Method and apparatus for signaling for beam management using chirped beams

2D chirp beams with adjustable coefficients address the challenge of high overhead and latency in high-frequency wireless communication by ensuring robust beamforming in arbitrary directions, reducing beam alignment time and improving system efficiency.

JP7740622B2Active Publication Date: 2025-09-17HUAWEI TECH CO LTD
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Patent Information

Application Number
JP2024531214
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-11-25
Publication Date
2025-09-17
Estimated Expiration
2041-11-25

AI Technical Summary

Technical Problem

In wireless communication systems, particularly at high frequencies like mmWave and THz bands, narrow beams require longer beam alignment procedures due to increased signal attenuation and movement of user equipment, leading to high overhead and latency in beam acquisition, while conventional 2D beamforming methods lack robustness in arbitrary directions.

Method used

Implementing 2D chirp beams for beamforming with a 2D antenna array, allowing robustness in any arbitrary direction and reducing beam alignment time through a signaling scheme that adjusts beam coefficients for improved beam management.

Benefits of technology

Enhances beamforming robustness and reduces latency by providing controllable beamwidth, minimizing beam sweeping overhead and latency in high-frequency communication systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

Aspects of the present disclosure provide a method for using 2D chirp beams designed for beamforming with a 2D antenna array, rather than simply obtaining the 2D array beam from a Kronecker product of the underlying 1D array beams. The method allows for robustness in any arbitrary direction, not just the direction of the underlying 1D array beam. Aspects of the present disclosure also provide a signaling scheme that allows transmitters and receivers to take advantage of the 2D beamforming method and benefit from using beams generated from the 2D beamforming method.
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Description

[Technical Field]

[0001] The present disclosure relates generally to wireless communications, and in particular embodiments to methods and devices for signaling for beam management using chirp beams. [Background technology]

[0002] In some wireless communication systems, user equipment (UE) communicates wirelessly with base stations (BS) to transmit data to and / or receive data from the base stations. Wireless communication from the UE to the BS is called uplink (UL) communication. Wireless communication from the base station to the UE is called downlink (DL) communication.

[0003] In such wireless communication systems, resources are required to perform uplink and downlink communications. For example, a BS may wirelessly transmit data, such as a transport block (TB), to a UE using a wireless signal and / or a physical layer channel in a downlink transmission at a particular frequency for a particular duration. The frequency and duration used are examples of resources.

[0004] Some wireless communication systems use beamforming, in which communication signals are transmitted in a specific direction rather than omnidirectionally. High-frequency communication is a technology that may improve the performance of future cellular networks due to the larger bandwidth for communication. However, as frequencies increase, antenna sizes decrease. Therefore, more antennas may be required in multiple-input multiple-output (MIMO) systems to enable high-frequency communication (e.g., by meeting a certain signal-to-noise ratio (SNR) threshold at the receiver).

[0005] In the millimeter wave (mmWave) and THz bands, signal attenuation is significant, and large beamforming gains are required to overcome the signal attenuation. Large beamforming gains can be achieved through the use of multiple antenna elements at the BS and UE to generate narrow beams. However, the use of narrow beams causes the transmit and receive beam alignment procedures to take longer when using beam sweeping. This is because more beams may be required over a given range with narrow beams than over the same range with wider beams.

[0006] Analog beamforming is useful for providing additional gain against channel path loss in multi-antenna systems. Analog beamforming can be performed by having a phase shifter attached to each antenna and multiple phase shifters and antennas connected in a single radio frequency (RF) chain. One of the most common analog beamforming methods is to use a discrete Fourier transformation (DFT) matrix, where the number of rows in the DFT matrix is ​​equal to the number of antennas. In this case, each column of the DFT matrix is ​​a beamformer that points to a particular direction in space, i.e., a direction defined by an angle relative to a reference point, and can be used to transmit or receive in that direction. In some deployments, an extended DFT matrix can be used. The columns of the extended DFT matrix are:

number

[0007] In addition to beam angle, there are various other analog beamforming parameters that can be used in defining an analog beamformed beam. Beamwidth defines how wide the beam is while providing a certain beamforming gain. Beamwidth can determine how much of the area around the UE still has beamforming gain when the UE is moving. For example, the wider the beamwidth, the more area around the UE is covered by the beam, and therefore the UE can move more and still maintain a certain amount of beamforming gain.

[0008] Some systems may use chirp beams instead of DFT beams because chirp beams have a controllable beamwidth that can provide gain over a larger area. Therefore, chirp beams may provide robustness to angle errors because the beam can still serve an area around the UE. However, this use of chirp beams may reduce peak gain.

[0009] When a BS or UE has many antennas, these antennas can be arranged in many ways. One common method is to arrange them in a 1D linear array with equal spacing. Another common method is to arrange them in a regular rectangular grid in 2D. For 1D arrays, DFT or chirp beamforming may be used for beamforming. When a 2D array is used, conventional methods typically use two 1D beams in each direction or axis of the rectangular grid. This arrangement can be represented by the Kronecker product of the two 1D beams to obtain a 2D beam. When beamforming in 2D is performed in this way, the robustness of the 2D beam depends on the robustness of the underlying 1D beam. For example, if the 1D beams are horizontal and vertical beams, the robustness that can be obtained is in the horizontal and / or vertical directions, and robustness cannot be obtained in any other general direction.

[0010] Providing robustness for any direction in analog beamforming of 2D antenna arrays compared to only the direction of the underlying 1D beam is beneficial for telecommunications systems, particularly those operating in the mmWave and THz bands. Summary of the Invention

[0011] Aspects of the present disclosure provide a method for using 2D chirp beams designed for beamforming with a 2D antenna array, rather than simply deriving a 2D array beam from the Kronecker product of the underlying 1D array beams. The method allows for robustness in any arbitrary direction, not just the direction of the underlying 1D array beam, as occurs when using the Kronecker product of the underlying 1D array beams. Aspects of the present disclosure also provide a signaling scheme that enables transmitters and receivers to utilize the 2D beamforming method and benefit from using beams generated from the 2D beamforming method.

[0012] According to one aspect, a method of analog beamforming a signal is provided, comprising the steps of beamforming a signal to be transmitted by an array of antennas, the beamforming comprising applying beam coefficients to the array of antennas, the beam coefficients relating to beam direction and beam robustness, and applying the beam coefficients comprises adjusting the beam coefficients to obtain robustness in either direction.

[0013] According to one aspect, a method for use in analog beam management is provided, comprising the steps of: transmitting, by a user equipment (UE), UE parameter information for use in generating a chirp beam used by a base station to beamform a beam transmitted to the UE; receiving, by the UE, a reference signal from the base station that is beamformed using a chirp beam based at least in part on the UE parameter information; measuring, by the UE, the received reference signal to generate feedback information; and transmitting, by the UE, the feedback information to the base station.

[0014] According to one aspect, there is provided a device including a processor and a computer-readable medium having computer-executable instructions stored thereon that, when executed, cause the processor to perform a method as described above or in more detail below.

[0015] According to one aspect, a method for use in beam management is provided, comprising the steps of: receiving, by a base station, UE parameter information for use in generating a chirp beam used by the base station to beamform a beam to be transmitted to the UE; transmitting, by the base station, a reference signal from the base station that is beamformed using a chirp beam that is based at least in part on the UE parameter information; and receiving, by the base station, feedback information from the UE regarding the beamformed reference signal received at the UE.

[0016] According to one aspect, there is provided a device including a processor and a computer-readable medium having computer-executable instructions stored thereon that, when executed, cause the processor to perform a method as described above or in more detail below.

[0017] According to one aspect, a method for use in beam management is provided, comprising the steps of: receiving, by a user equipment (UE), base station parameter information used to generate a chirp beam used by the base station to beamform a beam to the UE; receiving, by the UE, a reference signal from the base station beamformed using the generated chirp beam; measuring, by the UE, the received reference signal to generate feedback information; and transmitting, by the UE, the feedback information to the base station.

[0018] In some embodiments, the method further includes transmitting, by the UE, UE parameter information that affects a chirp beam used by the base station to beamform at least one of a control or data signal to the UE.

[0019] In some embodiments, the method further includes transmitting, by the UE, confirmation or correction information regarding base station capability information and base station parameter information affecting the chirp beam.

[0020] In some embodiments, the method further includes receiving, by the UE, confirmation or modification of UE parameter information affecting the chirp beam transmitted by the UE to the base station.

[0021] In some embodiments, the method further includes transmitting, by the UE, a request to the base station to update the chirp beam used in beamforming control or data signals to the UE.

[0022] In some embodiments, the UE parameter information affecting the chirp beam includes a recommended beamwidth to be produced by the chirp beam.

[0023] In some embodiments, the UE parameter information chirp beam is based on one or more of the following: UE speed, UE direction of movement, UE position, interference measured at the UE, signal to noise ratio calculated at the UE, uncertainty in one or more of UE speed, UE direction of movement, UE position, interference measured at the UE, or signal to noise ratio calculated at the UE.

[0024] In some embodiments, the UE parameter information that affects the chirp beam is the identity of more than one beam.

[0025] In some embodiments, the identification information for the more than one beam includes a first beam for initial access and a second beam for improved beam sweeping between the UE and the base station.

[0026] In some embodiments, at least one of the base station capability information and the base station parameters that affect the beam includes beam width identification information or parameter information that can be used by the UE to enable the UE to determine the beam width.

[0027] According to one aspect, there is provided a device including a processor and a computer-readable medium having computer-executable instructions stored thereon that, when executed, cause the processor to perform a method as described above or in more detail below.

[0028] According to one aspect, a method for use in beam management is provided, comprising the steps of: transmitting, by a base station, at least one of base station capability information and base station parameter information related to a chirp beam used by the base station to beamform at least one of control or data signals to a UE; transmitting, by the base station, a beamformed reference signal to the UE based at least in part on the at least one of the base station capability information and the base station parameter information related to the chirp beam; and receiving, by the base station, feedback information related to the beamformed control or data signal to the base station.

[0029] In some embodiments, the method further includes receiving, by the base station, UE parameter information that affects a chirp beam used by the base station to beamform at least one of a control or data signal to the UE.

[0030] In some embodiments, the method further includes receiving, by the base station, confirmation or correction information regarding the base station capability information and base station parameter information regarding the chirp beam.

[0031] In some embodiments, the method further includes transmitting, by the base station, a confirmation or modification of UE parameter information affecting the chirp beam transmitted by the UE to the base station.

[0032] In some embodiments, the method further includes receiving, by the base station, a request from the UE to update a chirp beam used in beamforming control or data signals to the UE.

[0033] In some embodiments, the UE parameter information affecting the chirp beam includes a recommended beamwidth to be produced by the chirp beam.

[0034] In some embodiments, the UE parameter information affecting the chirp beam is based on one or more of the following: UE speed, UE direction of movement, UE position, interference measured at the UE, signal-to-noise ratio calculated at the UE, uncertainty in one or more of UE speed, UE direction of movement, UE position, interference measured at the UE, or signal-to-noise ratio calculated at the UE.

[0035] In some embodiments, the UE parameter information that affects the chirp beam is the identity of more than one beam.

[0036] In some embodiments, the identification information for the more than one beam includes a first beam for initial access and a second beam for improved beam sweeping between the UE and the base station.

[0037] In some embodiments, at least one of the base station capability information and the base station parameter information regarding the chirp beam includes beam width identification information or parameter information that can be used by the UE to enable the UE to determine the beam width.

[0038] According to one aspect, there is provided a device including a processor and a computer-readable medium having computer-executable instructions stored thereon that, when executed, cause the processor to perform a method as described above or in more detail below. [Brief explanation of the drawings]

[0039] For a more complete understanding of the present embodiments and their advantages, reference is now made to the following descriptions taken in conjunction with the accompanying drawings, in which: [Figure 1A] 1 is a schematic diagram of a communication system in which embodiments of the present disclosure may occur; [Figure 1B] FIG. 2 is another schematic diagram of a communication system in which embodiments of the present disclosure may occur. [Figure 2] FIG. 1 is a block diagram illustrating exemplary electronic and network devices. [Figure 3] FIG. 1 is a block diagram illustrating units or modules within a device in which embodiments of the present disclosure may occur. [Figure 4A] 1 is an example of a simulated analog beamformed beam generated to provide robustness in either direction. [Figure 4B] 1 is an example of a simulated analog beamformed beam generated to provide robustness in either direction. [Figure 4C] 1 is an example of a simulated analog beamformed beam generated to provide robustness in either direction. [Figure 4D] 4D is an example of a simulated analog beamformed beam generated to provide robustness in either direction, in the case of FIG. 4D, a curved shape. [Figure 5] FIG. 10 is an example signaling flow diagram for signaling between a base station and a user equipment (UE) in which the UE transmits chirp beam parameter information and / or UE robustness information to the base station in accordance with one aspect of the present disclosure. [Figure 6] FIG. 10 is another example of a signaling flow diagram for signaling between a base station and a UE, in which the UE transmits chirp beam parameter information and / or UE robustness information to the base station in accordance with one aspect of the present disclosure. [Figure 7] 1 is an example signaling flow diagram for signaling between a base station and two UEs to reduce signal interference according to one aspect of the present disclosure. [Figure 8] FIG. 10 is an example signaling flow diagram for signaling between a base station and a UE, in which the base station may transmit beam parameter information and the UE may transmit feedback information to the base station according to one aspect of the present disclosure. [Figure 9] 1 is an example signaling flow diagram for signaling between a base station and a UE, in which the UE sends a beam update request to the base station in accordance with one aspect of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0040] For purposes of illustration, certain exemplary embodiments will now be described in more detail below in conjunction with the figures.

[0041] The embodiments described herein represent sufficient information to practice the claimed subject matter and show how to practice such subject matter. Upon reading the following description in light of the accompanying drawings, one skilled in the art will understand the concepts of the claimed subject matter and will recognize applications of these concepts not specifically addressed herein. These concepts and applications should be understood to fall within the scope of this disclosure and the appended claims.

[0042] Additionally, it will be recognized that any module, component, or device disclosed herein that executes instructions may include or otherwise have access to one or more non-transitory computer / processor-readable storage media for storage of information such as computer / processor-readable instructions, data structures, program modules, and / or other data. A non-exhaustive list of examples of non-transitory computer / processor-readable storage media includes magnetic cassettes, magnetic tape, magnetic disk storage or other magnetic storage devices, compact disc read-only memory (CD-ROM), digital video disk or digital versatile disk (i.e., DVD), optical disk such as Blu-ray Disc™ or other optical storage, volatile and non-volatile, removable and non-removable media implemented in any manner or technology, random access memory (RAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM), flash memory, or other memory technology. Any such non-transitory computer / processor storage medium may be part of or accessible or connectable to a device, and computer / processor readable / executable instructions for implementing the applications or modules described herein may be stored or otherwise carried by such non-transitory computer / processor readable storage medium.

[0043] Beam acquisition for massive MIMO systems can be challenging at high frequencies such as millimeter wave (mmWave) and sub-THz bands (>100 GHz) due to the large overhead of processing time and control signaling required when performing beam sweeping through narrow beams (due to beam sweeping overhead). Increased latency can also be another issue affecting beam acquisition at mmWave and sub-THz frequencies.

[0044] When performing beam sweeping via narrow beams, the transmitter transmits reference signals via the narrow beams in different directions, and the receiver similarly searches for the reference signals transmitted by the transmitter via the narrow beams in multiple different directions. Examples of types of reference signals that may be transmitted by a transmitter such as a base station may include a channel state information reference signal (CSI-RS) or a positioning reference signal (PRS). Examples of types of reference signals that may be transmitted by a receiver such as a user equipment (UE) may include a sounding reference signal (SRS). When only narrow beams are used, many beams may be needed, as opposed to fewer beams that may be needed when wide beams are used. Beam sweeping overhead involves multiple beam pairs (transmitter beams and receiver beams forming a beam pair) being searched to find one or more beam pairs with desirable characteristics (e.g., best signal strength) for data communication between the transmitter and receiver. In addition to the multiple beam pairs, beam sweeping overhead also depends on the duration for performing measurements (e.g., measurements of received signal strength). The time to perform a measurement may also depend on the sequence length. Variations in the sequence length determine the quality of the measurement. For example, a longer sequence length results in higher quality, while a shorter sequence length results in lower quality. However, longer sequence lengths result in greater overhead. Therefore, there is a trade-off between measurement quality and the amount of overhead. Note that beam sweeping overhead is reduced when searching among fewer beam pairs to find one or more beam pairs with preferred characteristics (e.g., best signal strength) using a fixed duration per measurement of one beam pair.

[0045] To perceive the environment in the transmitter's area, sensing techniques can be used that allow determining a transmission channel on at least one beam pair between the transmitter and the receiver. In some implementations, when the propagation environment is known a priori, mmWave channels can be estimated with greater accuracy and less overhead, especially in large antenna arrays and for large bandwidths.

[0046] Compared to sub-6 GHz communication systems, the propagation environment for mmWave and sub-THz consists of objects that act as reflectors, as opposed to objects that can scatter communication signals. Thus, in the propagation environment for mmWave and sub-THz, much of the signal energy is confined to line-of-sight (LOS) and reflected paths.

[0047] Sensing of the environment may be used to assist in beamforming, e.g., beam acquisition and beam management. Sensing may enable minimizing and possibly eliminating beam sweeping as part of the beam acquisition process. Sensing may enable minimizing channel state information (CSI) acquisition overhead and minimizing latency in the acquisition process. Sensing may also enable the transmitter, or the network through which the transmitter communicates, to track the receiver using channel prediction. For example, in some embodiments, as part of the sensing function, the transmitter may be able to determine the receiver's movement (speed and direction) and, based on such determined movement, predict future movement of the receiver. Based on the determined movement and / or movement prediction, the transmitter may be able to estimate the channel for the determined and / or predicted movement. Sensing may also enable proactive beam management. Beam management may involve aligning a transmit (Tx, transmit) beam from the transmitter side with a receive (Rx, receive) beam from the receiver side to form a transmit-receive beam pair. Beam management may also consist of at least one of beam training and beam tracking.

[0048] For a linear 1D array of N antennas separated by half a wavelength (denoted λ), the phase of a phase shifter coupled to the nth antenna (n=0 to N-1) with a beam pointing at an angle θ at antenna index n is given by e -jπnsinθ , i.e., a phase term that is linear in n. To provide a certain level of robustness, and potentially have better beamforming gain around that angle θ,

number

number

number

[0049] For an N1 × N2 antenna array, a 2D chirp beam, designated by angles θ1 and θ2 (which are the beam angles relative to the axis of the antenna panel), is given by, for antenna indexes n1, n2 (n1 = 0 to N1-1 and n2 = 0 to N2-1):

number

[0050] As can be seen, the chirp phase terms for each angle θ and θ are independent. For example, if an antenna array is located in the XY plane with the antennas of the array lying along the X and Y axes, then θ = sin -1 (sinθ s cosφ s ) and θ2=sin -1 (sinθ s sinφ s ) where θ s ,φ s are the polar angle and azimuthal angle in polar coordinates, respectively.

[0051] Aspects of the present disclosure provide a method for using 2D chirp beams designed for beamforming with a 2D antenna array, rather than simply obtaining the 2D array beam from the Kronecker product of the underlying 1D array beams. The method allows for robustness in any arbitrary direction, not just the direction of the underlying 1D array beam. Aspects of the present disclosure also provide a signaling scheme that enables transmitters and receivers to utilize the 2D beamforming method and benefit from using beams generated from the 2D beamforming method.

[0052] 1A, 1B, and 2 provide context for networks and devices of a wireless communication system in which aspects of the mobility management method of the present disclosure may be implemented.

[0053] Referring to FIG. 1A, a simplified schematic diagram of a communication system is provided by way of illustrative, non-limiting example. The communication system 100 includes a radio access network 120. The radio access network 120 may be a next-generation (e.g., sixth-generation (6G) or later) radio access network or a legacy (e.g., 5G, 4G, 3G, or 2G) radio access network. One or more electric devices (EDs) 110a-120j (collectively referred to as 110) may be interconnected to one another and / or alternatively connected to one or more network nodes (170a, 170b, collectively referred to as 170) within the radio access network 120. A core network 130 may be part of the communication system and may be dependent on or independent of the radio access technology used in the communication system 100. The communication system 100 also includes a public switched telephone network (PSTN) 140, the Internet 150, and other networks 160.

[0054] 1B illustrates an exemplary wireless communication system 100 (hereinafter referred to as system 100), including a network in which embodiments of the inter-cell mobility management method of the present disclosure may be implemented. Generally, system 100 enables multiple wireless or wired elements to communicate data and other content. The purpose of system 100 may be to provide content (voice, data, video, text) via broadcast, narrowcast, user device-to-user device, etc. System 100 may operate efficiently by sharing resources such as bandwidth.

[0055] The communication system 100 may provide a wide range of communication services and applications, such as Earth monitoring, remote sensing, passive sensing and positioning, navigation and tracking, autonomous delivery, and mobility. The communication system 100 may provide high availability and robustness through cooperation between terrestrial and non-terrestrial communication systems. For example, integrating a non-terrestrial communication system (or components thereof) with a terrestrial communication system can result in what may be considered a heterogeneous network including multiple layers. Compared to traditional communication networks, the heterogeneous network may achieve better overall performance through efficient multi-link cooperation, more flexible function sharing, and faster physical layer link switching between the terrestrial and non-terrestrial networks.

[0056] The terrestrial and non-terrestrial communication systems may be considered subsystems of a communication system. In the illustrated example, communication system 100 includes electronic devices (EDs) 110a-110d (collectively referred to as EDs 110), radio access networks (RANs) 120a-120b, a non-terrestrial communication network 120c, a core network 130, a public switched telephone network (PSTN) 140, the Internet 150, and other networks 160. RANs 120a-120b include respective base stations (BSs) 170a-170b, which may collectively be referred to as terrestrial transmit and receive points (T-TRPs) 170a-170b. Non-terrestrial communication network 120c includes access nodes 172c, which may collectively be referred to as non-terrestrial transmit and receive points (NT-TRPs) 172.

[0057] Any ED 110 may alternatively or additionally be configured to interface with, access, or communicate with any other T-TRPs 170a-170b and NT-TRPs 172, the Internet 150, the core network 130, the PSTN 140, other networks 160, or any combination of the above. In some examples, ED 110a may communicate uplink and / or downlink transmissions over interface 190a with T-TRP 170a. In some examples, EDs 110a, 110b, and 110d may also communicate directly with each other via one or more sidelink air interfaces 190b. In some examples, ED 110d may communicate uplink and / or downlink transmissions over interface 190c with NT-TRP 172.

[0058] Air interfaces 190a and 190b may use similar communication technologies, such as any suitable radio access technology. For example, communication system 100 may implement one or more channel access methods, such as code division multiple access (CDMA), time division multiple access (TDMA), frequency division multiple access (FDMA), orthogonal FDMA (OFDMA), or single-carrier FDMA (SC-FDMA), over air interfaces 190a and 190b. Air interfaces 190a and 190b may utilize other higher-dimensional signal spaces, which may involve combinations of orthogonal and / or non-orthogonal dimensions.

[0059] The air interface 190c can enable communication between the ED 110d and one or more NT-TRPs 172 via a wireless link or simply a link. In some examples, the link is a dedicated connection for unicast transmission, a connection for broadcast transmission, or a connection between a group of EDs and one or more NT-TRPs for multicast transmission.

[0060] The RANs 120a and 120b communicate with the core network 130 to provide various services, such as voice, data, and other services, to the EDs 110a, 110b, and 110c. The RANs 120a and 120b and / or the core network 130 may communicate directly or indirectly with one or more other RANs (not shown), which may or may not be directly served by the core network 130 and which may or may not use the same radio access technology as the RAN 120a, RAN 120b, or both. The core network 130 may also serve as a gateway access between (i) the RANs 120a and 120b, or the EDs 110a, 110b, and 110c, or both, and (ii) other networks, such as the PSTN 140, the Internet 150, and other networks 160. Additionally, some or all of the EDs 110a, 110b, and 110c may include functionality for communicating with different wireless networks over different wireless links using different wireless technologies and / or protocols. Alternatively (or in addition to) wireless communication, the EDs 110a, 110b, and 110c may communicate via wired communication channels to a service provider or switch (not shown) and the Internet 150. The PSTN 140 may include a circuit-switched telephone network for providing plain old telephone service (POTS). The Internet 150 may include networks of computers and / or subnetworks (intranets) and may incorporate protocols such as Internet Protocol (IP), Transmission Control Protocol (TCP), and User Datagram Protocol (UDP). The EDs 110a, 110b, and 110c may be multimode devices capable of operating according to multiple wireless access technologies and may incorporate multiple transceivers necessary to support such technologies.

[0061] The EDs 110a-110c communicate with one another over one or more SL air interfaces 180 using wireless communication links, such as, for example, radio frequency (RF), microwave, infrared (IR), etc. The SL air interfaces 180 may utilize any suitable radio access technology and may be substantially similar to or substantially different from the air interfaces 190 over which the EDs 110a-110c communicate with one or more of the T-TRPs 170a-170b or NT-TRPs 172. For example, the communication system 100 may implement one or more channel access methods, such as code division multiple access (CDMA), time division multiple access (TDMA), frequency division multiple access (FDMA), orthogonal FDMA (OFDMA), or single-carrier FDMA (SC-FDMA), over the SL air interfaces 180. In some embodiments, the SL air interface 180 may be implemented, at least in part, over unlicensed spectrum.

[0062] 2 shows another example of an ED 110 and network devices including base stations 170a, 170b (170) and an NT-TRP 172. The ED 110 is used to connect people, objects, machines, etc. The ED 110 may be widely used in various scenarios, such as cellular communications, device-to-device (D2D), vehicle-to-everything (V2X), peer-to-peer (P2P), machine-to-machine (M2M), machine-type communications (MTC), Internet of Things (IoT), virtual reality (VR), augmented reality (AR), industrial control, autonomous driving, telemedicine, smart grid, smart furniture, smart office, smart wearables, smart transportation, smart cities, drones, robots, remote sensing, passive sensing, positioning, navigation and tracking, autonomous delivery and mobility, etc.

[0063] Each ED 110 represents any suitable end-user device for wireless operation and may include (or be referred to as) a device such as a user equipment / device (UE), a wireless transmit / receive unit (WTRU), a mobile station, a fixed or mobile subscriber unit, a cell phone, a station (STA), a machine-type communication (MTC) device, a personal digital assistant (PDA), a smartphone, a laptop, a computer, a tablet, a wireless sensor, a consumer electronic device, a smartbook, a vehicle, an automobile, a truck, a bus, a train, or an IoT device, an industrial device, or an apparatus (e.g., a communication module, a modem, or a chip) within any of the above devices, among other possibilities. Future generation EDs 110 may be referred to using other terminology. Base stations 170a and 170b are T-TRPs and are hereinafter referred to as T-TRPs 170. Also, as shown in FIG. 2, an NT-TRP is hereinafter referred to as NT-TRP 172. Each ED110 connected to the T-TRP170 and / or NT-TRP172 can be dynamically or semi-statically turned on (i.e., established, activated or enabled), turned off (i.e., released, deactivated or disabled), and / or configured depending on one or more of connection availability and connection need.

[0064] The ED 110 includes a transmitter 201 and a receiver 203 coupled to one or more antennas 204. Only one antenna 204 is shown. One, some, or all of the antennas may alternatively be panels. The transmitter 201 and receiver 203 may be integrated, for example, as a transceiver. The transceiver is configured to modulate data or other content for transmission by at least one antenna 204 or a network interface controller (NIC). The transceiver is also configured to demodulate data or other content received by at least one antenna 204. Each transceiver includes any suitable structure for generating signals for wireless or wired transmission and / or for processing signals received wirelessly or wired. Each antenna 204 includes any suitable structure for transmitting and / or receiving wireless or wired signals.

[0065] The ED 110 includes at least one memory 208. The memory 208 stores instructions and data used, generated, or collected by the ED 110. For example, the memory 208 may store software instructions or modules configured to implement some or all of the functionality and / or embodiments described herein and executed by the processing unit 210. Each memory 208 includes any suitable volatile and / or non-volatile storage and retrieval device. Any suitable type of memory may be used, such as random access memory (RAM), read-only memory (ROM), hard disk, optical disk, subscriber identity module (SIM) card, memory stick, secure digital (SD) memory card, on-processor cache, etc.

[0066] ED 110 may further include one or more input / output devices (not shown) or interfaces (such as a wired interface to Internet 150 in FIG. 1A or 1B). The input / output devices enable interaction with a user or other devices in a network. Each input / output device includes any suitable structure for providing information to or receiving information from a user, such as a speaker, microphone, keypad, keyboard, display, or touch screen, including network interface communications.

[0067] The ED 110 further includes a processor 210 for performing operations including operations related to preparing a transmission for uplink transmission to the NT-TRP 172 and / or the T-TRP 170, operations related to processing downlink transmissions received from the NT-TRP 172 and / or the T-TRP 170, and operations related to processing sidelink transmissions to other EDs 110 and from other EDs 120. The processing operations related to preparing a transmission for uplink transmission may include operations such as encoding, modulation, transmit beamforming, and generating symbols for transmission. The processing operations related to processing downlink transmissions may include operations such as receive beamforming, demodulation, and decoding of received symbols. Depending on the embodiment, downlink transmissions may be received by the receiver 203, possibly using receive beamforming, and the processor 210 may extract the signaling from the downlink transmission (e.g., by detecting and / or decoding the signaling). An example of signaling may be reference signals transmitted by the NT-TRP 172 and / or the T-TRP 170. In some embodiments, the processor 210 implements transmit beamforming and / or receive beamforming based on beam direction instructions, e.g., beam angle information (BAI), received from the T-TRP 170. In some embodiments, the processor 210 may perform operations related to network access (e.g., initial access) and / or downlink synchronization, such as operations related to detecting synchronization sequences, decoding and acquiring system information, etc. In some embodiments, the processor 210 may perform channel estimation, for example, using reference signals received from the NT-TRP 172 and / or the T-TRP 170.

[0068] Although not shown, the processor 210 may form part of the transmitter 201 and / or the receiver 203. Although not shown, the memory 208 may form part of the processor 210.

[0069] The processor 210 and the processing components of the transmitter 201 and receiver 203 may each be implemented by one or more of the same or different processors configured to execute instructions stored in a memory (e.g., memory 208). Alternatively, some or all of the processing components of the processor 210 and the transmitter 201 and receiver 203 may be implemented using dedicated circuitry such as a programmed field-programmable gate array (FPGA), a graphical processing unit (GPU), or an application-specific integrated circuit (ASIC).

[0070] The T-TRP 170 may, in some implementations, be known by other names such as a base station, base transceiver station (BTS), radio base station, network node, network device, network-side device, transmitting / receiving node, NodeB, evolved NodeB (eNodeB or eNB), Home eNodeB, next generation NodeB (gNB), transmission point (TP), site controller, access point (AP), or wireless router, relay station, remote radio head, terrestrial node, terrestrial network device, or terrestrial base station, base band unit (BBU), remote radio unit (RRU), active antenna unit (AAU), remote radio head (RRH), central unit (CU), distributed unit (DU), positioning node, among other possibilities. The T-TRP 170 may also be a macro BS, pico BS, relay node, donor node, etc., or a combination thereof. T-TRP 170 may refer to such devices or to an apparatus within such devices (e.g., a communications module, modem, or chip). Although the drawings and accompanying descriptions of examples and embodiments of the present disclosure generally use the terms AP, BS, and AP or BS, it should be understood that such devices may be of any of the types described above.

[0071] In some embodiments, parts of the T-TRP 170 may be distributed. For example, some of the modules of the T-TRP 170 may be located remotely from the equipment housing the antenna of the T-TRP 170 and may be coupled to the equipment housing the antenna over a communications link (not shown), sometimes known as fronthaul, such as a common public radio interface (CPRI). Thus, in some embodiments, the term T-TRP 170 may also refer to network-side modules that perform processing operations such as determining the location of the ED 110, resource allocation (scheduling), message generation, and encoding / decoding, and that are not necessarily part of the equipment housing the antenna of the T-TRP 170. Modules may also be coupled to other T-TRPs. In some embodiments, the T-TRP 170 may actually be multiple T-TRPs operating together to serve the ED 110, for example, through coordinated multipoint transmission.

[0072] The T-TRP 170 includes at least one transmitter 252 and at least one receiver 254 coupled to one or more antennas 256. Only one antenna 256 is shown. One, some, or all of the antennas may alternatively be panels. The transmitter 252 and receiver 254 may be integrated as a transceiver. The T-TRP 170 further includes a processor 260 for performing operations including operations related to preparing a transmission for downlink transmission to the ED 110, processing uplink transmissions received from the ED 110, preparing a transmission for backhaul transmission to the NT-TRP 172, and processing transmissions received on the backhaul from the NT-TRP 172. The processing operations related to preparing a transmission for downlink or backhaul transmission may include operations such as encoding, modulation, precoding (e.g., multiple-input multiple-output (MIMO) precoding), transmit beamforming, and generating symbols for transmission. Processing operations related to processing received transmissions in the uplink or over the backhaul may include operations such as receive beamforming and demodulating and decoding received symbols. Processor 260 may also perform operations related to network access (e.g., initial access) and / or downlink synchronization, such as generating synchronization signal block (SSB) content, generating system information, etc. In some embodiments, processor 260 also generates beam direction indications, e.g., BAIs, that may be scheduled for transmission by scheduler 253. Processor 260 performs other network-side processing operations described herein, such as determining the location of ED 110, determining where to place NT-TRP 172, etc. In some embodiments, processor 260 may generate signaling, for example, to configure one or more parameters of ED 110 and / or one or more parameters of NT-TRP 172.Any signaling generated by processor 260 is transmitted by transmitter 252. Note that "signaling" as used herein may alternatively be referred to as control signaling. Dynamic signaling may be transmitted on a control channel, e.g., a physical downlink control channel (PDCCH), and static or semi-static upper layer signaling may be included in packets transmitted on a data channel, e.g., a physical downlink shared channel (PDSCH).

[0073] The scheduler 253 may be coupled to the processor 260. The scheduler 253 may be included within the T-TRP 170 or may operate separately therefrom, which may schedule uplink, downlink, and / or backhaul transmissions, including issuing scheduling grants and / or configuring scheduling-free ("configured grants") resources. The T-TRP 170 further includes a memory 258 for storing information and data. The memory 258 stores instructions and data used, generated, or collected by the T-TRP 170. For example, the memory 258 may store software instructions or modules configured to implement some or all of the functions and / or embodiments described herein and executed by the processor 260.

[0074] Although not shown, the processor 260 may form part of the transmitter 252 and / or the receiver 254. Also, although not shown, the processor 260 may implement the scheduler 253. Although not shown, the memory 258 may form part of the processor 260.

[0075] The processor 260 and the processing components of the transmitter 252 and receiver 254 may each be implemented by one or more of the same or different processors configured to execute instructions stored in a memory, such as memory 258. Alternatively, some or all of the processing components of the processor 260 and the transmitter 252 and receiver 254 may be implemented using dedicated circuitry such as an FPGA, GPU, or ASIC.

[0076] Although the NT-TRP 172 is shown as a drone by way of example only, the NT-TRP 172 may be implemented in any suitable non-terrestrial form. The NT-TRP 172 may also be known by other names, such as a non-terrestrial node, a non-terrestrial network device, or a non-terrestrial base station, in some implementations. The NT-TRP 172 includes a transmitter 272 and a receiver 274 coupled to one or more antennas 280. Only one antenna 280 is shown. One, some, or all of the antennas may alternatively be panels. The transmitter 272 and the receiver 274 may be integrated as a transceiver. The NT-TRP 172 further includes a processor 276 for performing operations, including operations related to preparing transmissions for downlink transmission to the ED 110, processing uplink transmissions received from the ED 110, preparing transmissions for backhaul transmission to the T-TRP 170, and processing transmissions received on the backhaul from the T-TRP 170. Processing operations related to preparing a transmission for downlink or backhaul transmission may include operations such as encoding, modulation, precoding (e.g., MIMO precoding), transmit beamforming, and generating symbols for transmission. Processing operations related to processing a received transmission in the uplink or over the backhaul may include operations such as receive beamforming and demodulating and decoding received symbols. Processor 260 may also perform operations related to network access (e.g., initial access) and / or downlink synchronization, such as generating synchronization signal block (SSB) content, generating system information, etc. In some embodiments, processor 276 implements transmit beamforming and / or receive beamforming based on beam direction information (e.g., BAI) received from T-TRP 170. In some embodiments, processor 276 may generate signaling, for example, to configure one or more parameters of ED 110.In some embodiments, the NT-TRP 172 performs physical layer processing but does not perform higher layer functions, such as functions at the medium access control (MAC) or radio link control (RLC) layers. This is by way of example only; more generally, the NT-TRP 172 may perform higher layer functions in addition to physical layer processing.

[0077] The NT-TRP 172 further includes a memory 278 for storing information and data. Although not shown, the processor 276 may form part of the transmitter 272 and / or the receiver 274. Although not shown, the memory 278 may form part of the processor 276.

[0078] The processor 276 and the processing components of the transmitter 272 and receiver 274 may each be implemented by one or more of the same or different processors configured to execute instructions stored in a memory, e.g., memory 278. Alternatively, some or all of the processing components of the processor 276 and the transmitter 272 and receiver 274 may be implemented using dedicated circuitry, such as a programmed FPGA, GPU, or ASIC. In some embodiments, the NT-TRP 172 may actually be multiple NT-TRPs operating together to serve the ED 110, e.g., through coordinated multipoint transmission.

[0079] T-TRP170, NT-TRP172 and / or ED110 may include other components, which are omitted for clarity.

[0080] One or more steps of the method of the embodiments provided herein may be performed by a corresponding unit or module according to FIG. 3. FIG. 3 illustrates units or modules within a device such as the ED 110, the T-TRP 170, or the NT-TRP 172. For example, a signal may be transmitted by a transmitting unit or a transmitting module. A signal may be received by a receiving unit or a receiving module. A signal may be processed by a processing unit or a processing module. Other steps may be performed by an artificial intelligence (AI) or machine learning (ML) module. Each unit or module may be implemented using hardware, one or more components or devices executing software, or a combination thereof. For example, one or more of the units or modules may be a programmed integrated circuit such as an FPGA, a GPU, or an ASIC. For example, when modules are implemented using software for execution by a processor, they may be acquired by the processor for processing, in whole or in part, as needed, individually or together, in single or multiple instances, and the modules themselves may include instructions for further deployment and instantiation.

[0081] Further details regarding ED110, T-TRP170 and NT-TRP172 are known to those skilled in the art, and therefore these details are omitted here.

[0082] For future wireless networks, the number of new devices may increase exponentially with diverse functionality. Also, many new applications and new use cases in future wireless networks may emerge with more diverse service quality requirements than exist in 5G. These result in new key performance indicators (KPIs) for future wireless networks (e.g., 6G networks) that may be very challenging. Therefore, sensing technology and AI technology, especially ML (deep learning) technology, are being introduced into telecommunications to improve system performance and efficiency.

[0083] AI / ML technologies are being applied to communications, including AI / ML communications at the physical layer and media access control (MAC) layer. For the physical layer, AI / ML communications can be useful for optimizing component design and improving algorithm performance, such as AI / ML for channel coding, channel modeling, channel estimation, channel decoding, modulation, demodulation, MIMO, waveforms, multiple access, PHY element parameter optimization and update, beamforming & tracking, and sensing & positioning. For the MAC layer, AI / ML communications may utilize AI / ML capabilities with learning and prediction to make decisions to optimize functions in the MAC, such as intelligent TRP management, intelligent beam management, intelligent channel resource allocation, intelligent power control, intelligent spectrum utilization, intelligent MCS, intelligent hybrid automatic repeat request (HARQ) strategies, and intelligent transmit / receive (Tx / Rx) mode adaptation, to solve complex optimization problems with better strategies and optimal solutions.

[0084] AI / ML architectures typically include multiple nodes, which can be organized into two modes: centralized and distributed, both of which can be deployed in access networks, core networks, edge computing systems, or third-party networks. Centralized training and computing architectures are limited by huge communication overhead and strict user data privacy. Distributed training and computing architectures include several frameworks, such as distributed machine learning and federated learning. AI / ML architectures include intelligent controllers that can run as a single agent or multiple agents based on joint or individual optimization. New protocols and signaling mechanisms are needed so that corresponding interface links can be personalized with customized parameters to meet specific requirements, while personalized AI techniques minimize signaling overhead and maximize overall system spectral efficiency.

[0085] Furthermore, terrestrial and non-terrestrial networks can enable a new range of services and applications, such as earth monitoring, remote sensing, passive sensing and positioning, navigation, and tracking, autonomous delivery, and mobility. Terrestrial and non-terrestrial network-based sensing may provide intelligent, context-aware networks to enhance the UE experience. For example, terrestrial and non-terrestrial network-based sensing may entail opportunities for localization and sensing applications based on new sets of features and service capabilities. THz imaging and spectroscopy applications have the potential to provide continuous, real-time physiological information through dynamic, non-invasive, and non-contact measurements for future digital health technologies. Simultaneous localization and mapping (SLAM) methods not only enable advanced cross-reality (XR) applications, but also enhance the navigation of autonomous objects such as vehicles and drones. Furthermore, in terrestrial and non-terrestrial networks, measured channel data and sensing and positioning data can be acquired through higher bandwidth, new spectrum, denser networks, and more line-of-sight (LOS) links. Based on these data, a radio environment map can be drawn through AI / ML methods, where channel information is linked to its corresponding positioning or environment information to provide an enhanced physical layer design based on this map.

[0086] Sensing coordinators are nodes in the network that can assist in sensing operations. These nodes can be standalone nodes dedicated solely to sensing operations, or other nodes (e.g., TRP170, ED110, or core network nodes) that perform sensing operations in parallel with communication transmissions. New protocols and signaling mechanisms are needed to allow corresponding interface links to run with customized parameters to meet specific requirements, while minimizing signaling overhead and maximizing overall system spectral efficiency.

[0087] AI / ML and sensing methods are data intensive. To accompany AI / ML and sensing in wireless communications, more and more data needs to be collected, stored, and exchanged. The characteristics of wireless data extend very broadly across multiple dimensions, e.g., from sub-6 GHz, millimeter to terahertz carrier frequencies, from space, outdoor to indoor scenarios, and from text, voice, to video. These data collection, processing, and usage operations can be performed in a unified framework or in different frameworks.

[0088] Using the Kronecker product to perform analog beamforming of a 2D beam from underlying 1D beams limits the robustness capabilities of the 2D beam. Generating a 2D beam in this manner potentially reduces the robustness of the beam in directions other than those represented by the underlying 1D beam. Only being able to transmit a beam in a direction based on the underlying 1D beam can result in mismatch between the transmitter and receiver, which can reduce beamforming gain and thereby result in a lower effective transmission rate.

[0089] One aspect of the present disclosure provides a 2D chirp beamformer that is robust in any given direction and is not limited to the underlying 1D beam direction. Another aspect of the present disclosure provides signaling that enables communication between a transmitter, such as a base station (BS), and a receiver, such as a user equipment (UE), to configure the proposed 2D beamforming method and utilize the beamformed beams.

[0090] Aspects of the present disclosure provide a method for generating chirp beams for use with 2D antenna arrays that allows the chirp beams to provide robustness in any given direction, as opposed to only the underlying direction of a 1D beam. A conventional design for a 2D chirp beam for an N1 x N2 2D antenna array (N1 and N2 are integer values) of antenna elements spaced half wavelengths apart consists of four terms for antennas with indices n1 and n2 (n1 = 1 to N1 and n2 = 1 to N2).

[0091] The formula for the 2D chirp function can be expressed as follows:

number

[0092] A term that sets the direction the beam is pointed

number

number

[0093] Aspects of the present application propose generating a 2D beam that involves modifying the second two terms. Modifying these two terms in the proposed manner allows for robustness in any direction, rather than being limited to the underlying direction of the 1D beamformer. The second two terms are modified as follows:

number

[0094] where d1 and d2 are the new indices on the rotated axes relative to the original axes, and depend on the original axis indices n1 and n2, and D1 and D2 represent the range of indices for the rotated axes.

[0095] One possible example for obtaining new indices is in any direction of angle Φ, rather than just one direction in each 1D array, for robustness around θ and θ. In such an example, in order to provide robustness in the area around the main direction angle, the indices n and n are rotated by a rotation matrix in a certain direction.

number

[0096] As a result, the overall beamformer for a 2D antenna array with a distance d between adjacent antenna elements can be shown as follows:

number

[0097] Alternatively, the beam coefficients above, which represent the combined phase for the antennas, can be manipulated as expressed as follows: exp(-j(α1n1+α2n2+β 11 n1 2 +β 22 n2 2 +2β 12 n1n2)) where the parameters α and β jointly determine the direction, beamwidth, shape and orientation of the resulting beam. For discrete Fourier transform based beamformers, the quadratic phase term indicated by the coefficient of β is equal to 0.

[0098] In some embodiments, the shifted indices d1 and d2 may be polar representations of the Cartesian dimensions represented by n1 and n2, in which case robustness may be provided along arcs toward or away from the center point.

[0099] In general, the shifted indices d1 and d2 may be any function of n1 and n2, but the choice of function may depend on the desired robustness and the particular shape of the robustness.

[0100] Some embodiments of the present disclosure provide a method for analog beamforming of a signal. The method includes beamforming a signal to be transmitted by an array of antennas, where the beamforming includes applying beam coefficients to the array of antennas. The beam coefficients relate to beam direction and beam robustness. Applying the beam coefficients includes adjusting the beam coefficients to obtain robustness in either direction compared to only the direction of the underlying 1D beam. The beam coefficients may include one or more beam parameters, such as an angle defining the beam direction, a parameter defining the beam width, a shape representing the robustness shape, and a parameter defining a sidelobe level or a window function. The beam coefficients may also include BS capabilities, such as an indication of whether the BS has a 1D or 2D antenna array, and capabilities for multi-beam communication.

[0101] In some embodiments, the beam coefficients include a chirp beam sequence, each element of the chirp beam sequence having an associated phase value, the phase of the element of the chirp beam sequence determining the beam direction being a linear function of the antenna index of the antennas in the array of antennas, and the phase of the chirp beam sequence determining the beam robustness being a polynomial function of the antenna index.

[0102] In some embodiments, the antenna array is for a rectangular array of N1 x N2 antennas separated by half a wavelength, the antennas of the array being aligned with a first vertical axis. Applying beam coefficients may further include determining beamforming matrix coefficients for the N1 x N2 antennas, the beamforming matrix coefficients being

number

[0103] In some embodiments, the direction of robustness is defined by a mapping of indices n1 and n2 associated with a first axis to indices d1 and d2 associated with a second axis. Examples of the direction of robustness may include, but are not limited to, a straight line, a curve, or a circular arc.

[0104] In some embodiments, the beam coefficients are calculated when needed based on BS capabilities and / or chirp beam parameter information and / or UE sensing / feedback information provided by the UE or obtained by the base station. In some embodiments, the beam coefficients are stored in a lookup table and can be accessed when needed based on BS capabilities and / or chirp beam parameter information and / or UE sensing / feedback information provided by the UE or obtained by the base station.

[0105] In some embodiments, a method is provided for signaling that enables the use of 2D chirp beams during communications according to the aspects described above. The signaling may be from a transmitter, which may be a BS or a UE, to a receiver, which may be a BS or a UE. The signaling may include beam parameter information or information that influences beamforming design. While the examples described below generally correspond to examples that may be used in downlink (DL) communications, i.e., communications from a BS to a UE, embodiments of the present disclosure may be used for any type of communication link, such as uplink (UL), sidelink, or backhaul. In some embodiments, systems to which embodiments of the present disclosure may be applied use frequency division duplexing (FDD). In some embodiments, systems to which embodiments of the present disclosure may be applied use time division duplexing (TDD).

[0106] The example beamforming methods described below are described for beamforming between a UE and a BS. The BS and / or UE may be a satellite, drone, vehicle, internet of things (IoT) device, etc. that is capable of analog beamforming. In general, aspects of the present disclosure relate to any type of device that is capable of analog beamforming.

[0107] Figures 4A, 4B, 4C, and 4D show simulated examples of beamforming results in which chirp beams are modified to produce robustness in any direction along straight or curved lines. Figures 4A, 4B, and 4C are simulated examples showing beams with robustness along lines of any direction. The centerline of the direction of robustness varies from figure to figure. Figures 4A, 4B, and 4C show the power resulting from a power-normalized single-path channel for different azimuth and elevation angles as received by the normalized power robust chirp beam for the specific example of a 20x20 antenna array.

[0108] FIG. 4A shows robustness along a range of azimuth angles with a fixed elevation angle. This can be obtained using a conventional chirped beam, since the robustness is along one of the underlying 1D beams. FIG. 4B shows robustness along a line at a 45-degree angle relative to the azimuth axis, where robustness is plotted for different pairs of elevation and azimuth angles along a line at 45 degrees relative to the line of constant elevation. FIG. 4C shows robustness along a line at an 81-degree angle relative to the line of constant elevation. FIG. 4D is a simulation showing robustness, but the robustness occurs along a circular arc rather than a straight line.

[0109] To utilize the modified chirp beam for data or control signaling between the BS and the UE in the DL direction, the UE may provide configuration information regarding the desired robustness at the UE. The information may be chirp beam parameter information or UE sensing information that the BS may use in generating the modified chirp beam so that it is appropriate and ideally optimized for the UE.

[0110] The BS may be informed of the chirp beam parameters directly or may be informed of information that can be used by the BS to derive the chirp beam parameters. The UE sends the configuration information on a control channel using signaling such as radio resource control (RRC) or media access control (MAC-CE) control elements. The control channel may be the physical uplink control channel (PUCCH).

[0111] The configuration information transmitted by the UE may be based on sensing information about the environment around the UE, which may have been provided to the UE at some point or which the UE has acquired by performing sensing of the UE environment. Some examples of sensing information include, but are not limited to, the UE's speed, the UE's expected trajectory (e.g., for a vehicle user, this may include road topography), the UE's position relative to the BS, the uncertainty in the UE sensing estimate (e.g., the uncertainty in the UE's position or velocity), the required reliability for transmission, and the BS's capabilities. In some embodiments, some chirp beam parameters may include default values. These default values ​​may be suitable for a wide range of UEs; in such cases, the UE may update its robustness information less frequently, resulting in reduced communication overhead.

[0112] Chirp beam parameters for a 2D chirp beam may include parameter information such as the angle defining the beam direction, the beam width, and target robustness. If multiple beams are present, there may be chirp beam parameter information provided for each of the beams. In some embodiments, the sidelobe level of the beam can be adjusted using an appropriate windowing process, for example, Hamming windowing or Hanning windowing.

[0113] In some embodiments, the configuration information may depend on the beam management process. For example, the configuration information may depend on whether the configuration information is to be used for beam initial access (IA), beam refinement and tracking, or beam failure recovery. The configuration information may also depend on whether the beam is being used for control or data communications, unicast / multicast or broadcast transmissions, or multi-beam transmissions.

[0114] In some embodiments, other factors may indirectly influence the selection of chirp beam-related parameters. For example, overhead timing for beam management may influence the selection of parameters to provide a faster beam management process. One example is using wider beams for beam sweeping, reducing the time used for beam management, to allow for fewer beams for the same amount of angle searching. Another example is the hardware used for beam management. For example, the resolution of digital phase shifters may affect the beam width, and if the UE transmits this information to the BS, this may be taken into account during beam design. In some embodiments, other factors related to the bandwidth to be used may influence beam design. For example, beam squinting may occur for wideband transmissions, which may suggest using a specific beam width for optimal performance. Beam squinting is the unfocusing of the antenna array across frequency when phase shifts, instead of true time delays, are used to steer the beam.

[0115] In some embodiments, the chirp beam related UE specific information or chirp beam parameters may be transmitted directly by the UE, or in some embodiments, the chirp beam related UE specific information or chirp beam parameters may be transmitted as a response or as a proposed modification transmitted by the BS to information or parameters previously transmitted by the BS to the UE related to the chirp beam.

[0116] In some embodiments, the UE may recommend parameters for more than one beam. For example, the UE may recommend one beam for initial communication and another beam for use in improved beam sweeping. If the UE is communicating with the BS on more than one beam, the UE may recommend parameters for each beam. In multi-beam communication, one or more beams may be for control purposes. Additionally, the UE may recommend different beam parameters for fallback beam recovery, which can be used to restore communication or control if the signal is lost.

[0117] It should be understood that the UE may transmit information or parameters to the BS so that the BS provides a chirp beam that is more suited to the UE's needs, but when the UE is capable of analog beamforming, the UE may also transmit such information or parameters regarding UE chirp beam management to the BS, thereby informing the BS of information that the BS may find useful in receiving signals beamformed by the UE.

[0118] 5 illustrates an example signal flow diagram 500 of signaling that may take place between a transmitter in the form of a base station (BS) 510 and a receiver in the form of a UE 520. In FIG. 5, the UE 520 suggests specific beam parameters for desired robustness following initial beam sweeping in a DL scenario.

[0119] As a first step 530, beam sweeping may be performed between the BS 510 and the UE 520. This initial beam sweeping may involve several steps of signaling between the BS 510 and the UE 520, which are well known and will not be detailed here.

[0120] The BS 510 may optionally (as indicated by the dashed line) transmit signaling 535 to the UE 520 including capability information or beam parameter information for the BS 510. The signaling may be transmitted over an RRC channel such as the PDCCH. This may include one or more beam parameters, such as an angle defining the beam direction, a parameter defining the beam width, a shape representing a robustness shape, and a parameter defining a sidelobe level or window function. It may also include BS capabilities, such as an indication of whether the BS has a 1D or 2D antenna array, and a capability for multi-beam communication. Examples of beam parameter information, which may also be referred to as robustness information, for chirp beams include beam identity or beam parameter information usable by the UE 520 to enable the UE 520 to determine the beam identity.

[0121] The UE 520 transmits 540 feedback information to the BS 510, which may include information that may assist the BS 510 in determining a chirp beam that provides a robust beam between the BS 510 and the UE 520. The signaling may be transmitted over an RRC, such as a physical uplink control channel (PUCCH). In this particular example, parameters suggested by the UE 520 are considered for improved sweeping. This may include one or more of the beam parameters or UE sensing information described above, such as information regarding the desired robustness at the UE, sensing information about the environment around the UE 520 that may have been provided to the UE 520 at some point or that the UE 520 has obtained by performing sensing of the UE environment, parameter information such as an angle defining a beam center, a parameter defining a beam width, a shape representing a desired robustness shape, a parameter defining a sidelobe level, a window function, an indication of whether and for what purpose one or more beams may be used, the UE speed, the UE direction of movement, the UE position, the interference measured at the UE, the signal-to-noise ratio calculated at the UE, and the uncertainty of one or more of the UE speed, the UE direction of movement, the UE position, the interference measured at the UE, or the signal-to-noise ratio calculated at the UE. If the BS 510 is transmitting optional BS capability information, the feedback information transmitted by the UE 520 may be influenced by the BS capability information.

[0122] If the feedback information sent by the UE 510 potentially changes how the BS 510 may generate chirp beams that are subsequently transmitted to the UE 520, the BS 510 may optionally (as indicated by the dashed line) send PDCCH-like signaling to the UE 520 over the RRC 545 that is a confirmation of the parameter information sent 540 by the UE 520 or a modification of the information originally sent 535 by the BS 510 or the feedback information sent 540 by the UE 520. The signaling may be sent over the RRC 545 such as a PDCCH.

[0123] The BS 510 performs improved beam sweeping 550, which involves the BS 510 transmitting a reference signal based at least in part on feedback received from the UE 520, and the UE measuring the received reference signal and generating feedback for transmission to the BS 510 based on the reference signal.

[0124] Based on the measured reference signal as part of the improved beam sweeping 550, the UE 520 sends 555 feedback to the BS 510.

[0125] The BS 510 uses the feedback received from the UE 520 to determine a chirp beam for transmitting data or control information to the UE 520. The BS 510 transmits 560 data including the DMRS to the UE 520. Signaling may be transmitted over an RRC such as a physical downlink shared channel (PDSCH).

[0126] In some embodiments, when the UE is transmitting chirp beam parameter information to the BS, the UE informs the BS regarding the desired beamwidth for the chirp beam. In some embodiments, the information regarding the beamwidth of the chirp beam depends on whether the BS has a 1D or 2D antenna array. In some embodiments, the capabilities of the BS may be indicated to the UE before the UE specifies the beam parameters. In some embodiments, the UE may indicate the beam parameters to the BS, and the BS modifies these parameters according to the capabilities of the BS.

[0127] For beams used in a 2D antenna array, the beamwidths of different beams can be adjusted independently. The direction in which robustness is used for the UE may be any linear direction, such as any direction or rotational direction of the underlying 1D beamform. The robustness direction may be an arc or any other shape. The beamwidth may be expressed in several ways. In some embodiments, the beamwidth in the feedback information transmitted by the UE may be expressed in degrees (or other angular measures such as radians or gradians). In some embodiments, the beamwidth may be expressed as a beam parameter that can be directly used by the BS. As an example, when using chirp beams as described above, the parameters u1 and u2 can be used to define the beamwidth along the axis of antenna index. In some embodiments, the beamwidth may be expressed in an indirect way, such as by the UE transmitting one or more location information from which the BS can determine the beamwidth. In some embodiments, the UE may transmit the UE velocity, and the BS uses the UE velocity, among other parameters, to determine the preferred beamwidth and beam orientation. In some embodiments, the BS may use the UE's velocity to determine direction using information about the local environment, such as a floor plan or road topography. In some embodiments, the feedback information may include a 3D velocity vector.

[0128] In a particular example, the UE is traveling on a highway and requires robustness in the direction in which the UE is traveling. This direction may not be along one of the underlying 1D beam directions of the 2D BS antenna array, but rather may be a linear direction other than one of the underlying 1D beam directions. Based on the direction information, the BS can modify the chirp beam as described above to transmit the chirp beam in the direction requested by the UE. In another practical example, the UE is inside a building and requires robustness along the floor of the building on which the UE is located or along the direction of the hallway through which the UE is passing.

[0129] As part of the chirp beam parameter information, the UE may request a wider or narrower beam. Such a request may be made as a result of the UE's sensing input and operating boundaries and / or BS capabilities. For example, when moving at a higher speed, the UE may prefer a wider beam due to greater sensitivity of beam direction at higher speeds. The beam width selection may also depend on factors such as the UE's direction of movement, whether the UE is closer to the BS, or whether the UE is moving toward or away from the BS. In some embodiments, the beam width selection may also depend on location. When the UE is closer to the BS, the UE experiences less path loss and greater beam direction sensitivity due to the shorter distance, and therefore the UE may request a wider beam rather than needing to use a high-gain narrow beam. In some embodiments, the beam width selection may also depend on the uncertainty of the sensing information relied upon by the UE. Because beam width can affect communication robustness, in some embodiments, the robustness desired by applications being used in the UE, such as texting, internet browsing, etc., may influence the beam width selection.

[0130] As part of the chirp beam parameter information, in some embodiments, the UE recommends different beam widths for at least one beam. For example, the UE may recommend one beam width for initial communication and a different beam width for use in improved beam sweeping. In situations where the UE is communicating with the BS using more than one beam, the UE may recommend different beam widths for beams used for different purposes. In multi-beam communication, one or more beams may be for control purposes or types of control information.

[0131] In some embodiments, the selection of the beam width may affect how the UE responds in certain scenarios. For example, if the UE selects a wide beam, when the signal-to-noise ratio (SNR) suddenly drops, the UE may assume that the signal is blocked, and as a result, the UE may trigger beam recovery. However, if the UE selects a narrow beam, when the SNR suddenly drops, the UE may assume that the beam needs updating because small angular movements can rapidly degrade the SNR. Therefore, the selection of the beam width may affect how the UE performs beam management.

[0132] The choice of beam width may be indirectly related to other factors. For example, a UE moving towards the BS will benefit from the use of a narrow beam, but will incur a higher Doppler shift as a result. On the other hand, a UE moving along a circle whose center point is the BS may prefer a wider beam, and will therefore see little Doppler shift.

[0133] In some embodiments, the UE may recommend a different beam width for fallback beam recovery, which may be used to restore communication or control signaling if the signal between the UE and the BS is interrupted.

[0134] 6 shows an example signal flow diagram 600 of signaling that may occur between a BS 610 and a UE 620, where the UE 620 suggests some beam parameters for possible fallback recovery during a DL scenario. The BS 610 uses these beam parameters to re-establish a connection with the UE 620 when a beam failure occurs and is detected by the UE 620.

[0135] As a first step 630, beam sweeping may be performed between the BS 610 and the UE 620. The beam sweeping may be an initial beam sweeping or an improved beam sweeping. The beam sweeping may involve several steps of signaling between the BS 610 and the UE 620, which are well known and will not be described in detail here.

[0136] The BS 610 may optionally (as indicated by the dashed line) send signaling to the UE 620 including capability information about the BS 610 635. The signaling may be sent over an RRC such as a PDCCH.

[0137] The UE 620 transmits 640 feedback information to the BS 610, including information that may assist the BS 610 in determining a chirp beam that provides a robust beam between the BS 610 and the UE 620 for channel recovery. The signaling may be transmitted over an RRC such as a PUCCH. This may include information regarding the desired robustness at the UE 620, sensing information about the environment around the UE 620 that may have been provided to the UE 620 at some point or that the UE 620 has acquired by performing sensing of the UE environment, parameter information such as angles defining the beam peak or center, beam width, and target robustness, and one or more beam parameters or UE sensing information described above, such as an indication of whether one or more beams may be used and for what purpose. If the BS 610 transmits optional BS capability information, the feedback information transmitted by the UE 620 may be influenced by the BS capability information.

[0138] If the feedback information transmitted by the UE 610 potentially changes how the BS 610 generates chirp beams that are subsequently transmitted to the UE 620, the BS 610 may optionally transmit 645 (as indicated by the dashed line) signaling to the UE 620 that is a confirmation of the parameter information transmitted 540 by the UE 620 or a modification of the information originally transmitted 635 by the BS 610 or the feedback information transmitted 640 by the UE 620. The signaling may be transmitted over an RRC channel such as the PDCCH.

[0139] When a beam failure is detected 650 between the BS 610 and the UE 620, the BS 610 may perform beam recovery 655 using feedback information received from the UE 620.

[0140] Although the feedback information transmitted at 640 is described as being specific to beam failure recovery, it should be understood that this beam recovery information may be transmitted along with the feedback information transmitted at 540 in FIG. 5.

[0141] In some embodiments, the UE informing the BS of the chirp beam parameter information includes the UE informing the BS regarding the robustness of the desired shape resulting from the chirp beam.

[0142] In some embodiments, a chirp beam transmitted by a 2D antenna may be robust in different ways. For example, it may be desirable to have a robust beam along a line connecting two points, where the first point is represented by an angle describing the UE's current location and the second point is represented by an angle describing the UE's location at a future time. Thus, in such cases, the beam may be considered most robust along the line connecting the two points, which may represent the UE's movement, and less robust in the perpendicular direction. In some embodiments, the two points may be used to determine the boundaries of the UE's possible locations. An example of this may be when the UE is on a known road, but the accuracy of the sensing information and changes in the information over time leave uncertainty about the exact location. The changes in the information over time may indicate information from a previous time slot, which may include information about the UE at an earlier time. In some embodiments, robustness may be along a circular arc, e.g., two points connected by an arc on a circle. Thus, the UE may signal to the BS a particular shape that provides robustness along that shape, in addition to the beamwidth perpendicular to that shape. One possible method is to provide information indicating the curvature shape, e.g., a circular line or arc, in addition to information about the beam's rotation and center of curvature. In order for the BS to understand the shape of the desired robustness, the information transmitted by the UE must be understood in terms of coordinates well known to the BS. In a particular example, the BS and UE may agree that the information transmitted to the BS is based on global positioning system (GPS) coordinates, and thus the BS will understand any information transmitted by the UE as information according to its GPS data.

[0143] In some embodiments, the information transmitted from the UE to the BS regarding the desired robustness shape may be based on sensing information at the UE, including the UE's position and velocity. The UE may also be accompanied by information from other sources, for example, UE route information, which may be from the application layer. In some embodiments, the desired robustness shape may also be different for the data beam compared to the control beam.

[0144] When the UE provides parameters related to beam management to the BS or modifies parameters initially set by the BS, the beam used at the BS may be better suited to the needs of the UE. When the beam used at the BS is better suited to the needs of the UE, this may improve performance in terms of one or more metrics, such as throughput, reliability, lower overhead, etc.

[0145] In some embodiments, the UE may inform the BS about measurements related to chirp beam management. Examples illustrating the relationship between specific measurements made by the UE and chirp beam parameters are described below. Specific types of measurements made at the UE include SNR, signal and interference to noise ratio (SINR), interference, and power levels. The measurements may result in changes to chirp beam parameters that can benefit overall system performance.

[0146] In some embodiments, the UE informs the BS about the interference level observed at the UE, which may allow the BS to make changes to the chirp beam for the UE or other UEs near the UE to improve performance.

[0147] When a BS communicates with multiple UEs within a geographic area, the beams for some UEs may affect other UEs due to localized interference. The interference at a UE may result from other UEs that are very close in terms of angle from the BS's perspective, or may occur when the UE is not as close to the BS but has a wider beam. Once the BS recognizes the potential interference, it may use one of several different techniques to reduce the interference. One technique is for the BS to use a windowing technique to reduce the sidelobes of the beam transmitted to neighboring UEs so that the impact on the interfered UE is reduced. Another technique is for the BS to serve neighboring UEs using different beams or different beam parameters, such as using narrower beams, so that the impact on the interfered UE is reduced. Another technique is for the BS to also use one of several different multiple access protocols to solve the interference problem, such as orthogonal frequency division multiple access (OFDMA), non-orthogonal multiple access (NOMA), and time division multiple access (TDMA).

[0148] 7 shows an example signal flow diagram 700 of signaling that may take place between a BS 710, a first UE UE UE1 720, and a second UE UE2 725, where UE1 720 sends a request to BS 710 requesting interference reduction. BS 710 determines which UE beam may be causing this interference, performs a beam update process with UE2 725, and then updates the beam used in communications with UE2 725 with a beam that should cause less interference with UE1 720.

[0149] As a first step 730, beam sweeping and refinement may be performed between BS 710 and UE1 720. This may be similar to step 550 in Figure 5. Other steps similar to those performed before step 550 in Figure 5 may also be performed before beam sweeping refinement 730 in Figure 7.

[0150] UE1 720 sends 735 signaling to BS 710 to request a reduction in interference. The request may be made over an RRC such as PUCCH.

[0151] In step 740, the BS 710 determines which UE beams may be interfering with UE1 720. In this example, the BS 710 determines that UE2 725 is potentially interfering with UE1 720. The BS 710 may make its determination by considering which other UEs appear to be in a similar direction as UE1 720.

[0152] The BS 710 performs 745 a beam update process for UE2 725 , which includes transmitting a reference signal to UE2 725 for UE2 725 to measure and provide feedback to the BS 710 .

[0153] After UE2 725 measures the reference signal and generates feedback information as part of the beam update process 745 , UE2 725 transmits 750 the feedback information to the BS 710 .

[0154] The BS 710 uses the feedback received from UE2 725 to determine a chirp beam for transmitting data or control information to UE2 725. The BS 710 transmits 755 the data to UE2 725. Signaling may be transmitted over an RRC such as a PDSCH.

[0155] In some embodiments, BS 710 may determine that UE1 720 is experiencing interference due to another BS that is in communication with another UE UE2 725. BS 710 may communicate with that BS to request interference reduction for UE1 720. The other BS may coordinate with BS 710 to reduce the interference to UE1 720. This may include updating the chirp beam being used by UE2 725 using orthogonal frequency division multiple access, non-orthogonal multiple access, or time division multiple access coordinated between the two BSs.

[0156] In some embodiments, the UE notifies the BS regarding the SNR and / or SINR. In beamforming that does not include the ability to adaptively change the beamwidth, the SNR may be obtained for a given beam and considered constant for that beam. However, if the beamwidth changes, the corresponding SNR may change as well, and the BS may benefit from a mapping between SNR values ​​and the different beamwidths used. Such a mapping may result in a better selection of the modulation and coding scheme (MCS) used by the BS. Furthermore, changes in beamwidth may also affect power control during uplink communications. Because changing the beamwidth may change the SNR of that beam, power control may be affected and may therefore require updating. In some embodiments, when both the UE and the BS use analog beamforming, the effect of the beamwidth at both the UE and the BS may affect the resulting SNR.

[0157] When a UE provides measurements related to chirp beams to a BS, the BS may modify chirp beam parameters to improve communications between the BS and one or more UEs in the system, which may be in terms of metrics such as, but not limited to, higher transmission rates, lower interference, or more robust communications.

[0158] In some embodiments, the BS may inform the UE of one or more parameters related to the chirp beam used in beam management by the BS. In some embodiments, the UE may be informed of the beam parameters directly. In some embodiments, the UE may be informed of information that can be used by the UE to obtain the beam parameters. The BS may use a control channel, e.g., RRC (or MAC-CE), to inform the UE of such parameters or information that can be used by the UE to obtain the parameters.

[0159] The parameters or information that the BS transmits to the UE may depend on sensing information available to or acquired at the BS. The sensing information may include information about the UE's location, UE's velocity, and expected trajectory of the UE (e.g., road topography for a vehicle), as well as the uncertainty of the estimation made by the BS. In some embodiments, the beam parameters may also depend on the desired reliability of the transmission. In some embodiments, the beam parameters may also depend on the capabilities of the BS. In some embodiments, some beam parameters may include default values. These default values ​​may be suitable for a wide range of UEs; in such cases, the BS need only update the default values ​​less frequently, thereby reducing communication overhead.

[0160] In some embodiments, the selection of beam parameters may depend on the beam management process. The beam management process may be related to what the beam is being used for, such as beam initial access, beam refinement, beam tracking, or beam failure recovery. In some embodiments, the selection of beam parameters may be related to whether the beam is being used to transmit control or data communications, or whether it is being used for unicast / multicast or broadcast transmissions, or whether it is being used for multi-beam transmissions.

[0161] In some embodiments, other factors may indirectly influence the selection of beam management parameters. For example, overhead timing for beam management may influence the selection of parameters to provide a faster process. Another factor may be the hardware used for beam management. For example, the resolution of a digital phase shifter may influence the beam width. Other factors related to the bandwidth used may influence the chirped beam used. For example, beam squinting may occur for wideband transmissions, which may suggest selecting a particular beam width for optimal performance.

[0162] In some embodiments, the information or parameters may be transmitted as an initial step by the BS. In some embodiments, the information or parameters may be transmitted as a response or suggested modification to feedback information or parameters transmitted by the UE. Parameters related to chirp beams for a 2D antenna array may include angles defining the beam direction, beam widths, and designed robustness for one or more beams. In some embodiments, sidelobe levels for beams can be adjusted using appropriate windowing, for example, Hamming windowing or Hanning windowing.

[0163] The BS may transmit parameters for more than one beam. For example, the BS may use a first beam for initial communication and a second beam for improved beam sweeping. When the BS is communicating with the UE on more than one beam, the BS may use different parameters for each beam. In multi-beam communication, one or more beams may be for control purposes. Additionally, the BS may use different beam parameters for fallback beam recovery to restore communication or control signaling in the event of signal loss.

[0164] Because a BS typically communicates with many UEs, the BS may attempt to reduce potential interference. In beamforming, one way to do this is by reducing the sidelobes of the beam through windowing. The BS may attempt to reduce the sidelobe level as long as such reduction does not conflict with the beam requirements for proper UE communication. Communication may exist between the BS and the UE to provide the preferred windowing.

[0165] Although some embodiments are directed to the BS sending information or parameters to the UE so that the UE understands how the BS is beamforming, it should be understood that the BS may also send information or parameters to the UE regarding chirp beam management to be used by the UE itself when the UE is capable of analog beamforming.

[0166] FIG. 8 shows an example signal flow diagram 800 of signaling that may occur between a BS 810 and a UE 820. In FIG. 8, the BS 810 communicates with the UE 820 regarding chirp beam parameters to be used by the UE 820 for beamforming. While some UEs have a small number of antennas in their antenna arrays, future UEs may potentially have arrays with more antennas. While providing UE beam robustness when the BS is fixed may not be necessary, in some implementations, the BS is not fixed, such as when the BS is a drone or a low-earth-orbit satellite. Therefore, in some embodiments, providing UE beam robustness may increase communication reliability. If there is ambiguity in the UE's orientation, there may be ambiguity regarding the beam direction relative to the UE antenna panel, even when the absolute beam direction is known. In some embodiments, the parameters transmitted from the BS to the UE may include information such as beam center, beam width, and other information that affects robustness.

[0167] As a first step 830, initial or refined beam sweeping may be performed between the BS 810 and the UE 820. Such beam sweeping may involve multiple steps of signaling between the BS 810 and the UE 820, which are well known and will not be detailed here.

[0168] The US 820 may optionally (as shown by the dashed line) send signaling to the BS 810 including capability information about the UE 820 835. The signaling may be sent over an RRC such as a PUCCH.

[0169] The BS 810 transmits 840 UE beam parameter information to the UE 820, including information to inform the UE 820 how the UE 820 may determine a chirp beam that provides robust beamforming between the BS 810 and the UE 820. In some embodiments, the beam parameter information may be transmitted over an RRC such as a PDCCH.

[0170] The UE 820 may optionally (as indicated by the dashed line) transmit 845 signaling to the BS 810 that is a confirmation or possible modification of the information originally transmitted 835 by the UE 820 or the UE beam parameter information transmitted 840 by the BS 810. The signaling may be transmitted over an RRC such as a PUCCH.

[0171] The BS 810 performs improved beam sweeping 850, which involves the BS 810 transmitting a reference signal and the UE 820 measuring the received reference signal.

[0172] Based on the measured reference signal, the UE 820 transmits 855 feedback to the BS 810 .

[0173] The BS 810 uses feedback from the UE 820 to determine a beam for transmitting data to the UE 820 and transmits the data with the DMRS to the UE 820. Signaling may be transmitted over an RRC such as a PDSCH.

[0174] In some embodiments, the BS transmits information to inform the UE regarding the beamwidth of the chirp beam. In some embodiments, the BS's capabilities may be indicated to the UE in addition to other beam parameters. The information regarding the chirp beamwidth may depend on whether the BS has a 1D or 2D antenna array. For beams with a 2D antenna array, the beamwidth of each beam can be adjusted independently. The desired robustness direction can be any linear direction, such as any direction of the underlying 1D beamform or any other preferred direction. The robustness direction can also be a circular arc or any other shape.

[0175] The BS may use different beam widths for different beams. For example, the BS may use a first beam width for initial communication and a second beam width for refinement beam sweeping. If the BS is communicating with the UE using more than one beam, the BS may use a different beam width for each beam. In multi-beam communication, one or more beams may be used for control purposes. Furthermore, if the signal is interrupted, the BS may use different beam parameters for fallback beam recovery to restore data signaling or control signaling.

[0176] The BS may use the same beam for multi-user multiple access, e.g., OFDM or NOMA or TDMA. This may be useful for UEs that are close to each other in terms of angular direction from the BS's perspective. In some embodiments, the same beam may be used for multicast or broadcast transmissions.

[0177] When the BS informs the UE using a beam with a given beam width, the UE may use UE sensing information, such as UE position and UE velocity, to determine the robustness of the beam and whether the beam width is appropriate. The UE may feed back information to the BS to update the beam width. The UE may use the UE sensing information and the beam width to determine how often to update the beam.

[0178] FIG. 9 shows an example signal flow diagram 900 of signaling that may occur between a BS 910 and a UE 920. In FIG. 9, the BS 910 informs the UE 920 regarding the beam parameters used in beamforming. The UE 910 examines the parameters and sends feedback in the form of a confirmation if the parameters meet the UE requirements, or sends a modification to better match the desired parameters for the UE 920. The BS 910 may take the UE feedback into account when performing the beam management process. In some embodiments, the UE 920 takes the beam parameters into account and, based on the beam parameter information, determines how often to update the beam used for data or control signaling. This may help reduce overhead for beam management.

[0179] As a first step 930, initial or refined beam sweeping may be performed between the BS 910 and the UE 920. Such beam sweeping may involve multiple steps of signaling between the BS 910 and the UE 920, which are well known and will not be described in detail here.

[0180] The BS 910 uses the beam parameter information to send 935 a transmission to the UE 920. In some embodiments, the transmission may be performed using RRC.

[0181] At 940, there may be a period during which the UE 920 determines whether the beam parameters need updating for the UE 910. The determination may depend on the beam width and the UE sensing information.

[0182] If the beam parameters need updating, the UE 920 sends a beam update request to the BS 910 945. The request may be sent over an RRC such as a PUCCH. The beam update request causes the BS 910 to perform improved beam sweeping.

[0183] The BS910 performs improved beam sweeping 950, which involves the BS910 transmitting a reference signal using a beam that may have different beam parameters than those previously used, and the UE920 measuring the received reference signal.

[0184] Based on the measured reference signal, the UE 920 transmits 955 feedback to the BS 910 .

[0185] The BS 910 uses the feedback from the UE 920 to determine a beam for transmitting data to the UE 920 and transmits the data with the DMRS to the UE 920 960. The request may be sent over an RRC such as a PDSCH.

[0186] The example shown in FIG. 9 may be applied to either the UL or DL.

[0187] In some embodiments, the BS transmits information to the UE informing the UE about the shape of the robustness.

[0188] In some embodiments, the chirp beam transmitted by the 2D antenna array may be robust in different ways. For example, it may be desirable to have robustness along a line connecting two points, where the first point is represented by an angle describing the UE's current location and the second point is represented by an angle describing the UE's location at a future time. Thus, in such cases, the beam may be more robust along the line connecting the two points representing the UE's movement, and less robust in the vertical direction. In some embodiments, the two points may be used to determine the boundaries of the UE's possible locations. An example of this may be when the UE is on a known road, but the accuracy of the sensing information and changes in the information over time leave uncertainty about the exact location. In some embodiments, robustness may be along two points connected by an arc, e.g., an arc on a circle. Thus, in some embodiments, the BS may signal a particular shape to the UE in addition to the beam width along that shape and perpendicular to that shape. One possible method is to provide information indicating the curved shape, e.g., a line or arc of a circle, in addition to information about the beam's rotation and the center of that shape. For the UE to understand the shape of the robustness, the information transmitted by the BS must be understood in terms of coordinates that are familiar to the UE. For example, the BS and the UE may agree that the information transmitted to the UE is based on GPS coordinates, and therefore the UE will understand any information transmitted by the UE as information according to its GPS data.

[0189] Generally, after the UE receives information about the shape of the robustness from the BS, the UE checks whether this robustness is suitable for the UE and may either confirm that the parameters are appropriate or provide feedback to the BS suggesting changes to the parameters.

[0190] In some embodiments, having the BS provide the UE information regarding chirp beam parameters may help the UE determine whether the beam meets the UE's requirements and may allow the UE to feed back information to the BS when appropriate.

[0191] It should be appreciated that one or more steps of the methods of the embodiments provided herein may be performed by a corresponding unit or module. For example, a signal may be transmitted by a transmitting unit or a transmitting module. A signal may be received by a receiving unit or a receiving module. A signal may be processed by a processing unit or a processing module. Each unit / module may be hardware, software, or a combination thereof. For example, one or more of the units / modules may be integrated circuits such as field programmable gate arrays (FPGAs) or application-specific integrated circuits (ASICs). It is appreciated that when modules are software, they may be retrieved by a processor for processing, individually or together, in whole or in part, as needed, in single or multiple instances, and the modules themselves may include instructions for further deployment and instantiation.

[0192] Although combinations of features are shown in the illustrated embodiments, not all of these need to be combined to realize the benefits of various embodiments of the present disclosure. In other words, a system or method designed in accordance with an embodiment of the present disclosure does not necessarily include all of the features shown in any one of the drawings, or all of the portions schematically illustrated in the drawings. Furthermore, selected features of one exemplary embodiment may be combined with selected features of other exemplary embodiments.

[0193] While the present disclosure has been described with reference to exemplary embodiments, this description is not intended to be construed in a limiting sense. Various modifications and combinations of the exemplary embodiments, as well as other embodiments of the present disclosure, will be apparent to those skilled in the art upon reference to the description. It is therefore intended that the appended claims cover any such modifications or embodiments.

Claims

1. 1. A method of analog beamforming a signal, comprising: beamforming a signal to be transmitted by an array of antennas, said beamforming comprising applying beam coefficients to said array of antennas; The beam coefficients relate to beam direction and beam robustness, applying the beam coefficients includes adjusting the beam coefficients to obtain robustness in any direction; The method, wherein the array of antennas is a rectangular array of N1 × N2 antennas separated by half a wavelength, the antennas of the array are aligned with a first vertical axis, and applying the beam coefficients further includes determining beamforming matrix coefficients for the N1 × N2 antennas, the beamforming matrix coefficients being determined based on indices of the N1 × N2 antennas on a second axis rotated relative to the first vertical axis, the indices on the second axis depending on the indices on the first vertical axis.

2. The beamforming matrix coefficients are [Equation 1] is determined based on n 1 and n 2 is the Nth vertical axis on the first vertical axis. 1 ×N 2 is the index of the antenna, and the angle θ 1 and θ 2 is the N 1 ×N 2 is the incident beam angle of the antenna with respect to the axis of the array, and d 1 and d 2 is the N on the second axis 1 ×N 2 is the index of the antenna, D 1 and D 2 represents the range of indices for the second axis, and u 1 and u 2 10. The method of analog beamforming of claim 1, wherein ∑ is related to the beamwidth of the beamformed signal.

3. The direction of robustness is the index n relative to the first vertical axis. 1 and n 2 the index d associated with the second axis of 1 and d 2 3. The method of claim 2, wherein the beamforming is defined by a mapping to

4. The method of claim 3 , wherein the direction of robustness is a straight line, a curve, or an arc.

5. The beam coefficients are Calculated when needed, or 5. The method of claim 1, wherein the method is accessed from a look-up table.

6. A device, a processor; a computer-readable medium having stored thereon computer-executable instructions which, when executed, cause said processor to perform the method of any one of claims 1 to 5; Devices that include:

7. A device comprising means for carrying out the method according to any one of claims 1 to 5.

8. a non-transitory computer-readable storage medium coupled to a processor and storing programming instructions for execution by the processor, A non-transitory computer readable storage medium, wherein the programming instructions instruct the processor to perform the method of any one of claims 1 to 5.

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