Calculation of Downlink Positioning Reference Signal (PRS) Symbol Duration for PRS Buffering Purposes

By processing and buffering PRS within a time window of less than or equal to an integer number of OFDM symbols, the method addresses the efficiency and latency challenges in 5G wireless networks, enhancing PRS handling for user equipment.

JP7727658B2Active Publication Date: 2025-08-21QUALCOMM INC
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
JP2022562360
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-04-02
Filing Date
2021-04-05
Publication Date
2025-08-21
Estimated Expiration
2041-04-05

AI Technical Summary

Technical Problem

The challenge in 5G wireless communication systems is the efficient processing and buffering of positioning reference signals (PRS) due to the increased demand for higher data rates, more connections, and reduced latency, which existing systems struggle to manage effectively.

Method used

A method and apparatus for user equipment (UE) to process and buffer positioning reference signals (PRS) within a time window that is less than or equal to an integer number of orthogonal frequency division multiplexing (OFDM) symbols, allowing for efficient handling of PRS resources from both a reference and neighboring transmission-reception points (TRPs).

Benefits of technology

This approach enhances the processing and buffering capabilities of PRS, improving the efficiency and latency performance in 5G wireless networks, supporting the increased demands of 5G systems.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007727658000041
    Figure 0007727658000041
  • Figure 0007727658000042
    Figure 0007727658000042
  • Figure 0007727658000043
    Figure 0007727658000043
Patent Text Reader

Abstract

In one aspect, a user equipment (UE) receives at least one positioning reference signal (PRS) resource from a reference transmission reception point (TRP) and one or more neighboring TRPs, and processes the at least one PRS resource during a time window, the time window having a length less than or equal to an integer number of orthogonal frequency division multiplexing (OFDM) symbols of the at least one PRS resource that the UE can process, buffer, or both within the time window.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This patent application claims the benefit of U.S. Provisional Application No. 63 / 010,426, filed April 15, 2020, entitled "CALCULATION OF DOWNLINK POSITIONING REFERENCE SIGNAL (PRS) SYMBOL DURATION FOR PRS BUFFERING PURPOSES," and U.S. Non-Provisional Application No. 17 / 221,581, filed April 2, 2021, entitled "CALCULATION OF DOWNLINK POSITIONING REFERENCE SIGNAL (PRS) SYMBOL DURATION FOR PRS BUFFERING PURPOSES," both of which are assigned to the assignee of the present application and are expressly incorporated herein by reference in their entireties.

[0002] Aspects of the present disclosure relate generally to wireless communications. [Background technology]

[0003] Wireless communication systems have evolved through various generations, including first-generation analog wireless telephone service (1G), second-generation (2G) digital wireless telephone service (including interim 2.5G and 2.75G networks), third-generation (3G) high-speed data, Internet-enabled wireless service, and fourth-generation (4G) service (e.g., Long Term Evolution (LTE) or WiMax). Currently, there are many different types of wireless communication systems in use, including cellular systems and personal communications services (PCS) systems. Examples of known cellular systems include the Cellular Analog Advanced Mobile Phone System (AMPS), and digital cellular systems based on code division multiple access (CDMA), frequency division multiple access (FDMA), time division multiple access (TDMA), Global System for Mobile Communications (GSM), etc.

[0004] The fifth-generation (5G) wireless standard, known as New Radio (NR), promises higher data rates, more connections, and better coverage, among other improvements. According to the Next Generation Mobile Network Alliance, the 5G standard is designed to provide data rates of tens of megabits per second to each of tens of thousands of users, delivering 1 gigabit per second to dozens of workers on an office floor. To support large-scale sensor deployments, hundreds of thousands of simultaneous connections should be supported. Therefore, the spectral efficiency of 5G mobile communications should be significantly enhanced compared to the current 4G standard. Furthermore, signaling efficiency should be enhanced and latency significantly reduced compared to current standards. Summary of the Invention [Means for solving the problem]

[0005] The following presents a simplified summary related to one or more aspects disclosed herein. As such, the following summary is not intended to be an extensive overview related to all contemplated aspects, nor is it intended to identify key or critical elements related to all contemplated aspects or to delineate the scope related to any particular aspect. As such, the following summary has the sole purpose of presenting some concepts related to one or more aspects related to the mechanisms disclosed herein in a simplified form prior to the detailed description presented below.

[0006] In one aspect, a method of wireless communication performed by a user equipment (UE) includes receiving at least one positioning reference signal (PRS) resource from a reference transmission-reception point (TRP) and one or more neighboring TRPs, and processing the at least one PRS resource during a time window, the length of the time window being less than or equal to an integer number of orthogonal frequency division multiplexing (OFDM) symbols of the at least one PRS resource that the UE is able to process, buffer, or both within the time window.

[0007] In one aspect, a user equipment (UE) includes a memory, a transceiver, and at least one processor communicatively coupled to the memory and the transceiver, wherein the at least one processor is configured to receive at least one positioning reference signal (PRS) resource from a reference transmit reception point (TRP) and one or more neighboring TRPs via the transceiver and process the at least one PRS resource during a time window, wherein the length of the time window is less than or equal to an integer number of orthogonal frequency division multiplexing (OFDM) symbols of the at least one PRS resource that the UE is able to process, buffer, or both within the time window.

[0008] In one aspect, a user equipment (UE) includes means for receiving at least one positioning reference signal (PRS) resource from a reference transmission reception point (TRP) and one or more neighboring TRPs, and means for processing the at least one PRS resource during a time window, the length of the time window being less than or equal to an integer number of orthogonal frequency division multiplexing (OFDM) symbols of the at least one PRS resource that the UE is able to process, buffer, or both within the time window.

[0009] In one aspect, a non-transitory computer-readable medium stores computer-executable instructions that, when executed by a user equipment (UE), cause the UE to receive at least one positioning reference signal (PRS) resource from a reference transmission reception point (TRP) and one or more neighboring TRPs and process the at least one PRS resource during a time window, the length of the time window being less than or equal to an integer number of orthogonal frequency division multiplexing (OFDM) symbols of the at least one PRS resource that the UE is able to process, buffer, or both within the time window.

[0010] Other objects and advantages associated with the embodiments disclosed herein will become apparent to those skilled in the art based on the accompanying drawings and detailed description.

[0011] The accompanying drawings are presented to aid in the explanation of various aspects of the present disclosure and are provided solely for the purpose of illustrating the aspects and not for the purpose of limiting the aspects. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 1 illustrates an exemplary wireless communication system according to aspects of the present disclosure. [Figure 2A] FIG. 1 illustrates an exemplary wireless network structure according to aspects of the present disclosure. [Figure 2B] FIG. 1 illustrates an exemplary wireless network structure according to aspects of the present disclosure. [Figure 3A] 1 is a simplified block diagram of several sample aspects of components that may be employed in a user equipment (UE) and configured to support communication as taught herein; [Figure 3B] 1 is a simplified block diagram of several sample aspects of components that may be employed in a base station and configured to support communication as taught herein; [Figure 3C]1 is a simplified block diagram of several sample aspects of components that may be employed in a network entity and configured to support communications as taught herein; [Figure 4A] FIG. 2 illustrates an exemplary frame structure according to aspects of the present disclosure. [Figure 4B] FIG. 1 illustrates an example channel within a frame structure according to an aspect of the present disclosure. [Figure 5] FIG. 1 is a diagram of an example radio frequency (RF) signal processing procedure, according to an aspect of the present disclosure. [Figure 6] FIG. 1 illustrates an example of slot-based positioning reference signal (PRS) processing, according to aspects of the present disclosure. [Figure 7] FIG. 10 illustrates an example of slot-based buffering with symbol alignment toward the maximum interval containing potential PRSs in a slot, according to an aspect of the disclosure. [Figure 8] FIG. 10 illustrates another example of slot-based buffering with symbol alignment toward the maximum interval containing potential PRSs in a slot, according to an aspect of the disclosure. [Figure 9] FIG. 10 illustrates an example of a symbol-level PRS duration to be buffered, according to an aspect of the disclosure. [Figure 10] FIG. 10 illustrates another example of symbol-level PRS durations to be buffered according to an aspect of the disclosure. [Figure 11] FIG. 10 illustrates an example of slot-based buffering for a slot having two disjoint intervals with potential PRS symbols at the beginning and end of the slot, according to an embodiment of the disclosure. [Figure 12] FIG. 1 illustrates an exemplary method of wireless communication according to an aspect of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0013] Aspects of the present disclosure are provided in the following description and related drawings, directed to various examples provided for illustrative purposes. Alternative aspects may be devised without departing from the scope of the present disclosure. Additionally, well-known elements of the present disclosure will not be described in detail or will be omitted so as not to obscure the relevant details of the present disclosure.

[0014] The words "exemplary" and / or "example" are used herein to mean "serving as an example, instance, or illustration." Any aspect described herein as "exemplary" and / or "example" is not necessarily to be construed as preferred or advantageous over other aspects. Likewise, the term "aspects of the present disclosure" does not require that all aspects of the present disclosure include the discussed feature, advantage or mode of operation.

[0015] Those skilled in the art will appreciate that the information and signals described below may be represented using any of a variety of different technologies and techniques. For example, data, instructions, commands, information, signals, bits, symbols, and chips that may be referenced throughout the following description may be represented by voltages, currents, electromagnetic waves, magnetic fields or particles, optical fields or particles, or any combination thereof, depending in part on the particular application, in part on the desired design, in part on the corresponding technology, etc.

[0016] Further, many aspects are described in terms of sequences of actions to be performed by, for example, elements of a computing device. It will be recognized that the various actions described herein may be performed by specific circuitry (e.g., an application-specific integrated circuit (ASIC)), by program instructions executed by one or more processors, or a combination of both. Additionally, the sequences of actions described herein may be considered to be embodied entirely in any form of non-transitory computer-readable storage medium storing a corresponding set of computer instructions that, when executed, cause or instruct the associated processor(s) of the device to perform the functionality described herein. Accordingly, various aspects of the present disclosure may be embodied in a number of different forms, all of which are contemplated to be within the scope of the claimed subject matter. Additionally, for each aspect described herein, the corresponding form of any such aspect may be described herein, for example, as “logic configured to” perform the described actions.

[0017] The terms “user equipment” (UE) and “base station,” as used herein, are not intended to be specific to or otherwise limited to any particular radio access technology (RAT) unless otherwise specified. In general, a UE may be any wireless communication device (e.g., a mobile phone, a router, a tablet computer, a laptop computer, a consumer asset locating device, a wearable (e.g., a smart watch, smart glasses, an augmented reality (AR) / virtual reality (VR) headset, etc.), a vehicle (e.g., an automobile, a motorcycle, a bicycle, etc.), an Internet of Things (IoT) device, etc.) used by a user to communicate over a wireless communication network. A UE may be mobile or may be stationary (e.g., at some times) and may communicate with a radio access network (RAN). As used herein, the term “UE” may be referred to interchangeably as an “access terminal” or “AT,” a “client device,” a “wireless device,” a “subscriber device,” a “subscriber terminal,” a “subscriber station,” a “user terminal” or “UT,” a “mobile device,” a “mobile terminal,” a “mobile station,” or variations thereof. Generally, a UE can communicate with a core network via a RAN, through which the UE can be connected to external networks such as the Internet and to other UEs. Of course, other mechanisms for connecting to the core network and / or the Internet are also possible for a UE, such as via a wired access network, a wireless local area network (WLAN) network (e.g., based on the Institute of Electrical and Electronics Engineers (IEEE) 802.11 specifications, etc.), etc.

[0018] A base station may operate according to one of several RATs with which it communicates with the UE, depending on the network in which the UE is deployed, and may alternatively be referred to as an access point (AP), network node, Node B, evolved Node B (eNB), next-generation eNB (ng-eNB), New Radio (NR) Node B (also referred to as gNB or gNode B), etc. Base stations may be used primarily to support wireless access by UEs, including supporting data, voice, and / or signaling connections for supported UEs. In some systems, base stations may provide purely edge node signaling functionality, while in other systems, base stations may provide additional control and / or network management functions. A communication link through which a UE can send signals to a base station is called an uplink (UL) channel (e.g., a reverse traffic channel, a reverse control channel, an access channel, etc.). A communication link through which a base station can send signals to a UE is called a downlink (DL) channel or a forward link channel (e.g., a paging channel, a control channel, a broadcast channel, a forward traffic channel, etc.). As used herein, the term Traffic Channel (TCH) can refer to either an uplink / reverse traffic channel or a downlink / forward traffic channel.

[0019] The term "base station" can refer to a single physical transmit / receive point (TRP) or multiple physical TRPs, which may or may not be collocated. For example, when the term "base station" refers to a single physical TRP, the physical TRP may be an antenna of the base station corresponding to the base station's cell (or several cell sectors). When the term "base station" refers to multiple collocated physical TRPs, the physical TRPs may be an array of antennas of the base station (e.g., as in a multiple-input multiple-output (MIMO) system or when the base station employs beamforming). When the term "base station" refers to multiple non-collocated physical TRPs, the physical TRPs 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). Alternatively, a non-co-located physical TRP may be a serving base station that receives measurement reports from the UE and neighboring base stations whose reference radio frequency (RF) signals the UE is measuring. Because a TRP is a point from which a base station transmits and receives wireless signals, as used herein, references to transmission from or reception at a base station should be understood as references to a particular TRP of the base station.

[0020] In some implementations that support positioning of UEs, a base station may not support wireless access by the UE (e.g., may not support a data connection, a voice connection, and / or a signaling connection for the UE), but instead may transmit reference signals to the UE to be measured by the UE and / or may receive and measure signals transmitted by the UE. Such a base station may be referred to as a positioning beacon (e.g., when transmitting signals to the UE) and / or a location measurement unit (e.g., when receiving and measuring signals from the UE).

[0021] An "RF signal" comprises electromagnetic waves of a given frequency that transport information through space between a transmitter and a receiver. As used herein, a transmitter may transmit a single "RF signal" or multiple "RF signals" to a receiver. However, due to the propagation characteristics of RF signals through a multipath channel, the receiver may receive multiple "RF signals" corresponding to each transmitted RF signal. The same RF signal transmitted over different paths between a transmitter and a receiver may be referred to as a "multipath" RF signal. As used herein, an RF signal may also be referred to as a "wireless signal" or simply a "signal" when it is clear from the context that the term "signal" refers to a wireless signal or an RF signal.

[0022] 1 illustrates an exemplary wireless communication system 100 according to an aspect of the present disclosure. The wireless communication system 100 (sometimes referred to as a wireless wide area network (WWAN)) may include various base stations 102 (labeled “BS”) and various UEs 104. The base stations 102 may include macrocell base stations (high-power cellular base stations) and / or small cell base stations (low-power cellular base stations). In one aspect, the macrocell base stations may include eNBs and / or ng-eNBs, where the wireless communication system 100 corresponds to an LTE network, or gNBs, where the wireless communication system 100 corresponds to an NR network, or a combination of both, and the small cell base stations may include femtocells, picocells, microcells, etc.

[0023] The base stations 102 may collectively form a RAN and may interface with a core network 170 (e.g., Evolved Packet Core (EPC) or 5G Core (5GC)) through backhaul links 122 and to one or more location servers 172 (e.g., a Location Management Function (LMF) or a Secure User Plane Localization (SUPL) Location Platform (SLP)) through the core network 170. The location servers 172 may be part of the core network 170 or may be external to the core network 170. In addition to other functions, the base stations 102 may perform functions related to one or more of the following: forwarding user data, radio channel encryption and decryption, integrity protection, header compression, mobility control functions (e.g., handover, dual connectivity), inter-cell interference coordination, connection setup and release, load balancing, distribution for non-access stratum (NAS) messages, NAS node selection, synchronization, RAN sharing, Multimedia Broadcast Multicast Service (MBMS), subscriber and equipment tracing, RAN Information Management (RIM), paging, positioning, and distribution of alert messages. The base stations 102 may communicate with each other directly or indirectly (e.g., through EPC / 5GC) via backhaul links 134, which may be wired or wireless.

[0024] The base stations 102 may wirelessly communicate with the UEs 104. Each of the base stations 102 may provide communication coverage for a respective geographic coverage area 110. In an aspect, one or more cells may be supported by the base stations 102 in each geographic coverage area 110. A “cell” is a logical communication entity used for communication with a base station (e.g., over some frequency resources referred to as a carrier frequency, component carrier, carrier, band, etc.) and may be associated with an identifier (e.g., physical cell identifier (PCI), enhanced cell identifier (ECI), virtual cell identifier (VCI), cell global identifier (CGI), etc.) to distinguish between cells operating over the same or different carrier frequencies. In some cases, different cells may be configured according to different protocol types (e.g., machine type communication (MTC), narrowband IoT (NB-IoT), enhanced mobile broadband (eMBB), or others) that may provide access to different types of UEs. Because a cell is supported by a particular base station, the term "cell" can refer to either or both of the logical communication entity and the base station that supports it, depending on the context. Additionally, because a TRP is typically the physical transmission point of a cell, the terms "cell" and "TRP" are sometimes used interchangeably. In some cases, the term "cell" can also refer to the geographic coverage area (e.g., sector) of a base station, so long as a carrier frequency can be detected and used for communication within some portion of the geographic coverage area 110.

[0025] While adjacent to macrocell base stations 102, the geographic coverage areas 110 may partially overlap (e.g., within handover regions), and some of the geographic coverage areas 110 may be significantly overlapped by larger geographic coverage areas 110. For example, a small cell base station 102' (labeled "SC" instead of "small cell") may have a geographic coverage area 110' that significantly overlaps with the geographic coverage area 110 of one or more macrocell base stations 102. A network including both small cell base stations and macrocell base stations may be referred to as a heterogeneous network. A heterogeneous network may also include Home eNBs (HeNBs) that may serve restricted groups called closed subscriber groups (CSGs).

[0026] The communication link 120 between the base station 102 and the UE 104 may include uplink (also called reverse link) transmissions from the UE 104 to the base station 102, and / or downlink (DL) (also called forward link) transmissions from the base station 102 to the UE 104. The communication link 120 may use MIMO antenna techniques, including spatial multiplexing, beamforming, and / or transmit diversity. The communication link 120 may be over one or more carrier frequencies. The allocation of carriers may be asymmetric for the downlink and uplink (e.g., more or fewer carriers may be allocated for the downlink than for the uplink).

[0027] The wireless communication system 100 may further include a wireless local area network (WLAN) access point (AP) 150 communicating with a WLAN station (STA) 152 via a communication link 154 in an unlicensed frequency spectrum (e.g., 5 GHz). When communicating in the unlicensed frequency spectrum, the WLAN STA 152 and / or the WLAN AP 150 may perform a clear channel assessment (CCA) or listen-before-talk (LBT) procedure before communicating to determine whether a channel is available.

[0028] The small cell base station 102' may operate in a licensed and / or unlicensed frequency spectrum. When operating in an unlicensed frequency spectrum, the small cell base station 102' may employ LTE or NR technology and may use the same 5 GHz unlicensed frequency spectrum used by the WLAN AP 150. A small cell base station 102' employing LTE / 5G in an unlicensed frequency spectrum may extend coverage to and / or increase the capacity of an access network. NR in an unlicensed spectrum may be referred to as NR-U. LTE in an unlicensed spectrum may be referred to as LTE-U, licensed assisted access (LAA), or MultiFire.

[0029] The wireless communication system 100 may further include a millimeter-wave (mmW) base station 180 in communication with the UE 182 and capable of operating within mmW and / or quasi-mmW frequencies. Extremely high frequency (EHF) is the RF portion of the electromagnetic spectrum. EHF ranges from 30 GHz to 300 GHz and has wavelengths between 1 and 10 millimeters. Radio waves in this band are sometimes referred to as millimeter waves. Sub-mmW may extend down to frequencies of 3 GHz, with wavelengths of 100 millimeters. The very high frequency (SHF) band extends between 3 GHz and 30 GHz, also known as centimeter waves. Communications using the mmW / quasi-mmW radio frequency bands have high path loss and relatively short distances. The mmW base station 180 and the UE 182 may utilize beamforming (transmit and / or receive) over the mmW communication link 184 to compensate for the significant path loss and short distances. It will be appreciated that in alternative configurations, one or more base stations 102 may also transmit using mmW or quasi-mmW and beamforming. Therefore, it will be appreciated that the above illustrations are merely exemplary and should not be construed as limiting the various aspects disclosed herein.

[0030] Transmit beamforming is a technique for focusing an RF signal in a particular direction. Traditionally, when a network node (e.g., a base station) broadcasts an RF signal, it broadcasts the signal in all directions (omnidirectionally). With transmit beamforming, the network node determines where a given target device (e.g., UE) is located (relative to the transmitting network node) and projects a stronger downlink RF signal in that particular direction, thereby providing a faster and more powerful RF signal (in terms of data rate) to the receiving device. To change the directionality of the RF signal when transmitting, the network node can control the phase and relative amplitude of the RF signal at each of one or more transmitters broadcasting the RF signal. For example, the network node may use an array of antennas (called a “phased array” or “antenna array”) that creates a beam of RF waves that can be “steered” to points in different directions without actually moving the antennas. Specifically, RF currents from the transmitter are fed to individual antennas with the appropriate phase relationship so that the radio waves from the separate antennas add together to enhance radiation in desired directions while suppressing or eliminating radiation in undesired directions.

[0031] A transmit beam may be quasi-colocated, meaning that the transmit beam appears to a receiver (e.g., a UE) to have the same parameters regardless of whether the network node's own transmit antennas are physically colocated. In NR, there are four types of quasi-colocation (QCL) relationships. In particular, a QCL relationship of a given type means that some parameters for a second reference RF signal on a second beam can be derived from information about a source reference RF signal on a source beam. Thus, if the source reference RF signal is QCL Type A, the receiver can use the source reference RF signal to estimate the Doppler shift, Doppler spread, mean delay, and delay spread of the second reference RF signal transmitted on the same channel. If the source reference RF signal is QCL Type B, the receiver can use the source reference RF signal to estimate the Doppler shift and Doppler spread of the second reference RF signal transmitted on the same channel. If the source reference RF signal is QCL Type C, the receiver can use the source reference RF signal to estimate the Doppler shift and average delay of a second reference RF signal transmitted on the same channel. If the source reference RF signal is QCL Type D, the receiver can use the source reference RF signal to estimate spatial reception parameters of a second reference RF signal transmitted on the same channel.

[0032] In receive beamforming, a receiver uses receive beams to amplify RF signals detected on a given channel. For example, the receiver can increase the gain setting and / or adjust the phase setting of an antenna array in a particular direction to amplify (e.g., increase the gain level of) RF signals received from that direction. Thus, when a receiver is said to beamform in a direction, it means that the beam gain in that direction is greater than the beam gains along other directions, or that the beam gain in that direction is greatest compared to the beam gains in that direction of all other receive beams available to the receiver. This results in a stronger received signal strength (e.g., reference signal received power (RSRP), reference signal received quality (RSRQ), signal-to-interference-plus-noise ratio (SINR), etc.) of RF signals received from that direction.

[0033] The transmit beam and the receive beam may be spatially related. A spatial relationship means that parameters for a second beam (e.g., a transmit beam or a receive beam) for a second reference signal may be derived from information about a first beam (e.g., a receive beam or a transmit beam) for a first reference signal. For example, a UE may use a particular receive beam to receive a reference downlink reference signal (e.g., a synchronization signal block (SSB)) from a base station. The UE can then form a transmit beam for sending an uplink reference signal (e.g., a sounding reference signal (SRS)) to that base station based on the parameters of the receive beam.

[0034] Note that a "downlink" beam may be either a transmit beam or a receive beam, depending on the entity that forms it. For example, if a base station forms a downlink beam to transmit a reference signal to a UE, the downlink beam is a transmit beam. However, if the UE forms a downlink beam, the downlink beam is a receive beam for receiving a downlink reference signal. Similarly, an "uplink" beam may be either a transmit beam or a receive beam, depending on the entity that forms it. For example, if a base station forms an uplink beam, the uplink beam is an uplink receive beam, and if the UE forms an uplink beam, the uplink beam is an uplink transmit beam.

[0035] In 5G, the frequency spectrum in which wireless nodes (e.g., base stations 102 / 180, UEs 104 / 182) operate is divided into multiple frequency ranges: FR1 (450 MHz to 6000 MHz), FR2 (24250 MHz to 52600 MHz), FR3 (above 52600 MHz), and FR4 (between FR1 and FR2). The mmW frequency band generally includes the FR2, FR3, and FR4 frequency ranges. Thus, the terms “mmW” and “FR2” or “FR3” or “FR4” may generally be used interchangeably.

[0036] In a multi-carrier system such as 5G, one of the carrier frequencies is referred to as the “primary carrier” or “anchor carrier” or “primary serving cell” or “PCell,” and the remaining carrier frequencies are referred to as “secondary carriers” or “secondary serving cells” or “SCells.” In carrier aggregation, the anchor carrier is the carrier operating on the primary frequency (e.g., FR1) utilized by the UE 104 / 182 and the cell on which the UE 104 / 182 either performs an initial radio resource control (RRC) connection establishment procedure or initiates an RRC connection re-establishment procedure. The primary carrier carries all common control channels and UE-specific control channels and may be a carrier among licensed frequencies (although this is not always the case). The secondary carrier is a carrier operating on a second frequency (e.g., FR2) that may be configured once an RRC connection is established between the UE 104 and the anchor carrier and may be used to provide additional radio resources. In some cases, the secondary carrier may be a carrier among unlicensed frequencies. Because both the primary uplink carrier and the primary downlink carrier are typically UE-specific, the secondary carrier may contain only the necessary signaling information and signals; e.g., UE-specific signaling information and signals may not be present in the secondary carrier. This means that different UEs 104 / 182 in a cell may have different downlink primary carriers. The same applies for the uplink primary carrier. The network may change the primary carrier of any UE 104 / 182 at any time. This is done, for example, to balance the load on different carriers. Because a "serving cell" (whether PCell or SCell) corresponds to a carrier frequency / component carrier over which several base stations are communicating, terms such as "cell," "serving cell," "component carrier," and "carrier frequency" may be used interchangeably.

[0037] For example, still referring to FIG. 1 , one of the frequencies utilized by the macrocell base station 102 may be an anchor carrier (i.e., “PCell”), and other frequencies utilized by the macrocell base station 102 and / or the mmW base station 180 may be secondary carriers (“SCells”). Simultaneous transmission and / or reception of multiple carriers allows the UE 104 / 182 to significantly increase its data transmission and / or data reception rates. For example, two aggregated 20 MHz carriers in a multi-carrier system would theoretically lead to a two-fold increase in data rate (i.e., 40 MHz) compared to that achieved with a single 20 MHz carrier.

[0038] Wireless communications system 100 may further include a UE 164, which may communicate with macrocell base station 102 via communications link 120 and / or with mmW base station 180 via mmW communications link 184. For example, macrocell base station 102 may support a PCell and one or more SCells for UE 164, and mmW base station 180 may support one or more SCells for UE 164.

[0039] In the example of FIG. 1 , one or more Earth-orbiting satellite positioning system (SPS) space vehicles (SVs) 112 (e.g., satellites) may be used as independent sources of location information for any of the illustrated UEs (shown in FIG. 1 as a single UE 104 for simplicity). The UE 104 may include one or more dedicated SPS receivers specifically designed to receive SPS signals 124 to derive geolocation information from the SVs 112. An SPS typically includes a system of transmitters (e.g., SVs 112) positioned to enable receivers (e.g., UEs 104) to determine their location on or above the Earth based, at least in part, on signals received from the transmitters (e.g., SPS signals 124). Such transmitters typically transmit signals marked with a repeating pseudorandom noise (PN) code of a set number of chips. While typically located within the SVs 112, transmitters may sometimes be located on ground-based control stations, base stations 102, and / or other UEs 104.

[0040] Use of SPS signals 124 may be augmented by various satellite-based augmentation systems (SBAS) that may be associated with or otherwise enabled for use with one or more global and / or regional navigation satellite systems. For example, SBAS may include augmentation systems that provide integrity information, differential corrections, and the like, such as the Wide Area Augmentation System (WAAS), the European Geostationary Navigation Overlay Service (EGNOS), the Multifunction Satellite Augmentation System (MSAS), the Global Positioning System (GPS)-Aided Geo-Augmented Navigation, or the GPS and Geo-Augmented Navigation System (GAGAN). Thus, as used herein, SPS may include any combination of one or more global and / or regional navigation satellite systems and / or augmentation systems, and SPS signals 124 may include SPS, SPS-like signals, and / or other signals associated with such one or more SPSs.

[0041] The wireless communication system 100 may further include one or more UEs, such as a UE 190, that indirectly connect to one or more communication networks via one or more device-to-device (D2D) peer-to-peer (P2P) links (referred to as “sidelinks”). In the example of FIG. 1, the UE 190 has a D2D P2P link 192 with one of the UEs 104 connected to one of the base stations 102 (e.g., through which the UE 190 may indirectly obtain cellular connectivity), and a D2D P2P link 194 with a WLAN STA 152 connected to a WLAN AP 150 (through which the UE 190 may indirectly obtain WLAN-based Internet connectivity). In one example, the D2D P2P links 192 and 194 may be supported using any well-known D2D RAT, such as LTE Direct (LTE-D), WiFi Direct (WiFi-D), Bluetooth®, etc.

[0042] 2A shows an example wireless network structure 200. For example, a 5GC 210 (also referred to as a Next Generation Core (NGC)) can be viewed functionally as control plane (C-plane) functions 214 (e.g., UE registration, authentication, network access, gateway selection, etc.) and user plane (U-plane) functions 212 (e.g., UE gateway functionality, access to data networks, IP routing, etc.), which operate cooperatively to form a core network. A user plane interface (NG-U) 213 and a control plane interface (NG-C) 215 connect a gNB 222 to the 5GC 210, specifically to the user plane function 212 and the control plane function 214, respectively. In an additional configuration, an ng-eNB 224 may also be connected to the 5GC 210 via the NG-C 215 to the control plane function 214 and the NG-U 213 to the user plane function 212. Additionally, the ng-eNB 224 may communicate directly with the gNB 222 via a backhaul connection 223. In some configurations, the Next Generation RAN (NG-RAN) 220 may have one or more gNBs 222, while other configurations include one or more of both an ng-eNB 224 and a gNB 222. Either the gNB 222 or the ng-eNB 224 (or both) may communicate with one or more UEs 204 (e.g., any of the UEs described herein).

[0043] Another optional aspect may include a location server 230 that may be in communication with the 5GC 210 to provide location assistance to the UE 204. The location servers 230 may be implemented as multiple separate servers (e.g., physically separate servers, different software modules on a single server, different software modules spread across multiple physical servers, etc.), or alternatively, each may correspond to a single server. The location servers 230 may be configured to support one or more location services for UEs 204 that can connect to the location server 230 via the core network 5GC 210 and / or via the Internet (not shown). Furthermore, the location server 230 may be integrated into a component of the core network or alternatively, may be external to the core network (e.g., a third-party server, such as an original equipment manufacturer (OEM) server or a service server).

[0044] 2B shows another example wireless network structure 250. A 5GC 260 (which may correspond to 5GC 210 in FIG. 2A ) may be viewed functionally as control plane functions provided by an Access and Mobility Management Function (AMF) 264 and user plane functions provided by a User Plane Function (UPF) 262, which operate cooperatively to form a core network (i.e., 5GC 260). The functions of the AMF 264 include registration management, connection management, reachability management, mobility management, lawful interception, transport for session management (SM) messages between one or more UEs 204 (e.g., any of the UEs described herein) and a Session Management Function (SMF) 266, transparent proxy services for routing SM messages, access authentication and access authorization, transport for short message service (SMS) messages between the UE 204 and a short message service function (SMSF) (not shown), and a security anchor functionality (SEAF). The AMF 264 also interacts with an Authentication Server Function (AUSF) (not shown) and the UE 204 to receive intermediate keys established as a result of the UE 204 authentication process. In the case of UMTS (Universal Mobile Telecommunications System) Subscriber Identity Module (USIM)-based authentication, the AMF 264 retrieves security material from the ASF. The AMF 264's functions also include Security Context Management (SCM). The SCM receives keys from the SEAF that the SCM uses to derive access network-specific keys. The AMF 264's functionality also includes location service management for regulated services, transport for location service messages between the UE 204 and the Location Management Function (LMF) 270 (acting as the location server 230), transport for location service messages between the NG-RAN 220 and the LMF 270, EPS bearer identifier allocation for interworking with the Evolved Packet System (EPS), and UE 204 mobility event notification. In addition, AMF264 also supports functionality for non-3GPP (Third Generation Partnership Project) access networks.

[0045] The functions of the UPF 262 include acting as an anchor point for intra- / inter-RAT mobility (when applicable), acting as an outer protocol data unit (PDU) session point for interconnection to a data network (not shown), routing and forwarding packets, packet inspection, user plane policy rule enforcement (e.g., gating, redirection, traffic steering), lawful interception (user plane collection), traffic usage reporting, quality of service (QoS) processing for the user plane (e.g., uplink / downlink rate enforcement, reflective QoS marking in the downlink), uplink traffic validation (service data flow (SDF) to QoS flow mapping), transport-level packet marking in the uplink and downlink, downlink packet buffering and downlink data notification triggering, and sending and forwarding one or more "end markers" to the source RAN node. The UPF 262 may also support the transfer of location service messages over the user plane between the UE 204 and a location server such as the SLP 272.

[0046] The functions of the SMF 266 include session management, UE Internet Protocol (IP) address allocation and management, selection and control of user plane functions, configuration of traffic steering in the UPF 262 to route traffic to the appropriate destination, control of policy enforcement and part of QoS, and downlink data notification. The interface through which the SMF 266 communicates with the AMF 264 is called the N11 interface.

[0047] Another optional aspect may include an LMF 270, which may be in communication with the 5GC 260 to provide location assistance to the UE 204. The LMF 270 may be implemented as multiple separate servers (e.g., physically separate servers, different software modules on a single server, different software modules spread across multiple physical servers, etc.), or alternatively, each may correspond to a single server. The LMF 270 may be configured to support one or more location services for UEs 204 that can connect to the LMF 270 via the core network 5GC 260 and / or via the Internet (not shown). The SLP 272 may support similar functions as the LMF 270, while the LMF 270 may communicate with the AMF 264, the NG-RAN 220, and the UE 204 via the control plane (e.g., using interfaces and protocols intended to convey signaling messages rather than voice or data), and the SLP 272 may communicate with the UE 204 and external clients (not shown in FIG. 2B) via the user plane (e.g., using protocols intended to carry voice and / or data, such as Transmission Control Protocol (TCP) and / or IP).

[0048] The user plane interface 263 and the control plane interface 265 connect the 5GC 260, specifically the UPF 262 and the AMF 264, to one or more gNBs 222 and / or ng-eNBs 224, respectively, in the NG-RAN 220. The interface between the gNBs 222 and / or ng-eNBs 224 and the AMF 264 is referred to as the “N2” interface, and the interface between the gNBs 222 and / or ng-eNBs 224 and the UPF 262 is referred to as the “N3” interface. The gNBs 222 and / or ng-eNBs 224 of the NG-RAN 220 may communicate directly with each other via a backhaul connection 223 referred to as the “Xn-C” interface. One or more of the gNBs 222 and / or ng-eNBs 224 may communicate with one or more UEs 204 via a wireless interface referred to as the “Uu” interface.

[0049] The functionality of the gNB 222 is divided between the gNB central unit (gNB-CU) 226 and one or more gNB distributed units (gNB-DUs) 228. The interface 232 between the gNB-CU 226 and one or more gNB-DUs 228 is referred to as the "F1" interface. The gNB-CU 226 is a logical node that includes base station functions such as user data forwarding, mobility control, radio access network sharing, positioning, and session management, except for those functions exclusively allocated to the gNB-DU 228. More specifically, the gNB-CU 226 hosts the Radio Resource Control (RRC), Service Data Adaptation Protocol (SDAP), and Packet Data Convergence Protocol (PDCP) protocols of the gNB 222. The gNB-DU 228 is a logical node that hosts the Radio Link Control (RLC), Medium Access Control (MAC), and Physical (PHY) layers of the gNB 222. Its operation is controlled by the gNB-CU 226. One gNB-DU 228 can support one or multiple cells, and one cell is supported by only one gNB-DU 228. Thus, the UE 204 communicates with the gNB-CU 226 via the RRC, SDAP, and PDCP layers, and with the gNB-DU 228 via the RLC, MAC, and PHY layers.

[0050] 3A, 3B, and 3C illustrate several example components (represented by corresponding blocks) that may be incorporated within a UE 302 (which may correspond to any of the UEs described herein), a base station 304 (which may correspond to any of the base stations described herein), and a network entity 306 (which may correspond to or embody any of the network functions described herein, including location server 230 and LMF 270, or alternatively, may be separate from the NG-RAN 220 and / or 5GC 210 / 260 infrastructure shown in FIGS. 2A and 2B, such as a private network) to support file transmission operations as taught herein. It will be appreciated that these components may be implemented in different types of devices in different implementations (e.g., in an ASIC, in a system-on-chip (SoC), etc.). The illustrated components may also be incorporated into other devices in a communication system. For example, other devices in the system may include components similar to the illustrated components to provide similar functionality. Also, a given device may include one or more of the components. For example, a device may include multiple transceiver components that enable the device to operate on multiple carriers and / or communicate via different technologies.

[0051] The UE 302 and the base station 304 each include at least one wireless wide area network (WWAN) transceiver 310 and 350, respectively, that provides means for communicating (e.g., means for transmitting, means for receiving, means for measuring, means for tuning, means for refraining from transmitting, etc.) over one or more wireless communications networks (not shown), such as an NR network, an LTE network, a GSM network, etc. The WWAN transceivers 310 and 350 may be connected to one or more antennas 316 and 356, respectively, for communicating with other network nodes, such as other UEs, access points, base stations (e.g., eNBs, gNBs), etc., via at least one designated RAT (e.g., NR, LTE, GSM, etc.) over a wireless communications medium of interest (e.g., some set of time / frequency resources within a particular frequency spectrum). The WWAN transceivers 310 and 350 may be variously configured to transmit and encode signals 318 and 358 (e.g., messages, indications, information, etc.), respectively, and conversely, to receive and decode signals 318 and 358 (e.g., messages, indications, information, pilots, etc.), respectively, in accordance with a designated RAT. In particular, the WWAN transceivers 310 and 350 include one or more transmitters 314 and 354, respectively, for transmitting and encoding signals 318 and 358, respectively, and one or more receivers 312 and 352, respectively, for receiving and decoding signals 318 and 358, respectively.

[0052] The UE 302 and base station 304 each also, at least in some cases, include at least one short-range wireless transceiver 320 and 360, respectively. The short-range wireless transceivers 320 and 360 may be connected to one or more antennas 326 and 366, respectively, and may provide means for communicating (e.g., means for transmitting, means for receiving, means for measuring, means for tuning, means for refraining from transmitting, etc.) with other network nodes, such as other UEs, access points, base stations, etc., via at least one designated RAT (e.g., WiFi, LTE-D, Bluetooth, Zigbee, Z-Wave, PC5, Dedicated Short-Range Communications (DSRC), Wireless Access for Vehicular Environments (WAVE), Near Field Communications (NFC), etc.) over a target wireless communications medium. The short-range wireless transceivers 320 and 360 may be variously configured to transmit and encode signals 328 and 368 (e.g., messages, indications, information, etc.), respectively, and conversely, to receive and decode signals 328 and 368 (e.g., messages, indications, information, pilots, etc.), respectively, in accordance with a designated RAT. In particular, the short-range wireless transceivers 320 and 360 include one or more transmitters 324 and 364, respectively, to transmit and encode signals 328 and 368, respectively, and one or more receivers 322 and 362, respectively, to receive and decode signals 328 and 368, respectively. As specific examples, the short-range wireless transceivers 320 and 360 may be WiFi transceivers, Bluetooth® transceivers, Zigbee® and / or Z-Wave® transceivers, NFC transceivers, or vehicle-to-vehicle (V2V) and / or vehicle-to-everything (V2X) transceivers.

[0053] Transceiver circuitry including at least one transmitter and at least one receiver may in some implementations comprise an integrated device (e.g., embodied as transmitter and receiver circuitry in a single communications device), in some implementations comprise separate transmitter and receiver devices, or in other implementations may be embodied in other ways. In one aspect, a transmitter may include or be coupled to multiple antennas (e.g., antennas 316, 326, 356, 366), such as an antenna array that enables each device to perform transmit “beamforming” as described herein. Similarly, a receiver may include or be coupled to multiple antennas (e.g., antennas 316, 326, 356, 366), such as an antenna array that enables each device to perform receive beamforming as described herein. In one aspect, transmitters and receivers may share multiple identical antennas (e.g., antennas 316, 326, 356, 366), such that each device can only receive or transmit at a given time, but not both at the same time. The wireless communication device of the UE 302 and / or base station 304 (e.g., one or both of the transceivers 310 and 320 and / or 350 and 360) may also include a network listen module (NLM) or the like for performing various measurements.

[0054] The UE 302 and base station 304 also, at least in some cases, include satellite positioning system (SPS) receivers 330 and 370. The SPS receivers 330 and 370 may be connected to one or more antennas 336 and 376, respectively, and may provide a means for receiving and / or measuring SPS signals 338 and 378, respectively, such as Global Positioning System (GPS) signals, Global Navigation Satellite System (GLONASS) signals, Galileo signals, Beidou signals, Navigation Satellite System of India (NAVIC), Quasi-Zenith Satellite System (QZSS), etc. The SPS receivers 330 and 370 may comprise any suitable hardware and / or software for receiving and processing the SPS signals 338 and 378, respectively. The SPS receivers 330 and 370 request information and actions from other systems as appropriate and perform the necessary calculations to determine the position of the UE 302 and base station 304 using the obtained measurements, via any suitable SPS algorithms.

[0055] The base station 304 and the network entity 306 each include at least one network interface 380 and 390, respectively, that provide means for communicating (e.g., means for transmitting, means for receiving, etc.) with other network entities. For example, the network interfaces 380 and 390 (e.g., one or more network access ports) may be configured to communicate with one or more network entities via a wire-based or wireless backhaul connection. In some aspects, the network interfaces 380 and 390 may be implemented as transceivers configured to support wire-based or wireless signal communication. This communication may involve, for example, sending and receiving messages, parameters, and / or other types of information.

[0056] In one aspect, the at least one WWAN transceiver 310 and / or the at least one short-range wireless transceiver 320 may form a (wireless) communication interface of the UE 302. Similarly, the at least one WWAN transceiver 350, the at least one short-range wireless transceiver 360, and / or the at least one network interface 380 may form a (wireless) communication interface of the base station 304. Similarly, the at least one network interface 390 may form a (wireless) communication interface of the network entity 306. The various wireless transceivers (e.g., transceivers 310, 320, 350, and 360) and wired transceivers (e.g., network interfaces 380 and 390) may be generally characterized as at least one transceiver or, alternatively, as at least one communication interface. Thus, whether a particular transceiver or communication interface relates to a wired or wireless transceiver or communication interface, respectively, can be inferred from the type of communication being performed (e.g., backhaul communication between network devices or servers generally involves signaling via at least one wired transceiver).

[0057] The UE 302, base station 304, and network entity 306 also include other components that may be used in conjunction with operations as disclosed herein. The UE 302, base station 304, and network entity 306 include at least one processor 332, 384, and 394, respectively, for example, to provide functionality related to wireless communications and to provide other processing functionality. Thus, the processors 332, 384, and 394 may provide means for processing, such as means for determining, means for calculating, means for receiving, means for transmitting, and means for indicating. In one aspect, the processors 332, 384, and 394 may include, for example, at least one general-purpose processor, multi-core processor, central processing unit (CPU), ASIC, digital signal processor (DSP), field programmable gate array (FPGA), other programmable logic device or processing circuitry, or various combinations thereof.

[0058] The UE 302, the base station 304, and the network entity 306 include memory circuitry implementing memory components 340, 386, and 396, respectively (e.g., each including a memory device) for maintaining information (e.g., information indicative of reserved resources, thresholds, parameters, etc.). The memory components 340, 386, and 396 may thus provide a means for storing, a means for retrieving, a means for retaining, etc. In some cases, the UE 302, the base station 304, and the network entity 306 may include positioning components 342, 388, and 398, respectively. The positioning components 342, 388, and 398 may be hardware circuits that are part of or coupled to the processors 332, 384, and 394, respectively, that, when executed, cause the UE 302, the base station 304, and the network entity 306 to perform the functionality described herein. In other aspects, the positioning components 342, 388, and 398 may be external to the processors 332, 384, and 394 (e.g., may be part of a modem processing system, may be integrated with another processing system, etc.). Alternatively, the positioning components 342, 388, and 398 may be memory modules stored in the memory components 340, 386, and 396, respectively, that, when executed by the processors 332, 384, and 394 (or modem processing system, another processing system, etc.), cause the UE 302, the base station 304, and the network entity 306 to perform the functionality described herein. FIG. 3A illustrates possible locations of the positioning component 342, which may be part of, for example, the at least one WWAN transceiver 310, the memory component 340, the at least one processor 332, or any combination thereof, or may be a stand-alone component. FIG. 3B shows possible locations of a positioning component 388, which may be part of, for example, at least one WWAN transceiver 350, a memory component 386, at least one processor 384, or any combination thereof, or may be a stand-alone component.FIG. 3C shows possible locations of a positioning component 398, which may be part of, for example, at least one network interface 390, a memory component 396, at least one processor 394, or any combination thereof, or may be a stand-alone component.

[0059] The UE 302 may include one or more sensors 344 coupled to the at least one processor 332 to provide a means for sensing or detecting motion and / or orientation information that is independent of motion data derived from signals received by the at least one WWAN transceiver 310, the at least one short-range wireless transceiver 320, and / or the SPS receiver 330. By way of example, the sensors 344 may include an accelerometer (e.g., a microelectromechanical system (MEMS) device), a gyroscope, a geomagnetic sensor (e.g., a compass), an altimeter (e.g., a barometric altimeter), and / or any other type of motion detection sensor. Moreover, the sensors 344 may include multiple different types of devices and combine their outputs to provide motion information. For example, the sensors 344 may use a combination of a multi-axis accelerometer and an orientation sensor to provide the ability to calculate a position in a two-dimensional (2D) and / or three-dimensional (3D) coordinate system.

[0060] Additionally, the UE 302 includes a user interface 346 that provides a means for providing an indication to a user (e.g., an audio and / or visual indication) and / or receiving user input (e.g., upon user actuation of a sensing device such as a keypad, touch screen, microphone, etc.). Although not shown, the base station 304 and the network entity 306 may also include user interfaces.

[0061] Referring more particularly to the at least one processor 384, on the downlink, IP packets from the network entity 306 may be provided to the at least one processor 384. The at least one processor 384 may perform functionality for an RRC layer, a Packet Data Convergence Protocol (PDCP) layer, a Radio Link Control (RLC) layer, and a Medium Access Control (MAC) layer. The at least one processor 384 may provide RRC layer functionality related to broadcasting of system information (e.g., Master Information Block (MIB), System Information Block (SIB)), RRC connection control (e.g., RRC connection paging, RRC connection establishment, RRC connection modification, and RRC connection release), inter-RAT mobility, and measurement configuration for UE measurement reporting; PDCP layer functionality related to header compression / decompression, security (encryption, decryption, integrity protection, integrity verification), and handover support functions; RLC layer functionality related to transfer of upper layer PDUs, error correction through automatic repeat request (ARQ), concatenation, segmentation, and reassembly of RLC service data units (SDUs), re-segmentation of RLC data PDUs, and reordering of RLC data PDUs; and MAC layer functionality related to mapping between logical channels and transport channels, scheduling information reporting, error correction, priority handling, and logical channel prioritization.

[0062] The transmitter 354 and receiver 352 may implement Layer 1 (L1) functionality related to various signal processing functions. Layer 1, which includes the physical (PHY) layer, may include error detection on transport channels, forward error correction (FEC) coding / decoding of transport channels, interleaving, rate matching, mapping onto physical channels, modulation / demodulation of physical channels, and MIMO antenna processing. The transmitter 354 handles mapping to signal constellations based on various modulation schemes (e.g., binary phase shift keying (BPSK), quadrature phase shift keying (QPSK), M-phase shift keying (M-PSK), M-ary quadrature amplitude modulation (M-QAM)). The coded and modulated symbols may then be split into parallel streams. Each stream may then be mapped to an orthogonal frequency division multiplexing (OFDM) subcarrier, multiplexed with a reference signal (e.g., a pilot) in the time and / or frequency domain, and then combined together using an inverse fast Fourier transform (IFFT) to generate a physical channel carrying a time-domain OFDM symbol stream. The OFDM symbol stream is spatially precoded to generate multiple spatial streams. Channel estimates from a channel estimator may be used to determine coding and modulation schemes and for spatial processing. The channel estimates may be derived from a reference signal and / or channel condition feedback transmitted by the UE 302. Each spatial stream may then be provided to one or more different antennas 356. The transmitter 354 may modulate an RF carrier with the respective spatial stream for transmission.

[0063] At the UE 302, the receiver 312 receives signals through its respective antenna 316. The receiver 312 recovers information modulated onto RF carriers and provides the information to at least one processor 332. The transmitter 314 and receiver 312 implement Layer 1 functionality related to various signal processing functions. The receiver 312 may perform spatial processing on the information to recover any spatial streams destined for the UE 302. Multiple spatial streams may be combined into a single OFDM symbol stream by the receiver 312 if destined for the UE 302. The receiver 312 then converts the OFDM symbol stream from the time domain to the frequency domain using a fast Fourier transform (FFT). The frequency-domain signal comprises a separate OFDM symbol stream for each subcarrier of the OFDM signal. The symbols on each subcarrier, as well as the reference signal, are recovered and demodulated by determining the signal constellation point that was most likely transmitted by the base station 304. These soft decisions may be based on channel estimates calculated by a channel estimator. The soft decisions are then decoded and deinterleaved to recover the data and control signals originally transmitted on the physical channel by the base station 304. The data and control signals are then provided to at least one processor 332 that performs Layer 3 (L3) and Layer 2 (L2) functionality.

[0064] In the uplink, at least one processor 332 performs demultiplexing between transport and logical channels, packet reassembly, decryption, header decompression, and control signal processing to recover IP packets from the core network. At least one processor 332 is also responsible for error detection.

[0065] Similar to the functionality described with respect to downlink transmission by the base station 304, the at least one processor 332 provides RRC layer functionality related to system information (e.g., MIB, SIB) acquisition, RRC connection, and measurement reporting; PDCP layer functionality related to header compression / decompression and security (encryption, decryption, integrity protection, integrity verification); RLC layer functionality related to transfer of upper layer PDUs, error correction via ARQ, concatenation, segmentation, and reassembly of RLC SDUs, resegmentation of RLC data PDUs, and reordering of RLC data PDUs; and MAC layer functionality related to mapping between logical channels and transport channels, multiplexing of MAC SDUs onto transport blocks (TBs), demultiplexing of MAC SDUs from TBs, scheduling information reporting, error correction via hybrid automatic repeat request (HARQ), priority handling, and logical channel prioritization.

[0066] Channel estimates derived by the channel estimator from a reference signal or feedback transmitted by the base station 304 may be used by the transmitter 314 to select an appropriate coding and modulation scheme and to facilitate spatial processing. The spatial streams generated by the transmitter 314 may be provided to different antennas 316. The transmitter 314 may modulate an RF carrier with each spatial stream for transmission.

[0067] Uplink transmissions are processed at the base station 304 in a manner similar to that described with respect to the receiver functions at the UE 302. The receiver 352 receives signals through its respective antenna 356. The receiver 352 recovers information modulated onto an RF carrier and provides the information to at least one processor 384.

[0068] In the uplink, the at least one processor 384 performs demultiplexing between transport and logical channels, packet reassembly, decryption, header decompression, and control signal processing to recover IP packets from the UE 302. The IP packets from the at least one processor 384 may be provided to the core network. The at least one processor 384 is also responsible for error detection.

[0069] For convenience, the UE 302, the base station 304, and / or the network entity 306 are illustrated in Figures 3A, 3B, and 3C as including various components that may be configured in accordance with various examples described herein. However, it will be appreciated that the illustrated components may have different functionality in different designs.

[0070] The various components of the UE 302, the base station 304, and the network entity 306 may communicate with one another via data buses 334, 382, ​​and 392, respectively. In an aspect, the data buses 334, 382, ​​and 392 may form or be part of communication interfaces of the UE 302, the base station 304, and the network entity 306, respectively. For example, when various logical entities are embodied within the same device (e.g., gNB and location server functionality incorporated within the same base station 304), the data buses 334, 382, ​​and 392 may provide communication therebetween.

[0071] The components of Figures 3A, 3B, and 3C may be implemented in various ways. In some implementations, the components of Figures 3A, 3B, and 3C may be implemented in one or more circuits, such as, for example, one or more processors and / or one or more ASICs (which may include one or more processors), where each circuit may use and / or incorporate at least one memory component for storing information or executable code used by the circuit to provide its functionality. For example, some or all of the functionality represented by blocks 310-346 may be performed by the processor and memory components of the UE 302 (e.g., by execution of appropriate code and / or by appropriate configuration of the processor components). Similarly, some or all of the functionality represented by blocks 350-388 may be performed by the processor and memory components of the base station 304 (e.g., by execution of appropriate code and / or by appropriate configuration of the processor components). Additionally, some or all of the functionality represented by blocks 390-398 may be implemented by the processor and memory components of the network entity 306 (e.g., by execution of appropriate code and / or by appropriate configuration of the processor components). For simplicity, various operations, acts, and / or functions are described herein as being performed "by the UE," "by the base station," "by the network entity," etc. However, it will be appreciated that such operations, acts, and / or functions may actually be performed by particular components or combinations of components of the UE 302, base station 304, network entity 306, etc., such as processors 332, 384, 394, transceivers 310, 320, 350, and 360, memory components 340, 386, and 396, positioning components 342, 388, and 398, etc.

[0072] In some designs, the network entity 306 may be implemented as a core network component. In other designs, the network entity 306 may be separate from the network operator or operation of the cellular network infrastructure (e.g., the NG RAN 220 and / or the 5GC 210 / 260). For example, the network entity 306 may be a component of a private network that may be configured to communicate with the UE 302 via the base station 304 or independently of the base station 304 (e.g., via a non-cellular communication link such as WiFi).

[0073] NR supports several cellular network-based positioning techniques, including downlink-based positioning methods, uplink-based positioning methods, and downlink- and uplink-based positioning methods. Downlink-based positioning methods include observed time difference of arrival (OTDOA) in LTE, downlink time difference of arrival (DL-TDOA) in NR, and downlink angle-of-departure (DL-AoD) in NR. In an OTDOA or DL-TDOA positioning procedure, a UE measures the differences between the times of arrival (ToA) of reference signals (e.g., positioning reference signals (PRS)) received from pairs of base stations, called reference signal time difference (RSTD) or time difference of arrival (TDOA) measurements, and reports them to a positioning entity. More specifically, the UE receives identifiers (IDs) of a reference base station (e.g., a serving base station) and multiple non-reference base stations in assistance data. The UE then measures RSTD between the reference base station and each of the non-reference base stations. Based on the known locations of the involved base stations and the RSTD measurements, the positioning entity can estimate the location of the UE.

[0074] For DL-AoD positioning, the positioning entity uses beam reports from the UE of received signal strength measurements of multiple downlink transmit beams to determine the angle between the UE and the transmitting base station. The positioning entity can then estimate the location of the UE based on the determined angle and the known location of the transmitting base station.

[0075] Uplink-based positioning methods include uplink time difference of arrival (UL-TDOA) and uplink angle-of-arrival (UL-AoA). UL-TDOA is similar to DL-TDOA, but is based on an uplink reference signal (e.g., a sounding reference signal (SRS)) transmitted by the UE. For UL-AoA positioning, one or more base stations measure the received signal strength of one or more uplink reference signals (e.g., SRS) received from the UE on one or more uplink receive beams. The positioning entity uses the signal strength measurements and the angles of the receive beams to determine the angle between the UE and the base station. Based on the determined angle and the known location of the base station, the positioning entity can then estimate the location of the UE.

[0076] Downlink and uplink-based positioning methods include extended cell ID (E-CID) positioning and multi-round trip time (RTT) positioning (also called "multi-cell RTT"). In the RTT procedure, an initiator (base station or UE) transmits an RTT measurement signal (e.g., PRS or SRS) to a responder (UE or base station), and the responder transmits an RTT response signal (e.g., SRS or PRS) back to the initiator. The RTT response signal includes the difference between the ToA of the RTT measurement signal and the transmission time of the RTT response signal, called the reception-to-transmission (Rx-Tx) time difference. The initiator calculates the difference between the transmission time of the RTT measurement signal and the ToA of the RTT response signal, called the transmission-to-reception (Tx-Rx) time difference. The propagation time (also called "time of flight") between the initiator and the responder may be calculated from the Tx-Rx time difference and the Rx-Tx time difference. Based on the propagation time and the known speed of light, the distance between the initiator and the responder may be determined. For multi-RTT positioning, the UE performs RTT procedures with multiple base stations to allow the UE's location to be determined based on the known locations of the base stations (e.g., using multilateration). RTT and multi-RTT methods may be combined with other positioning techniques, such as UL-AoA and DL-AoD, to improve location accuracy.

[0077] The E-CID positioning method is based on radio resource management (RRM) measurements. In E-CID, the UE reports the serving cell ID, timing advance (TA), and the identities, estimated timing, and signal strength of detected neighboring base stations. The UE's location is then estimated based on this information and the known locations of the base stations.

[0078] To assist in positioning operations, a location server (e.g., location server 230, LMF 270, SLP 272) may provide assistance data to the UE. For example, the assistance data may include identifiers of base stations (or base station cells / TRPs) from which to measure reference signals, reference signal configuration parameters (e.g., number of consecutive positioning subframes, periodicity of the positioning subframes, muting sequence, frequency hopping sequence, reference signal identifier, reference signal bandwidth, etc.), and / or other parameters applicable to a particular positioning method. Alternatively, the assistance data may originate directly from the base stations themselves (e.g., in periodically broadcast overhead messages, etc.), and in some cases, the UE may be able to detect neighboring network nodes itself without using the assistance data.

[0079] In the case of OTDOA or DL-TDOA positioning procedures, the assistance data may further include an expected RSTD value and an associated uncertainty around the expected RSTD, i.e., a search window. In some cases, the value range for the expected RSTD may be + / - 500 microseconds (μs). In some cases, when any of the resources used for positioning measurements are in FR1, the value range for the expected RSTD uncertainty may be + / - 32 μs. In other cases, when all of the resources used for positioning measurements are in FR2, the value range for the expected RSTD uncertainty may be + / - 8 μs.

[0080] A location estimate may be referred to by other names, such as a position estimate, location, position, position fix, fix, etc. A location estimate may be geodetic and comprise coordinates (e.g., latitude, longitude, and possibly altitude), or may be urban and comprise a street address, postal address, or some other linguistic description of the location. A location estimate may also be specified relative to some other known location or may be specified in absolute terms (e.g., using latitude, longitude, and possibly altitude). A location estimate may include an expected error or uncertainty (e.g., by including an area or volume that the location is expected to fall within, with some specified or default level of confidence).

[0081] Various frame structures may be used to support downlink and uplink transmissions between network nodes (e.g., base stations and UEs). Figure 4A is a diagram 400 illustrating an example of a downlink frame structure according to an aspect of the present disclosure. Figure 4B is a diagram 430 illustrating an example of channels within a downlink frame structure according to an aspect of the present disclosure. Other wireless communication technologies may have different frame structures and / or different channels.

[0082] LTE, and possibly NR, utilizes OFDM on the downlink and single-carrier frequency division multiplexing (SC-FDM) on the uplink. However, unlike LTE, NR has the option to also use OFDM on the uplink. OFDM and SC-FDM partition the system bandwidth into multiple (K) orthogonal subcarriers, also commonly referred to as tones, bins, etc. Each subcarrier may be modulated with data. Generally, modulation symbols are sent in the frequency domain with OFDM and in the time domain with SC-FDM. The spacing between adjacent subcarriers may be fixed, and the total number of subcarriers (K) may depend on the system bandwidth. For example, the subcarrier spacing may be 15 kilohertz (kHz), and the minimum resource allocation (resource block) may be 12 subcarriers (i.e., 180 kHz). Thus, the nominal FFT size may be equal to 128, 256, 512, 1024, or 2048 for a system bandwidth of 1.25, 2.5, 5, 10, or 20 megahertz (MHz), respectively. The system bandwidth may also be partitioned into subbands. For example, a subband may cover 1.08 MHz (i.e., 6 resource blocks), and there may be 1, 2, 4, 8, or 16 subbands for a system bandwidth of 1.25, 2.5, 5, 10, or 20 MHz, respectively.

[0083] LTE supports a single numerology (subcarrier spacing (SCS), symbol length, etc.). In contrast, NR may support multiple numerologies (μ), e.g., subcarrier spacings of 15 kHz (μ=0), 30 kHz (μ=1), 60 kHz (μ=2), 120 kHz (μ=3), and 240 kHz (μ=4) or greater may be available. At each subcarrier spacing, there are 14 symbols per slot. For a 15 kHz SCS (μ=0), there is one slot per subframe, i.e., 10 slots per frame, with a slot duration of 1 millisecond (ms), a symbol duration of 66.7 microseconds (μs), and a maximum nominal system bandwidth (in MHz) of 50 with an FFT size of 4K. For a 30 kHz SCS (μ=1), there are two slots per subframe, i.e., 20 slots per frame, with a slot duration of 0.5 ms, a symbol duration of 33.3 μs, and a maximum nominal system bandwidth (in MHz) of 100 for a 4K FFT size. For a 60 kHz SCS (μ=2), there are four slots per subframe, i.e., 40 slots per frame, with a slot duration of 0.25 ms, a symbol duration of 16.7 μs, and a maximum nominal system bandwidth (in MHz) of 200 for a 4K FFT size. For a 120 kHz SCS (μ=3), there are eight slots per subframe, i.e., 80 slots per frame, with a slot duration of 0.125 ms, a symbol duration of 8.33 μs, and a maximum nominal system bandwidth (in MHz) of 400 for a 4K FFT size. For a 240 kHz SCS (μ=4), there are 16 slots per subframe, i.e., 160 slots per frame, the slot duration is 0.0625 ms, the symbol duration is 4.17 μs, and the maximum nominal system bandwidth (in MHz) with an FFT size of 4K is 800.

[0084] In the example of Figures 4A and 4B, a 15 kHz numerology is used. Thus, in the time domain, a 10 ms frame is divided into 10 equal-sized subframes of 1 ms each, with each subframe containing one time slot. In Figures 4A and 4B, time is represented horizontally (on the X-axis) with time increasing from left to right, and frequency is represented vertically (on the Y-axis) with frequency increasing (or decreasing) from bottom to top.

[0085] A resource grid may be used to represent a time slot, and each time slot includes one or more time-parallel resource blocks (RBs) (also called physical RBs (PRBs)) in the frequency domain. The resource grid is further divided into multiple resource elements (REs). An RE may correspond to one symbol length in the time domain and one subcarrier in the frequency domain. In the numerology of Figures 4A and 4B, for a normal cyclic prefix, an RB may include 12 consecutive subcarriers in the frequency domain and 7 consecutive symbols in the time domain to obtain a total of 84 REs. For an extended cyclic prefix, an RB may include 12 consecutive subcarriers in the frequency domain and 6 consecutive symbols in the time domain to obtain a total of 72 REs. The number of bits carried by each RE depends on the modulation scheme.

[0086] Some of the REs carry downlink reference (pilot) signals (DL-RS). DL-RS may include positioning reference signals (PRS), tracking reference signals (TRS), phase tracking reference signals (TRS), cell-specific reference signals (CRS), channel state information reference signals (CSI-RS), demodulation reference signals (DMRS), primary synchronization signals (PSS), secondary synchronization signals (SSS), synchronization signal blocks (SSB), etc. Figure 4A shows example locations (labeled "R") of REs carrying PRS.

[0087] A set of resource elements (REs) used for transmitting a PRS is called a "PRS resource." A set of resource elements can span multiple PRBs in the frequency domain and "N" (e.g., one or more) consecutive symbols within a slot in the time domain. Within a given OFDM symbol in the time domain, PRS resources occupy consecutive PRBs in the frequency domain.

[0088] The transmission of PRS resources within a given PRB has a particular comb size (also called "comb density"). The comb size "N" represents the subcarrier spacing (or frequency / tone spacing) within each symbol of the PRS resource configuration. Specifically, for comb size "N," a PRS is transmitted in every Nth subcarrier of a symbol of the PRB. For example, for comb 4, for each symbol of the PRS resource configuration, REs corresponding to every fourth subcarrier (subcarriers 0, 4, 8, etc.) are used to transmit the PRS of the PRS resource. Currently, the following comb sizes are supported for DL-PRS: comb 2, comb 4, comb 6, and comb 12. Figure 4A shows an example PRS resource configuration for comb 6 (spanning six symbols). That is, the location of the shaded REs (labeled "R") indicates the comb 6 PRS resource configuration.

[0089] Currently, DL-PRS resources can span 2, 4, 6, or 12 consecutive symbols within a slot with a staggered pattern across the frequency domain. DL-PRS resources can be configured within any higher layer configured downlink or flexible (FL) symbols of a slot. There can be a constant energy per resource element (EPRE) for all REs of a given DL-PRS resource. Below are the symbol-to-symbol frequency offsets for comb sizes 2, 4, 6, and 12 across 2, 4, 6, and 12 symbols: 2-symbol-comb2: {0, 1}, 4-symbol-comb2: {0, 1, 0, 1}, 6-symbol-comb2: {0, 1, 0, 1, 0, 1}, 12-symbol-comb2: {0, 1, 0, 1, 0, 1, 0, 1, 0, 1, 0, 1}, 4-symbol-comb4: {0, 2, 1, 3}, 12-symbol-comb4: {0, 2, 1, 3, 0, 2, 1, 3, 0, 2, 1, 3}, 6-symbol-comb6: {0, 3, 1, 4, 2, 5}, 12-symbol-comb6: {0, 3, 1, 4, 2, 5, 0, 3, 1, 4, 2, 5}, and 12-symbol-comb12: {0, 6, 3, 9, 1, 7, 4,10, 2, 8, 5,11}.

[0090] A "PRS resource set" is a set of PRS resources used for transmitting PRS signals, where each PRS resource has a PRS resource ID. In addition, PRS resources within a PRS resource set are associated with the same TRP. A PRS resource set is identified by a PRS resource set ID and associated with a specific TRP (identified by a TRP ID). In addition, PRS resources within a PRS resource set have the same periodicity across slots, a common muting pattern configuration, and the same repetition factor (e.g., "PRS-ResourceRepetitionFactor"). Periodicity is the time from the first repetition of the first PRS resource of the first PRS instance to the same first repetition of the same first PRS resource of the next PRS instance. The periodicity may have a length selected from 2^μ*{4, 5, 8, 10, 16, 20, 32, 40, 64, 80, 160, 320, 640, 1280, 2560, 5120, 10240} slots with μ=0, 1, 2, 3. The repetition factor may have a length selected from {1, 2, 4, 6, 8, 16, 32} slots.

[0091] A PRS resource ID in a PRS resource set is associated with a single beam (or beam ID) transmitted from a single TRP (where a TRP may transmit one or more beams). That is, each PRS resource in a PRS resource set may be transmitted on a different beam, and thus a "PRS resource" or simply a "resource" may also be referred to as a "beam." Note that this does not have any implications as to whether the TRP and the beam on which the PRS is transmitted are known to the UE.

[0092] A "PRS instance" or "PRS occasion" is one instance of a periodically repeating time window (e.g., a group of one or more contiguous slots) during which a PRS is expected to be transmitted. A PRS occasion may also be referred to as a "PRS positioning occasion," "PRS positioning instance," "positioning occasion," "positioning instance," "positioning repetition," or simply an "occasion," "instance," or "repetition."

[0093] A "positioning frequency layer" (also simply referred to as a "frequency layer") is a collection of one or more PRS resource sets across one or more TRPs with the same values ​​for several parameters. In particular, the collection of PRS resource sets has the same subcarrier spacing and cyclic prefix (CP) type (meaning that all numerologies supported for PDSCH are also supported for PRS), the same Point A, the same value of downlink PRS bandwidth, the same starting PRB (and center frequency), and the same comb size. The Point A parameter takes the value of the parameter "ARFCN-ValueNR" (where "ARFCN" stands for "absolute radio frequency channel number"), which is an identifier / code that specifies a pair of physical radio channels used for transmission and reception. The downlink PRS bandwidth may have a granularity of four PRBs, with a minimum of 24 PRBs and a maximum of 272 PRBs. Currently, up to four frequency layers are defined, and up to two PRS resource sets per TRP per frequency layer can be configured.

[0094] The concept of a frequency layer is somewhat similar to that of a component carrier and bandwidth portion (BWP), but differs in that a component carrier and BWP are used by one base station (or a macrocell base station and a small cell base station) to transmit a data channel, while a frequency layer is used by several (usually three or more) base stations to transmit a PRS. A UE may indicate the number of frequency layers it can support when it sends its positioning capabilities to the network, such as during an LTE Positioning Protocol (LPP) session. For example, the UE may indicate whether it can support one positioning frequency layer or four positioning frequency layers.

[0095] Figure 4B shows an example of various channels within a downlink slot of a radio frame. In NR, the channel bandwidth or system bandwidth is divided into multiple BWPs. A BWP is a contiguous set of PRBs selected from a contiguous subset of common RBs for a given numerology on a given carrier. Generally, up to four BWPs can be specified in the downlink and uplink. That is, a UE can be configured with up to four BWPs on the downlink and up to four BWPs on the uplink. Only one BWP (uplink or downlink) can be active at a given time, meaning that a UE can only receive or transmit via one BWP at a time. On the downlink, the bandwidth of each BWP should be equal to or greater than the bandwidth of an SSB, but each BWP may or may not include an SSB.

[0096] Referring to FIG. 4B, a primary synchronization signal (PSS) is used by a UE to determine subframe / symbol timing and physical layer identity. A secondary synchronization signal (SSS) is used by a UE to determine a physical layer cell identity group number and radio frame timing. Based on the physical layer identity and the physical layer cell identity group number, the UE can determine the PCI. Based on the PCI, the UE can determine the location of the DL-RS mentioned above. A physical broadcast channel (PBCH) carrying an MIB may be logically grouped with the PSS and SSS to form an SSB (also referred to as SS / PBCH). The MIB provides the number of RBs in the downlink system bandwidth and the system frame number (SFN). A physical downlink shared channel (PDSCH) carries user data, broadcast system information not transmitted over the PBCH, such as system information blocks (SIBs), and paging messages.

[0097] The physical downlink control channel (PDCCH) carries downlink control information (DCI) in one or more control channel elements (CCEs), each of which contains one or more RE group (REG) bundles (which may span multiple symbols in the time domain). Each REG bundle contains one or more REGs, and each REG corresponds to 12 resource elements (one resource block) in the frequency domain and one OFDM symbol in the time domain. The set of physical resources used to carry the PDCCH / DCI is called a control resource set (core set (CORESET)) in NR. In NR, the PDCCH is confined to a single core set and transmitted with its own DMRS. This enables UE-specific beamforming for the PDCCH.

[0098] In the example of Figure 4B, there is one core set per BWP, and the core set spans three symbols in the time domain (although it could be only one or two symbols). Unlike LTE control channels, which occupy the entire system bandwidth, in NR, the PDCCH channel is localized to a specific region (i.e., a core set) in the frequency domain. Therefore, the frequency components of the PDCCH shown in Figure 4B are illustrated as being smaller than a single BWP in the frequency domain. Note that while the illustrated core sets are contiguous in the frequency domain, this is not required. Additionally, the core sets may span less than three symbols in the time domain.

[0099] The DCI in the PDCCH carries information about uplink resource allocations (persistent and non-persistent), called uplink grants and downlink grants, respectively, and a description of the downlink data to be transmitted to the UE. More specifically, the DCI indicates the resources scheduled for the downlink data channel (e.g., PDSCH) and the uplink data channel (e.g., PUSCH). Multiple (e.g., up to eight) DCIs may be configured in the PDCCH, and these DCIs may have one of multiple formats. For example, there are various DCI formats for uplink scheduling, for downlink scheduling, for uplink transmit power control (TPC), etc. The PDCCH may be transported by 1, 2, 4, 8, or 16 CCEs to accommodate different DCI payload sizes or coding rates.

[0100] It should be noted that the terms “positioning reference signal” and “PRS” generally refer to specific reference signals used for positioning in NR and LTE systems. However, as used herein, the terms “positioning reference signal” and “PRS” may also refer to any type of reference signal that may be used for positioning, such as, but not limited to, PRS, TRS, PTRS, CRS, CSI-RS, DMRS, PSS, SSS, SSB, SRS, UL-PRS, as defined in LTE and NR. In addition, the terms “positioning reference signal” and “PRS” may refer to downlink or uplink positioning reference signals, unless otherwise specified by the context. If necessary to further distinguish between types of PRS, downlink positioning reference signals may be referred to as “DL-PRS,” and uplink positioning reference signals (e.g., SRS, PTRS for positioning) may be referred to as “UL-PRS.” Additionally, for signals that can be transmitted in both the uplink and downlink (e.g., DMRS, PTRS), "UL" or "DL" may be prepended to the signal to distinguish the direction. For example, "UL-DMRS" may be distinguished from "DL-DMRS."

[0101] FIG. 5 is a diagram 500 of an example radio frequency (RF) signal processing procedure in accordance with various aspects of the present disclosure. To identify the time of arrival (ToA) of an RF signal (e.g., a positioning reference signal (PRS)), a receiver (e.g., a UE) first buffers all resource elements (REs) on the channel on which a transmitter (e.g., a base station) is transmitting the RF signal and then processes them together. The receiver then performs an inverse Fourier transform (FFT) to convert the received RF signal to the time domain. The conversion of the received RF signal to the time domain is referred to as estimating the channel energy response (CER) or channel impulse response (CIR). The CER indicates peaks on the channel over time, and therefore, the earliest "significant" peak should correspond to the ToA of the RF signal. Typically, the receiver uses a noise-related quality threshold to filter out spurious local peaks, thereby correctly identifying the supposedly significant peaks on the channel. For example, the receiver may choose the ToA estimate that is the earliest maximum of the CER that is at least 'X' decibels (dB) greater than the median CER and a maximum 'Y' less than the main peak on the channel.

[0102] 5, in a fast Fourier transform (FFT) stage 510, a receiver (e.g., any of the UEs described herein) receives / measures and buffers a time-domain RF signal (e.g., a PRS) and converts it to a frequency-domain signal. In a correlation stage 520, the receiver generates a frequency-domain channel impulse response from the frequency-domain signal based on a descrambling sequence. In an inverse fast Fourier transform (IFFT) stage 530, the receiver generates a time-domain channel impulse response from the frequency-domain channel impulse response output by the correlation stage 520. In an earliest peak detection stage 540, the receiver generates a detection indication and a ToA for the time-domain RF signal received in the FFT stage 510 based on the time-domain channel impulse response received from the IFFT stage 530.

[0103] If the receiver is a UE, the UE may receive the time-domain RF signal at one or more of the antennas 316. The subsequent stages (i.e., FFT stage 510, correlation stage 520, IFFT stage 530, earliest peak detection stage 540) may be performed by one or more receivers 312, at least one WWAN transceiver 310, and / or at least one processor 332, depending on the hardware implementation of the UE. Similarly, if the receiver is a base station, the base station may receive the time-domain RF signal at one or more of the antennas 356. The subsequent stages may be performed by one or more receivers 352, at least one WWAN transceiver 350, and / or at least one processor 384, depending on the hardware implementation of the base station.

[0104] As can be appreciated from the above, a receiver requires some amount of time to buffer and process an RF signal such as a PRS. The amount of time required may depend on various factors, such as the capabilities of the receiver, the number of REs carrying the RF signal, the bandwidth of the RF signal, etc.

[0105] Buffering is needed because the receiver receives an RF signal over time (e.g., over one or more symbols, slots, subframes, etc.) and then needs to process the RF signal on a slot-by-slot, subframe-by-subframe, etc. For example, if the UE is measuring a DL-PRS resource (comprising some number of symbols in a slot) to determine the ToA of the PRS resource, the UE needs to buffer and then process at least all symbols of the slot, which may include PRS REs, to determine the ToA of the PRS resource. Thus, the receiver stores the received / measured RF signal in a buffer as it is received in order to subsequently process the RF signal.

[0106] There are two separate capabilities for DL-PRS processing, one related to the number of PRS resources and one related to the number of PRS symbols: (1) a limit on the maximum number "N1" of DL-PRS resources that the UE is expected to measure across all TRPs and frequency layers within a measurement window of "T1" ms, reported as a list of duplets {N1, T1}, and (2) a limit on the maximum number "N2" of symbols containing the highest bandwidth PRS resource that the UE is expected to measure within a measurement window of "T2" ms, reported as a list of duplets {N2, T2}.

[0107] The duration of a DL-PRS symbol is given in milliseconds that the UE can process every "T" ms, assuming a 272 PRB allocation is a UE capability. In addition, a limit is specified on the maximum number of DL-PRS resources that a UE can configure for all TRPs within a measurement window. This limit can be signaled as a UE capability.

[0108] The UE may report its DL-PRS processing capability in MHz relative to the maximum DL-PRS bandwidth. The UE is not expected to support a DL-PRS bandwidth greater than this reported DL-PRS bandwidth value. In addition, the UE signals its DL-PRS processing capability per band. Furthermore, the UE's DL-PRS processing capability is defined for a single positioning frequency layer. The UE's DL-PRS processing capability is not arbitrary with respect to the DL-PRS comb factor configuration.

[0109] If the UE is configured by higher layers (e.g., LTE Positioning Protocol (LPP)) to receive PRS symbols with periodicity “P”, the symbol duration “K” (i.e., the number of symbols the UE needs to buffer and process to measure the PRS) is

[0110]

number

[0111] where "S" is the minimum set of consecutive slots in the PRS periodicity in the positioning frequency layer that includes all PRSs across the TRP, and μ is the numerology of the PRS resources in the positioning frequency layer;

[0112]

number

[0113] is the number of symbols per slot,

[0114]

number

[0115] is the minimum interval in milliseconds within slot “s” that covers the combination of potential PRS symbols from all TRPs, where each potential PRS symbol is determined by the parameters “nr-DL-PRS-ExpectedRSTD” and “nr-DL-PRS-ExpectedRSTD-Uncertainty” and the PRS symbol occupancy within slot “s”.

[0116] A "potential" PRS symbol is the time-domain duration during which the UE expects to receive a PRS, as provided by the parameters "nr-DL-PRS-ExpectedRSTD" and "nr-DL-PRS-ExpectedRSTD-Uncertainty" and the PRS symbol occupancy within slot "s." For example, in a 30 kHz SCS numerology, if a two-symbol PRS is configured in symbols "3" and "4" with an "nr-DL-PRS-ExpectedRSTD" of "0" and an "nr-DL-PRS-ExpectedRSTD-Uncertainty" of 32 microseconds (μs) (see, e.g., FIG. 4A), the PRS may actually be received as early as symbols "2" and "3" or as late as symbols "4" and "5," respectively (since 32 μs is approximately one symbol duration in a 30 kHz SCS). Thus, in this example, the potential PRS symbols are symbols "2" through "5" because this is the region in the time domain during which the UE expects to receive a PRS based on the configuration and assistance data (i.e., "nr-DL-PRS-ExpectedRSTD" and "nr-DL-PRS-ExpectedRSTD-Uncertainty").

[0117] FIG. 6 is a diagram 600 illustrating an example of slot-based PRS processing according to an aspect of the present disclosure. FIG. 6 illustrates three consecutive slots 610 during which a UE expects to receive / measure PRS from a reference cell (i.e., TRP) and a neighboring cell (i.e., TRP). Each block illustrated in FIG. 6 represents the duration of a symbol during which the UE expects to receive PRS from the respective cell. This may also be referred to as the expected PRS symbol occupancy within the slot 610. For a reference cell, the UE expects to receive PRS from that cell during block 612. Due to the uncertainty of when the UE may receive PRS from a neighboring cell (as indicated by “nr-DL-PRS-ExpectedRSTD-Uncertainty”), the PRS from the neighboring cells are illustrated as two different blocks, with block 614 representing the earliest time period during which the UE expects to receive PRS from the neighboring cell and block 616 representing the latest time period during which the UE expects to receive PRS from the neighboring cell. As will be appreciated, the UE may receive a PRS from a neighbor cell any time between the start of block 614 and the end of block 616 .

[0118] 6, the duration 620 of PRS symbols to be buffered and processed extends from the beginning of block 614, which overlaps the start of the first slot 610, to the end of block 616, which overlaps the end of the third slot 610. However, as will be appreciated, this requires the UE to buffer and process the entire second slot 610, even though there may not be any PRS received in that slot 610.

[0119] Assuming slot-level buffering as described above, any slot "s" in a set of slots "S" for which there is a potential PRS needs to be counted.

[0120]

number

[0121] Among them,

[0122]

number

[0123] teeth,

[0124]

number

[0125] should be rounded to the start of the symbol that precedes it,

[0126]

number

[0127] teeth,

[0128]

number

[0129] Therefore, in one aspect, when a UE is configured by higher layers (e.g., LPP) to receive PRS symbols (regardless of periodicity "P"), the symbol duration "K" (i.e., the number of symbols the UE needs to buffer / process to measure the PRS) should be rounded to the end of the symbol that is later than

[0130]

number

[0131] The slot-level buffering described above may be modified to be calculated by: where "S" is the minimum set of (not necessarily consecutive) slots within the PRS periodicity in the positioning frequency layer that includes all potential PRSs across the TRP, where each potential PRS symbol is determined by the parameters "nr-DL-PRS-ExpectedRSTD" and "nr-DL-PRS-ExpectedRSTD-Uncertainty" and the PRS symbol occupancy within slot "s". The parameter μ remains the numerology of the PRS resources in the positioning frequency layer, and

[0132]

number

[0133] remains the number of symbols per slot. However,

[0134]

number

[0135] is the smallest integer interval of OFDM symbols for a given numerology μ in slot “s” that covers the combination of potential PRS symbols from all cells / TRPs, where each potential PRS symbol is determined by the parameters “nr-DL-PRS-ExpectedRSTD”, “nr-DL-PRS-ExpectedRSTD-Uncertainty”, and the PRS symbol occupancy in slot “s”.

[0136] Using integer values ​​in the previous formula, the previous formula becomes:

[0137]

number

[0138] Simplify to:

[0139] FIG. 7 is a diagram 700 illustrating an example of slot-based buffering with OFDM symbol alignment toward the maximum interval containing potential PRSs in a slot, according to an embodiment of the present disclosure. FIG. 7 illustrates a single slot 710 during which a UE expects to receive / measure PRSs from a reference cell (i.e., TRP) and a neighboring cell (i.e., TRP). As in FIG. 6, each block illustrated in FIG. 7 represents a symbol duration during which the UE expects to receive PRSs from the respective cell. For the reference cell, the UE expects to receive PRSs from that cell during block 712. Due to the uncertainty of when the UE may receive PRSs from a neighboring cell (as indicated by "nr-DL-PRS-ExpectedRSTD-Uncertainty"), the PRSs from the neighboring cell are illustrated as two distinct blocks: block 714, which represents the earliest time period the UE expects to receive PRSs from the neighboring cell, and block 716, which represents the latest time point the UE expects to receive PRSs from the neighboring cell. As will be appreciated, the UE may receive a PRS from a neighbor cell any time between the start of block 714 and the end of block 716 .

[0140] As shown in FIG. 7, based on the slot-based buffering described above with OFDM symbol alignment towards the maximum interval containing a potential PRS in slot 710, the PRS symbol duration 720 to be buffered in the symbol alignment scheme extends from the start of the symbol including the beginning of block 714, which represents the earliest time the UE expects to receive a PRS from a neighboring cell, to the end of the last symbol of block 716, which represents the latest time the UE expects to receive a PRS from a neighboring cell.

[0141] FIG. 8 is a diagram 800 illustrating another example of slot-based buffering with OFDM symbol alignment toward the maximum interval containing potential PRSs in a slot, according to an embodiment of the present disclosure. FIG. 8 illustrates three consecutive slots 810 during which the UE expects to receive / measure PRSs from a reference cell (i.e., TRP) and a neighboring cell (i.e., TRP). As in FIG. 6, each block illustrated in FIG. 8 represents a symbol duration during which the UE expects to receive PRSs from the respective cell. For the reference cell, the UE expects to receive PRSs from that cell during block 812. Due to the uncertainty of when the UE may receive PRSs from neighboring cells (as indicated by “nr-DL-PRS-ExpectedRSTD-Uncertainty”), the PRSs from neighboring cells are illustrated as two distinct blocks: block 814, which represents the earliest time the UE expects to receive PRSs from the neighboring cell, and block 816, which represents the latest time the UE expects to receive PRSs from the neighboring cell. As will be appreciated, the UE may receive a PRS from a neighbor cell any time between the start of block 814 and the end of block 816 .

[0142] In contrast to the example of FIG. 6, there are two durations 820 of PRS symbols to be buffered and processed: a first duration 820 that extends from the beginning of block 814, which overlaps the start of the first slot 810, to the end of block 816, which extends into the second slot 810; and a second duration 820 that extends from the beginning of block 814, which begins in the second slot 810, to the end of block 816, which extends past the end of the third slot 810.

[0143] In some cases, the UE may be expected to perform resource-specific buffering. If the UE is configured by higher layers to receive PRS symbols on frequency layer i, the PRS symbol duration for purposes of UE PRS processing capability within a window of 'T' ms is calculated as follows: For each window of 'T' ms, define the time domain search window for the PRS instance on PRS resource j as

[0144]

number

[0145] It is determined as follows, however:

[0146]

number

[0147] is the minimum interval in units of an integer number of OFDM symbols for the numerology μ of the positioning frequency layer, including the interval determined by "nr-DL-PRS-ExpectedRSTD", "nr-DL-PRS-ExpectedRSTD-Uncertainty", and the configured PRS symbol occupancy. The union of the search window across all resources of the positioning frequency layer, i.e., the number of PRS symbols that the UE is expected to buffer within a window of "T" ms, is

[0148]

number

[0149] is shown as

[0150]

number

[0151] The PRS duration inside the window of "T" ms is equal to

[0152]

number

[0153] is the duration of the

[0154] If a UE is configured by higher layers to receive PRS symbols in frequency layer i, then the duration of the PRS symbols for PRS throughput purposes within a window of 'T' ms is calculated as follows: For each window of 'T' ms, define the time domain search window for the PRS instance on PRS resource j as

[0155]

number

[0156] where, for PRS resources from neighboring TRPs,

[0157]

number

[0158] is the minimum interval in units of an integer number of OFDM symbols for the numerology μ of the positioning frequency layer, including the interval determined by "nr-DL-PRS-ExpectedRSTD", "nr-DL-PRS-ExpectedRSTD-Uncertainty", and the configured PRS symbol occupancy. For PRS resources from the reference TRP,

[0159]

number

[0160] is the minimum interval in units of an integer number of OFDM symbols for the numerology μ of the positioning frequency layer that includes the interval determined by the configured PRS symbol occupancy. The union of the search window across all resources of the positioning frequency layer, i.e., the number of PRS symbols that the UE is expected to buffer within a window of 'T' ms, is

[0161]

number

[0162] is shown as

[0163]

number

[0164] The PRS duration inside the window of "T" ms is equal to

[0165]

number

[0166] is the duration of the

[0167] FIG. 9 is a diagram 900 illustrating an example of symbol-level PRS durations to be buffered according to an embodiment of the present disclosure. Each block shown in FIG. 9 represents the duration of symbols during which the UE expects to receive PRS from the respective cell. This may also be referred to as the expected PRS symbol occupancy within slot 910 for that cell. Relative to a reference cell, the UE expects to receive PRS from that cell during block 912. As in the previous figure, due to uncertainty as to when the UE may receive PRS from a neighboring cell, the PRS from the neighboring cell is illustrated as two different blocks: block 914, which represents the earliest time the UE expects to receive PRS from the neighboring cell, and block 916, which represents the latest time the UE expects to receive PRS from the neighboring cell. As will be appreciated, the UE may receive PRS from the neighboring cell at any time between the start of block 914 and the end of block 916. Additionally, the three neighboring cells referenced in FIG. 9 may be the same or different neighboring cells.

[0168] In the example of Figure 9, the vertical lines represent the expected PRS symbol occupancy (i.e., PRS symbol durations 920 during which the UE expects to receive PRS from the cell) within a slot 910 for a particular cell. In the example of Figure 9, there are four such durations 920. Therefore, the number of PRS symbols that the UE is expected to buffer is the sum of the four PRS durations 920.

[0169] FIG. 10 is a diagram 1000 illustrating another example of symbol-level PRS durations to be buffered according to an aspect of the present disclosure. As in the previous figures, each block shown in FIG. 10 represents a symbol duration during which the UE expects to receive a PRS from a respective cell. For a reference cell, the UE expects to receive a PRS from that cell during block 1012. Due to uncertainty as to when the UE may receive a PRS from a neighboring cell, the PRS from the neighboring cell is illustrated as two different blocks: block 1014, which represents the earliest time the UE expects to receive a PRS from the neighboring cell, and block 1016, which represents the latest time the UE expects to receive a PRS from the neighboring cell. As will be appreciated, the UE may receive a PRS from the neighboring cell at any time between the start of block 1014 and the end of block 1016 within slot 1010. Additionally, the three neighboring cells referenced in FIG. 10 may be the same or different neighboring cells.

[0170] In the example of Figure 10, the vertical lines represent the expected PRS symbol occupancy (i.e., PRS symbol durations 1020 during which the UE expects to receive PRS from the cell) within a slot 1010 for a particular cell. In the example of Figure 10, there are three such durations 1020 because the expected PRS from the reference cell overlaps with the expected PRS from one of the neighbor cells. Therefore, the number of PRS symbols the UE is expected to buffer is the sum of the three PRS durations 1020.

[0171] As another alternative to slot-level buffering, if any slot contains any potential PRS symbols (based on the "nr-DL-PRS-ExpectedRSTD-Uncertainty" parameter), the entire slot is counted as part of the PRS duration for the purposes of buffering calculations. In this case, inside the slot, the PRS duration interval is either (1) the union of [0,T1] and [T2,SlotEnd] for slots that have two disjoint intervals with potential PRS symbols at the start and end of the slot (as shown in Figure 11), or (2) otherwise (as explained above).

[0172]

number

[0173] It can be either of the following.

[0174] FIG. 11 is a diagram 1100 illustrating an example of slot-based buffering for a slot having two disjoint intervals with potential PRS symbols at the beginning and end of the slot, according to an embodiment of the present disclosure. FIG. 11 illustrates three consecutive slots 1110 during which the UE expects to receive / measure PRS from a reference cell (i.e., TRP) and a neighboring cell (i.e., TRP). As in the figures described above, each block illustrated in FIG. 11 represents a symbol duration during which the UE expects to receive PRS from the respective cell. For the reference cell, the UE expects to receive PRS from that cell during block 1112. Due to uncertainty regarding when the UE may receive PRS from a neighboring cell (as indicated by "nr-DL-PRS-ExpectedRSTD-Uncertainty"), the PRS from the neighboring cell is illustrated as two distinct blocks: block 1114, which represents the earliest time the UE expects to receive PRS from the neighboring cell, and block 1116, which represents the latest time the UE expects to receive PRS from the neighboring cell. As will be appreciated, the UE may receive a PRS from a neighbor cell at any time during slot 1110 between the start of block 1114 and the end of block 1116 .

[0175] In the example of FIG. 11, there are two PRS symbol durations 1120 to be buffered and processed: a first PRS symbol duration 1120 that extends from the beginning of block 1114 that overlaps the start of the first slot 1110 to the end of block 1116 in the second slot 1110, and a second PRS symbol duration 1120 that extends from the beginning of block 1114 in the second slot 1110 to the end of block 1116 that extends past the end of the third slot 1110.

[0176] As shown in FIG. 11, the second (middle) slot 1110 includes two disjoint intervals with potential PRS symbols at the beginning and end of the slot 1110. Based on the above rules, the time windows during which the UE buffers the expected PRS for the second slot 1110 correspond to the start of the second slot 1110 to time "T1" and from time "T2" to the end of the second slot 1110. In contrast, the UE buffers the PRS symbol duration 1120 for the first slot 1110.

[0177]

number

[0178] It is determined as follows, however:

[0179]

number

[0180] is one or more symbols before the start of the first slot 1110 (corresponding to the vertical dashed line before the start of the first slot),

[0181]

number

[0182] is the last symbol of the first slot 1110. Similarly, the UE sets the PRS symbol duration 1120 for the third slot 1110 to

[0183]

number

[0184] It is determined as follows, however:

[0185]

number

[0186] is the first symbol of the third slot 1110,

[0187]

number

[0188] are one or more symbols after the end of the third slot 1110 (corresponding to the vertical dashed line after the end of the third slot 1110).

[0189] In one aspect, the UE may report how the DL-PRS duration is determined for purposes of PRS buffering as its capability. That is, the UE may transmit an indication of whether it is capable of symbol-level PRS buffering and processing or slot-level PRS buffering and processing. The UE may report this capability to a location server (e.g., location server 230, LMF 270, SLP 272) in higher layer signaling (e.g., LPP signaling).

[0190] 12 illustrates an example method 1200 of wireless communication according to an aspect of the present disclosure. In one aspect, the method 1200 may be performed by a UE (e.g., any of the UEs described herein).

[0191] At 1210, the UE receives at least one PRS resource from the reference TRP and one or more neighboring TRPs. In one aspect, operation 1210 may be performed by at least one WWAN transceiver 310, at least one processor 332, a memory component 340, and / or a positioning component 342, any or all of which may be considered a means for performing this operation.

[0192] At 1220, the UE processes the at least one PRS resource during a time window, the length of the time window being less than or equal to an integer number of OFDM symbols of the at least one PRS resource that the UE is able to process, buffer, or both within the time window. In one aspect, operation 1220 may be performed by at least one WWAN transceiver 310, at least one processor 332, a memory component 340, and / or a positioning component 342, any or all of which may be considered a means for performing this operation.

[0193] As will be appreciated, technical advantages of the method 1200 include reduced power consumption at the UE and reduced latency.

[0194] In the above detailed description, it can be seen that various features are grouped together in the examples. This manner of disclosure should not be understood as an intention that the example clauses have more features than are expressly recited in each clause. Rather, various aspects of the present disclosure may include fewer than all features of each example clause disclosed. Accordingly, the following clauses are hereby considered to be incorporated into this description, and each clause may stand alone as a separate example. Although each dependent clause may refer to a specific combination with one of the other clauses within that clause, the aspects of that dependent clause are not limited to that specific combination. It will be appreciated that other example clauses can also include combinations of aspects of that dependent clause with the subject matter of any other dependent clause or independent clause, or combinations of any features with other dependent clauses and independent clauses. The various aspects disclosed herein expressly include combinations of these combinations unless a particular combination is expressly expressed or can be readily inferred (e.g., contradictory aspects, such as defining an element as both an insulator and a conductor). It is further contemplated that aspects of a clause may be included within any other independent clause, even if the clause is not directly dependent on the independent clause.

[0195] Example implementations are described in the following numbered clauses.

[0196] Clause 1. A method of wireless communications performed by a user equipment (UE), comprising receiving at least one positioning reference signal (PRS) resource from a reference transmission reception point (TRP) and one or more neighboring TRPs, and processing the at least one PRS resource during a time window, the length of the time window being less than or equal to an integer number of orthogonal frequency division multiplexing (OFDM) symbols of the at least one PRS resource that the UE is able to process, buffer, or both within the time window.

[0197] Clause 2. The method of clause 1, wherein the integer number of OFDM symbols is determined based on a positioning frequency layer of at least one PRS resource.

[0198] Clause 3. The method of any of clauses 1-2, wherein the length of the time window is based on the numerology of at least one PRS resource and a minimum interval of an integer number of OFDM symbols for the numerology within the slot that covers a combination of potential PRS symbols.

[0199] Clause 4. Any of the methods of clauses 1 to 3, wherein the time window is:

[0200]

number

[0201] where S is the set of slots in the periodicity of the PRS in the positioning frequency layer that includes the potential PRS, μ is the numerology of the PRS resource in the positioning frequency layer,

[0202]

number

[0203] is the interval of an integer number of OFDM symbols for numerology μ in slot s that covers the combination of potential PRS symbols.

[0204] Clause 5. The method of clause 4, wherein the set of slots is determined based on an expected reference signal time difference (RSTD) parameter and an expected RSTD uncertainty parameter for one or more neighboring cells, and a PRS symbol occupancy within slot s.

[0205] Clause 6. The method of any of clauses 4-5, wherein the integer number of OFDM symbol intervals for numerology μ is based on expected RSTD parameters and expected RSTD uncertainty parameters for one or more neighboring cells and PRS symbol occupancy within slot s.

[0206] Clause 7. The method of any of clauses 4-6, wherein the potential PRS comprises a PRS that is expected to be received within the duration of the symbol based on expected RSTD parameters and expected RSTD uncertainty parameters for one or more neighboring cells and PRS symbol occupancy within slot s.

[0207] Clause 8. Any of the methods of clauses 1 to 7, further comprising: determining a time domain search window for a PRS resource j among at least one PRS resource;

[0208]

number

[0209] wherein for PRS resources from a neighboring TRP among the one or more neighboring TRPs,

[0210]

number

[0211] is the minimum interval of an integer number of OFDM symbols for the numerology μ of the positioning frequency layer, including the interval based on the expected RSTD parameters and expected RSTD uncertainty parameters for one or more neighboring cells and the configured PRS symbol occupancy of the slot, for the PRS resource from the reference TRP,

[0212]

number

[0213] is the minimum interval of an integer number of OFDM symbols for the numerology μ of the positioning frequency layer that includes the interval determined by the configured PRS symbol occupancy of the slot.

[0214] Clause 9. The method of clause 8, wherein the integer number of OFDM symbols is a union of the time domain search window across all resources of the positioning frequency layer.

[0215] Clause 10. The method of any of clauses 1 to 9, wherein all symbols of a slot are contained within an integer number of OFDM symbols based on the slot containing any potential PRS symbols.

[0216] Clause 11. The method of any of clauses 1 to 10, wherein for a slot including two or more disjoint intervals with potential PRS symbols, the integer number of OFDM symbols comprises the combination of the duration from the first symbol of the slot to the last symbol of a first PRS resource expected to be received in the slot and the duration from the second symbol of the slot during which the first symbol of a second PRS resource is expected to be received to the last symbol of the slot.

[0217] Clause 12. In any of the methods of clauses 1 to 11, for a slot that does not include two or more disjoint intervals with potential PRS symbols, the integer number of OFDM symbols comprises from the first symbol of the slot during which the PRS is expected to be received to the last symbol of the slot during which the PRS is expected to be received.

[0218] Clause 13. The method of any of clauses 1 to 12, further comprising transmitting to the location server an indication of the integer number of OFDM symbols as a capability of the UE.

[0219] Clause 14. The method of any of clauses 1 to 13, further comprising the UE sending an indication of whether symbol-level PRS buffering or slot-level PRS buffering is enabled to the location server.

[0220] Clause 15. An apparatus comprising a memory, a transceiver, and at least one processor communicatively coupled to the memory and the transceiver, wherein the memory, transceiver, and processor are configured to perform a method according to any of clauses 1 to 14.

[0221] Clause 16. Apparatus comprising means for carrying out the method according to any of clauses 1 to 14.

[0222] Clause 17. A non-transitory computer-readable medium storing computer-executable instructions, the computer-executable instructions comprising at least one instruction for causing a computer or processor to perform a method according to any of clauses 1 to 14.

[0223] Those skilled in the art will appreciate that information and signals may be represented using any of a variety of different technologies and techniques. For example, the data, instructions, commands, information, signals, bits, symbols, and chips that may be referenced throughout the above description may be represented by voltages, currents, electromagnetic waves, magnetic fields or particles, optical fields or particles, or any combination thereof.

[0224] Furthermore, those skilled in the art will appreciate that the various illustrative logical blocks, modules, circuits, and algorithm steps described in connection with the aspects disclosed herein may be implemented as electronic hardware, computer software, or a combination of both. To clearly illustrate this interchangeability of hardware and software, various illustrative components, blocks, modules, circuits, and steps have been described above generally in terms of their functionality. Whether such functionality is implemented as hardware or software depends on the particular application and design constraints imposed on the overall system. Those skilled in the art may implement the described functionality in varying ways for each particular application, but such implementation decisions should not be interpreted as causing a departure from the scope of the present disclosure.

[0225] The various illustrative logic blocks, modules, and circuits described in connection with the aspects disclosed herein may be implemented or performed using a general-purpose processor, a digital signal processor (DSP), an ASIC, a field programmable gate array (FPGA) or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein. A general-purpose processor may be a microprocessor, but alternatively, the processor may be any conventional processor, controller, microcontroller, or state machine. A processor may also be implemented as a combination of computing devices, e.g., a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors in conjunction with a DSP core, or any other such configuration.

[0226] The methods, sequences, and / or algorithms described in connection with the aspects disclosed herein may be embodied directly in hardware, in software modules executed by a processor, or in a combination of the two. The software modules may reside in random access memory (RAM), flash memory, read-only memory (ROM), erasable programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), registers, hard disk, removable disk, CD-ROM, or any other form of storage medium known in the art. An exemplary storage medium is coupled to the processor such that the processor can read information from, and write information to, the storage medium. Alternatively, the storage medium may be integral to the processor. The processor and the storage medium may reside in an ASIC. The ASIC may reside in a user terminal (e.g., UE). Alternatively, the processor and the storage medium may reside as discrete components in the user terminal.

[0227] In one or more exemplary aspects, the functions described may be implemented in hardware, software, firmware, or any combination thereof. If implemented in software, the functions may be stored on or transmitted over as one or more instructions or code on a computer-readable medium. Computer-readable media includes both computer storage media and communication media, including any medium that facilitates transfer of a computer program from one place to another. Storage media may be any available medium that can be accessed by a computer. By way of example, and not limitation, such computer-readable media may comprise RAM, ROM, EEPROM, CD-ROM or other optical disk storage, magnetic disk storage or other magnetic storage devices, or any other medium that can be used to carry or store desired program code in the form of instructions or data structures and that can be accessed by a computer. Also, any connection is properly termed a computer-readable medium. For example, if software is transmitted from a website, server, or other remote source using coaxial cable, fiber optic cable, twisted pair, digital subscriber line (DSL), or wireless technologies such as infrared, radio, and microwave, the coaxial cable, fiber optic cable, twisted pair, DSL, or wireless technologies such as infrared, radio, and microwave are included within the definition of medium. Disk and disc, as used herein, include compact discs (CDs), laser discs, optical discs, digital versatile discs (DVDs), floppy disks, and Blu-ray discs, where disks typically reproduce data magnetically and discs reproduce data optically using lasers. Combinations of the above should also be included within the scope of computer-readable media.

[0228] While the above disclosure illustrates exemplary aspects of the present disclosure, it should be noted that various changes and modifications can be made herein without departing from the scope of the present disclosure as defined by the appended claims. The functions, steps, and / or actions of the method claims in accordance with the aspects of the present disclosure described herein need not be performed in any particular order. Furthermore, although elements of the present disclosure may be described or claimed in the singular, the plural is contemplated unless limitation to the singular is explicitly stated. [Explanation of symbols]

[0229] 100 Wireless Communication System 102 base stations, macrocell base stations 102' Small Cell Base Station 104 User Equipment (UE) 110 Coverage Area, Geographic Coverage Area 112 Space Vehicle (SV) 120 Communication Links 122 backhaul links 124 SPS signals 134 backhaul links 150 Wireless Local Area Network (WLAN) Access Points (APs) 152 Wireless Local Area Network (WLAN) Station (STA) 154 communication links 164 User Equipment (UE) 170 Core Network 172 Location Server 180 mmW base station 182 User Equipment (UE) 184 Millimeter Wave (mmW) Communication Link 190 User Equipment (UE) 192, 194 Device-to-Device (D2D) Peer-to-Peer (P2P) Links 200 Wireless Network Structure 204 User Equipment (UE) 210 5G Core (5GC) 212 User Plane (U-Plane) Functions 213 User Plane Interface (NG-U) 214 Control Plane (C-Plane) Functions 215 Control Plane Interface (NG-C) 220 Next Generation RAN (NG-RAN) 222 gNB 223 Backhaul Connection 224 ng-eNB 226 gNB Central Unit (gNB-CU) 228 gNB Distributed Unit (gNB-DU) 230 Location Server 232 Interface 250 Wireless Network Structure 260 5G Core (5GC) 262 User Plane Function (UPF) 263 User Plane Interface 264 Access and Mobility Management Function (AMF) 265 Control Plane Interface 266 Session Management Facility (SMF) 270 Location Management Function (LMF) 272 Secure User Plane Location (SUPL) Location Platform (SLP) 302 User Equipment (UE) 304 base station 306 Network Entity 310 Wireless Wide Area Network (WWAN) Transceiver 312 Receiver 314 Transmitter 316 Antenna 318 Signal 320 Short-distance wireless transceiver 322 Receiver 324 Transmitter 326 Antenna 328 signal 330 Satellite Positioning System (SPS) Receiver 332 processor 334 Data Bus 336 Antenna 338 Satellite Positioning System (SPS) signals 340 Memory Components 342 Positioning Components 344 Sensors 346 User Interface 350 Wireless Wide Area Network (WWAN) Transceiver 352 receiver 354 Transmitter 356 Antenna 358 Signal 360 Short Range Wireless Transceiver 362 Receiver 364 Transmitter 366 Antenna 368 signal 370 Satellite Positioning System (SPS) Receiver 376 Antenna 378 Satellite Positioning System (SPS) signals 380 Network Interface 382 Data Bus 384 processor 386 Memory Components 388 Positioning Components 390 Network Interface 392 Data Bus 394 processor 396 Memory Components 398 Positioning Components 510 Fast Fourier Transform (FFT) stage 520 Correlation Stage 530 Inverse Fast Fourier Transform (IFFT) stage 540 Earliest Peak Detection Stage 610 Slots 710 Slots 810 Slots 910 Slots 1010 Slots 1110 Slots

Claims

1. 1. A method of wireless communication performed by a user equipment (UE), comprising: receiving at least one positioning reference signal (PRS) resource from a reference transmission reception point (TRP) and one or more neighboring TRPs; and processing the at least one PRS resource during a time window, the length of the time window being less than or equal to an integer number of Orthogonal Frequency Division Multiplexing (OFDM) symbols of the at least one PRS resource that the UE can (i) process, (ii) buffer, or (iii) both within the time window, the length of the time window being based on a numerology of the at least one PRS resource and a minimum duration of the integer number of OFDM symbols for the numerology within a slot that covers a combination of potential PRS symbols. method.

2. The method of claim 1 , wherein the integer number of OFDM symbols is determined based on a positioning frequency layer of the at least one PRS resource.

3. The time window is: [Equation 1] is calculated as where S is the set of slots within the periodicity of the PRS in the positioning frequency layer that contains the potential PRS; [Equation 2] is the interval of the integer number of OFDM symbols for numerology μ in slot s that covers a combination of potential PRS symbols, and the numerology μ is the numerology of PRS resources in the positioning frequency layer; The method of claim 1.

4. 4. The method of claim 3, wherein the set of slots is determined based on an expected reference signal time difference (RSTD) parameter and an expected RSTD uncertainty parameter for one or more neighboring cells, and a PRS symbol occupancy within slot s.

5. 4. The method of claim 3, wherein the interval of the integer number of OFDM symbols for the numerology μ is based on expected RSTD parameters and expected RSTD uncertainty parameters for one or more neighboring cells and PRS symbol occupancy within slot s.

6. 4. The method of claim 3, wherein the potential PRS comprises a PRS that is expected to be received within a duration of the symbol based on expected RSTD parameters and expected RSTD uncertainty parameters for one or more neighboring cells and PRS symbol occupancy within slot s.

7. a time domain search window for PRS resource j of the at least one PRS resource; [Equation 3] , further comprising determining: For PRS resources from a neighboring TRP among the one or more neighboring TRPs, [Equation 4] is the minimum interval of the integer number of OFDM symbols for the numerology μ of the positioning frequency layer, the interval being based on expected RSTD parameters and expected RSTD uncertainty parameters for one or more neighboring cells and a configured PRS symbol occupancy of the slot; For PRS resources from the reference TRP, [Equation 5] is the minimum interval of the integer number of OFDM symbols for the numerology μ of the positioning frequency layer that includes an interval determined by the configured PRS symbol occupancy of the slot; The method of claim 1.

8. 8. The method of claim 7, wherein the integer number of OFDM symbols is a union of time domain search windows across all resources of a positioning frequency layer.

9. 10. The method of claim 1, wherein all symbols of a slot are included in the integer number of OFDM symbols based on the slot's inclusion of any potential PRS symbols.

10. 10. The method of claim 1, wherein, for a slot including two or more disjoint intervals with potential PRS symbols, the integer number of OFDM symbols comprises a combination of a duration from a first symbol of the slot to a last symbol of a first PRS resource expected to be received during the slot and a duration from a second symbol of the slot to a last symbol of the slot during which a first symbol of a second PRS resource is expected to be received.

11. 2. The method of claim 1, wherein for a slot that does not contain two or more disjoint intervals with potential PRS symbols, the integer number of OFDM symbols comprises a first symbol of the slot during which a PRS is expected to be received through a last symbol of the slot during which a PRS is expected to be received.

12. sending an indication of the integer number of OFDM symbols as the capabilities of the UE to a location server. The method of claim 1 further comprising:

13. the UE sending an indication of whether symbol-level PRS buffering or slot-level PRS buffering is enabled to a location server. The method of claim 1 further comprising:

14. A user equipment (UE), Memory and A transceiver; a processor communicatively coupled to the memory and the transceiver, the processor comprising: receiving at least one positioning reference signal (PRS) resource from a reference transmitting receiving point (TRP) and one or more neighboring TRPs via the transceiver; and a time window configured to process the at least one PRS resource during a time window, the time window having a length less than or equal to an integer number of Orthogonal Frequency Division Multiplexing (OFDM) symbols of the at least one PRS resource that the UE can (i) process, (ii) buffer, or (iii) both within the time window, the length of the time window being based on a numerology of the at least one PRS resource and a minimum duration of the integer number of OFDM symbols for the numerology within a slot that covers a combination of potential PRS symbols. User Equipment (UE).

15. The UE of claim 14, wherein the processor is further configured to perform the method of any one of claims 2 to 13.

16. A non-transitory computer-readable storage medium storing computer-executable instructions, the computer-executable instructions, when executed by a user equipment (UE), causing the UE to perform the method of any one of claims 1 to 13. A non-transitory computer-readable recording medium.