difference of Arrival (TDOA) in NR), Real Time Kinematic (RTK), Precise Point Positioning (PPP), Differential GNSS (DGNSS), Enhanced Cell ID (ECID), Angle of Arrival (AoA), Angle of Departure (AoD), WLAN positioning, Round Trip Signal Propagation Delay (RTT), Multi-cell RTT, and / or other positioning procedures and methods. The LMF 220 may also process location service requests for the UE 105, for example, received from the AMF 215 or the GMLC 225. The LMF 220 may be connected to the AMF 215 and / or the GMLC 225. In some embodiments, a network such as 5G CN240 may additionally or alternatively implement other types of location support modules, such as an Evolved Serving Mobile Location Center (E-SMLC) or a SUPL Location Platform (SLP).It should be noted that in some embodiments, at least a portion of the positioning functionality (including determining the location of the UE 105) may be performed at the UE 105 (e.g., by measuring downlink PRS (DL-PRS) signals transmitted by wireless nodes such as the gNB 210, the ng-eNB 214 and / or the WLAN 216, and / or using assistance data provided to the UE 105 by, for example, the LMF 220).
[0037]
[0047] The gateway mobile location center (GMLC) 225 may support location requests for the UE 105 received from the external client 230 and may forward such location requests to the AMF 215 for forwarding by the AMF 215 to the LMF 220. A location response from the LMF 220 (e.g., including a location estimate for the UE 105) may similarly be returned to the GMLC 225 either directly or via the AMF 215, which may then return the location response (e.g., including the location estimate) to the external client 230.
[0038]
[0048] A network exposure function (NEF) 245 may be included in the 5G CN 240. The NEF 245 may support secure exposure of capabilities and events related to the 5G CN 240 and the UE 105 to the external client 230, which may then be referred to as an access function (AF), and may enable secure provision of information from the external client 230 to the 5G CN 240. The NEF 245 may be connected to the AMF 215 and / or the GMLC 225 for the purposes of obtaining the location (e.g., civic location) of the UE 105 and providing the location to the external client 230.
[0039]
[0049] As further shown in Figure 2, the LMF 220 may communicate with the gNB 210 and / or the ng-eNB 214 using the NR Positioning Protocol Annex (NRPPa) defined in 3GPP Technical Specification (TS) 38.455. NRPPa messages may be transferred between the gNB 210 and the LMF 220 and / or between the ng-eNB 214 and the LMF 220 via the AMF 215. As further shown in Figure 2, the LMF 220 and the UE 105 may communicate using the LTE Positioning Protocol (LPP) defined in 3GPP TS 37.355. Here, LPP messages may be transferred between the UE 105 and the LMF 220 via the AMF 215 and the serving gNB 210-1 or serving ng-eNB 214 for the UE 105. For example, LPP messages may be transferred between the LMF 220 and the AMF 215 using messages for service-based operations (e.g., based on Hypertext Transfer Protocol (HTTP)) and between the AMF 215 and the UE 105 using the 5G NAS protocol. The LPP protocol may be used to support positioning of the UE 105 using UE-assisted and / or UE-based location methods such as A-GNSS, RTK, TDOA, multi-cell RTT, AoD, and / or ECID. The NRPPa protocol may be used to support positioning of the UE 105 using network-based location methods such as ECID, AoA, uplink TDOA (UL-TDOA), and / or may be used by the LMF 220 to obtain location-related information from the gNB 210 and / or ng-eNB 214, such as parameters defining DL-PRS transmissions from the gNB 210 and / or ng-eNB 214.
[0040]
[0050] In the case of UE 105 access to WLAN 216, LMF 220 may use NRPPa and / or LPP to obtain the location of UE 105 in a manner similar to that just described for UE 105 access to gNB 210 or ng-eNB 214. Accordingly, NRPPa messages may be forwarded between WLAN 216 and LMF 220 via AMF 215 and N3IWF 250 to support network-based positioning of UE 105 and / or forwarding of other location information from WLAN 216 to LMF 220. Alternatively, NRPPa messages may be forwarded between N3IWF 250 and LMF 220 via AMF 215 to support network-based positioning of UE 105 based on location-related information and / or location measurements known to or accessible to N3IWF 250 and forwarded from N3IWF 250 to LMF 220 using NRPPa. Similarly, LPP and / or LPP messages may be transferred between the UE 105 and the LMF 220 via the AMF 215, the N3IWF 250, and the serving WLAN 216 for the UE 105 to support UE-assisted or UE-based positioning of the UE 105 by the LMF 220.
[0041]
[0051] In a 5G NR positioning system 200, positioning methods may be categorized as being “UE-assisted” or “UE-based.” This may depend on where the request to determine the position of the UE 105 originates. For example, if the request originates in the UE (e.g., from an application, or “app,” executed by the UE), the positioning method may be categorized as being UE-based. On the other hand, if the request originates from an external client or the AF 230, the LMF 220, or other device or service within the 5G network, the positioning method may be categorized as being UE-assisted (or “network-based”).
[0042]
[0052] In a UE-assisted location method, the UE 105 may obtain location measurements and send the measurements to a location server (e.g., the LMF 220) for calculation of a location estimate for the UE 105. In a RAT-dependent location method, the location measurements may include one or more of a received signal strength indicator (RSSI), round-trip signal propagation time (RTT), reference signal received power (RSRP), reference signal received quality (RSRQ), reference signal time difference (RSTD), time of arrival (TOA), AoA, received time-to-transmit time difference (Rx-Tx), differential AoA (DAoA), AoD, or timing advance (TA) for one or more access points for the gNB 210, the ng-eNB 214, and / or the WLAN 216. Additionally or alternatively, similar measurements of sidelink signals transmitted by other UEs that may serve as anchor points for positioning of the UE 105 may be made if the locations of the other UEs are known. The location measurements may also or alternatively include measurements for RAT-independent positioning methods such as GNSS (e.g., GNSS pseudorange, GNSS code phase, and / or GNSS carrier phase for GNSS satellites 110), WLAN, etc.
[0043]
[0053] In a UE-based location method, the UE 105 may obtain location measurements (which may, for example, be the same as or similar to location measurements for a UE-assisted location method) and may further calculate the location of the UE 105 (e.g., with the help of assistance data received from a location server such as the LMF 220, SLP, or broadcast by the gNB 210, ng-eNB 214, or WLAN 216).
[0044]
[0054] In a network-based location method, one or more base stations (e.g., gNB210 and / or ng-eNB214), one or more APs (e.g., in WLAN216), or N3IWF250 may obtain location measurements (e.g., RSSI, RTT, RSRP, RSRQ, AoA, or TOA measurements) for signals transmitted by UE105 and / or may receive measurements obtained by UE105 or, in the case of N3IWF250, by APs in WLAN216, and may send those measurements to a location server (e.g., LMF220) for calculation of a location estimate for UE105.
[0045]
[0055] Positioning of the UE 105 may also be categorized as UL, DL, or DL-UL based depending on the type of signal used for positioning. For example, if the positioning is based solely on signals received at the UE 105 (e.g., from a base station or other UE), the positioning may be categorized as DL-based. On the other hand, if the positioning is based solely on signals transmitted by the UE 105 (e.g., which may be received by a base station or other UE), the positioning may be categorized as UL-based. Positioning that is DL-UL based includes positioning that is based on signals both transmitted and received by the UE 105, such as RTT-based positioning. Sidelink (SL)-assisted positioning comprises signals communicated between the UE 105 and one or more other UEs. According to some embodiments, the UL, DL, or DL-UL positioning described herein may be capable of using SL signaling as a supplement or replacement for SL, DL, or DL-UL signaling.
[0046]
[0056] Depending on the type of positioning (e.g., UL, DL, or DL-UL based), the type of reference signal used may vary. For example, in DL-based positioning, these signals may comprise PRS (e.g., DL-PRS transmitted by a base station or SL-PRS transmitted by another UE) that may be used for TDOA, AoD, and RTT measurements. Other reference signals that may be used for positioning (UL, DL, or DL-UL) may include sounding reference signals (SRS), channel state information reference signals (CSI-RS), synchronization signals (e.g., synchronization signal block (SSB) synchronization signals (SS)), physical uplink control channel (PUCCH), physical uplink shared channel (PUSCH), physical sidelink shared channel (PSSCH), demodulation reference signals (DMRS), etc. Moreover, reference signals may be transmitted in the Tx beam and / or received in the Rx beam (e.g., using beamforming techniques), which may affect angle measurements such as AoD and / or AoA.
[0047]
[0057] 3 illustrates a simplified environment 300 including two base stations 120-1 and 120-2 (which may correspond to base station 120 of FIG. 1 and / or gNB 210 and / or ng-eNB 214 of FIG. 2) that create directional beams for transmitting RF reference signals, and a UE 105. Each of the directional beams is rotated, for example, by 120 degrees or 360 degrees for each beam sweep, which may be repeated periodically. Each directional beam may include an RF reference signal (e.g., PRS resource), where base station 120-1 produces a set of RF reference signals including Tx beams 305-a, 305-b, 305-c, 305-d, 305-e, 305-f, 305-g, and 305-h, and base station 120-2 produces a set of RF reference signals including Tx beams 309-a, 309-b, 309-c, 309-d, 309-e, 309-f, 309-g, and 309-h. Because UE 105 may also include an antenna array, UE 105 can receive RF reference signals transmitted by base stations 120-1 and 120-2 using beamforming to form respective receive beams (Rx beams) 311-a and 311-b. Beamforming (by the base station 120 and optionally by the UE 105) may be used in this manner to make communications more efficient. Beamforming may also be used for other purposes, such as transmitting reference signals for RF detection of objects. (Objects detected using the radar techniques described herein are also referred to herein as "targets.")
[0058] The Tx beams 305 and 309 may be particularly useful for facilitating efficient communications between the base station 120 and the UE 105. Also, as mentioned, the Tx beams may be used to perform angle measurements (e.g., AoD measurements) for positioning the UE 105. The Tx beams 305 and 309 may further be used to perform RF sensing of a target by the UE 105, where an RF signal may be directed toward the target via one or more beams, and one or more echo signals resulting from the RF signal reflecting from the target are detected by the UE 105. Based on the one or more echo signals detected by the UE, information about the target (e.g., location, object type, etc.) may be determined. More generally, this process may be used to perform RF sensing to detect one or more targets near the UE 105. Furthermore, such RF sensing may be performed using or without the Tx beams 305 and 309.
[0048]
[0059] This type of RF sensing may be limited in the presence of one or more objects that can cause interference in the RF channel between the base station 120 and the UE 105. That is, RF sensing may be difficult to perform in situations where one or more interferences limit the RF signal from traveling between the base station 120 and the UE 105 and / or between the target and the UE 105. The embodiments described herein address these and other issues by leveraging a RIS to redirect the RF signal, allowing RF sensing to occur even in the presence of one or more interferences. Figures 4A and 4B and the following discussion provide further details on how this may be done.
[0049]
[0060] 4A is a simplified diagram illustrating how RF sensing may be used to determine the location of a target 410, according to one embodiment. Here, RF sensing may be performed using a bistatic radar configuration in which a base station 120 (which may comprise a serving base station for the UE 105) performs the functions of a radar transmitter and the UE 105 performs the functions of a radar receiver. However, in instances where there is interference 415-1 interfering with a signal path 420-1 from the base station 120 to the UE 105 and / or interference 415-2 interfering with a signal path 420-2 from the target 410 to the UE 105, RF sensing may be difficult or impossible, in some cases, without the use of a RIS 425.
[0050]
[0061] RISs (which may also be called software-controlled metasurfaces, intelligent reflective surfaces, or reconfigurable reflective arrays / metasurfaces) have recently gained attention in wireless communications applications as a means to enable propagation paths for RF signals around obstructions. While the RIS 425 can be a passive device, the RIS 425 may comprise an array and thus redirect RF signals using beamforming. Thus, the RIS 425 can enable the wireless coverage of the base station 120 (or, more broadly, the wireless network of the base station 120) to be extended into areas that might otherwise be unreachable. The RIS 425 can do this using software-controlled reflection / scattering profiles to redirect wireless signals toward the UE 105 in real time. Additionally or alternatively, the RIS 425 can act as a repeater by receiving signals transmitted by the base station 120 and directing them toward the UE 105. (As used herein, the terms "directing," "redirecting," "reflecting," and similar terms used when referring to the functionality of the RIS 425 may refer to the reflecting and / or repeating functionality of the RIS.) The functionality of the RIS 425 may be controlled by the base station 120 using a control channel. This adds a controllable path to the channel between the base station 120 and the UE 105, which is useful in environments with severe interference 415. With respect to RF sensing, the RIS 425 may have a much higher array gain than the UE 105 and may therefore improve the RF signal sensitivity of the UE 105 by redirecting signals toward the UE 105. This functionality may be particularly useful in RF sensing.
[0051]
[0062] According to embodiments herein, RF sensing may be performed using the RIS 425 to redirect RF signals used for RF sensing to the UE 105 (e.g., in cases where there is interference 415-1 interfering with signal path 420-1 from the base station 120 to the UE 105 and / or interference 415-2 interfering with signal path 420-2 from the target 410 to the UE 105). More specifically, detection / location of the target 410 may be achieved by transmitting one or more reference signals 450, 460 from the base station 120, using the RIS 425 to redirect a line-of-sight (LOS) reference signal 460 and an echo signal 470 to the UE 105, and calculating the location of the target 410 based on the time difference between when the reflected echo signal 485 and the redirected LOS reference signal 490 are received at the UE 105 along with the known location of the RIS 425 and the base station 120. This process may be facilitated using the location server 160. As described in more detail below, the UE 105 or the location server 160 may determine the location of the target 410 depending on the desired functionality.
[0052]
[0063] 4A, it should be noted that although a bistatic configuration is shown, embodiments are not so limited. According to some embodiments, a multistatic configuration may be used in which there are multiple base stations 120 (transmitters), multiple RISs 425, and / or multiple UEs 105 (receivers). In such a configuration, the location of the target 410 may be determined as described herein for each transmitter / receiver (base station 120 / UE 105) pair, and then the determinations for all transmitter / receiver pairs may be combined. In such a configuration, this may increase the accuracy and / or reliability of the location determination of the target 410.
[0053]
[0064] Furthermore, it should be noted that the receiving device in a bistatic or multistatic configuration for RF sensing may not be limited to the UE 105. The receiving device may comprise, for example, another base station 120 (e.g., a regular gNB or a small cell gNB). Furthermore, in instances where multiple receiving devices are used, a single RIS may reflect signals to multiple receiving devices, multiple RIS may be used to reflect signals to multiple receiving devices, and / or some receiving devices may not require a RIS to reflect signals for RF sensing.
[0054]
[0065] The position of the target 410 is determined by the distance R of the target 410 from the UE 105. R , and angle θ R The angle θ can be mathematically determined by using one or more reference signals 450, 460 to determine the value of R (and angle θ T Note that the reference direction from which R is measured may be measured from true north or based on any coordinate system used by the network for positioning (e.g., geographic coordinates, East-North-Up (ENU), etc.). As discussed below, R R and θ R Determining the value of may be accomplished based on the known position of RIS 425 relative to base station 120 (to determine distance L).
[0055]
[0066] Distance R R R may be determined based on the time difference at the UE 105 receiving the LOS reference signal 460 and the echo signal 470. sum may be defined as follows:
[0056]
number
[0057] where R T is the distance between the base station 120 and the target 410, and R Ris the distance between the target 410 and the RIS 425. Using equation (1) and the geometry shown in FIG. 4A, R R can then be determined as follows:
[0058]
number
[0059]
[0067] R sum may be determined using (i) the time difference between the LOS reference signal 460 and the echo signal 470, and (ii) the known distance between the base station 120 and the UE 105.
[0060]
number
[0061] where L is the distance between the base station 120 and the UE 105, and T Rx_echo is the time (e.g., ToA) at which the echo signal 470 is received at the UE 105, and T Rx_LOS is the time (e.g., ToA) at which the LOS reference signal 460 is received at the UE 105, and c is the speed (e.g., the speed of light) of the RF signals 450, 460, and 470. Because the reflected echo signal 485 and the reflected LOS reference signal 490 travel along the same propagation path from the RIS 425 to the UE 105, these signals experience the same delay and the time difference in equation (3)
[0062]
number
[0063] Note that the distance L effectively cancels out in . Again, since the location of the RIS 425 is known, the distance L may be determined based on the difference between the known location of the RIS 425 and the known location of the base station 120. According to some embodiments, an almanac of base station and / or RIS locations may be stored by the location server 160 and / or the UE 105.
[0064]
[0068] The term Δ represents the time gap (if any) between the transmission of the LOS reference signal 460 and the transmission of the radar reference signal 450. As will be explained in more detail below, in some cases the LOS reference signal 460 and the radar reference signal 450 may be the same RF signal, in which case the value for the time gap Δ is 0.
[0065]
number
[0066] In embodiments that determine the timing of the LOS reference signal 460 and the radar reference signal 450, the timing of the LOS reference signal 460 and the radar reference signal 450 may be provided to the UE 105 in advance (e.g., in a communication session with the location server 160 or in a configuration provided to the UE 105 by the serving base station 120). Because this difference depends only on when the signal arrives, not when it is transmitted, no synchronization is required between the transmitter (base station 120) and the receiver (UE 105). This can be advantageous in many situations.
[0067]
[0069] Returning to equation (2), θ R To determine the value of θ, embodiments may use different techniques depending on the desired functionality and other factors. Ris the AoA at the RIS 425. However, because the RIS 425 may not have the processing capability to determine an AoA measurement of the echo signal 470, the measurement may be determined by the UE 105 based on the reflected echo signal 485. More specifically, the UE 105 may determine the AoA measurement by determining which receive beam at the RIS 425 has the highest RSRP value. The UE 105 may optionally further implement super-resolution / interpolation techniques to determine a more accurate AoA. In this manner, the RIS 425 may effectively be treated like an antenna of the UE 105, allowing the UE 105 to perform AoA measurements. Moreover, because the RIS 425 may be much larger than the antenna of the UE 105, less transmit power may be required by the base station 120 when transmitting the LOS reference signal 460 and / or the radar reference signal 450. Additionally or alternatively, multilateration may be used to determine θ R Multiple receivers (e.g., multiple UEs 105) may be used (or a single UE 105 at multiple locations (if the target 410 is static)) to determine the location of the target 410. (Multilateration may be used in other methods for determining the location of the target 410, as described with respect to FIG. 10 below.)
[0070] L, R sum , and θ R Once the value of R is determined, R The value for can be determined using equation (2), and the location of the target 410 (relative to the RIS 425) is given by R R and θ R Furthermore, if the absolute position of the RIS 425 is known, the absolute position of the target 410 can be determined.
[0068]
[0071] According to some embodiments, the Doppler frequency for the target 410 may be determined when the transmitter (base station 120) and receiver (UE 105) are both static. (If the UE 105 comprises a mobile device, this may mean that the UE 105 is temporarily immobile for at least the duration of the radar measurement, or that movement of the UE 105 is possibly taken into account. Movement at the UE 105 may be determined using sensor information, GNSS or other positioning measurements, etc.) The target bistatic Doppler frequency f D teeth,
[0069]
number
[0070] where the velocity v and angles β and δ are relative to the target 410, radar reference signal 450, and echo signal 470, as shown in Figure 4A. Thus, the techniques provided herein may enable RF detection of the target 410, which may be used to determine the location and velocity of the target 410.
[0071]
[0072] 1-3, including GNSS-based determination and / or network-based positioning. This may enable the base station 120 to reflect the reflected echo signal 485 and the reflected LOS reference signal 490 to the RIS 425 in a manner that may be more accurate (e.g., using more narrowly shaped beams) than older formats that use CSI-RS and / or sounding reference signal (SRS) selection, for example, to improve link quality. Among other benefits, this may help increase power efficiency and reduce the likelihood of multipath.
[0072]
[0073] 4B is a simplified diagram illustrating a variation on the configuration shown in FIG. 4A in which an object 492 reflects a signal to the UE 105 that an embodiment can distinguish from a signal reflected by the RIS 425. Similar to FIG. 4A, the RIS 425 reflects the echo signal 470 and a first portion 460-1 of the LOS reference signal toward the UE 105, as shown by the reflected echo signal 485 and the reflected LOS reference signal 490, respectively. Additionally, the object 492 reflects the echo signal from the radar reference signal 450 and a second portion 460-2 of the LOS reference signal toward the UE 105, as shown by the object-reflected echo signal 494 and the object-reflected LOS reference signal 496, respectively. This may result in ambiguity at the UE 105 as to which signal is reflected by the RIS 425 (and therefore can be used to determine the location of the target 410 as described herein).
[0073]
[0074] Embodiments may avoid such ambiguity by configuring the RIS 425 to include a “watermark” on the reflected echo signal 485 and / or the reflected LOS reference signal 490 by adjusting the phase and / or magnitude of these reflected signals. Because adjusting the magnitude together for watermark identification can be difficult, in some embodiments, the RIS may adjust the phase and optionally adjust the magnitude. The watermark may be unique to the RIS 425 (e.g., permanently, or at least with respect to reflecting the first portion 460-1 of the LOS reference signal and / or the radar reference signal 450). More broadly, the phase and / or amplitude of the reflection of the first portion 460-1 of the LOS reference signal and the echo signal 470 by the RIS 425 may be adjusted by the RIS to allow the RIS channel to be identified (e.g., using channel estimation). For reference signals transmitted using orthogonal frequency division multiplexing (OFDM) techniques, such as in 4G and 5G cellular communications, the phase and / or amplitude of the reflected echo signal 485 and / or the reflected LOS reference signal 490 may be adjusted on a slot-by-slot or symbol-by-symbol basis, depending on the desired functionality. According to some embodiments, identification of the RIS-reflected signals (the reflected echo signal 485 and the reflected LOS reference signal 490) may be performed by the base station 120, the UE 105, or the location server 160, depending on the desired functionality.
[0074]
[0075] Furthermore, it should be noted that the concept of watermarking can be extended to situations in which the UE receives reflected signals from multiple RISs, allowing each RIS to be distinguished (and potentially used for positioning of target 410). For example, if object 492 were a second RIS, the second RIS could be configured to reflect a reference signal transmitted by base station 120 with a second watermark that is distinct from the watermark used by RIS 425. This can enable the determination of the location of target 410 using two (or more) RISs, which can be beneficial in different situations.
[0075]
[0076] As mentioned above, embodiments may use a single reference signal or different reference signals for radar reference signal 450 and LOS reference signal 460. Figures 5A and 5B and the following description provide further details.
[0076]
[0077] 5A and 5B are diagrams of configurations of base station 120, target 410, and RIS 425 similar to those shown in FIGS. 4A and 4B, provided to illustrate how beams may be used differently in different embodiments and / or situations depending on the desired functionality. In FIG. 5A, for example, a single reference signal beam 510 is wide enough to be reflected from target 410 and received by RIS 425 (and redirected to the UE), allowing reference signal beam 510 to be used in the previously described process for RF detection of target 410. As can be seen, whether reference signal beam 510 is wide enough may depend not only on the width of the reference signal beam, but also on how close target 410 and RIS 425 are to each other. (In some cases, for example, target 410 and RIS 425 may be close enough that a relatively narrow beam, such as that shown in FIG. 5B, may be both reflected from target 410 and received by RIS 425.) However, in FIG. 5B, target 410 is aligned with first reference signal beam 520, and RIS 425 is more aligned with second reference signal beam 530. In such cases, even if RIS 425 is able to receive both first reference signal beam 520 and second reference signal beam 530, it may be preferable for UE 105 to take ToA measurements for second reference signal beam 530 rather than first reference signal beam 520 (e.g., due to a more favorable signal-to-noise (SNR) value for taking ToA measurements).
[0077]
[0078] As mentioned, the reference signals using the reference signal beams 520, 530 may be transmitted at different times, but since the time difference between the transmission of the first reference signal beam 520 and the second reference signal beam 530 is known, this time difference may be taken into account by the time gap Δ in equation (3), and R sum 6 and 7 show how the embodiment determines R summay be determined.
[0078]
[0079] FIG. 6 illustrates the R sum 5A is a time-distance diagram illustrating how timing may be used to determine the delay time (τ). Here, base station 120 simultaneously transmits LOS reference signal 460 and radar reference signal 450. Thus, in this case, LOS reference signal 460 and radar reference signal 450 may comprise the same signal (e.g., DL-PRS), which may be transmitted using a single reference signal beam, as shown in FIG. 5A. The different angles of reference signals 450 and 460 shown in FIG. 5 reflect the different paths of reference signals 450 and 460 in FIG. 4A. Again, reflected echo signal 485 and reflected LOS reference signal 490 from RIS 425 to UE 105 travel along the same (or substantially the same) propagation path and therefore experience the same delay. Thus, these reflected signals
[0079]
number
[0080] They do not affect the time difference. (Moreover, to avoid clutter in Figures 6 and 7, these reflected signals are not shown.) As mentioned, the location server 160 may coordinate the transmission and measurement of the reference signals 450 and 460 by providing information to the base station 120 regarding how to transmit the reference signals 450 and 460 and to the UE 105 regarding when to measure the reference signals 450 and 460. Furthermore, depending on the desired functionality, a single reference beam may be used to transmit the reference signals 450 and 460 over a distance R as described with respect to FIGS. sum can be used for the determination of
[0081] FIG. 7 illustrates the configuration shown in FIG. 4A in accordance with one embodiment. sum5B is a time-distance diagram similar to FIG. 6, providing another illustration of how timing may be used to determine the distance between the radar reference signal 450 and the radar reference signal 450. In this case, the base station 120 transmits the LOS reference signal 460 and the radar reference signal 450 at different times, with the radar reference signal 450 being transmitted after the LOS reference signal 460. As shown in FIG. 5B, these reference signals may be transmitted using two beams. A time gap Δ represents the amount of time between the transmission of the radar reference signal 450 and the transmission of the LOS reference signal 460. Again, the location server 160 may coordinate the transmission and measurement of the reference signals 450 and 460 by providing the base station 120 with information regarding how to transmit the reference signals 450 and 460 and the UE 105 with information regarding when to measure the reference signals 450 and 460. Thus, the time gap Δ may be derived by the UE 105 based on a configuration received from the location server, which may be relayed to the UE 105 by the base station 120.
[0082]
[0082] The position and / or value distance R of the target 410 T and angle θ R The calculation of may be performed by different entities depending on the desired functionality. This may depend, for example, on whether the request for the location of the target 410 comes from the UE 105 or whether the request for the location of the target 410 comes from a network or other entity (such as the external client 180 of FIG. 1 or the external client 230 of FIG. 2). Accordingly, different processes may be used to determine the location of the target 410. FIGS. 8 and 9 show two example processes. However, it should be noted that embodiments are not limited to "positioning" the object itself. RF sensing in the manner described herein may be performed to obtain additional or alternative types of information about one or more objects / targets (e.g., object detection, identification, movement / object tracking, etc.).
[0083] FIG. 8 is a call flow diagram illustrating an embodiment of a process for performing UE-based (or UE-initiated) RF detection of a target 410 using a RIS. As with the other figures provided herein, FIG. 8 is provided as a non-limiting example. As described in more detail below, alternative embodiments may perform some functions in a different order, simultaneously, etc. Note that the arrows between various components shown in FIG. 8 indicate messages or information being sent from one component to another. Additionally (although not explicitly shown in FIG. 8), communication between the base station 120 and the UE 105 may occur using reflection / redirection of communication signals by the RIS 425 in a manner similar to the process shown in FIG. 4A (e.g., similarly applied to UL signals from the UE 105 to the base station 120).
[0084] With respect to communications between the components shown in FIG. 8, it will be understood that there may be any number of intervening devices, servers, etc. that may relay such messages, including other components in FIG. 8. (For example, a message from UE 105 to location server 160 may pass through base station 120, which may be a serving base station for UE 105.) Additionally, although the wireless reference signals are referred to as PRS resources (e.g., DL-PRS transmitted by base station 120), alternative embodiments may utilize other wireless reference signal types. As mentioned, in some embodiments, the radar reference signal (e.g., radar reference signal 450) may be a specialized reference signal to facilitate radar detection, which may in some cases be a signal not explicitly defined under the 5G (or other 3GPP) standards.
[0085] In block 805, the target 410 receives a location request. This location request may come, for example, from an application (or app) executed by the target 410. It may result from user interaction with the target 410, based on a determined schedule, or based on other triggers (including user input). Additionally or alternatively, the location request may come from a separate device. In some cases, for example, the target 410 itself may be able to communicate with the UE 105 and request its location. However, in other cases, the target may not be able to communicate and / or may be passive in some cases.
[0086] In response, the target 410 may generate a position request notification. As indicated by arrow 810, the request may be sent to the location server 160, which may coordinate the transmission of PRS resources (or other reference signals) by the base station 120 to determine the location of the target 410. According to some embodiments, further communication between the target 410 and the location server 160 may occur to determine the capabilities of the target 410 (e.g., including the capability of the UE 105 to detect the location of the target 410). In some embodiments, communication between the location server 160 and the target 410 may occur via an LPP positioning session.
[0087] At block 815, the UE 105 may optionally determine its position. As mentioned, determining the location of the UE 105 may enable the base station 120 to control the RIS 425 so that the RIS efficiently reflects one or more wireless reference signals and / or other signals for the UE 105. Positioning of the UE 105 may be performed in any of a variety of ways, including GNSS and / or other non-network means. Additionally or alternatively, position determination for the UE 105 may be network-based and involve a location server 160. In such cases, the UE may provide its location to the base station 120 and / or the location server 160, as indicated by arrow 820.
[0088] As indicated by arrow 835, the location server may then schedule transmission and reception of PRS resources by the base station 120 and the UE 105. More specifically, scheduling PRS resources may involve the location server 160 configuring the base station 120 to transmit one or more PRS resources and / or the location server 160 or the base station 120 configuring the UE 105 to measure one or more PRS resources.
[0089] At block 840, the base station 120 may configure / control the RIS 425 to help ensure that subsequently transmitted PRS resources are directed toward the UE 105. According to some embodiments, this may be done at block 815 and may be informed upon determination of the UE location provided by the UE 105 at arrow 820. In some embodiments, the location of the UE 105 may be provided directly to the base station 120 by the UE 105 or may be provided by a location server 160. According to some embodiments and / or cases, the base station 120 may already be involved in controlling the RIS 425 in real time to reflect signals from the base station 120 to the UE 105 (and vice versa) for communication and / or other purposes. In such cases, the base station 120 may not necessarily rely on the determined location of the UE 105 (e.g., as determined at block 815), but may instead rely on techniques used in communication (e.g., CSI-RS / SRS beam selection, as described above). Alternatively, according to some embodiments, the location server 160 and / or the UE 105 may control the RIS 425.
[0090] Arrow 845 indicates that base station 120 transmits one or more PRS resources. As described in previous embodiments, the one or more PRS resources may comprise a single RF signal transmitted using a wide beam (e.g., as shown in FIG. 5A ) or separate RF signals transmitted using separate labels (e.g., as shown in FIG. 5B ). In either case, RIS 425 may reflect the PRS resource(s) to UE 105, as shown in block 847, and UE 105 may measure the ToA of both PRS resource(s) (e.g., LOS reference signal 460 and echo signal 470). These ToA measurements are shown in block 850. As previously described, UE 105 also determines the target angle θ RTo determine AoA, a reflected reference signal (e.g., reflected echo signal 485) may be used to take AoA measurements at RIS 425 of a signal reflected from a target (e.g., echo signal 470).
[0091] To help the UE 105 determine the RIS from which a PRS resource(s) from the base station 120 was reflected, the base station 120 may include a RIS identifier (e.g., a RIS ID) associated with the PRS resource(s). This may be particularly useful when the UE 105 may receive reflected PRS resources from multiple RISs 425, as described in more detail below. In these cases, the base station 120 may reflect PRS resources to different RISs 425 using different beams and different PRS identifiers.
[0092] In block 855, the UE 105 determines the range and angle of the target. This is the range (R R ) and angle (θ R) may be determined using the process described above for determining the angle of the target 410. Again, the angle of the target 410 may be determined using AoA measurements or using multilateration. In the case of multilateration, additional measurements (e.g., ToA measurements of the echo signal from the PRS resource transmitted at arrow 845 or from another PRS resource) may be obtained from other UEs, or (if the target 410 is static) by the UE 105 itself at different times and different locations. The distance (or baseline) L between the RIS 425 and the base station 120 may be stored in the UE 105 (it may have been previously received from the location server 160 when the UE 105 entered the area in which the base station 120 and the RIS 425 are located). Additionally or alternatively, the location server 160 may provide this distance and / or the known locations of the base station 120 and / or the RIS 425 as part of the process shown in FIG. 8. For example, this location may be provided to the UE 105 by the location server 160 when the location server 160 provides the scheduling information at arrow 835. Alternatively, the location server 160 may provide this as a separate message.
[0093] At block 860, the UE 105 determines the position of the target 410. This may be done by using equations (1)-(3) in the manner previously described. More specifically, using the angle and distance of the target 410 determined at block 855 and the known location for the RIS 425, the UE 105 may determine the position of the target 410. This determined position may then be provided by the UE 105, as shown at block 865.
[0094] The manner in which the location of the target 410 is provided in block 865 may depend on how its location was requested in block 805. For example, if the location of the target 410 was requested by an application executed on the UE 105, providing the location may therefore comprise providing the location to the application layer (e.g., from a lower layer that determined the target's location). If requested by a user of the UE 105, the UE 105 may provide the location visually and / or audibly (e.g., using a display and / or speaker of the UE 105). If the location of the target 410 was requested by the target 410 itself, the UE 105 may communicate its location to the target 410.
[0095] 9 is a call flow diagram illustrating an embodiment of a process for performing UE-assisted (or network-initiated) RF detection of a target 410 using a RIS 420, where calculations and position determination are performed in a location server 160 based on information received from the UE 105 and the target 410. Many of the operations performed in the process of FIG. 9 may be similar to those performed in the process of FIG. 8, previously described.
[0096] The process may begin with a location request being obtained at location server 160, as shown in block 905. As previously indicated, UE-assisted (or network-based) positioning may be based on a request from an external client (e.g., external client 180 of FIG. 1 and / or external client 230 of FIG. 2). Additionally or alternatively, the request may come from a service within the wireless network that may need the location of target 410 to provide certain functionality.
[0097] In response to the position request, location server 160 may notify UE 105 of the position request via a position request notification, as shown at arrow 910. In some embodiments, this may comprise initiating a communications session between location server 160 and UE 105. In particular, this position request notification at arrow 910 may notify and prepare UE 105 to subsequently take ToA measurements of one or more PRS resources transmitted by base station 120.
[0098] 8, a determination of the UE position may occur in block 915. However, here the determination may be performed by a location server. To do so, location server 160 may engage in a positioning session with UE 105 to determine the location of UE 105 using network-based positioning. Alternatively, if UE 105 knows its position or can obtain its position separately from the network (e.g., using GNSS positioning), UE 105 may provide its position to location server 160. This position may be relative to base station 120, as indicated with arrow 920.
[0099] Elements 935-950 may be similar to the corresponding features in FIG. 8, previously described.
[0100] Once the UE 105 measures the ToAs in block 950, the UE 105 may send positioning information to the location server 160, as shown in action 953. This positioning information may comprise the measurements themselves and / or information indicative of the time difference between the ToAs.
[0101] Elements 955-965 may be similar to the corresponding elements in Figure 9. However, the difference in Figure 9 is that these operations are performed in location server 160. That is, using the positioning information sent by UE 105 in action 953, the location server can determine the range and angle of target 410 and ultimately determine the position of target 410 using the techniques described above or the like. Providing the position of target 410 in block 965 may comprise communicating the position to a requesting entity (e.g., the entity providing the position request in block 905).
[0102] FIG. 10 is a simplified diagram illustrating a variation on the configuration shown in FIG. 4A that may be implemented in accordance with an embodiment. Here, rather than a single UE 105, multiple UEs 105-1, 105-2, and 105-3 (collectively and generically referred to herein simply as UE 105) are used. Again, the embodiments are not so limited, and the receiving devices may comprise any number of devices, including devices and / or device types in addition to or as an alternative to UE 105. To reduce confusion, location server 160 has been omitted from FIG. 10, although, as shown below, location server 160 may be used in a manner similar to that described with respect to FIG. 4A. Furthermore, as noted above, in addition to RIS 425 directing signals from target 410 and base station 120 to first UE 105-1, RIS 425 and / or other RISs (not shown) may direct similar signals to other UEs (e.g., UE 105-2 and / or UE 105-3). Additionally or alternatively, according to some embodiments, multiple RISs 425 may forward signals to a single UE 105.
[0103] The process for determining the location of the target 410 may be generally similar to the process shown in FIG. 4A and described with respect to FIGS. 4A-9. However, because multiple UEs 105 are used, angle information may not be required. That is, the distance R R and angle θ R Rather than (or in addition to) determining the location of the target 410 using the UE 105 metric, the location may instead be determined using multilateration. To do so, each UE 105 calculates its respective R metric using equation (3). sum 10. To determine R, the receiver may receive respective echo signals 470 from targets 410, as well as a direct reference signal from base station 120 (similar to LOS reference signal 460 in FIG. 4A). (To reduce confusion, the direct reference signal is not shown in FIG. 10.) sum But R T and the respective R for RIS425 R Since it is the sum of R sum The values of R may be used to form the respective ellipses 480-1 for the RIS 425. sum A similar calculation of θ can be performed for each other UE (105-2 and 105-3), resulting in corresponding ellipses 480-2 and 480-3. For each ellipse, the base station 120 and the RIS 425 or UE 105 are the foci of the respective ellipse. (Again, to reduce confusion, only the applicable portion of the ellipse 480 is shown in FIG. 10.) The device (e.g., any / all of the UEs 105 and / or the location server 160 (not shown in FIG. 10) that determines the location of the target 410 may do so by determining the point at which the ellipses 480 converge. Thus, neither AoA nor other angle determination may be required to determine the location of the target 410.
[0104] The number of UEs 105 (or other receiving devices) used to determine the position of the target 410 may thus vary depending on the situation. For example, more or fewer UEs 105 than shown in FIG. 10 may be used. In some situations, such as when two UEs 105 are used, there may be ambiguity (e.g., multiple convergence points) in the position of the target 410. In such cases, other data may be utilized to resolve the ambiguity. This other data may include, for example, tracking information for the target 410, other (prior and / or concurrent) position fixes for the target 410, etc. As noted above, multiple RISs 425 may direct signals toward a single UE 105. In such cases, multiple RISs may be used in addition to or instead of multiple UEs 105, an ellipse may be calculated for each RIS 425, and multilateration may be performed based on the ellipses from the multiple RISs 425. (As mentioned above, a RIS ID may be included in and / or associated with a wireless reference signal transmitted by a base station 120, allowing a UE 105 receiving redirected signals from multiple RISs 425 to separately determine the corresponding ellipse for each.)
[0105] Note that an embodiment for determining the location of a target 410 in the manner shown in FIG. 10 may follow a process similar to that shown in FIGS. 8-9. Because multiple UEs 105 are used, the functionality of the UEs 105 shown in FIGS. 8-9 may be replicated for all UEs 105. That said, the determination of the target's location in block 860 of FIG. 8 may be performed by a single UE 105, if desired. To do so, the UE 105 may perform multilateration calculations based on positioning information (e.g., ToA measurements and / or time difference determinations) received from other UEs. This information may be received directly from other UEs (e.g., using sidelink communications) or indirectly via the location server 160 and / or base station 120.
[0105]
[0106] FIG. 11 is a flow diagram of a method 1100 for performing RF sensing with a receiving device and a RIS in a wireless communications network, according to one embodiment. Here, the receiving device may correspond to the UE 105, and the RIS may correspond to the RIS 425, as described in FIGS. 4A-10. Depending on the desired functionality, various operations illustrated in FIG. 11 may correspond to the functionality of a RIS, a UE, a base station, or a location server, as taught in the previously described embodiments. Accordingly, aspects of method 1100 may correspond to the functionality of different components described with respect to FIGS. 8-9. Means for performing the functionality shown in one or more of the blocks illustrated in FIG. 11 may be implemented by hardware and / or software components of a receiving device or a computer system. Exemplary components of a receiving device or a computer system are shown in FIGS. 12 and 13, respectively, and are described in more detail below.
[0106]
[0107] In block 1110, the function comprises configuring a RIS to reflect a line-of-sight wireless signal toward a receiving device, where the line-of-sight wireless signal comprises a first wireless reference signal transmitted by a TRP of a wireless communication system. As described in the above embodiments, the TRP may comprise a base station (e.g., including a gNB or an eNB). When the network entity comprises a base station or a TRP, the wireless reference signal may comprise a downlink (DL) reference signal such as a PRS, an SSB, a tracking reference signal (TRS), a channel state information reference signal (CSIRS), a demodulation reference signal (DMRS), or the like.
[0107]
[0108] According to some embodiments, the operations shown in Figure 11 may be performed in response to a request at the receiving device for the location of an object or target. As indicated with arrow 810 in Figure 8, the receiving device may then respond by sending a location request to location server 160. Thus, some embodiments of method 1100 may comprise sending a request to the server to perform RF sensing prior to receiving a configuration from the server.
[0108]
[0109] As shown in the embodiments described above, the RIS may reflect a line-of-sight wireless signal toward a receiving device based on configuration or control by another device. For example, the configuration / control may be provided by a TRP (e.g., a base station), a receiving device (e.g., a UE), or a server (e.g., a location server) communicatively coupled to the RIS. This may be provided directly from the TRP or receiving device to the RIS, or indirectly from the server or receiving device via the TRP. As mentioned, the direction in which the RIS reflects a line-of-sight wireless signal (e.g., a beam of a reflected line-of-sight wireless signal) may be informed by the location of the receiving device. This can help increase efficiency and reduce the possibility of multipath.
[0109]
[0110] The means for performing the functions in block 1110 may comprise a bus 1205, a wireless communication interface 1230, a digital signal processor (DSP) 1220, a processing unit(s) 1210, a memory 1260, and / or other components of receiving device 1200 as shown in Figure 12. Additionally or alternatively, the means for performing the functions in block 1110 may comprise a bus 1305, a communication subsystem 1330, a processing unit(s) 1310, a working memory 1335, and / or other components of computer system 1300 as shown in Figure 13.
[0110]
[0111] At block 1120, the function comprises configuring the RIS to reflect an echo signal toward the receiving device, where the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by a TRP of the wireless communications system. Here, reflecting the echo signal may be substantially similar to reflecting the LOS wireless signal at block 1110, although the location of the source of the signal (the TRP and the object) may be different. According to some embodiments, the RIS may also be configured to adjust the phase, magnitude, or both of either or both of the LOS wireless signal or the echo signal. That is, when the RIS reflects either or both of the LOS wireless signal or the echo signal, it may adjust the phase (and / or amplitude) to provide a watermark, as described with respect to FIG. 4B .
[0111]
[0112] The means for performing the functions in block 1120 may comprise a bus 1205, a wireless communication interface 1230, a digital signal processor (DSP) 1220, a processing unit(s) 1210, a memory 1260, and / or other components of receiving device 1200 as shown in Figure 12. Additionally or alternatively, the means for performing the functions in block 1120 may comprise a bus 1305, a communication subsystem 1330, a processing unit(s) 1310, a working memory 1335, and / or other components of computer system 1300 as shown in Figure 13.
[0112]
[0113] In block 1130, the function comprises determining a position of the object based on (i) a position of the RIS relative to the TRP and (ii) a time difference between a first ToA of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device. As shown in the above embodiment, the position of the RIS relative to the TRP can be determined based on the R sum And finally R RThe distance L may comprise a distance L used to determine the distance between the TRP and the RIS. According to some embodiments, this distance may be determined by a location server or the receiving device and may be derived from the known locations of the TRP and the RIS. These locations may be stored in an almanac or index of such network entities, accessed and / or maintained by the location server, and further provided to the receiving device.
[0113]
[0114] The means for performing the functions in block 1130 may comprise a bus 1205, a wireless communication interface 1230, a digital signal processor (DSP) 1220, a processing unit(s) 1210, a memory 1260, and / or other components of receiving device 1200 as shown in Figure 12. Additionally or alternatively, the means for performing the functions in block 1130 may comprise a bus 1305, a communication subsystem 1330, a processing unit(s) 1310, a working memory 1335, and / or other components of computer system 1300 as shown in Figure 13.
[0114]
[0115] At block 1140, the function comprises providing the location of the object using the receiving device. As noted above, the manner in which the location is provided may vary depending on the situation. According to some embodiments, determining the location of the object may be performed using a specialized application or lower-level function, in which case providing the location of the object may comprise providing the location of the object to an application executed by the receiving device.
[0115]
[0116] The means for performing the functions in block 1140 may comprise a bus 1205, a wireless communication interface 1230, a digital signal processor (DSP) 1220, a processing unit(s) 1210, a memory 1260, and / or other components of receiving device 1200 as shown in Figure 12. Additionally or alternatively, the means for performing the functions in block 1140 may comprise a bus 1305, a communication subsystem 1330, a processing unit(s) 1310, a working memory 1335, and / or other components of computer system 1300 as shown in Figure 13.
[0116]
[0117] As described in the embodiments described above, further operations may be performed depending on the desired functionality. For example, according to some embodiments of method 1100, configuring the RIS to reflect LOS wireless signals and echo signals toward the receiving device may comprise, in part, controlling the RIS using a TRP or a server. In embodiments in which the server controls the RIS, the server may further determine a location of the receiving device and, based on the location of the receiving device, configure the RIS to reflect LOS wireless signals and echo signals toward the receiving device. As mentioned, determining the location of the receiving device may be performed by the server (e.g., using network-based positioning techniques) or may be performed by the receiving device, and the receiving device may provide the determined location information to the server.
[0117]
[0118] As mentioned, a RIS identifier may be used to identify the RIS reflecting the LOS signal and / or the echo signal. This may be particularly useful when multiple RISs are used in object detection / positioning. Accordingly, some embodiments of method 1100 may comprise including an identifier of the RIS in the first wireless reference signal and the second wireless reference signal.
[0118]
[0119] Other embodiments may include additional or alternative variations. According to some embodiments, for example, the receiving device may comprise a mobile device or another TRP. According to some embodiments, the receiving device may determine the position of the object. This determination may be implemented in different manners depending on the desired functionality. For example, according to some embodiments, method 1100 further comprises determining, with the receiving device, a receive angle comprising an angle at which the echo signal was received at the RIS, wherein the receiving device additionally determines the position of the object based on the receive angle. According to some embodiments, method 1100 may further comprise determining, with the receiving device, a time gap comprising a difference between a time at which the TRP transmits a first wireless reference signal and a time at which the TRP transmits a second wireless reference signal, wherein determining the position of the object is further based on the time gap. According to some embodiments, determining the time gap may comprise receiving an indication of the time gap from a server. In embodiments in which the receiving device determines the position of the object, providing the position of the object may comprise providing the position of the object to an application executed by the receiving device. Additionally or alternatively, the method 1100 may comprise sending information from the server to the receiving device indicating the location of the RIS relative to the TRP.
[0119]
[0120] According to some embodiments, the server may determine the location of the object. Such embodiments may further comprise, at the server, receiving information indicating a first ToA and a second ToA from the receiving device; and determining, using the server, a time difference between the first ToA and the second ToA from the information indicating the first ToA and the second ToA. The information indicating the first ToA and the second ToA comprises a time difference between the ToAs. According to some embodiments, method 1100 may further comprise, using the server, determining a reception angle comprising an angle at which the echo signal was received at the RIS based on multilateration from the information received from the multiple receiving devices. In such embodiments, the server may additionally determine the location of the object based on the reception angle. Additionally or alternatively, embodiments may comprise, using the server, determining a time gap comprising a difference between a time at which the TRP transmits a first wireless reference signal and a time at which the TRP transmits a second wireless reference signal, wherein determining the location of the object is further based on the time gap.
[0120]
[0121] FIG. 12 is a block diagram of one embodiment of a receiving device 1200 that may be utilized as a target, UE, or other UE, as described hereinabove (e.g., in connection with FIGS. 1-11). For example, receiving device 1200 may perform one or more of the functions of the method illustrated in FIG. 11. Note that FIG. 12 merely provides a generalized view of various components, any or all of which may be utilized as appropriate. Note that in some instances, the components illustrated by FIG. 12 may be localized in a single physical device and / or distributed among various networked devices that may be located in different physical locations. Additionally, as noted above, the UE functions described in the previously described embodiments may be performed by one or more of the hardware and / or software components illustrated in FIG. 12.
[0121]
[0122] Receiver device 1200 is shown comprising hardware elements that may be electrically coupled (or in other communication, as appropriate) via a bus 1205. The hardware elements may include processing unit(s) 1210, which may include, but are not limited to, one or more general-purpose processors (e.g., application processors), one or more special-purpose processors (such as digital signal processor (DSP) chips, graphics acceleration processors, application-specific integrated circuits (ASICs)), and / or other processing structures or means. As shown in FIG. 12, some embodiments may have a separate DSP 1220 depending on desired functionality. Location determination and / or other determinations based on wireless communications may be provided in processing unit(s) 1210 and / or in a wireless communication interface 1230 (described below). The receiving device 1200 may also include one or more input devices 1270, which may include, but are not limited to, one or more keyboards, touchscreens, touchpads, microphones, buttons, dials, switches, etc., and one or more output devices 1215, which may include, but are not limited to, one or more displays (e.g., touchscreens), light-emitting diodes (LEDs), speakers, etc.
[0122]
[0123] The receiving device 1200 may also include a wireless communication interface 1230, which may comprise, but is not limited to, a modem, network card, infrared communication device, wireless communication device, and / or chipset (such as a Bluetooth device, an IEEE 802.11 device, an IEEE 802.15.4 device, a Wi-Fi device, a WiMAX device, a WAN device, and / or various cellular devices), which may enable the receiving device 1200 to communicate with other devices as described in the above embodiments. The wireless communication interface 1230 may enable data and signaling to be communicated (e.g., transmitted and received) with a TRP of a network (e.g., including an eNB, a gNB, an ng-eNB), access points, various base stations and / or other access node types, and / or other network components, computer systems, and / or any other electronic device (e.g., a UE / mobile device) communicatively coupled to the TRP as described herein. Communication may occur via one or more wireless communication antennas 1232 that send and / or receive wireless signals 1234. According to some embodiments, the wireless communication antenna(s) 1232 may comprise multiple individual antennas, an antenna array, or any combination thereof. The antenna(s) 1232 may be capable of transmitting and receiving wireless signals using beams (e.g., Tx beams and Rx beams). Beam formation may be implemented using digital and / or analog beam formation techniques with digital and / or analog circuitry, respectively. The wireless communication interface 1230 may include such circuitry.
[0123]
[0124] Depending on desired functionality, the wireless communication interface 1230 may comprise separate receivers and transmitters, or any combination of transceivers, transmitters, and / or receivers, for communicating with other terrestrial transceivers, such as TRPs (e.g., ng-eNBs and gNBs), as well as wireless devices and access points. The receiving device 1200 may communicate with different data networks, which may comprise a variety of network types. For example, a wireless wide area network (WWAN) may be a CDMA network, a time division multiple access (TDMA) network, a frequency division multiple access (FDMA) network, an orthogonal frequency division multiple access (OFDMA) network, a single-carrier frequency division multiple access (SC-FDMA) network, a WiMAX (IEEE 802.16) network, etc. A CDMA network may implement one or more RATs, such as CDMA2000, WCDMA, etc. CDMA2000 includes IS-95, IS-2000, and / or IS-856 standards. A TDMA network may implement GSM, Digital Advanced Mobile Phone System (D-AMPS), or some other RAT. An OFDMA network may employ LTE, LTE Advanced, 5G NR, etc. 5G NR, LTE, LTE Advanced, GSM, and WCDMA are described in documents from 3GPP. CDMA2000® is described in documents from an organization named “3rd Generation Partnership Project 2” (3GPP2). 3GPP and 3GPP2 documents are publicly available. A wireless local area network (WLAN) may also be an IEEE 802.11x network, and a wireless personal area network (WPAN) may be a Bluetooth network, an IEEE 802.15x, or some other type of network. Also, the techniques described herein may be used for any combination of WWAN, WLAN, and / or WPAN.
[0124]
[0125] The receiving device 1200 may further include sensor(s) 1240. The sensors 1240 may comprise, but are not limited to, one or more inertial and / or other sensors (e.g., accelerometer(s), gyroscope(s), camera(s), magnetometer(s), altimeter(s), microphone(s), proximity sensor(s), light sensor(s), barometer(s), etc.), some of which may be used to obtain location-related measurements and / or other information.
[0125]
[0126] An embodiment of receiving device 1200 may also include a GNSS receiver 1280 capable of receiving signals 1284 from one or more Global Navigation Satellite System (GNSS) satellites using an antenna 1282 (which may be the same as antenna 1232). Positioning based on GNSS signal measurements may be utilized to complement and / or incorporate the techniques described herein. GNSS receiver 1280 may use conventional techniques to extract a position of receiving device 1200 from GNSS satellites 110 of a GNSS system, such as Global Positioning System (GPS), Galileo, GLONASS, Quasi-Zenith Satellite System (QZSS) over Japan, Indian Regional Navigation Satellite System (IRNSS) over India, or BeiDou Navigation Satellite System (BDS) over China. Moreover, the GNSS receiver 1280 may be used with various augmentation systems (e.g., Satellite Based Augmentation System (SBAS)) that may be associated with or otherwise enabled for use with one or more global and / or regional navigation satellite systems, such as, for example, Wide Area Augmentation System (WAAS), European Geostationary Navigation Overlay Service (EGNOS), Multi-functional Satellite Augmentation System (MSAS), and Geo Augmented Navigation system (GAGAN).
[0126]
[0127] It should be noted that while the GNSS receiver 1280 is shown in FIG. 12 as a separate component, embodiments are not so limited. As used herein, the term “GNSS receiver” may comprise hardware and / or software components configured to acquire GNSS measurements (measurements from GNSS satellites). In some embodiments, the GNSS receiver may therefore comprise a measurement engine executed (as software) by one or more processing units, such as the processing unit(s) 1210, the DSP 1220, and / or a processing unit within the wireless communication interface 1230 (e.g., in a modem). The GNSS receiver may also optionally include a positioning engine that can use the GNSS measurements from the measurement engine to determine the position of the GNSS receiver using an extended Kalman filter (EKF), weighted least squares (WLS), a Hatch filter, a particle filter, etc. The positioning engine may also be executed by one or more processing units, such as the processing unit(s) 1210 or the DSP 1220.
[0127]
[0128] The receiving device 1200 may further include and / or be in communication with memory 1260. The memory 1260 may include, but is not limited to, local and / or network-accessible storage, disk drives, drive arrays, optical storage devices, and solid-state storage devices such as random access memory (RAM) and / or read-only memory (ROM), which may be programmable, flash-updateable, etc. Such storage devices may be configured to implement any suitable data store, including, but not limited to, various file systems, database structures, etc.
[0128]
[0129] Memory 1260 of receiving device 1200 may also comprise computer programs provided by various embodiments and / or may comprise software elements (not shown in FIG. 12 ) including other code, such as an operating system, device drivers, executable libraries, and / or one or more application programs, that may be designed to implement methods and / or configure systems provided by other embodiments as described herein. By way of example only, one or more procedures described with respect to the method(s) described above may be implemented as code and / or instructions in memory 1260 that are executable by receiving device 1200 (and / or processing unit(s) 1210 or DSP 1220 within receiving device 1200). In one aspect, such code and / or instructions may then be used to configure and / or adapt a general-purpose computer (or other device) to perform one or more operations in accordance with the described method.
[0129]
[0130] FIG. 13 is a block diagram of one embodiment of a computer system 1300 that may be used, in whole or in part, to provide the functionality of one or more network components described in embodiments herein (e.g., location server 160 of FIGS. 1, 4, 8, and 9). It should be noted that FIG. 13 merely provides a generalized view of the various components, any or all of which may be utilized as appropriate. Thus, FIG. 13 broadly illustrates how individual system elements may be implemented in a relatively separate or relatively more integrated manner. Furthermore, it should be noted that the components illustrated by FIG. 13 may be localized on a single device and / or distributed among various networked devices that may be located in different geographic locations.
[0130]
[0131] A computer system 1300 is shown comprising hardware elements that may be electrically coupled (or in other communication, as appropriate) via a bus 1305. The hardware elements may include processing unit(s) 1310, which may comprise, but are not limited to, one or more general-purpose processors, one or more special-purpose processors (such as digital signal processing chips, graphics acceleration processors, etc.), and / or other processing structures that may be configured to perform one or more of the methods described herein. The computer system 1300 may also comprise one or more input devices 1315, which may comprise, but are not limited to, a mouse, keyboard, camera, microphone, etc., and one or more output devices 1320, which may comprise, but are not limited to, a display device, printer, etc.
[0131]
[0132] Computer system 1300 may further include (and / or be in communication with) one or more non-transitory storage devices 1325, which may comprise, but are not limited to, local and / or network-accessible storage and / or solid-state storage devices such as, but not limited to, disk drives, drive arrays, optical storage devices, RAM and / or ROM, which may be programmable, flash-updateable, etc. Such storage devices may be configured to implement any suitable data store, including, but not limited to, various file systems, database structures, etc. Such data stores may include database(s) and / or other data structures used to store and manage messages and / or other information to be sent to one or more devices via the hub, as described herein.
[0132]
[0133] The computer system 1300 may also include a communications subsystem 1330, which may comprise wireless communications technologies managed and controlled by a wireless communications interface 1333, as well as wired technologies (such as Ethernet, coaxial communications, and Universal Serial Bus (USB)). The wireless communications interface 1333 may comprise one or more wireless transceivers that may send and receive wireless signals 1355 (e.g., signals according to 5G NR or LTE) via wireless antenna(s) 1350. Thus, the communications subsystem 1330 may comprise a modem, a network card (wireless or wired), an infrared communications device, a wireless communications device, and / or a chipset, etc., that may enable the computer system 1300 to communicate over any or all of the communications networks described herein to any device on the respective network, including UEs / mobile devices, base stations and / or other TRPs, and / or any other electronic devices described herein. Thus, the communications subsystem 1330 may be used to receive and send data as described in the embodiments herein.
[0133]
[0134] In many embodiments, computer system 1300 further comprises working memory 1335, which may comprise a RAM or ROM device, as described above. Software elements shown as being located within working memory 1335 may comprise computer programs provided by various embodiments, as described herein, and / or may comprise other code, such as an operating system 1340, device drivers, executable libraries, and / or one or more applications 1345, that may be designed to implement methods and / or configure systems provided by other embodiments. By way of example only, one or more procedures described with respect to the method(s) described above may be implemented as code and / or instructions executable by a computer (and / or a processing unit within a computer); in one aspect, such code and / or instructions may then be used to configure and / or adapt a general-purpose computer (or other device) to perform one or more operations in accordance with the described method.
[0134]
[0135] A set of these instructions and / or code may be stored on a non-transitory computer-readable storage medium, such as storage device(s) 1325 described above. In some cases, the storage medium may be incorporated within a computer system, such as computer system 1300. In other embodiments, the storage medium may be separate from the computer system (e.g., a removable medium such as an optical disk) and / or may be provided in an installation package such that the storage medium can be used to program, configure, and / or adapt a general-purpose computer with the instructions / code stored thereon. These instructions may take the form of executable code that is executable by computer system 1300 and / or may take the form of source code and / or installable code that, when compiled and / or installed on computer system 1300 (e.g., using any of a variety of commonly available compilers, installation programs, compression / decompression utilities, etc.), then takes the form of executable code.
[0135]
[0136] It will be apparent to those skilled in the art that substantial variations can be made according to particular requirements. For example, customized hardware can also be used, and / or particular elements can be implemented in hardware, software (including portable software such as applets), or both. Furthermore, connection to other computing devices, such as network input / output devices, can be employed.
[0136]
[0137] With reference to the accompanying figures, components that may include memory may include non-transitory machine-readable media. As used herein, the terms “machine-readable medium” and “computer-readable medium” refer to any storage medium that participates in providing data that causes a machine to operate in a specific manner. In the embodiments provided above, various machine-readable media may participate in providing instructions / code to a processing unit and / or other device(s) for execution. Additionally or alternatively, machine-readable media may be used to store and / or transport such instructions / code. In many implementations, computer-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. Common forms of computer-readable media include, for example, magnetic and / or optical media, any other physical media with patterns of holes, RAM, programmable ROM (PROM), erasable PROM (EPROM), flash EPROM, any other memory chip or cartridge, or any other medium from which a computer can read instructions and / or code.
[0137]
[0138] The methods, systems, and devices described herein are examples. Various embodiments may omit, substitute, or add various procedures or components, as appropriate. For example, features described with respect to some embodiments may be combined in various other embodiments. Different aspects and elements of the embodiments may be combined in a similar manner. Various components of the diagrams provided herein may be implemented in hardware and / or software. Also, technology evolves, and therefore many of the elements are examples, and these examples do not limit the scope of the disclosure to those specific examples.
[0138]
[0139] It has proven convenient at times, principally for reasons of common usage, to refer to such signals as bits, information, values, elements, symbols, characters, variables, terms, numbers, numerals, or the like. However, it should be understood that all of these or similar terms are to be associated with the appropriate physical quantities and are merely convenient labels. Unless otherwise indicated, and as is clear from the above description, it should be appreciated that throughout this specification, descriptions utilizing terms such as “processing,” “computing,” “calculating,” “determining,” “ascertaining,” “identifying,” “associating,” “measuring,” “performing,” and the like refer to actions or processes of a particular apparatus, such as a special purpose computer or similar special purpose electronic computing device. Thus, in the context of this specification, a special purpose computer or similar special purpose electronic computing device is capable of manipulating or transforming signals that are generally represented as electronic, electrical, or magnetic physical quantities within memories, registers, or other information storage, transmission, or display devices of the special purpose computer or similar special purpose electronic computing device.
[0139]
[0140] The terms "and" and "or" as used herein may have a variety of meanings that are expected to depend, at least in part, on the context in which such terms are used. In general, when "or" is used to associate a list, such as A, B, or C, it shall mean A, B, and C, used herein in an inclusive sense, as well as A, B, or C, used herein in an exclusive sense. Furthermore, as used herein, the term "one or more" may be used to describe any feature, structure, or characteristic in the singular, or it may be used to describe any combination of features, structures, or characteristics. However, it should be noted that this is an illustrative example only, and claimed subject matter is not limited to this example. Furthermore, the term "at least one of," when used to associate a list, such as A, B, or C, may be interpreted to mean any combination of A, B, and / or C, such as A, AB, AA, AAB, AABBCCC, etc.
[0140]
[0141] Although several embodiments have been described, various modifications, alternative configurations, and equivalents may be used without departing from the spirit of the present disclosure. For example, the above elements may be merely components of a larger system, and other rules may take precedence over or otherwise modify the application of the various embodiments. Also, some steps may be taken before, during, or after the above elements are considered. Therefore, the above description does not limit the scope of the present disclosure.
[0141]
[0142] In view of this description, embodiments may include different combinations of features. Example implementations are described in the following numbered clauses. Clause 1. A method for performing radio frequency (RF) sensing using a receiving device and a reconfigurable intelligent surface (RIS) in a wireless communication system, the method comprising: configuring the RIS to reflect a line-of-sight (LOS) wireless signal toward the receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit receive point (TRP) of the wireless communication system; configuring the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system; determining a position of the object based on a position of the RIS relative to the TRP and a time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and providing the position of the object. Clause 2. The method of clause 1, wherein configuring the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device comprises controlling the RIS with a TRP or a server. Clause 3. The method of clause 1 or 2, wherein the server controls the RIS, and the server further determines a location of the receiving device and configures the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device based on the location of the receiving device. Clause 4. The method of any of clauses 1 to 3, further comprising including an identifier of the RIS in the first wireless reference signal and the second wireless reference signal. Clause 5. The method of any of clauses 1 to 4, wherein the receiving device comprises a mobile device or another TRP. Clause 6. The method of any of clauses 1 to 5, wherein the receiving device determines the location of the object. Clause 7. The method of any of clauses 1 to 6, further comprising using a receiving device to determine a reception angle comprising an angle at which the echo signal was received at the RIS, wherein the receiving device additionally determines the position of the object based on the reception angle. Clause 8. The method of any of clauses 1 to 7, further comprising: using the receiving device to determine a time gap comprising a difference between a time at which the TRP transmits a first wireless reference signal and a time at which the TRP transmits a second wireless reference signal, wherein determining the position of the object is further based on the time gap. Clause 9. The method of any of clauses 1 to 8, wherein determining the time gap comprises receiving an indication of the time gap from a server. Clause 10. The method of any of clauses 1 to 9, wherein providing the location of the object comprises providing the location of the object to an application executed by the receiving device. Clause 11. The method of any of clauses 1 to 10, further comprising sending information from the server to the receiving device indicating the location of the RIS relative to the TRP. Clause 12. The method of any of clauses 1 to 5, wherein the server determines the location of the object. Clause 13. The method of any of clauses 1 to 5 or 12, further comprising: at the server, receiving information indicating a first ToA and a second ToA from the receiving device; and using the server, determining a time difference between the first ToA and the second ToA from the information indicating the first ToA and the second ToA. Clause 14. The method of any of clauses 1 to 5, 12 or 13, further comprising using a server to determine a reception angle comprising an angle at which the echo signal was received at the RIS based on multilateration from information received from multiple receiving devices, wherein the server additionally determines the position of the object based on the reception angle. Clause 15. The method of any of clauses 1 to 5 or 12 to 14, further comprising: using the server to determine a time gap comprising a difference between a time at which the TRP transmits a first wireless reference signal and a time at which the TRP transmits a second wireless reference signal, wherein determining the position of the object is further based on the time gap. Clause 16. The method of any of clauses 1 to 15, further comprising configuring the RIS to adjust the phase, magnitude, or both, of either the LOS wireless signal or the echo signal. Clause 17. A device comprising a transceiver, a memory, and one or more processing units communicatively coupled to the transceiver and the memory, the one or more processing units configured to: configure a Reconfigurable Intelligent Surface (RIS) to transmit a line-of-sight (LOS) wireless signal toward a receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a Transmit Receive Point (TRP) of the wireless communication system; configure the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from the object of a second wireless reference signal transmitted by the TRP of the wireless communication system; determine a position of the object based on a position of the RIS relative to the TRP and a time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and provide the position of the object. Clause 17. The device of clause 17, wherein the device comprises a TRP or server, and wherein the one or more processing units are configured to control the RIS via the transceiver to configure the RIS to reflect the LOS wireless signal and the echo signal towards the receiving device. Clause 19. The device of clause 17 or 18, wherein the device comprises a server, and wherein the one or more processing units are further configured to determine a location of the receiving device and, based on the location of the receiving device, configure the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device. Clause 20. The device of any of clauses 17 to 19, wherein the one or more processing units are further configured to include an identifier of the RIS in the first wireless reference signal and the second wireless reference signal. Clause 21. A device according to any of clauses 17 to 20, wherein the receiving device comprises a mobile device or another TRP. Clause 22. A device according to any of clauses 17 to 21, wherein the device comprises a receiving device. Clause 23. A device according to any of clauses 17 to 22, wherein the one or more processing units are further configured to determine a reception angle comprising an angle at which the echo signal was received at the RIS, and wherein the one or more processing units are additionally configured to determine a position of the object based on the reception angle. Clause 24. The device of any of clauses 17 to 23, wherein the one or more processing units are further configured to determine a time gap comprising a difference between a time at which the TRP transmits a first wireless reference signal and a time at which the TRP transmits a second wireless reference signal, wherein the one or more processing units are configured to determine that the position of the object is further based on the time gap. Clause 25. A device according to any of clauses 17 to 24, wherein, to determine the time gap, the one or more processing units are configured to receive an indication of the time gap from a server. Clause 26. A device according to any of clauses 17 to 25, wherein the one or more processing units are configured to provide the position of the object to an application executed by the receiving device to provide the position of the object. Clause 27. A device according to any of clauses 17 to 26, wherein the one or more processing units are configured to receive, via the transceiver, from the server, information indicating the location of the RIS relative to the TRP. Clause 28. A device according to any of clauses 17 to 21, wherein the device comprises a server. Clause 29. A device described in any of clauses 17 to 21 or 28, wherein one or more processing units are configured to receive, via the transceiver, information indicating a first ToA and a second ToA from a receiving device, and determine a time difference between the first ToA and the second ToA from the information indicating the first ToA and the second ToA. Clause 30. A device according to any of clauses 17 to 21, 28 or 29, wherein the one or more processing units are configured to determine, based on multilateration from information received from a plurality of receiving devices, a reception angle comprising an angle at which the echo signal was received at the RIS, and additionally determine a position of the object based on the reception angle. Clause 31. The device of any of clauses 17 to 21 or 28 to 30, wherein the one or more processing units are configured to determine a time gap comprising a difference between a time at which the TRP transmits a first wireless reference signal and a time at which the TRP transmits a second wireless reference signal, and additionally determine a position of the object based on the time gap. Clause 32. A device according to any of clauses 17 to 31, wherein the one or more processing units are configured to configure the RIS to adjust the phase, magnitude, or both, of either the LOS wireless signal or the echo signal. Clause 33. A device comprising: means for configuring a reconfigurable intelligent surface (RIS) to reflect a line-of-sight (LOS) wireless signal toward a receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit receive point (TRP) of the wireless communications system; means for configuring the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communications system; means for determining a position of the object based on a position of the RIS relative to the TRP and a time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and means for providing the position of the object. Clause 34. The device of clause 33, wherein the means for configuring the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device comprises means for controlling the RIS with the TRP or server. Clause 34. A device according to clause 33 or 34, wherein the device comprises a receiving device. Clause 35. A device according to either clause 33 or 34, wherein the device comprises a server. Clause 36. A non-transitory computer-readable medium storing instructions for performing radio frequency (RF) sensing using a receiving device and a reconfigurable intelligent surface (RIS) in a wireless communication system, the instructions comprising: configuring the RIS to reflect a line-of-sight (LOS) wireless signal toward the receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit receive point (TRP) of the wireless communication system; configuring the RIS to reflect an echo signal toward the receiving device with the RIS, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system; determining a position of the object based on a position of the RIS relative to the TRP and a time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and providing the position of the object. The inventions described in the claims of the present application as originally filed are set forth below. [C1] 1. A method for performing radio frequency (RF) sensing using a receiving device and a reconfigurable intelligent surface (RIS) in a wireless communication system, the method comprising: configuring the RIS to reflect a line-of-sight (LOS) wireless signal toward the receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit receive point (TRP) of the wireless communication system; configuring the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system; The position of the object is the position of the RIS relative to the TRP; the time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and determining based on providing the location of the object; A method comprising: [C2] 3. The method of claim 1, wherein configuring the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device comprises controlling the RIS using the TRP or a server. [C3] The server controls the RIS, and the server further determining a location of the receiving device; configuring the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device based on the location of the receiving device; The method described in C2. [C4] The method of C1, further comprising including an identifier of the RIS in the first wireless reference signal and the second wireless reference signal. [C5] The method of C1, wherein the receiving device comprises a mobile device or another TRP. [C6] The method of C1, wherein the receiving device determines the location of the object. [C7] The method of claim 6, further comprising using the receiving device to determine a reception angle comprising an angle at which the echo signal was received at the RIS, wherein the receiving device additionally determines the position of the object based on the reception angle. [C8] The method of claim 6, further comprising: using the receiving device to determine a time gap comprising a difference between a time at which the TRP transmits the first wireless reference signal and a time at which the TRP transmits the second wireless reference signal, wherein determining the position of the object is further based on the time gap. [C9] The method of C8, wherein determining the time gap comprises receiving an indication of the time gap from a server. [C10] The method of C6, wherein providing the location of the object comprises providing the location of the object to an application executed by the receiving device. [C11] The method of C6, further comprising sending information from a server to the receiving device indicating the location of the RIS relative to the TRP. [C12] The method of C1, wherein a server determines the location of the object. [C13] receiving, at the server, information indicating the first ToA and the second ToA from the receiving device; determining, using the server, the time difference between the first ToA and the second ToA from the information indicating the first ToA and the second ToA; The method of C12, further comprising: [C14] determining, using the server, a reception angle comprising an angle at which the echo signal was received at the RIS based on multilateration from information received from a plurality of receiving devices; wherein the server additionally determines the position of the object based on the angle of reception. The method described in C12. [C15] The method of claim 12, further comprising: using the server to determine a time gap comprising a difference between a time at which the TRP transmits the first wireless reference signal and a time at which the TRP transmits the second wireless reference signal, wherein determining the position of the object is further based on the time gap. [C16] The method of C1, further comprising configuring the RIS to adjust the phase, magnitude, or both of either the LOS wireless signal or the echo signal. [C17] A transceiver; Memory and one or more processing units communicatively coupled to the transceiver and the memory; wherein the one or more processing units configuring a reconfigurable intelligent surface (RIS) to reflect a line-of-sight (LOS) wireless signal toward a receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit-receive point (TRP) of a wireless communication system; configuring the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system; The position of the object is the position of the RIS relative to the TRP; the time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and determining based on providing the location of the object; A device configured to: [C18] the device comprises the TRP or server; the one or more processing units are configured to control the RIS via the transceiver to configure the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device. The device described in C17. [C19] the device comprises the server, and the one or more processing units determining a location of the receiving device; configuring the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device based on the location of the receiving device; The device of C18, further configured to: [C20] The device of C17, wherein the one or more processing units are further configured to include an identifier of the RIS in the first wireless reference signal and the second wireless reference signal. [C21] The device of C17, wherein the receiving device comprises a mobile device or another TRP. [C22] The device of C17, wherein the device comprises the receiving device. [C23] The device of C22, wherein the one or more processing units are further configured to determine a reception angle comprising an angle at which the echo signal was received at the RIS, and wherein the one or more processing units are additionally configured to determine the position of the object based on the reception angle. [C24] The device of C22, wherein the one or more processing units are further configured to determine a time gap comprising a difference between a time at which the TRP transmits the first wireless reference signal and a time at which the TRP transmits the second wireless reference signal, wherein the one or more processing units are configured to determine that the position of the object is further based on the time gap. [C25] The device of C24, wherein to determine the time gap, the one or more processing units are configured to receive an indication of the time gap from a server. [C26] The device of C22, wherein, to provide the position of the object, the one or more processing units are configured to provide the position of the object to an application executed by the receiving device. [C27] The device of C22, wherein the one or more processing units are configured to receive, via the transceiver, information from a server indicating the location of the RIS relative to the TRP. [C28] The device of C17, wherein the device comprises a server. [C29] the one or more processing units: receiving information indicating the first ToA and the second ToA from the receiving device via the transceiver; determining the time difference between the first ToA and the second ToA from the information indicating the first ToA and the second ToA; 20. The device of claim 19, wherein the device is configured to: [C30] the one or more processing units: determining a reception angle comprising an angle at which the echo signal was received at the RIS based on multilateration from information received from a plurality of receiving devices; and additionally determining the position of the object based on the reception angle. 20. The device of claim 19, wherein the device is configured to: [C31] the one or more processing units: determining a time gap comprising a difference between a time at which the TRP transmits the first wireless reference signal and a time at which the TRP transmits the second wireless reference signal; Additionally, determining the position of the object based on the time gap. 20. The device of claim 19, wherein the device is configured to: [C32] The device of C17, wherein the one or more processing units are configured to configure the RIS to adjust the phase, magnitude, or both of either or both of the LOS wireless signal or the echo signal. [C33] means for configuring a reconfigurable intelligent surface (RIS) to reflect a line-of-sight (LOS) wireless signal toward a receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit-receive point (TRP) of a wireless communication system; means for configuring the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system; The position of the object is the position of the RIS relative to the TRP; the time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and a means for determining, based on the means for providing the location of the object; A device comprising: [C34] The device of C33, wherein the means for configuring the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device comprises means for controlling the RIS using the TRP or server. [C35] The device of C33, wherein the device comprises the receiving device. [C36] The device of C33, wherein the device comprises a server. [C37] 1. A non-transitory computer-readable medium storing instructions for performing radio frequency (RF) sensing using a receiving device and a reconfigurable intelligent surface (RIS) in a wireless communication system, the instructions comprising: configuring the RIS to reflect a line-of-sight (LOS) wireless signal toward a receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit-receive point (TRP) of the wireless communication system; configuring the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system; The position of the object is the position of the RIS relative to the TRP; the time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and determining based on providing the location of the object; 12. A non-transitory computer-readable medium comprising code for performing
Claims
1. 1. A method for implementing radio frequency (RF) sensing using a receiving device and a reconfigurable intelligent surface (RIS) in a wireless communication system, the method comprising: configuring the RIS to reflect a line-of-sight (LOS) wireless signal toward the receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit receive point (TRP) of the wireless communications system; configuring the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system; The position of the object the position of the RIS relative to the TRP; the time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and determining based on providing the location of the object; A method comprising:
2. configuring the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device comprises controlling the RIS with the TRP or server; Optionally, said server controls said RIS, said server further comprising: determining the location of the receiving device; configuring the RIS to reflect the LOS wireless signal and the echo signal toward the receiving device based on the location of the receiving device; The method of claim 1.
3. The method of claim 1 , further comprising including an identifier of the RIS in the first wireless reference signal and the second wireless reference signal.
4. The method of claim 1 , wherein the receiving device comprises a mobile device or another TRP.
5. The method of claim 1 , wherein the receiving device determines the location of the object.
6. 6. The method of claim 5, further comprising: using the receiving device to determine a reception angle comprising an angle at which the echo signal was received at the RIS, wherein the receiving device additionally determines the position of the object based on the reception angle.
7. 6. The method of claim 5, further comprising: using the receiving device to determine a time gap comprising a difference between a time at which the TRP transmits the first wireless reference signal and a time at which the TRP transmits the second wireless reference signal; wherein determining the position of the object further comprises based on the time gap, and optionally, determining the time gap comprises receiving an indication of the time gap from a server.
8. The method of claim 5 , wherein providing the location of the object comprises providing the location of the object to an application executed by the receiving device.
9. The method of claim 5 , further comprising sending information from a server to the receiving device indicating the location of the RIS relative to the TRP.
10. The method of claim 1 , wherein a server determines the location of the object.
11. receiving, at the server, information indicating the first ToA and the second ToA from the receiving device; using the server to determine the time difference between the first ToA and the second ToA from the information indicative of the first ToA and the second ToA; The method of claim 10 further comprising:
12. determining, using the server, a reception angle comprising an angle at which the echo signal was received at the RIS based on multilateration from information received from a plurality of receiving devices; wherein the server additionally determines the position of the object based on the angle of reception; and / or 11. The method of claim 10, further comprising: using the server to determine a time gap comprising a difference between a time at which the TRP transmits the first wireless reference signal and a time at which the TRP transmits the second wireless reference signal, wherein determining the position of the object is further based on the time gap.
13. The method of claim 1 , further comprising configuring the RIS to adjust the phase, magnitude, or both of either the LOS wireless signal or the echo signal.
14. means for configuring a reconfigurable intelligent surface (RIS) to reflect a line-of-sight (LOS) wireless signal toward a receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit receive point (TRP) of a wireless communication system; means for configuring the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communications system; The position of the object the position of the RIS relative to the TRP; the time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and a means for determining, based on the means for providing the location of the object; A device comprising:
15. 1. A non-transitory computer-readable medium storing instructions for performing radio frequency (RF) sensing using a receiving device and a reconfigurable intelligent surface (RIS) in a wireless communication system, the instructions comprising: configuring the RIS to reflect a line-of-sight (LOS) wireless signal toward a receiving device, wherein the LOS wireless signal comprises a first wireless reference signal transmitted by a transmit receive point (TRP) of the wireless communications system; configuring the RIS to reflect an echo signal toward the receiving device, wherein the echo signal comprises a reflection from an object of a second wireless reference signal transmitted by the TRP of the wireless communication system; The position of the object the position of the RIS relative to the TRP; the time difference between a first time of arrival (ToA) of the LOS wireless signal at the receiving device and a second ToA of the echo signal at the receiving device; and determining based on providing the location of the object; 12. A non-transitory computer-readable medium comprising code for performing
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