Channel state information measurement in bandwidth part
By measuring NZP CSI-RSs within a specified BWP, the solution addresses the inefficiencies and inaccuracies of large bandwidth CSI measurements, achieving reduced power consumption and improved CSI accuracy for efficient cell switching.
Patent Information
- Application Number
- PCT/CN2024/078462
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-24
- Publication Date
- 2025-08-28
AI Technical Summary
The challenge in wireless communication systems is the high complexity and power consumption associated with measuring non-zero power (NZP) channel state information (CSI) reference signals (CSI-RSs) over large configured downlink bandwidths, leading to inaccurate CSI and inefficient use of resources.
The solution involves configuring UEs to measure NZP CSI-RSs within a specified bandwidth part (BWP) rather than the entire configured downlink bandwidth, using default information such as RB information and active DL BWP parameters to conserve power, processing resources, and signaling resources while improving CSI accuracy.
This approach reduces power consumption, processing complexity, and signaling resources while enhancing the accuracy of CSI measurements, thereby improving the success rate of cell switches and optimizing resource utilization.
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Figure CN2024078462_28082025_PF_FP_ABST
Abstract
Description
CHANNEL STATE INFORMATION MEASUREMENT IN BANDWIDTH PART
[0001] INTRODUCTION
[0002] Aspects of the present disclosure generally relate to wireless communication and specifically relate to techniques, apparatuses, and methods for measuring channel state information.
[0003] Wireless communication systems are widely deployed to provide various services that may include carrying voice, text, messaging, video, data, and / or other traffic. The services may include unicast, multicast, and / or broadcast services, among other examples. Typical wireless communication systems may employ multiple-access radio access technologies (RATs) capable of supporting communication with multiple users by sharing available system resources (for example, time domain resources, frequency domain resources, spatial domain resources, and / or device transmit power, among other examples) . Examples of such multiple-access RATs include code division multiple access (CDMA) systems, time division multiple access (TDMA) systems, frequency division multiple access (FDMA) systems, orthogonal frequency division multiple access (OFDMA) systems, single-carrier frequency division multiple access (SC-FDMA) systems, and time division synchronous code division multiple access (TD-SCDMA) systems.
[0004] The above multiple-access RATs have been adopted in various telecommunication standards to provide common protocols that enable different wireless communication devices to communicate on a municipal, national, regional, or global level. An example telecommunication standard is New Radio (NR) . NR, which may also be referred to as 5G, is part of a continuous mobile broadband evolution promulgated by the Third Generation Partnership Project (3GPP) . NR (and other mobile broadband evolutions beyond NR) may be designed to better support Internet of things (IoT) and reduced capability device deployments, industrial connectivity, millimeter wave (mmWave) expansion, licensed and unlicensed spectrum access, non-terrestrial network (NTN) deployment, sidelink and other device-to-device direct communication technologies (for example, cellular vehicle-to-everything (CV2X) communication) , massive multiple-input multiple-output (MIMO) , disaggregated network architectures and network topology expansions, multiple-subscriber implementations, high-precision positioning, and / or radio frequency (RF) sensing, among other examples. As the demand for mobile broadband access continues to increase, further improvements in NR may be implemented, and other radio access technologies such as 6G may be introduced, to further advance mobile broadband evolution.SUMMARY
[0005] Some aspects described herein relate to a method of wireless communication performed at a user equipment (UE) . The method may include receiving a non-zero power (NZP) channel state information (CSI) configuration for a candidate cell with information to measure an NZP CSI reference signal (CSI-RS) within a bandwidth part (BWP) . The method may include transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0006] Some aspects described herein relate to a method of wireless communication performed at a UE. The method may include receiving an NZP CSI reference signal from a candidate cell in a BWP that is specified for CSI measurement. The method may include transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0007] Some aspects described herein relate to a method of wireless communication performed at a network entity. The method may include transmitting an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP. The method may include receiving a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0008] Some aspects described herein relate to an apparatus for wireless communication at a UE. The apparatus may include one or more memories and one or more processors coupled to the one or more memories. The one or more processors may be configured to receive an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP. The one or more processors may be configured to transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0009] Some aspects described herein relate to an apparatus for wireless communication at a UE. The apparatus may include one or more memories and one or more processors coupled to the one or more memories. The one or more processors may be configured to receive an NZP CSI reference signal from a candidate cell in a BWP that is specified for CSI measurement. The one or more processors may be configured to transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0010] Some aspects described herein relate to an apparatus for wireless communication at a network entity. The apparatus may include one or more memories and one or more processors coupled to the one or more memories. The one or more processors may be configured to transmit an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP. The one or more processors may be configured to receive a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0011] Some aspects described herein relate to a non-transitory computer-readable medium that stores a set of instructions for wireless communication by a UE. The set of instructions, when executed by one or more processors of the UE, may cause the UE to receive an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP. The set of instructions, when executed by one or more processors of the UE, may cause the UE to transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0012] Some aspects described herein relate to a non-transitory computer-readable medium that stores a set of instructions for wireless communication by a UE. The set of instructions, when executed by one or more processors of the UE, may cause the UE to receive an NZP CSI reference signal from a candidate cell in a BWP that is specified for CSI measurement. The set of instructions, when executed by one or more processors of the UE, may cause the UE to transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0013] Some aspects described herein relate to a non-transitory computer-readable medium that stores a set of instructions for wireless communication by a network entity. The set of instructions, when executed by one or more processors of the network entity, may cause the network entity to transmit an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP. The set of instructions, when executed by one or more processors of the network entity, may cause the network entity to receive a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0014] Some aspects described herein relate to an apparatus for wireless communication. The apparatus may include means for receiving an NZP CSI configuration for a candidate cell with information to measure an NZP-CSI-RS within a BWP. The apparatus may include means for transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0015] Some aspects described herein relate to an apparatus for wireless communication. The apparatus may include means for receiving an NZP CSI reference signal from a candidate cell in a BWP that is specified for CSI measurement. The apparatus may include means for transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0016] Some aspects described herein relate to an apparatus for wireless communication. The apparatus may include means for transmitting an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP. The apparatus may include means for receiving a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0017] Aspects of the present disclosure may generally be implemented by or as a method, apparatus, system, computer program product, non-transitory computer-readable medium, user equipment, base station, network node, network entity, wireless communication device, and / or processing system as substantially described with reference to, and as illustrated by, the specification and accompanying drawings.
[0018] The foregoing paragraphs of this section have broadly summarized some aspects of the present disclosure. These and additional aspects and associated advantages will be described hereinafter. The disclosed aspects may be used as a basis for modifying or designing other aspects for carrying out the same or similar purposes of the present disclosure. Such equivalent aspects do not depart from the scope of the appended claims. Characteristics of the aspects disclosed herein, both their organization and method of operation, together with associated advantages, will be better understood from the following description when considered in connection with the accompanying drawings.BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The appended drawings illustrate some aspects of the present disclosure, but are not limiting of the scope of the present disclosure because the description may enable other aspects. Each of the drawings is provided for purposes of illustration and description, and not as a definition of the limits of the claims. The same or similar reference numbers in different drawings may identify the same or similar elements.
[0020] Fig. 1 is a diagram illustrating an example of a wireless communication network in accordance with the present disclosure.
[0021] Fig. 2 is a diagram illustrating an example network node in communication with an example user equipment (UE) in a wireless network in accordance with the present disclosure.
[0022] Fig. 3 is a diagram illustrating an example disaggregated base station architecture in accordance with the present disclosure.
[0023] Figs. 4A, 4B, and 4C are diagrams illustrating examples of Layer 1 (L1) / Layer 2 (L2) inter-cell mobility, in accordance with the present disclosure.
[0024] Fig. 5 is a diagram illustrating an example of an L1 / L2 triggered mobility (LTM) procedure, in accordance with the present disclosure.
[0025] Fig. 6 is a diagram illustrating an example of measuring channel state information (CSI) reference signals (CSI-RSs) , in accordance with the present disclosure.
[0026] Fig. 7A, 7B, and 7C are diagrams illustrating examples of measuring CSI-RSs within a specific bandwidth, in accordance with the present disclosure.
[0027] Fig. 8 is a diagram illustrating an example of measuring CSI-RSs within a bandwidth part (BWP) , in accordance with the present disclosure.
[0028] Fig. 9 is a diagram illustrating an example of signaling involving a BWP for measuring non-zero power (NZP) CSI-RSs, in accordance with the present disclosure.
[0029] Fig. 10 is a diagram illustrating an example process performed, for example, at a UE or an apparatus of a UE, in accordance with the present disclosure.
[0030] Fig. 11 is a diagram illustrating an example process performed, for example, at a UE or an apparatus of a UE, in accordance with the present disclosure.
[0031] Fig. 12 is a diagram illustrating an example process performed, for example, at a network entity or an apparatus of a network entity, in accordance with the present disclosure.
[0032] Fig. 13 is a diagram of an example apparatus for wireless communication, in accordance with the present disclosure.
[0033] Fig. 14 is a diagram illustrating an example of a hardware implementation for an apparatus employing a processing system, in accordance with the present disclosure.
[0034] Fig. 15 is a diagram illustrating an example of an implementation of code and circuitry for an apparatus, in accordance with the present disclosure.
[0035] Fig. 16 is a diagram of an example apparatus for wireless communication, in accordance with the present disclosure.
[0036] Fig. 17 is a diagram illustrating an example of a hardware implementation for an apparatus employing a processing system, in accordance with the present disclosure.
[0037] Fig. 18 is a diagram illustrating an example of an implementation of code and circuitry for an apparatus, in accordance with the present disclosure.DETAILED DESCRIPTION
[0038] Downlink and uplink resources may include time domain resources (frames, subframes, slots, and / or symbols) , frequency domain resources (frequency bands, component carriers, subcarriers, resource blocks (RBs) , and / or resource elements) , and / or spatial domain resources (particular transmit directions and / or beam parameters) . A RB may be a block of frequency resources, such as a block of consecutive subcarriers (e.g., 12 subcarriers) . Frequency domain resources of some bands may be subdivided into bandwidth parts (BWPs) . A BWP may be a continuous block of frequency domain resources (for example, a continuous block of resource blocks) that are allocated for a user equipment (UE) and / or other UEs.
[0039] A UE may be configured with both an uplink bandwidth (e.g., uplink BWP) and a downlink bandwidth (total channel bandwidth or initially configured downlink BWP) . The uplink BWP and the downlink BWP may be the same BWP or different BWPs) . A BWP may be dynamically configured (for example, by a network node transmitting a downlink control information (DCI) configuration to the one or more UEs) and / or reconfigured, which means that a BWP can be adjusted in real-time (or near-real-time) based on changing network conditions in the wireless communication network and / or based on the specific requirements of the one or more UEs. This enables more efficient use of the available frequency domain resources in the wireless communication network because fewer frequency domain resources may be allocated to a BWP for a UE (which may reduce the quantity of frequency domain resources that a UE is required to monitor) , leaving more frequency domain resources to be spread across multiple UEs. Thus, BWPs may also assist in the implementation of lower-capability UEs by facilitating the configuration of smaller bandwidths for communication by such UEs.
[0040] In some aspects, a UE may be part of a Layer 1 (L1) and Layer 2 (L2) triggered mobility (LTM) procedure. An LTM procedure may include the use of L1 signaling (e.g., a DCI message) or L2 signaling (e.g., a medium access command (MAC) control element (MAC CE) ) from a network entity to the UE to indicate a change to a serving cell or a serving cell group (e.g., changing from a source cell to a target cell) . In the 3GPP, the term “cell” can refer to a coverage area of a network entity or to a network entity itself, depending on the context in which the term is used. A serving cell may be a primary cell or a secondary cell provided by a network entity to which the UE is connected. The network entity may provide multiple cells and a serving cell group may include a group of cells.
[0041] As part of the LTM procedure, the UE may measure non-zero power (NZP) channel state information (CSI) reference signals (CSI-RSs) from candidate cells of network entities within a configured downlink bandwidth. An NZP CSI-RS may be a type of signal used for procedures such as channel measurement, beam management, beam measurement, and / or connected mobility. CSI-RSs may refer to NZP CSI-RSs as zero power (ZP) CSI-RSs are CSI-RSs with special empty resource elements, used mostly for interference measurement. NZP CSI-RSs may be associated with CSI-RS resources that are part of a CSI-RS resource set. The CSI-RS resource set may be configured by a CSI-RS resource set configuration.
[0042] A CSI-RS resource set configuration for the NZP CSI-RSs may indicate a starting resource block (RB) and a number of RBs (configured by higher layer parameters, such as csi-RS-ResourceSetList) for the downlink bandwidth. However, the configured downlink bandwidth may be very large (e.g., 400 megahertz (MHz) , which increases the complexity and the power consumption of the UE, because the UE powers antenna elements to monitor over the whole configured downlink bandwidth. A larger bandwidth may involve less accurate CSI than would be used for a cell switch, because the CSI would represent the larger bandwidth that is beyond a smaller frequency bandwidth in which the communications actually occur.
[0043] Various aspects relate generally to UE mobility and more particularly to a UE receiving bandwidth part (BWP) information from a network entity that indicates a specific BWP in which to measure NZP CSI-RSs. The BWP may be a continuous block of frequency domain resources (for example, a continuous block of RBs) that are allocated for one or more UEs. The BWP may be smaller than the downlink bandwidth configured by the CSI resource set configuration. The UE may measure NZP CSI-RSs within the BWP and not outside of the BWP. The UE may transmit a measurement report to the network entity that is specific to NZP CSI-RSs measured within the BWP.
[0044] In some examples, by measuring NZP CSI-RSs only within the BWP indicated in the BWP information, the UE may conserve power (less frequency range to cover) , processing resources (less complexity) , and signaling resources (less bandwidth used) . The UE may have more accurate CSI information that can improve a success rate for a cell switch (CSI more representative of actual communications) , which further conserves signaling resources (not wasted with unsuccessful cell switches) .
[0045] In some aspects, the UE may measure NZP CSI-RSs from candidate cells within the BWP based at least in part on default information, which may include RB information (e.g., starting RB, number of RBs) , an active DL BWP parameter of the candidate cell, or a virtual BWP. The virtual BWP may start at a starting RB and have a size that is based at least in part on a size of another resource, such as the same size as a frequency range of a control resource set (CORESET) 0 in the candidate cell. In some examples, by measuring NZP CSI-RSs only within the BWP determined from the default information, the UE may conserve power (less frequency range to cover) , processing resources (less complexity) , and signaling resources (less bandwidth used) . The UE may have more accurate CSI information that improves a success rate for a cell switch, which further conserves signaling resources (not wasted with unsuccessful cell switches) .
[0046] Various aspects of the present disclosure are described hereinafter with reference to the accompanying drawings. However, aspects of the present disclosure may be embodied in many different forms and is not to be construed as limited to any specific aspect illustrated by or described with reference to an accompanying drawing or otherwise presented in this disclosure. Rather, these aspects are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. One skilled in the art may appreciate that the scope of the disclosure is intended to cover any aspect of the disclosure disclosed herein, whether implemented independently of or in combination with any other aspect of the disclosure. For example, an apparatus may be implemented or a method may be practiced using various combinations or quantities of the aspects set forth herein. In addition, the scope of the disclosure is intended to cover an apparatus having, or a method that is practiced using, other structures and / or functionalities in addition to or other than the structures and / or functionalities with which various aspects of the disclosure set forth herein may be practiced. Any aspect of the disclosure disclosed herein may be embodied by one or more elements of a claim.
[0047] Several aspects of telecommunication systems will now be presented with reference to various methods, operations, apparatuses, and techniques. These methods, operations, apparatuses, and techniques will be described in the following detailed description and illustrated in the accompanying drawings by various blocks, modules, components, circuits, steps, processes, or algorithms (collectively referred to as “elements” ) . These elements may be implemented using hardware, software, or a combination of hardware and software. Whether such elements are implemented as hardware or software depends upon the particular application and design constraints imposed on the overall system.
[0048] Multiple-access radio access technologies (RATs) have been adopted in various telecommunication standards to provide common protocols that enable wireless communication devices to communicate on a municipal, enterprise, national, regional, or global level. For example, 5G New Radio (NR) is part of a continuous mobile broadband evolution promulgated by the Third Generation Partnership Project (3GPP) . 5G NR supports various technologies and use cases including enhanced mobile broadband (eMBB) , ultra-reliable low-latency communication (URLLC) , massive machine-type communication (mMTC) , millimeter wave (mmWave) technology, beamforming, network slicing, edge computing, Internet of Things (IoT) connectivity and management, and network function virtualization (NFV) .
[0049] As the demand for broadband access increases and as technologies supported by wireless communication networks evolve, further technological improvements may be adopted in or implemented for 5G NR or future RATs, such as 6G, to further advance the evolution of wireless communication for a wide variety of existing and new use cases and applications. Such technological improvements may be associated with new frequency band expansion, licensed and unlicensed spectrum access, overlapping spectrum use, small cell deployments, non-terrestrial network (NTN) deployments, disaggregated network architectures and network topology expansion, device aggregation, advanced duplex communication, sidelink and other device-to-device direct communication, IoT (including passive or ambient IoT) networks, reduced capability (RedCap) UE functionality, industrial connectivity, multiple-subscriber implementations, high-precision positioning, radio frequency (RF) sensing, and / or artificial intelligence or machine learning (AI / ML) , among other examples. These technological improvements may support use cases such as wireless backhauls, wireless data centers, extended reality (XR) and metaverse applications, meta services for supporting vehicle connectivity, holographic and mixed reality communication, autonomous and collaborative robots, vehicle platooning and cooperative maneuvering, sensing networks, gesture monitoring, human-brain interfacing, digital twin applications, asset management, and universal coverage applications using non-terrestrial and / or aerial platforms, among other examples. The methods, operations, apparatuses, and techniques described herein may enable one or more of the foregoing technologies and / or support one or more of the foregoing use cases.
[0050] Fig. 1 is a diagram illustrating an example of a wireless communication network 100 in accordance with the present disclosure. The wireless communication network 100 may be or may include elements of a 5G (or NR) network or a 6G network, among other examples. The wireless communication network 100 may include multiple network nodes 110, shown as a network node (NN) 110a, a network node 110b, a network node 110c, and a network node 110d. The network nodes 110 may support communications with multiple UEs 120, shown as a UE 120a, a UE 120b, a UE 120c, a UE 120d, and a UE 120e.
[0051] The network nodes 110 and the UEs 120 of the wireless communication network 100 may communicate using the electromagnetic spectrum, which may be subdivided by frequency or wavelength into various classes, bands, carriers, and / or channels. For example, devices of the wireless communication network 100 may communicate using one or more operating bands. In some aspects, multiple wireless networks 100 may be deployed in a given geographic area. Each wireless communication network 100 may support a particular RAT (which may also be referred to as an air interface) and may operate on one or more carrier frequencies in one or more frequency ranges. Examples of RATs include a 4G RAT, a 5G / NR RAT, and / or a 6G RAT, among other examples. In some examples, when multiple RATs are deployed in a given geographic area, each RAT in the geographic area may operate on different frequencies to avoid interference with one another.
[0052] Various operating bands have been defined as frequency range designations FR1 (410 MHz through 7.125 GHz) , FR2 (24.25 GHz through 52.6 GHz) , FR3 (7.125 GHz through 24.25 GHz) , FR4a or FR4-1 (52.6 GHz through 71 GHz) , FR4 (52.6 GHz through 114.25 GHz) , and FR5 (114.25 GHz through 300 GHz) . Although a portion of FR1 is greater than 6 GHz, FR1 is often referred to (interchangeably) as a “Sub-6 GHz” band in some documents and articles. Similarly, FR2 is often referred to (interchangeably) as a “millimeter wave” band in some documents and articles, despite being different than the extremely high frequency (EHF) band (30 GHz through 300 GHz) , which is identified by the International Telecommunications Union (ITU) as a “millimeter wave” band. The frequencies between FR1 and FR2 are often referred to as mid-band frequencies, which include FR3. Frequency bands falling within FR3 may inherit FR1 characteristics or FR2 characteristics, and thus may effectively extend features of FR1 or FR2 into mid-band frequencies. Thus, “sub-6 GHz, ” if used herein, may broadly refer to frequencies that are less than 6 GHz, that are within FR1, and / or that are included in mid-band frequencies. Similarly, the term “millimeter wave, ” if used herein, may broadly refer to frequencies that are included in mid-band frequencies, that are within FR2, FR4, FR4-a or FR4-1, or FR5, and / or that are within the EHF band. Higher frequency bands may extend 5G NR operation, 6G operation, and / or other RATs beyond 52.6 GHz. For example, each of FR4a, FR4-1, FR4, and FR5 falls within the EHF band. In some examples, the wireless communication network 100 may implement dynamic spectrum sharing (DSS) , in which multiple RATs (for example, 4G / LTE and 5G / NR) are implemented with dynamic bandwidth allocation (for example, based on user demand) in a single frequency band. It is contemplated that the frequencies included in these operating bands (for example, FR1, FR2, FR3, FR4, FR4-a, FR4-1, and / or FR5) may be modified, and techniques described herein may be applicable to those modified frequency ranges.
[0053] A network node 110 may include one or more devices, components, or systems that enable communication between a UE 120 and one or more devices, components, or systems of the wireless communication network 100. A network node 110 may be, may include, or may also be referred to as an NR network node, a 5G network node, a 6G network node, a Node B, an eNB, a gNB, an access point (AP) , a transmission reception point (TRP) , a mobility element, a core, a network entity, a network element, a network equipment, and / or another type of device, component, or system included in a radio access network (RAN) .
[0054] A network node 110 may be implemented as a single physical node (for example, a single physical structure) or may be implemented as two or more physical nodes (for example, two or more distinct physical structures) . For example, a network node 110 may be a device or system that implements part of a radio protocol stack, a device or system that implements a full radio protocol stack (such as a full gNB protocol stack) , or a collection of devices or systems that collectively implement the full radio protocol stack. For example, and as shown, a network node 110 may be an aggregated network node (having an aggregated architecture) , meaning that the network node 110 may implement a full radio protocol stack that is physically and logically integrated within a single node (for example, a single physical structure) in the wireless communication network 100. For example, an aggregated network node 110 may consist of a single standalone base station or a single TRP that uses a full radio protocol stack to enable or facilitate communication between a UE 120 and a core network of the wireless communication network 100.
[0055] Alternatively, and as also shown, a network node 110 may be a disaggregated network node (sometimes referred to as a disaggregated base station) , meaning that the network node 110 may implement a radio protocol stack that is physically distributed and / or logically distributed among two or more nodes in the same geographic location or in different geographic locations. For example, a disaggregated network node may have a disaggregated architecture. In some deployments, disaggregated network nodes 110 may be used in an integrated access and backhaul (IAB) network, in an open radio access network (O-RAN) (such as a network configuration in compliance with the O-RAN Alliance) , or in a virtualized radio access network (vRAN) , also known as a cloud radio access network (C-RAN) , to facilitate scaling by separating base station functionality into multiple units that can be individually deployed.
[0056] The network nodes 110 of the wireless communication network 100 may include one or more central units (CUs) , one or more distributed units (DUs) , and / or one or more radio units (RUs) . A CU may host one or more higher layer control functions, such as radio resource control (RRC) functions, packet data convergence protocol (PDCP) functions, and / or service data adaptation protocol (SDAP) functions, among other examples. A DU may host one or more of a radio link control (RLC) layer, a MAC layer, and / or one or more higher physical (PHY) layers depending, at least in part, on a functional split, such as a functional split defined by the 3GPP. In some examples, a DU also may host one or more lower PHY layer functions, such as a fast Fourier transform (FFT) , an inverse FFT (iFFT) , beamforming, physical random access channel (PRACH) extraction and filtering, and / or scheduling of resources for one or more UEs 120, among other examples. An RU may host RF processing functions or lower PHY layer functions, such as an FFT, an iFFT, beamforming, or PRACH extraction and filtering, among other examples, according to a functional split, such as a lower layer functional split. In such an architecture, each RU can be operated to handle over the air (OTA) communication with one or more UEs 120.
[0057] In some aspects, a single network node 110 may include a combination of one or more CUs, one or more DUs, and / or one or more RUs. Additionally or alternatively, a network node 110 may include one or more Near-Real Time (Near-RT) RAN Intelligent Controllers (RICs) and / or one or more Non-Real Time (Non-RT) RICs. In some examples, a CU, a DU, and / or an RU may be implemented as a virtual unit, such as a virtual central unit (VCU) , a virtual distributed unit (VDU) , or a virtual radio unit (VRU) , among other examples. A virtual unit may be implemented as a virtual network function, such as associated with a cloud deployment.
[0058] Some network nodes 110 (for example, a base station, an RU, or a TRP) may provide communication coverage for a particular geographic area. In the 3GPP, the term “cell” can refer to a coverage area of a network node 110 or to a network node 110 itself, depending on the context in which the term is used. A network node 110 may support one or multiple (for example, three) cells. In some examples, a network node 110 may provide communication coverage for a macro cell, a pico cell, a femto cell, or another type of cell. A macro cell may cover a relatively large geographic area (for example, several kilometers in radius) and may allow unrestricted access by UEs 120 with service subscriptions. A pico cell may cover a relatively small geographic area and may allow unrestricted access by UEs 120 with service subscriptions. A femto cell may cover a relatively small geographic area (for example, a home) and may allow restricted access by UEs 120 having association with the femto cell (for example, UEs 120 in a closed subscriber group (CSG) ) . A network node 110 for a macro cell may be referred to as a macro network node. A network node 110 for a pico cell may be referred to as a pico network node. A network node 110 for a femto cell may be referred to as a femto network node or an in-home network node. In some examples, a cell may not necessarily be stationary. For example, the geographic area of the cell may move according to the location of an associated mobile network node 110 (for example, a train, a satellite base station, an unmanned aerial vehicle, or a NTN network node) .
[0059] The wireless communication network 100 may be a heterogeneous network that includes network nodes 110 of different types, such as macro network nodes, pico network nodes, femto network nodes, relay network nodes, aggregated network nodes, and / or disaggregated network nodes, among other examples. In the example shown in Fig. 1, the network node 110a may be a macro network node for a macro cell 130a, the network node 110b may be a pico network node for a pico cell 130b, and the network node 110c may be a femto network node for a femto cell 130c. Various different types of network nodes 110 may generally transmit at different power levels, serve different coverage areas, and / or have different impacts on interference in the wireless communication network 100 than other types of network nodes 110. For example, macro network nodes may have a high transmit power level (for example, 5 to 40 watts) , whereas pico network nodes, femto network nodes, and relay network nodes may have lower transmit power levels (for example, 0.1 to 2 watts) .
[0060] In some examples, a network node 110 may be, may include, or may operate as an RU, a TRP, or a base station that communicates with one or more UEs 120 via a radio access link (which may be referred to as a “Uu” link) . The radio access link may include a downlink and an uplink. “Downlink” (or “DL” ) refers to a communication direction from a network node 110 to a UE 120, and “uplink” (or “UL” ) refers to a communication direction from a UE 120 to a network node 110. Downlink channels may include one or more control channels and one or more data channels. A downlink control channel may be used to transmit DCI (for example, scheduling information, reference signals, and / or configuration information) from a network node 110 to a UE 120. A downlink data channel may be used to transmit downlink data (for example, user data associated with a UE 120) from a network node 110 to a UE 120. Downlink control channels may include one or more physical downlink control channels (PDCCHs) , and downlink data channels may include one or more physical downlink shared channels (PDSCHs) . Uplink channels may similarly include one or more control channels and one or more data channels. An uplink control channel may be used to transmit uplink control information (UCI) (for example, reference signals and / or feedback corresponding to one or more downlink transmissions) from a UE 120 to a network node 110. An uplink data channel may be used to transmit uplink data (for example, user data associated with a UE 120) from a UE 120 to a network node 110. Uplink control channels may include one or more physical uplink control channels (PUCCHs) , and uplink data channels may include one or more physical uplink shared channels (PUSCHs) . The downlink and the uplink may each include a set of resources on which the network node 110 and the UE 120 may communicate.
[0061] Downlink and uplink resources may include time domain resources (frames, subframes, slots, and / or symbols) , frequency domain resources (frequency bands, component carriers, subcarriers, resource blocks, and / or resource elements) , and / or spatial domain resources (particular transmit directions and / or beam parameters) . Frequency domain resources of some bands may be subdivided into BWPs. A BWP may be a continuous block of frequency domain resources (for example, a continuous block of resource blocks) that are allocated for one or more UEs 120. A UE 120 may be configured with both an uplink BWP and a downlink BWP (where the uplink BWP and the downlink BWP may be the same BWP or different BWPs) . A BWP may be dynamically configured (for example, by a network node 110 transmitting a DCI configuration to the one or more UEs 120) and / or reconfigured, which means that a BWP can be adjusted in real-time (or near-real-time) based on changing network conditions in the wireless communication network 100 and / or based on the specific requirements of the one or more UEs 120. This enables more efficient use of the available frequency domain resources in the wireless communication network 100 because fewer frequency domain resources may be allocated to a BWP for a UE 120 (which may reduce the quantity of frequency domain resources that a UE 120 is required to monitor) , leaving more frequency domain resources to be spread across multiple UEs 120. Thus, BWPs may also assist in the implementation of lower-capability UEs 120 by facilitating the configuration of smaller bandwidths for communication by such UEs 120.
[0062] As described above, in some aspects, the wireless communication network 100 may be, may include, or may be included in, an IAB network. In an IAB network, at least one network node 110 is an anchor network node that communicates with a core network. An anchor network node 110 may also be referred to as an IAB donor (or “IAB-donor” ) . The anchor network node 110 may connect to the core network via a wired backhaul link. For example, an Ng interface of the anchor network node 110 may terminate at the core network. Additionally or alternatively, an anchor network node 110 may connect to one or more devices of the core network that provide a core access and mobility management function (AMF) . An IAB network also generally includes multiple non-anchor network nodes 110, which may also be referred to as relay network nodes or simply as IAB nodes (or “IAB-nodes” ) . Each non-anchor network node 110 may communicate directly with the anchor network node 110 via a wireless backhaul link to access the core network, or may communicate indirectly with the anchor network node 110 via one or more other non-anchor network nodes 110 and associated wireless backhaul links that form a backhaul path to the core network. Some anchor network node 110 or other non-anchor network node 110 may also communicate directly with one or more UEs 120 via wireless access links that carry access traffic. In some examples, network resources for wireless communication (such as time resources, frequency resources, and / or spatial resources) may be shared between access links and backhaul links.
[0063] In some examples, any network node 110 that relays communications may be referred to as a relay network node, a relay station, or simply as a relay. A relay may receive a transmission of a communication from an upstream station (for example, another network node 110 or a UE 120) and transmit the communication to a downstream station (for example, a UE 120 or another network node 110) . In this case, the wireless communication network 100 may include or be referred to as a “multi-hop network. ” In the example shown in Fig. 1, the network node 110d (for example, a relay network node) may communicate with the network node 110a (for example, a macro network node) and the UE 120d in order to facilitate communication between the network node 110a and the UE 120d. Additionally or alternatively, a UE 120 may be or may operate as a relay station that can relay transmissions to or from other UEs 120. A UE 120 that relays communications may be referred to as a UE relay or a relay UE, among other examples.
[0064] The UEs 120 may be physically dispersed throughout the wireless communication network 100, and each UE 120 may be stationary or mobile. A UE 120 may be, may include, or may be included in an access terminal, another terminal, a mobile station, or a subscriber unit. A UE 120 may be, include, or be coupled with a cellular phone (for example, a smart phone) , a personal digital assistant (PDA) , a wireless modem, a wireless communication device, a handheld device, a laptop computer, a cordless phone, a wireless local loop (WLL) station, a tablet, a camera, a gaming device, a netbook, a smartbook, an ultrabook, a medical device, a biometric device, a wearable device (for example, a smart watch, smart clothing, smart glasses, a smart wristband, and / or smart jewelry, such as a smart ring or a smart bracelet) , an entertainment device (for example, a music device, a video device, and / or a satellite radio) , an XR device, a vehicular component or sensor, a smart meter or sensor, industrial manufacturing equipment, a Global Navigation Satellite System (GNSS) device (such as a Global Positioning System device or another type of positioning device) , a UE function of a network node, and / or any other suitable device or function that may communicate via a wireless medium.
[0065] A UE 120 and / or a network node 110 may include one or more chips, system-on-chips (SoCs) , chipsets, packages, or devices that individually or collectively constitute or comprise a processing system. The processing system includes processor (or “processing” ) circuitry in the form of one or multiple processors, microprocessors, processing units (such as central processing units (CPUs) , graphics processing units (GPUs) , neural processing units (NPUs) and / or digital signal processors (DSPs) ) , processing blocks, application-specific integrated circuits (ASIC) , programmable logic devices (PLDs) (such as field programmable gate arrays (FPGAs) ) , or other discrete gate or transistor logic or circuitry (all of which may be generally referred to herein individually as “processors” or collectively as “the processor” or “the processor circuitry” ) .. A processor also may be implemented as a combination of computing devices, for example, a combination of a DSP and a microprocessor, a plurality of microprocessors, one or more microprocessors in conjunction with a DSP core, or any other such configuration. One or more of the processors may be individually or collectively configurable or configured to perform various functions or operations described herein. A group of processors collectively configurable or configured to perform a set of functions may include a first processor configurable or configured to perform a first function of the set and a second processor configurable or configured to perform a second function of the set, or may include the group of processors all being configured or configurable to perform the set of functions.
[0066] The processing system may further include memory circuitry in the form of one or more memory devices, memory blocks, memory elements or other discrete gate or transistor logic or circuitry, each of which may include tangible storage media such as random-access memory (RAM) or read-only memory (ROM) , or combinations thereof (all of which may be generally referred to herein individually as “memories” or collectively as “the memory” or “the memory circuitry” ) . One or more of the memories may be coupled (for example, operatively coupled, communicatively coupled, electronically coupled, or electrically coupled) with one or more of the processors and may individually or collectively store processor-executable code (such as software) that, when executed by one or more of the processors, may configure one or more of the processors to perform various functions or operations described herein. Additionally or alternatively, in some examples, one or more of the processors may be preconfigured to perform various functions or operations described herein without requiring configuration by software. The processing system may further include or be coupled with one or more modems (such as a Wi-Fi (for example, IEEE compliant) modem or a cellular (for example, 3GPP 4G LTE, 5G, or 6G compliant) modem) . In some implementations, one or more processors of the processing system include or implement one or more of the modems. The processing system may further include or be coupled with multiple radios (collectively “the radio” ) , multiple RF chains, or multiple transceivers, each of which may in turn be coupled with one or more of multiple antennas. In some implementations, one or more processors of the processing system include or implement one or more of the radios, RF chains or transceivers. The UE 120 may include or may be included in a housing that houses components associated with the UE 120 including the processing system.
[0067] Some UEs 120 may be considered machine-type communication (MTC) UEs, evolved or enhanced machine-type communication (eMTC) , UEs, further enhanced eMTC (feMTC) UEs, or enhanced feMTC (efeMTC) UEs, or further evolutions thereof, all of which may be simply referred to as “MTC UEs” . An MTC UE may be, may include, or may be included in or coupled with a robot, an uncrewed aerial vehicle, a remote device, a sensor, a meter, a monitor, and / or a location tag. Some UEs 120 may be considered IoT devices and / or may be implemented as NB-IoT (narrowband IoT) devices. An IoT UE or NB-IoT device may be, may include, or may be included in or coupled with an industrial machine, an appliance, a refrigerator, a doorbell camera device, a home automation device, and / or a light fixture, among other examples. Some UEs 120 may be considered Customer Premises Equipment, which may include telecommunications devices that are installed at a customer location (such as a home or office) to enable access to a service provider's network (such as included in or in communication with the wireless communication network 100) .
[0068] Some UEs 120 may be classified according to different categories in association with different complexities and / or different capabilities. UEs 120 in a first category may facilitate massive IoT in the wireless communication network 100, and may offer low complexity and / or cost relative to UEs 120 in a second category. UEs 120 in a second category may include mission-critical IoT devices, legacy UEs, baseline UEs, high-tier UEs, advanced UEs, full-capability UEs, and / or premium UEs that are capable of URLLC, enhanced mobile broadband (eMBB) , and / or precise positioning in the wireless communication network 100, among other examples. A third category of UEs 120 may have mid-tier complexity and / or capability (for example, a capability between UEs 120 of the first category and UEs 120 of the second capability) . A UE 120 of the third category may be referred to as a reduced capacity UE ( “RedCap UE” ) , a mid-tier UE, an NR-Light UE, and / or an NR-Lite UE, among other examples. RedCap UEs may bridge a gap between the capability and complexity of NB-IoT devices and / or eMTC UEs, and mission-critical IoT devices and / or premium UEs. RedCap UEs may include, for example, wearable devices, IoT devices, industrial sensors, and / or cameras that are associated with a limited bandwidth, power capacity, and / or transmission range, among other examples. RedCap UEs may support healthcare environments, building automation, electrical distribution, process automation, transport and logistics, and / or smart city deployments, among other examples.
[0069] In some examples, two or more UEs 120 (for example, shown as UE 120a and UE 120e) may communicate directly with one another using sidelink communications (for example, without communicating by way of a network node 110 as an intermediary) . As an example, the UE 120a may directly transmit data, control information, or other signaling as a sidelink communication to the UE 120e. This is in contrast to, for example, the UE 120a first transmitting data in an UL communication to a network node 110, which then transmits the data to the UE 120e in a DL communication. In various examples, the UEs 120 may transmit and receive sidelink communications using peer-to-peer (P2P) communication protocols, device-to-device (D2D) communication protocols, vehicle-to-everything (V2X) communication protocols (which may include vehicle-to-vehicle (V2V) protocols, vehicle-to-infrastructure (V2I) protocols, and / or vehicle-to-pedestrian (V2P) protocols) , and / or mesh network communication protocols. In some deployments and configurations, a network node 110 may schedule and / or allocate resources for sidelink communications between UEs 120 in the wireless communication network 100. In some other deployments and configurations, a UE 120 (instead of a network node 110) may perform, or collaborate or negotiate with one or more other UEs to perform, scheduling operations, resource selection operations, and / or other operations for sidelink communications.
[0070] In various examples, some of the network nodes 110 and the UEs 120 of the wireless communication network 100 may be configured for full-duplex operation in addition to half-duplex operation. A network node 110 or a UE 120 operating in a half-duplex mode may perform only one of transmission or reception during particular time resources, such as during particular slots, symbols, or other time periods. Half-duplex operation may involve time-division duplexing (TDD) , in which DL transmissions of the network node 110 and UL transmissions of the UE 120 do not occur in the same time resources (that is, the transmissions do not overlap in time) . In contrast, a network node 110 or a UE 120 operating in a full-duplex mode can transmit and receive communications concurrently (for example, in the same time resources) . By operating in a full-duplex mode, network nodes 110 and / or UEs 120 may generally increase the capacity of the network and the radio access link. In some examples, full-duplex operation may involve frequency-division duplexing (FDD) , in which DL transmissions of the network node 110 are performed in a first frequency band or on a first component carrier and transmissions of the UE 120 are performed in a second frequency band or on a second component carrier different than the first frequency band or the first component carrier, respectively. In some examples, full-duplex operation may be enabled for a UE 120 but not for a network node 110. For example, a UE 120 may simultaneously transmit an UL transmission to a first network node 110 and receive a DL transmission from a second network node 110 in the same time resources. In some other examples, full-duplex operation may be enabled for a network node 110 but not for a UE 120. For example, a network node 110 may simultaneously transmit a DL transmission to a first UE 120 and receive an UL transmission from a second UE 120 in the same time resources. In some other examples, full-duplex operation may be enabled for both a network node 110 and a UE 120.
[0071] In some examples, the UEs 120 and the network nodes 110 may perform MIMO communication. “MIMO” generally refers to transmitting or receiving multiple signals (such as multiple layers or multiple data streams) simultaneously over the same time and frequency resources. MIMO techniques generally exploit multipath propagation. MIMO may be implemented using various spatial processing or spatial multiplexing operations. In some examples, MIMO may support simultaneous transmission to multiple receivers, referred to as multi-user MIMO (MU-MIMO) . Some RATs may employ advanced MIMO techniques, such as mTRP operation (including redundant transmission or reception on multiple TRPs) , reciprocity in the time domain or the frequency domain, single-frequency-network (SFN) transmission, or non-coherent joint transmission (NCJT) .
[0072] In some aspects, a UE (e.g., a UE 120) may include a communication manager 140. As described in more detail elsewhere herein, the communication manager 140 may receive an NZP-CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP. The communication manager 140 may transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0073] In some aspects, the communication manager 140 may receive an NZP CSI reference signal from a candidate cell in a BWP that is specified for CSI measurement. The communication manager 140 may transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP. Additionally, or alternatively, the communication manager 140 may perform one or more other operations described herein.
[0074] In some aspects, a network entity (e.g., a network node 110) may include a communication manager 150. As described in more detail elsewhere herein, the communication manager 150 may transmit an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP. The communication manager 150 may receive a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP. Additionally, or alternatively, the communication manager 150 may perform one or more other operations described herein.
[0075] As indicated above, Fig. 1 is provided as an example. Other examples may differ from what is described with regard to Fig. 1.
[0076] Fig. 2 is a diagram illustrating an example network node 110 in communication with an example UE 120 in a wireless network in accordance with the present disclosure.
[0077] As shown in Fig. 2, the network node 110 may include a data source 212, a transmit processor 214, a transmit (TX) MIMO processor 216, a set of modems 232 (shown as 232a through 232t, where t ≥ 1) , a set of antennas 234 (shown as 234a through 234v, where v ≥ 1) , a MIMO detector 236, a receive processor 238, a data sink 239, a controller / processor 240, a memory 242, a communication unit 244, a scheduler 246, and / or a communication manager 150, among other examples. In some configurations, one or a combination of the antenna (s) 234, the modem (s) 232, the MIMO detector 236, the receive processor 238, the transmit processor 214, and / or the TX MIMO processor 216 may be included in a transceiver of the network node 110. The transceiver may be under control of and used by one or more processors, such as the controller / processor 240, and in some aspects in conjunction with processor-readable code stored in the memory 242, to perform aspects of the methods, processes, and / or operations described herein. In some aspects, the network node 110 may include one or more interfaces, communication components, and / or other components that facilitate communication with the UE 120 or another network node.
[0078] The terms “processor, ” “controller, ” or “controller / processor” may refer to one or more controllers and / or one or more processors. For example, reference to “a / the processor, ” “a / the controller / processor, ” or the like (in the singular) should be understood to refer to any one or more of the processors described in connection with Fig. 2, such as a single processor or a combination of multiple different processors. Reference to “one or more processors” should be understood to refer to any one or more of the processors described in connection with Fig. 2. For example, one or more processors of the network node 110 may include transmit processor 214, TX MIMO processor 216, MIMO detector 236, receive processor 238, and / or controller / processor 240. Similarly, one or more processors of the UE 120 may include MIMO detector 256, receive processor 258, transmit processor 264, TX MIMO processor 266, and / or controller / processor 280.
[0079] In some aspects, a single processor may perform all of the operations described as being performed by the one or more processors. In some aspects, a first set of (one or more) processors of the one or more processors may perform a first operation described as being performed by the one or more processors, and a second set of (one or more) processors of the one or more processors may perform a second operation described as being performed by the one or more processors. The first set of processors and the second set of processors may be the same set of processors or may be different sets of processors. Reference to “one or more memories” should be understood to refer to any one or more memories of a corresponding device, such as the memory described in connection with Fig. 2. For example, operation described as being performed by one or more memories can be performed by the same subset of the one or more memories or different subsets of the one or more memories.
[0080] For downlink communication from the network node 110 to the UE 120, the transmit processor 214 may receive data ( “downlink data” ) intended for the UE 120 (or a set of UEs that includes the UE 120) from the data source 212 (such as a data pipeline or a data queue) . In some examples, the transmit processor 214 may select one or more MCSs for the UE 120 in accordance with one or more channel quality indicators (CQIs) received from the UE 120. The network node 110 may process the data (for example, including encoding the data) for transmission to the UE 120 on a downlink in accordance with the MCS (s) selected for the UE 120 to generate data symbols. The transmit processor 214 may process system information (for example, semi-static resource partitioning information (SRPI) ) and / or control information (for example, CQI requests, grants, and / or upper layer signaling) and provide overhead symbols and / or control symbols. The transmit processor 214 may generate reference symbols for reference signals (for example, a cell-specific reference signal (CRS) , a demodulation reference signal (DMRS) , or a CSI-RS) and / or synchronization signals (for example, a primary synchronization signal (PSS) or a secondary synchronization signals (SSS) ) .
[0081] The TX MIMO processor 216 may perform spatial processing (for example, precoding) on the data symbols, the control symbols, the overhead symbols, and / or the reference symbols, if applicable, and may provide a set of output symbol streams (for example, T output symbol streams) to the set of modems 232. For example, each output symbol stream may be provided to a respective modulator component (shown as MOD) of a modem 232. Each modem 232 may use the respective modulator component to process (for example, to modulate) a respective output symbol stream (for example, for orthogonal frequency division multiplexing (OFDM) ) to obtain an output sample stream. Each modem 232 may further use the respective modulator component to process (for example, convert to analog, amplify, filter, and / or upconvert) the output sample stream to obtain a time domain downlink signal. The modems 232a through 232t may together transmit a set of downlink signals (for example, T downlink signals) via the corresponding set of antennas 234.
[0082] A downlink signal may include a DCI communication, a MAC CE communication, an RRC communication, a downlink reference signal, or another type of downlink communication. Downlink signals may be transmitted on a PDCCH, a PDSCH, and / or on another downlink channel. A downlink signal may carry one or more transport blocks (TBs) of data. A TB may be a unit of data that is transmitted over an air interface in the wireless communication network 100. A data stream (for example, from the data source 212) may be encoded into multiple TBs for transmission over the air interface. The quantity of TBs used to carry the data associated with a particular data stream may be associated with a TB size common to the multiple TBs. The TB size may be based on or otherwise associated with radio channel conditions of the air interface, the MCS used for encoding the data, the downlink resources allocated for transmitting the data, and / or another parameter. In general, the larger the TB size, the greater the amount of data that can be transmitted in a single transmission, which reduces signaling overhead. However, larger TB sizes may be more prone to transmission and / or reception errors than smaller TB sizes, but such errors may be mitigated by more robust error correction techniques.
[0083] For uplink communication from the UE 120 to the network node 110, uplink signals from the UE 120 may be received by an antenna 234, may be processed by a modem 232 (for example, a demodulator component, shown as DEMOD, of a modem 232) , may be detected by the MIMO detector 236 (for example, a receive (Rx) MIMO processor) if applicable, and / or may be further processed by the receive processor 238 to obtain decoded data and / or control information. The receive processor 238 may provide the decoded data to a data sink 239 (which may be a data pipeline, a data queue, and / or another type of data sink) and provide the decoded control information to a processor, such as the controller / processor 240.
[0084] The network node 110 may use the scheduler 246 to schedule one or more UEs 120 for downlink or uplink communications. In some aspects, the scheduler 246 may use DCI to dynamically schedule DL transmissions to the UE 120 and / or UL transmissions from the UE 120. In some examples, the scheduler 246 may allocate recurring time domain resources and / or frequency domain resources that the UE 120 may use to transmit and / or receive communications using an RRC configuration (for example, a semi-static configuration) , for example, to perform semi-persistent scheduling (SPS) or to configure a configured grant (CG) for the UE 120.
[0085] One or more of the transmit processor 214, the TX MIMO processor 216, the modem 232, the antenna 234, the MIMO detector 236, the receive processor 238, and / or the controller / processor 240 may be included in an RF chain of the network node 110. An RF chain may include one or more filters, mixers, oscillators, amplifiers, analog-to-digital converters (ADCs) , and / or other devices that convert between an analog signal (such as for transmission or reception via an air interface) and a digital signal (such as for processing by one or more processors of the network node 110) . In some aspects, the RF chain may be or may be included in a transceiver of the network node 110.
[0086] In some examples, the network node 110 may use the communication unit 244 to communicate with a core network and / or with other network nodes. The communication unit 244 may support wired and / or wireless communication protocols and / or connections, such as Ethernet, optical fiber, common public radio interface (CPRI) , and / or a wired or wireless backhaul, among other examples. The network node 110 may use the communication unit 244 to transmit and / or receive data associated with the UE 120 or to perform network control signaling, among other examples. The communication unit 244 may include a transceiver and / or an interface, such as a network interface.
[0087] The UE 120 may include a set of antennas 252 (shown as antennas 252a through 252r, where r ≥ 1) , a set of modems 254 (shown as modems 254a through 254u, where u ≥ 1) , a MIMO detector 256, a receive processor 258, a data sink 260, a data source 262, a transmit processor 264, a TX MIMO processor 266, a controller / processor 280, a memory 282, and / or a communication manager 140, among other examples. One or more of the components of the UE 120 may be included in a housing 284. In some aspects, one or a combination of the antenna (s) 252, the modem (s) 254, the MIMO detector 256, the receive processor 258, the transmit processor 264, or the TX MIMO processor 266 may be included in a transceiver that is included in the UE 120. The transceiver may be under control of and used by one or more processors, such as the controller / processor 280, and in some aspects in conjunction with processor-readable code stored in the memory 282, to perform aspects of the methods, processes, or operations described herein. In some aspects, the UE 120 may include another interface, another communication component, and / or another component that facilitates communication with the network node 110 and / or another UE 120.
[0088] For downlink communication from the network node 110 to the UE 120, the set of antennas 252 may receive the downlink communications or signals from the network node 110 and may provide a set of received downlink signals (for example, R received signals) to the set of modems 254. For example, each received signal may be provided to a respective demodulator component (shown as DEMOD) of a modem 254. Each modem 254 may use the respective demodulator component to condition (for example, filter, amplify, downconvert, and / or digitize) a received signal to obtain input samples. Each modem 254 may use the respective demodulator component to further demodulate or process the input samples (for example, for OFDM) to obtain received symbols. The MIMO detector 256 may obtain received symbols from the set of modems 254, may perform MIMO detection on the received symbols if applicable, and may provide detected symbols. The receive processor 258 may process (for example, decode) the detected symbols, may provide decoded data for the UE 120 to the data sink 260 (which may include a data pipeline, a data queue, and / or an application executed on the UE 120) , and may provide decoded control information and system information to the controller / processor 280.
[0089] For uplink communication from the UE 120 to the network node 110, the transmit processor 264 may receive and process data ( “uplink data” ) from a data source 262 (such as a data pipeline, a data queue, and / or an application executed on the UE 120) and control information from the controller / processor 280. The control information may include one or more parameters, feedback, one or more signal measurements, and / or other types of control information. In some aspects, the receive processor 258 and / or the controller / processor 280 may determine, for a received signal (such as received from the network node 110 or another UE) , one or more parameters relating to transmission of the uplink communication. The one or more parameters may include a reference signal received power (RSRP) parameter, a received signal strength indicator (RSSI) parameter, a reference signal received quality (RSRQ) parameter, a CQI parameter, or a transmit power control (TPC) parameter, among other examples. The control information may include an indication of the RSRP parameter, the RSSI parameter, the RSRQ parameter, the CQI parameter, the TPC parameter, and / or another parameter. The control information may facilitate parameter selection and / or scheduling for the UE 120 by the network node 110.
[0090] The transmit processor 264 may generate reference symbols for one or more reference signals, such as an uplink DMRS, an uplink sounding reference signal (SRS) , and / or another type of reference signal. The symbols from the transmit processor 264 may be precoded by the TX MIMO processor 266, if applicable, and further processed by the set of modems 254 (for example, for DFT-s-OFDM or CP-OFDM) . The TX MIMO processor 266 may perform spatial processing (for example, precoding) on the data symbols, the control symbols, the overhead symbols, and / or the reference symbols, if applicable, and may provide a set of output symbol streams (for example, U output symbol streams) to the set of modems 254. For example, each output symbol stream may be provided to a respective modulator component (shown as MOD) of a modem 254. Each modem 254 may use the respective modulator component to process (for example, to modulate) a respective output symbol stream (for example, for OFDM) to obtain an output sample stream. Each modem 254 may further use the respective modulator component to process (for example, convert to analog, amplify, filter, and / or upconvert) the output sample stream to obtain an uplink signal.
[0091] The modems 254a through 254u may transmit a set of uplink signals (for example, R uplink signals or U uplink symbols) via the corresponding set of antennas 252. An uplink signal may include a UCI communication, a MAC CE communication, an RRC communication, or another type of uplink communication. Uplink signals may be transmitted on a PUSCH, a PUCCH, and / or another type of uplink channel. An uplink signal may carry one or more TBs of data. Sidelink data and control transmissions (that is, transmissions directly between two or more UEs 120) may generally use similar techniques as were described for uplink data and control transmission, and may use sidelink-specific channels such as a physical sidelink shared channel (PSSCH) , a physical sidelink control channel (PSCCH) , and / or a physical sidelink feedback channel (PSFCH) .
[0092] One or more antennas of the set of antennas 252 or the set of antennas 234 may include, or may be included within, one or more antenna panels, one or more antenna groups, one or more sets of antenna elements, or one or more antenna arrays, among other examples. An antenna panel, an antenna group, a set of antenna elements, or an antenna array may include one or more antenna elements (within a single housing or multiple housings) , a set of coplanar antenna elements, a set of non-coplanar antenna elements, or one or more antenna elements coupled with one or more transmission or reception components, such as one or more components of Fig. 2. As used herein, “antenna” can refer to one or more antennas, one or more antenna panels, one or more antenna groups, one or more sets of antenna elements, or one or more antenna arrays. “Antenna panel” can refer to a group of antennas (such as antenna elements) arranged in an array or panel, which may facilitate beamforming by manipulating parameters of the group of antennas. “Antenna module” may refer to circuitry including one or more antennas, which may also include one or more other components (such as filters, amplifiers, or processors) associated with integrating the antenna module into a wireless communication device.
[0093] In some examples, each of the antenna elements of an antenna 234 or an antenna 252 may include one or more sub-elements for radiating or receiving radio frequency signals. For example, a single antenna element may include a first sub-element cross-polarized with a second sub-element that can be used to independently transmit cross-polarized signals. The antenna elements may include patch antennas, dipole antennas, and / or other types of antennas arranged in a linear pattern, a two-dimensional pattern, or another pattern. A spacing between antenna elements may be such that signals with a desired wavelength transmitted separately by the antenna elements may interact or interfere constructively and destructively along various directions (such as to form a desired beam) . For example, given an expected range of wavelengths or frequencies, the spacing may provide a quarter wavelength, a half wavelength, or another fraction of a wavelength of spacing between neighboring antenna elements to allow for the desired constructive and destructive interference patterns of signals transmitted by the separate antenna elements within that expected range.
[0094] The amplitudes and / or phases of signals transmitted via antenna elements and / or sub-elements may be modulated and shifted relative to each other (such as by manipulating phase shift, phase offset, and / or amplitude) to generate one or more beams, which is referred to as beamforming. The term “beam” may refer to a directional transmission of a wireless signal toward a receiving device or otherwise in a desired direction. “Beam” may also generally refer to a direction associated with such a directional signal transmission, a set of directional resources associated with the signal transmission (for example, an angle of arrival, a horizontal direction, and / or a vertical direction) , and / or a set of parameters that indicate one or more aspects of a directional signal, a direction associated with the signal, and / or a set of directional resources associated with the signal. In some implementations, antenna elements may be individually selected or deselected for directional transmission of a signal (or signals) by controlling amplitudes of one or more corresponding amplifiers and / or phases of the signal (s) to form one or more beams. The shape of a beam (such as the amplitude, width, and / or presence of side lobes) and / or the direction of a beam (such as an angle of the beam relative to a surface of an antenna array) can be dynamically controlled by modifying the phase shifts, phase offsets, and / or amplitudes of the multiple signals relative to each other.
[0095] Different UEs 120 or network nodes 110 may include different numbers of antenna elements. For example, a UE 120 may include a single antenna element, two antenna elements, four antenna elements, eight antenna elements, or a different number of antenna elements. As another example, a network node 110 may include eight antenna elements, 24 antenna elements, 64 antenna elements, 128 antenna elements, or a different number of antenna elements. Generally, a larger number of antenna elements may provide increased control over parameters for beam generation relative to a smaller number of antenna elements, whereas a smaller number of antenna elements may be less complex to implement and may use less power than a larger number of antenna elements. Multiple antenna elements may support multiple-layer transmission, in which a first layer of a communication (which may include a first data stream) and a second layer of a communication (which may include a second data stream) are transmitted using the same time and frequency resources with spatial multiplexing.
[0096] While blocks in Fig. 2 are illustrated as distinct components, the functions described above with respect to the blocks may be implemented in a single hardware, software, or combination component or in various combinations of components. For example, the functions described with respect to the transmit processor 264, the receive processor 258, and / or the TX MIMO processor 266 may be performed by or under the control of the controller / processor 280.
[0097] Fig. 3 is a diagram illustrating an example disaggregated base station architecture 300 in accordance with the present disclosure. One or more components of the example disaggregated base station architecture 300 may be, may include, or may be included in one or more network nodes (such one or more network nodes 110) . The disaggregated base station architecture 300 may include a CU 310 that can communicate directly with a core network 320 via a backhaul link, or that can communicate indirectly with the core network 320 via one or more disaggregated control units, such as a Non-RT RIC 350 associated with a Service Management and Orchestration (SMO) Framework 360 and / or a Near-RT RIC 370 (for example, via an E2 link) . The CU 310 may communicate with one or more DUs 330 via respective midhaul links, such as via F1 interfaces. Each of the DUs 330 may communicate with one or more RUs 340 via respective fronthaul links. Each of the RUs 340 may communicate with one or more UEs 120 via respective RF access links. In some deployments, a UE 120 may be simultaneously served by multiple RUs 340.
[0098] Each of the components of the disaggregated base station architecture 300, including the CUs 310, the DUs 330, the RUs 340, the Near-RT RICs 370, the Non-RT RICs 350, and the SMO Framework 360, may include one or more interfaces or may be coupled with one or more interfaces for receiving or transmitting signals, such as data or information, via a wired or wireless transmission medium.
[0099] In some aspects, the CU 310 may be logically split into one or more CU user plane (CU-UP) units and one or more CU control plane (CU-CP) units. A CU-UP unit may communicate bidirectionally with a CU-CP unit via an interface, such as the E1 interface when implemented in an O-RAN configuration. The CU 310 may be deployed to communicate with one or more DUs 330, as necessary, for network control and signaling. Each DU 330 may correspond to a logical unit that includes one or more base station functions to control the operation of one or more RUs 340. For example, a DU 330 may host various layers, such as an RLC layer, a MAC layer, or one or more PHY layers, such as one or more high PHY layers or one or more low PHY layers. Each layer (which also may be referred to as a module) may be implemented with an interface for communicating signals with other layers (and modules) hosted by the DU 330, or for communicating signals with the control functions hosted by the CU 310. Each RU 340 may implement lower layer functionality. In some aspects, real-time and non-real-time aspects of control and user plane communication with the RU (s) 340 may be controlled by the corresponding DU 330.
[0100] The SMO Framework 360 may support RAN deployment and provisioning of non-virtualized and virtualized network elements. For non-virtualized network elements, the SMO Framework 360 may support the deployment of dedicated physical resources for RAN coverage requirements, which may be managed via an operations and maintenance interface, such as an O1 interface. For virtualized network elements, the SMO Framework 360 may interact with a cloud computing platform (such as an open cloud (O-Cloud) platform 390) to perform network element life cycle management (such as to instantiate virtualized network elements) via a cloud computing platform interface, such as an O2 interface. A virtualized network element may include, but is not limited to, a CU 310, a DU 330, an RU 340, a non-RT RIC 350, and / or a Near-RT RIC 370. In some aspects, the SMO Framework 360 may communicate with a hardware aspect of a 4G RAN, a 5G NR RAN, and / or a 6G RAN, such as an open eNB (O-eNB) 380, via an O1 interface. Additionally or alternatively, the SMO Framework 360 may communicate directly with each of one or more RUs 340 via a respective O1 interface. In some deployments, this configuration can enable each DU 330 and the CU 310 to be implemented in a cloud-based RAN architecture, such as a vRAN architecture.
[0101] The Non-RT RIC 350 may include or may implement a logical function that enables non-real-time control and optimization of RAN elements and resources, AI / ML workflows including model training and updates, and / or policy-based guidance of applications and / or features in the Near-RT RIC 370. The Non-RT RIC 350 may be coupled to or may communicate with (such as via an A1 interface) the Near-RT RIC 370. The Near-RT RIC 370 may include or may implement a logical function that enables near-real-time control and optimization of RAN elements and resources via data collection and actions via an interface (such as via an E2 interface) connecting one or more CUs 310, one or more DUs 330, and / or an O-eNB with the Near-RT RIC 370.
[0102] In some aspects, to generate AI / ML models to be deployed in the Near-RT RIC 370, the Non-RT RIC 350 may receive parameters or external enrichment information from external servers. Such information may be utilized by the Near-RT RIC 370 and may be received at the SMO Framework 360 or the Non-RT RIC 350 from non-network data sources or from network functions. In some examples, the Non-RT RIC 350 or the Near-RT RIC 370 may tune RAN behavior or performance. For example, the Non-RT RIC 350 may monitor long-term trends and patterns for performance and may employ AI / ML models to perform corrective actions via the SMO Framework 360 (such as reconfiguration via an O1 interface) or via creation of RAN management policies (such as A1 interface policies) .
[0103] As indicated above, Fig. 3 is provided as an example. Other examples may differ from what is described with regard to Fig. 3.
[0104] The network node 110, the controller / processor 240 of the network node 110, the UE 120, the controller / processor 280 of the UE 120, the CU 310, the DU 330, the RU 340, or any other component (s) of Figs. 1, 2, or 3 may implement one or more techniques or perform one or more operations associated with measuring CSI in a BWP, as described in more detail elsewhere herein. For example, the controller / processor 240 of the network node 110, the controller / processor 280 of the UE 120, any other component (s) of Fig. 2, the CU 310, the DU 330, or the RU 340 may perform or direct operations of, for example, process 1000 of Fig. 10, process 1100 of Fig. 11, process 1200 of Fig. 12, or other processes as described herein (alone or in conjunction with one or more other processors) . The memory 242 may store data and program codes for the network node 110, the network node 110, the CU 310, the DU 330, or the RU 340. The memory 282 may store data and program codes for the UE 120. In some examples, the memory 242 or the memory 282 may include a non-transitory computer-readable medium storing a set of instructions (for example, code or program code) for wireless communication. The memory 242 may include one or more memories, such as a single memory or multiple different memories (of the same type or of different types) . The memory 282 may include one or more memories, such as a single memory or multiple different memories (of the same type or of different types) . For example, the set of instructions, when executed (for example, directly, or after compiling, converting, or interpreting) by one or more processors of the network node 110, the UE 120, the CU 310, the DU 330, or the RU 340, may cause the one or more processors to perform process 1000 of Fig. 10, process 1100 of Fig. 11, process 1200 of Fig. 12, or other processes as described herein. In some examples, executing instructions may include running the instructions, converting the instructions, compiling the instructions, and / or interpreting the instructions, among other examples.
[0105] In some aspects, a UE (e.g., a UE 120) includes means for receiving an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP; and / or means for transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0106] In some aspects, the UE includes means for receiving an NZP CSI reference signal from a candidate cell in a BWP that is specified for CSI measurement; and / or means for transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP. The means for the UE to perform operations described herein may include, for example, one or more of communication manager 140, antenna 252, modem 254, MIMO detector 256, receive processor 258, transmit processor 264, TX MIMO processor 266, controller / processor 280, or memory 282.
[0107] In some aspects, a network entity (e.g., a network node 110) includes means for transmitting an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP; and / or means for receiving a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP. In some aspects, the means for the network entity to perform operations described herein may include, for example, one or more of communication manager 150, transmit processor 214, TX MIMO processor 216, modem 232, antenna 234, MIMO detector 236, receive processor 238, controller / processor 240, memory 242, or scheduler 246.
[0108] Figs. 4A, 4B, and 4C are diagrams illustrating examples 400, 410, and 420 of L1 / L2 inter-cell mobility, in accordance with the present disclosure.
[0109] In some cases, a network entity may instruct a UE to change cells using a Layer 3 (L3) handover procedure. An L3 handover procedure may include the network entity transmitting, to the UE, an RRC reconfiguration message indicating that the UE should perform a handover procedure to a target cell (candidate cell) , which may be transmitted in response to the UE providing the network entity with an L3 measurement report indicating signal strength measurements associated with various cells (e.g., measurements associated with the source cell (serving cell) and one or more neighboring candidate cells) . In response to receiving the RRC reconfiguration message, the UE may communicate with the source cell and the target cell to detach from the source cell and connect to the target cell (e.g., the UE may establish an RRC connection with the target cell) . Once handover is complete, the target cell may communicate with a user plane function (UPF) of a core network to instruct the UPF to switch a user plane path of the UE from the source cell to the target cell. The target cell may also communicate with the source cell to indicate that handover is complete and that the source cell may be released.
[0110] L3 handover procedures may be associated with high latency and high overhead due to the multiple RRC reconfiguration messages and / or other L3 signaling and operations used to perform the handover procedures. Accordingly, in some examples, a UE 120 may be configured to perform an LTM procedure. In some aspects, as described herein, examples 400, 410, 420 relate to different scenarios in which L1 signaling (e.g., a DCI message) or L2 signaling (e.g., a MAC CE) is used to indicate a change to a serving cell or a serving cell group (e.g., changing from a source cell 402 to a target cell 404) . Examples 400, 410, 420 generally relate to different scenarios in which L1 / L2 signaling may be used to dynamically switch among candidate serving cells (e.g., including a special cell (SpCell) , which may be a primary cell (PCell) or a primary secondary cell (PSCell) , and / or a secondary cell (SCell) ) .
[0111] As shown by example 400 in Fig. 4A, a network entity (e.g., network node 110) may configure the UE 120 with a candidate SpCell set (candidate SpCell 406, candidate SpCell 408, and the candidate SpCell that is shown as the new SpCell or target cell 404) that includes various candidate SpCells to enable individual SpCell selection in a first L1 / L2 inter-cell mobility scenario where separate signaling is used to indicate a SpCell change without carrier aggregation or dual connectivity. For example, the UE 120 may be communicating with a source SpCell (shown as an old SpCell or source cell 402) , and the serving SpCell may be switched to a target SpCell (shown as a new SpCell or target cell 404) that corresponds to a candidate SpCell included in the candidate SpCell set. Accordingly, in example 400, L1 / L2 signaling may be used to select a single SpCell among various candidate SpCells in a preconfigured candidate SpCell set without carrier aggregation or dual connectivity (e.g., the candidate SpCell set does not include any SCells) . In this case, the new SpCell may be selected based on a beam indication, and selection of an SCell may be based on legacy (e.g., L3) signaling or separate L1 / L2 signaling. Additionally, or alternatively, as shown by example 410, the UE may be configured with a candidate SpCell set (SCell 1 416, SCell 2 418, and the SCell that is shown as the new SpCell or target cell 414) , and a SpCell may be changed from a source cell 412 to the target cell 414 by swapping roles of a SpCell and an SCell among the cells included in the candidate SpCell set (e.g., in a carrier aggregation or dual connectivity scenario) . Example 410 in Fig. 4B shows a current SpCell may be swapped with a current SCell such that the old SpCell becomes a new SCell and the old SCell becomes the new SpCell. Additionally, or alternatively, as shown by example 420, the UE may be configured with a candidate cell group (candidate CG 426, candidate CG 428, and the candidate CG that is shown as the new CG or target cell group 424) , which may enable an SpCell (e.g., a PCell or a PSCell) and an SCell to be switched together in a carrier aggregation or dual connectivity scenario. In some aspects, a cell group including multiple cells can be activated or deactivated together using L1 / L2 signaling, where a current serving cell may be selected from a current cell group and the current serving cell may be selected from a new cell group based on mobility of the UE. In some aspects, the L1 / L2 signaling used to change the cell group (from an old CG shown as source cell group 422) may be similar to examples 400 and 410, except that the L1 / L2 signaling is used to switch cell groups that may include multiple cells rather than individual cells.
[0112] As indicated above, Fig. 4 is provided as an example. Other examples may differ from what is described with regard to Fig. 4.
[0113] Fig. 5 is a diagram illustrating an example 500 of an LTM procedure, in accordance with the present disclosure.
[0114] In some examples, a network entity (e.g., network node 110) may instruct a UE (e.g., UE 120) to change serving cells, such as when the UE 120 moves away from coverage of a current serving cell (sometimes referred to as a source cell) and towards coverage of a neighboring cell (sometimes referred to as a target cell) . In some examples, a UE 120 may be configured to perform an LTM procedure, such as the example 500 LTM procedure shown in Fig 5. As shown in Fig. 5, the LTM procedure may include four phases: an LTM preparation phase, an early synchronization phase (shown as “early sync” in Fig. 5) , an LTM execution phase, and / or an LTM completion phase.
[0115] During the LTM preparation phase, and as shown by reference number 505, the UE 120 may be in an RRC connected state (sometimes referred to as RRC_Connected) with a source cell. As shown by reference number 510, the UE 120 may transmit, and the network node 110 may receive, a measurement report (sometimes referred to as a MeasurementReport) , which may be an L3 measurement report. The measurement report may indicate signal strength measurements (e.g., RSRP, RSSI, RSRQ, and / or CQI) or similar measurements associated with the source cell and / or one or more neighboring cells. In some examples, based at least in part on the measurement report or other information, the network node 110 may decide to use LTM, and thus, as shown by reference number 515, the network node 110 may initiate LTM candidate preparation.
[0116] As shown by reference number 520, the network node 110 may transmit, and the UE 120 may receive, an RRC reconfiguration message (sometimes referred to as an RRCReconfiguration message) , which may include an LTM candidate configuration. More particularly, the RRC reconfiguration message may indicate a configuration of one or more LTM candidate target cells, which may be candidate cells to become a serving cell of the UE and / or cells for which the UE 120 may later be triggered to perform an LTM procedure. As shown by reference number 525, the UE 120 may store the configuration of the one or more LTM candidate cell configurations and, in response, may transmit, to the network node 110, an RRC reconfiguration complete message (sometimes referred to as an RRCReconfigurationComplete message) . An LTM configuration may specify CSI resources for synchronization signal blocks (SSBs) but may not specify CSI resources for CSI-RSs. An LTM candidate cell configuration may specify CSI-RS resource sets but may not specify a CSI-RS resource setting.
[0117] During the early synchronization phase, and as shown by reference number 530, the UE 120 may optionally perform downlink / uplink synchronization with the candidate cells associated with the one or more LTM candidate cell configurations. For example, the UE 120 may perform downlink synchronization and timing advance acquisition with the one or more candidate target cells prior to receiving an LTM switch command (which is described in more detail below in connection with reference number 555) . The early synchronization phase may also include early transmission configuration indicator (TCI) state activation, including for unified TCI states for candidate cells. In some aspects, performing the early synchronization with the one or more candidate cells may reduce latency associated with performing a random access channel (RACH) procedure later in the LTM procedure, which is described in more detail below in connection with reference number 555.
[0118] During the LTM execution phase, and as shown by reference number 535, the UE 120 may perform L1 measurements on the configured LTM candidate target cells, and thus may transmit, to the network node 110, lower-layer (e.g., L1) measurement reports. As shown by reference number 540, based at least in part on the lower-layer measurement reports, the network node 110 may decide to execute an LTM cell switch to a target cell. Accordingly, as shown by reference number 545, the network node 110 may transmit, and the UE 120 may receive, a MAC CE or similar message triggering an LTM cell switch (the MAC CE or similar message is sometimes referred to herein as a cell switch command) . The cell switch command may include an indication of a candidate configuration index associated with the target cell. As shown by reference number 550, based at least in part on receiving the cell switch command, the UE 120 may switch to the configuration of the LTM candidate target cell (e.g., the UE 120 may detach from the source cell and apply the target cell configuration) . Moreover, as shown by reference number 555, the UE 120 may perform a RACH procedure towards the target cell, such as when a timing advance associated with the target cell is not available (e.g., in examples in which the UE 120 did not perform the early synchronization as described above in connection with reference number 530) .
[0119] During the LTM completion phase, and as shown by reference number 560, the UE 120 may indicate successful completion of the LTM cell switch towards the target cell. In this way, cell switch to a target cell may be performed using less overhead than for an L3 handover procedure and / or a cell switch to a target cell may be associated with reduced latency as compared to L3 handover procedure.
[0120] CSI-RSs may be configured to be transmitted from the network node 110 to the UE 120. The CSI-RSs may be configured to be periodic (e.g., using RRC signaling) , semi-persistent (e.g., using MAC CE signaling) , and / or aperiodic (e.g., using DCI) . The network node 110 may use a transmit beam to transmit (e.g., with repetitions) each CSI-RS. The UE 120 may measure the CSI-RSs and report the measurements to the network node 110 to enable the network node 110 to select beams for communication between the network node 110 and the UE 120.
[0121] As indicated above, Fig. 5 is provided as an example of beam management procedures. Other examples of beam management procedures may differ from what is described with respect to Fig. 5. For example, the UE 120 and the network node 110 may perform the third beam management procedure before performing the second beam management procedure, and / or the UE 120 and the network node 110 may perform a similar beam management procedure to select a UE transmit beam.
[0122] As indicated above, Fig. 5 is provided as an example. Other examples may differ from what is described with respect to Fig. 5.
[0123] Fig. 6 is a diagram illustrating an example 600 of measuring CSI-RSs, in accordance with the present disclosure.
[0124] A UE may measure NZP CSI-RSs of candidate cells within a configured downlink bandwidth 606 that is initially established when the UE is connected. A CSI-RS resource set configuration may include higher layer parameters that indicate a starting RB 602 and a number of RBs 604 for the downlink bandwidth 606. However, this bandwidth may be very large, which increases the complexity and the power consumption of the UE. A larger bandwidth may involve less accurate CSI than would be used for a cell switch.
[0125] As indicated above, Fig. 6 is provided as an example. Other examples may differ from what is described with regard to Fig. 6.
[0126] Figs. 7A, 7B, and 7C are diagrams illustrating examples 700, 710, and 720 of measuring CSI-RSs within a specific bandwidth, in accordance with the present disclosure.
[0127] According to various aspects described herein, a UE may receive BWP information that indicates a specific BWP to measure NZP CSI-RSs. The specific BWP may be a BWP that is specified (e.g., dedicated) for CSI measurement by the UE. Example 700 of Fig. 7A shows a BWP 702 that is smaller than the downlink bandwidth 606 configured by higher layer parameters (e.g., starting RB, number of RBs) for all CSI resource settings in a CSI resource configuration. The UE may measure NZP CSI-RSs (e.g., NZP CSI-RS 708) within the BWP 702 and not outside of the BWP 702. The UE may transmit a measurement report that is specific to NZP CSI-RSs within the BWP 702. By measuring NZP CSI-RSs only within the BWP 702, the UE may conserve power (less frequency range to cover) , processing resources (less complexity) , and signaling resources (less bandwidth used) . The UE may have more accurate CSI information that improves a success rate for a cell switch, which further conserves signaling resources (not wasted with unsuccessful cell switches) .
[0128] In some aspects, the UE may measure NZP CSI-RSs within the BWP 702 based at least in part on default information, which may include RB information (e.g., starting RB 704, number of RBs 706 shown in example 700) , an active DL BWP parameter of the candidate cell, or a virtual BWP associated with a size of a CORESET. Example 710 of Fig. 7B shows an active DL BWP parameter 712 that was indicated for a switch to an active DL BWP 714. Example 720 of Fig. 7C shows a virtual BWP 722 that corresponds to a size of another configured resource. In example 720, the other resource is a frequency range 726 of a CORESET 724 (e.g., CORESET 0) .
[0129] By measuring NZP CSI-RSs only within the BWP 702, the UE may conserve power (less frequency range to cover) , processing resources (less complexity) , and signaling resources (less bandwidth used) . The UE may have more accurate CSI information that improves a success rate for a cell switch, which further conserves signaling resources (not wasted with unsuccessful cell switches) .
[0130] As indicated above, Figs. 7A, 7B, and 7C are provided as an example. Other examples may differ from what is described with regard to Figs. 7A, 7B, and 7C.
[0131] Fig. 8 is a diagram illustrating an example 800 of measuring CSI-RSs within a BWP, in accordance with the present disclosure. Example 800 shows a network entity 810 (e.g., network node 110) that provides a source cell (serving cell 812) and a network entity 815 (e.g., network node 110) that provides a candidate cell 816. A candidate cell may include a cell to which the UE 820 may switch as part of a mobility procedure. As shown by reference number 825, the network entity 810 may transmit an RRC configuration for NZP CSI-RSs with BWP information that indicates a specific BWP in which to measure the NZP CSI-RSs. For example, when a UE 820 (e.g., UE 120) is configured with an NZP CSI-RS resource set 818 (e.g., RRC parameters NZP-CSI-RS-ResourceSet) for a candidate cell in an LTM candidate configuration (e.g., RRC parameters LTM-Candidate-r18) , the UE 820 may also be provided with additional BWP information. The BWP information may include start information of the BWP (e.g., ) and a size of the BWP (e.g., ) . In an example, the UE 820 may determine the measured RBs for the CSI-RSs. If a the UE 820 may expect that the initial common RB (CRB) index of the CSI-RS resource is Otherwise, Ninitial RB=startingRB. If the UE 820 may expect that the bandwidth of the CSI-RS resource is Otherwise In such cases, the UE 820 may expect that
[0132] In some aspects, the UE 820 may include the BWP information in RRC signaling. For example, the network entity 810 may indicate the BWP information in an LTM candidate configuration (e.g., LTM-Candidate-r18) . While LTM-Candidate-r18 is provided as an example, the configuration and parameters used to indicate BWP information are not limited to those of 3GPP Release 18.
[0133] Alternatively, in some aspects, explicit BWP information may not be provided in each case. The UE 820 may apply default information. For example, the UE 820 may measure all the RBs in the configured NZP CSI-RS, based at least in part on nrofRBs and startingRB, within a CSI-FrequencyOccupation information element (IE) configured by the higher layer parameter freqBand within the CSI-RS-ResourceMapping IE. In another example, the UE 820 may measure in a BWP that is associated with an indicated firstActiveDownlinkBWP in the candidate cell. In another example, the UE 820 may measure in a BWP associated with a virtual BWP with the starting RB and a size that is based at least in part on one or more other resources (e.g., the same size as the frequency range of a CORESET 0 in the candidate cell) .
[0134] As shown by reference number 830, the network entity 815 may transmit NZP CSI-RSs. The UE 820 may receive the NZP CSI-RSs in the BWP that is specified for CSI measurement. As shown by reference number 835, the UE 820 may measure NZP CSI-RSs just within the BWP. The measurements may include L1 measurements. As shown by reference number 840, the UE 820 may transmit an L1 measurement that is specific to the BWP.
[0135] As indicated above, Fig. 8 is provided as an example. Other examples may differ from what is described with regard to Fig. 8.
[0136] Fig. 9 is a diagram illustrating an example 900 of signaling involving a BWP for measuring NZP CSI-RSs, in accordance with the present disclosure. Example 900 is comparable to the signaling shown in example 500 in Fig. 5, in order to show the additional BWP information.
[0137] As shown by reference number 925, the UE 820 may transmit a measurement report as part of the LTM preparation phase. As shown by reference number 930, the network entity 810 (providing serving cell 812) may transmit an RRC configuration for NZP CSI-RSs (NZP CSI configuration 932) . The NZP CSI configuration 932 may be transmitted with BWP information 902 that indicates the BWP 904 in which to measure NZP CSI-RSs. The BWP information 902 may include a start of the BWP 904 and a size of the BWP 904. In some aspects, the NZP CSI configuration 932 may include an NZP CSI-RS resource set 818. The NZP CSI configuration 932 may be associated with an LTM configuration for the candidate cell 816. As shown by reference number 935, the UE 820 may transmit an RRC reconfiguration complete message. As shown by reference number 940, the network entity 815 (providing a candidate cell 816) may transmit NZP CSI-RSs.
[0138] As shown by reference number 945, the UE 820 may measure NZP CSI-RSs within the BWP 904. The NZP CSI-RSs may be part of an NZP CSI-RS resource set indicated by the NZP CSI configuration 932. In some aspects, the UE 820 may measure the NZP CSI-RSs within the BWP 904 based at least in part on RB information 944 (e.g., starting RB 704, number of RBs 706) configured by a frequency band parameter. In some aspects, the UE 820 may measure the NZP CSI-RSs within the BWP 904 based at least in part on an active DL BWP parameter 712 of the candidate cell 816. In some aspects, the BWP 904 may correspond to a virtual BWP 722 that starts at a starting RB and that has a same size as a size of another resource, such as the same size as a frequency range of the CORESET 0 in the candidate cell 816.
[0139] The UE 820 may generate an L1 measurement report 906 based at least in part on L1 measurements of the NZP CSI-RSs within the BWP 904. The L1 measurement report 906 may be specific to the BWP 904. As shown by reference number 950, the UE 820 may transmit the L1 measurement report 906. As shown by reference number 955, the network entity 810 may transmit a cell switch command (e.g., in a MAC CE) that is based at least in part on the L1 measurement report. Because the NZP CSI-RSs were measured only in the BWP 904, the cell switch command may be based on more accurate CSI. As a result, the cell switch command may be more successful.
[0140] As indicated above, Fig. 9 is provided as an example. Other examples may differ from what is described with regard to Fig. 9.
[0141] Fig. 10 is a diagram illustrating an example process 1000 performed, for example, at a UE or an apparatus of a UE, in accordance with the present disclosure. Example process 1000 is an example where the apparatus or the UE (e.g., UE 120, UE 820) performs operations associated with measuring NZP CSI-RSs in a BWP.
[0142] As shown in Fig. 10, in some aspects, process 1000 may include receiving an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP (block 1010) . For example, the UE (e.g., using communication manager 140 and / or reception component 1302, depicted in Fig. 13) may receive an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP, as described above.
[0143] As further shown in Fig. 10, in some aspects, process 1000 may include transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP (block 1020) . For example, the UE (e.g., using communication manager 140 and / or transmission component 1304, depicted in Fig. 13) may transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP, as described above.
[0144] Process 1000 may include additional aspects, such as any single aspect or any combination of aspects described below and / or in connection with one or more other processes described elsewhere herein.
[0145] In a first aspect, the NZP CSI configuration includes an NZP CSI-RS resource set for the candidate cell.
[0146] In a second aspect, alone or in combination with the first aspect, the NZP CSI configuration is associated with an LTM configuration for the candidate cell.
[0147] In a third aspect, alone or in combination with one or more of the first and second aspects, the BWP information indicates a start of the BWP and a size of the BWP.
[0148] In a fourth aspect, alone or in combination with one or more of the first through third aspects, process 1000 includes receiving, in an RRC message, BWP information that identifies the BWP.
[0149] In a fifth aspect, alone or in combination with one or more of the first through fourth aspects, process 1000 includes receiving, in an LTM candidate configuration, BWP information that indicates the BWP.
[0150] In a sixth aspect, alone or in combination with one or more of the first through fifth aspects, process 1000 includes measuring RBs in the BWP for a configured NZP CSI-RS based at least in part on RB information configured by a frequency band parameter.
[0151] In a seventh aspect, alone or in combination with one or more of the first through sixth aspects, the BWP is indicated by a first active downlink BWP parameter of the candidate cell.
[0152] In an eighth aspect, alone or in combination with one or more of the first through seventh aspects, the BWP corresponds to a virtual BWP that starts at a starting resource block and that size that is based at least in part on a size of another resource, such as having the same size as a frequency range of a CORESET 0 in the candidate cell.
[0153] Although Fig. 10 shows example blocks of process 1000, in some aspects, process 1000 may include additional blocks, fewer blocks, different blocks, or differently arranged blocks than those depicted in Fig. 10. Additionally, or alternatively, two or more of the blocks of process 1000 may be performed in parallel.
[0154] Fig. 11 is a diagram illustrating an example process 1100 performed, for example, at a UE or an apparatus of a UE, in accordance with the present disclosure. Example process 1100 is an example where the apparatus or the UE (e.g., UE 120) performs operations associated with measuring NZP CSI-RSs in a BWP.
[0155] As shown in Fig. 11, in some aspects, process 1100 may include receiving an NZP CSI-RS from a candidate cell in a BWP that is specified for CSI measurement (block 1110) . For example, the UE (e.g., using communication manager 140 and / or reception component 1302, depicted in Fig. 13) may receive an NZP CSI-RS from a candidate cell in a BWP that is specified for CSI measurement, as described above.
[0156] As further shown in Fig. 11, in some aspects, process 1100 may include transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP (block 1120) . For example, the UE (e.g., using communication manager 140 and / or transmission component 1304, depicted in Fig. 13) may transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP, as described above.
[0157] Process 1100 may include additional aspects, such as any single aspect or any combination of aspects described below and / or in connection with one or more other processes described elsewhere herein.
[0158] In a first aspect, process 1100 includes receiving BWP information that indicates a start of the BWP and a size of the BWP.
[0159] In a second aspect, alone or in combination with the first aspect, process 1100 includes receiving, in an LTM candidate configuration, BWP information that indicates the BWP.
[0160] In a third aspect, alone or in combination with one or more of the first and second aspects, the measuring includes measuring RBs in the BWP for the NZP CSI-RS based at least in part on RB information configured by a frequency band parameter.
[0161] In a fourth aspect, alone or in combination with one or more of the first through third aspects, the BWP is indicated by a first active downlink BWP parameter of the candidate cell.
[0162] In a fifth aspect, alone or in combination with one or more of the first through fourth aspects, the BWP corresponds to a virtual BWP that starts at a starting resource block and that has a size that is based at least in part on a size of another resource, such as the same size as a frequency range of a CORESET 0 in the candidate cell.
[0163] Although Fig. 11 shows example blocks of process 1100, in some aspects, process 1100 may include additional blocks, fewer blocks, different blocks, or differently arranged blocks than those depicted in Fig. 11. Additionally, or alternatively, two or more of the blocks of process 1100 may be performed in parallel.
[0164] Fig. 12 is a diagram illustrating an example process 1200 performed, for example, at a network entity or an apparatus of a network entity, in accordance with the present disclosure. Example process 1200 is an example where the apparatus or the network entity (e.g., network node 110, network entity 810) performs operations associated with NZP CSI-RS measurement in a BWP.
[0165] As shown in Fig. 12, in some aspects, process 1200 may include transmitting an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP (block 1210) . For example, the network entity (e.g., using communication manager 150 and / or transmission component 1604, depicted in Fig. 16) may transmit an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP, as described above.
[0166] As further shown in Fig. 12, in some aspects, process 1200 may include receiving a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP (block 1220) . For example, the network entity (e.g., using communication manager 150 and / or reception component 1602, depicted in Fig. 16) may receive a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP, as described above.
[0167] Process 1200 may include additional aspects, such as any single aspect or any combination of aspects described below and / or in connection with one or more other processes described elsewhere herein.
[0168] In a first aspect, process 1200 includes transmitting BWP information that identifies the BWP.
[0169] In a second aspect, alone or in combination with the first aspect, process 1200 includes transmitting, in an LTM candidate configuration, BWP information that indicates the BWP.
[0170] In a third aspect, alone or in combination with one or more of the first and second aspects, process 1200 includes transmitting an indication of the BWP via a first active downlink BWP parameter of the candidate cell.
[0171] In a fourth aspect, alone or in combination with one or more of the first through third aspects, the BWP corresponds to a virtual BWP that starts at a starting RB and that has a size that is based at least in part on a size of another resource, such as the same size as a frequency range of a CORESET 0 in the candidate cell.
[0172] Although Fig. 12 shows example blocks of process 1200, in some aspects, process 1200 may include additional blocks, fewer blocks, different blocks, or differently arranged blocks than those depicted in Fig. 12. Additionally, or alternatively, two or more of the blocks of process 1200 may be performed in parallel.
[0173] Fig. 13 is a diagram of an example apparatus 1300 for wireless communication, in accordance with the present disclosure. The apparatus 1300 may be a UE, or a UE may include the apparatus 1300. In some aspects, the apparatus 1300 includes a reception component 1302 and a transmission component 1304, which may be in communication with one another (for example, via one or more buses and / or one or more other components) . As shown, the apparatus 1300 may communicate with another apparatus 1306 (such as a UE, a base station, or another wireless communication device) using the reception component 1302 and the transmission component 1304. As further shown, the apparatus 1300 may include the communication manager 140. The communication manager 140 may include a measurement component 1308, among other examples.
[0174] In some aspects, the apparatus 1300 may be configured to perform one or more operations described herein in connection with Figs. 1-9. Additionally, or alternatively, the apparatus 1300 may be configured to perform one or more processes described herein, such as process 1000 of Fig. 10, process 1100 of Fig. 11, or a combination thereof. In some aspects, the apparatus 1300 and / or one or more components shown in Fig. 13 may include one or more components of the UE described in connection with Fig. 2. Additionally, or alternatively, one or more components shown in Fig. 13 may be implemented within one or more components described in connection with Fig. 2. Additionally, or alternatively, one or more components of the set of components may be implemented at least in part as software stored in one or more memories. For example, a component (or a portion of a component) may be implemented as instructions or code stored in a non-transitory computer-readable medium and executable by one or more controllers or one or more processors to perform the functions or operations of the component.
[0175] The reception component 1302 may receive communications, such as reference signals, control information, data communications, or a combination thereof, from the apparatus 1306. The reception component 1302 may provide received communications to one or more other components of the apparatus 1300. In some aspects, the reception component 1302 may perform signal processing on the received communications (such as filtering, amplification, demodulation, analog-to-digital conversion, demultiplexing, deinterleaving, de-mapping, equalization, interference cancellation, or decoding, among other examples) , and may provide the processed signals to the one or more other components of the apparatus 1300. In some aspects, the reception component 1302 may include one or more antennas, one or more modems, one or more demodulators, one or more MIMO detectors, one or more receive processors, one or more controllers / processors, one or more memories, or a combination thereof, of the UE described in connection with Fig. 2.
[0176] The transmission component 1304 may transmit communications, such as reference signals, control information, data communications, or a combination thereof, to the apparatus 1306. In some aspects, one or more other components of the apparatus 1300 may generate communications and may provide the generated communications to the transmission component 1304 for transmission to the apparatus 1306. In some aspects, the transmission component 1304 may perform signal processing on the generated communications (such as filtering, amplification, modulation, digital-to-analog conversion, multiplexing, interleaving, mapping, or encoding, among other examples) , and may transmit the processed signals to the apparatus 1306. In some aspects, the transmission component 1304 may include one or more antennas, one or more modems, one or more modulators, one or more transmit MIMO processors, one or more transmit processors, one or more controllers / processors, one or more memories, or a combination thereof, of the UE described in connection with Fig. 2. In some aspects, the transmission component 1304 may be co-located with the reception component 1302 in one or more transceivers.
[0177] In some aspects, the reception component 1302 may receive an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP. The transmission component 1304 may transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0178] The reception component 1302 may receive, in an RRC message, BWP information identifying the BWP. The reception component 1302 may receive, in an LTM candidate configuration, BWP information that indicates the BWP. The measurement component 1308 may measure RBs in the BWP for a configured NZP CSI-RS based at least in part on RB information configured by a frequency band parameter.
[0179] In some aspects, the reception component 1302 may receive an NZP CSI reference signal from a candidate cell in a BWP that is specified for CSI measurement. The transmission component 1304 may transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0180] The reception component 1302 may receive BWP information indicates a start of the BWP and a size of the BWP. The reception component 1302 may receive, in an LTM candidate configuration, BWP information that indicates the BWP.
[0181] The number and arrangement of components shown in Fig. 13 are provided as an example. In practice, there may be additional components, fewer components, different components, or differently arranged components than those shown in Fig. 13. Furthermore, two or more components shown in Fig. 13 may be implemented within a single component, or a single component shown in Fig. 13 may be implemented as multiple, distributed components. Additionally, or alternatively, a set of (one or more) components shown in Fig. 13 may perform one or more functions described as being performed by another set of components shown in Fig. 13.
[0182] Fig. 14 is a diagram illustrating an example 1400 of a hardware implementation for an apparatus 1405 employing a processing system 1410, in accordance with the present disclosure. The apparatus 1405 may be a UE or may be at (e.g., included in) a UE.
[0183] The processing system 1410 may be implemented with a bus architecture, represented generally by the bus 1415. The bus 1415 may include any number of interconnecting buses and bridges depending on the specific application of the processing system 1410 and the overall design constraints. The bus 1415 links together various circuits including one or more processors and / or hardware components, represented by the processor (or processing circuitry) 1420, the illustrated components, and the computer-readable medium / memory (or memory circuitry) 1425. The processor 1420 may include multiple processors, such as processor 1420a, memory 1420b, and memory 1420c. The memory 1425 may include multiple memories, such as memory 1425a, memory 1425b, and memory 1425c. The bus 1415 may also link various other circuits, such as timing sources, peripherals, voltage regulators, and / or power management circuits.
[0184] The processing system 1410 may be coupled to one or more transceivers 1430. A transceiver 1430 is coupled to one or more antennas 1435. The transceiver 1430 provides a means for communicating with various other apparatuses over a transmission medium. The transceiver 1430 receives a signal from the one or more antennas 1435, extracts information from the received signal, and provides the extracted information to the processing system 1410, specifically the reception component 1302. In addition, the transceiver 1430 receives information from the processing system 1410, specifically the transmission component 1304, and generates a signal to be applied to the one or more antennas 1435 based at least in part on the received information.
[0185] The processing system 1410 includes one or more processors 1420 coupled to a computer-readable medium / memory 1425. A processor 1420 is responsible for general processing, including the execution of software stored on the computer-readable medium / memory 1425. The software, when executed by the processor 1420, causes the processing system 1410 to perform the various functions described herein for any particular apparatus. The computer-readable medium / memory 1425 may also be used for storing data that is manipulated by the processor 1420 when executing software. The processing system further includes at least one of the illustrated components. The components may be software modules running in the processor 1420, resident / stored in the computer readable medium / memory 1425, one or more hardware modules coupled to the processor 1420, or some combination thereof.
[0186] In some aspects, the processing system 1410 may be a component of the UE 120 and may include one or more memories, such as the memory 282, and / or may include one or more processors, such as at least one of the TX MIMO processor 266, the RX processor 258, and / or the controller / processor 280. In some aspects, the apparatus 1405 for wireless communication includes means for receiving an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP; and means for transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0187] In some aspects, the processing system 1410 may be a component of the UE 120 and may include one or more memories, such as the memory 282, and / or may include one or more processors, such as at least one of the TX MIMO processor 266, the RX processor 258, and / or the controller / processor 280. In some aspects, the apparatus 1405 for wireless communication includes means for receiving an NZP CSI-RS from a candidate cell in a BWP that is specified for CSI measurement; and means for transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0188] The aforementioned means may be one or more of the aforementioned components of the apparatus 1300 and / or the processing system 1410 of the apparatus 1405 configured to perform the functions recited by the aforementioned means. As described elsewhere herein, the processing system 1410 may include the TX MIMO processor 266, the RX processor 258, and / or the controller / processor 280. In one configuration, the aforementioned means may be the TX MIMO processor 266, the RX processor 258, and / or the controller / processor 280 configured to perform the functions and / or operations recited herein.
[0189] Fig. 14 is provided as an example. Other examples may differ from what is described in connection with Fig. 14.
[0190] Fig. 15 is a diagram illustrating an example 1500 of an implementation of code and circuitry for an apparatus 1505, in accordance with the present disclosure. The circuity may include processing circuitry and memory circuitry. The apparatus 1505 may be a UE, or a UE may include the apparatus 1505.
[0191] As shown in Fig. 15, the apparatus 1505 may include circuitry for receiving an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP (circuitry 1520) . For example, the circuitry 1520 may enable the apparatus 1505 to receive an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP.
[0192] As shown in Fig. 15, the apparatus 1505 may include, stored in computer-readable medium 1425, code for receiving an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP (code 1525) . For example, the code 1525, when executed by processor 1420, may cause processor 1420 to cause transceiver 1430 to receive an NZP CSI configuration for a candidate cell with information to measure an NZP CSI-RS within a BWP.
[0193] As shown in Fig. 15, the apparatus 1505 may include circuitry for receiving an NZP CSI-RS from a candidate cell in a BWP that is specified for CSI measurement (circuitry 1530) . For example, the circuitry 1530 may enable the apparatus 1505 to receive an NZP CSI-RS from a candidate cell in a BWP that is specified for CSI measurement.
[0194] As shown in Fig. 15, the apparatus 1505 may include, stored in computer-readable medium 1425, code for receiving an NZP CSI-RS from a candidate cell in a BWP that is specified for CSI measurement (code 1535) . For example, the code 1535, when executed by processor 1420, may cause processor 1420 to cause transceiver 1430 to receive an NZP CSI-RS from a candidate cell in a BWP that is specified for CSI measurement.
[0195] As shown in Fig. 15, the apparatus 1505 may include circuitry for transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP (circuitry 1540) . For example, the circuitry 1540 may enable the apparatus 1505 to transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0196] As shown in Fig. 15, the apparatus 1505 may include, stored in computer-readable medium 1425, code for transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP (code 1545) . For example, the code 1545, when executed by processor 1420, may cause processor 1420 to cause transceiver 1430 to transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0197] Fig. 15 is provided as an example. Other examples may differ from what is described in connection with Fig. 15.
[0198] Fig. 16 is a diagram of an example apparatus 1600 for wireless communication, in accordance with the present disclosure. The apparatus 1600 may be a network entity, or a network entity may include the apparatus 1600. In some aspects, the apparatus 1600 includes a reception component 1602 and a transmission component 1604, which may be in communication with one another (for example, via one or more buses and / or one or more other components) . As shown, the apparatus 1600 may communicate with another apparatus 1606 (such as a UE, a base station, or another wireless communication device) using the reception component 1602 and the transmission component 1604. As further shown, the apparatus 1600 may include the communication manager 150. The communication manager 150 may include a measurement component 1608, among other examples.
[0199] In some aspects, the apparatus 1600 may be configured to perform one or more operations described herein in connection with Figs. 1-9. Additionally, or alternatively, the apparatus 1600 may be configured to perform one or more processes described herein, such as process 1200 of Fig. 12. In some aspects, the apparatus 1600 and / or one or more components shown in Fig. 16 may include one or more components of the network entity described in connection with Fig. 2. Additionally, or alternatively, one or more components shown in Fig. 16 may be implemented within one or more components described in connection with Fig. 2. Additionally, or alternatively, one or more components of the set of components may be implemented at least in part as software stored in one or more memories. For example, a component (or a portion of a component) may be implemented as instructions or code stored in a non-transitory computer-readable medium and executable by one or more controllers or one or more processors to perform the functions or operations of the component.
[0200] The reception component 1602 may receive communications, such as reference signals, control information, data communications, or a combination thereof, from the apparatus 1606. The reception component 1602 may provide received communications to one or more other components of the apparatus 1600. In some aspects, the reception component 1602 may perform signal processing on the received communications (such as filtering, amplification, demodulation, analog-to-digital conversion, demultiplexing, deinterleaving, de-mapping, equalization, interference cancellation, or decoding, among other examples) , and may provide the processed signals to the one or more other components of the apparatus 1600. In some aspects, the reception component 1602 may include one or more antennas, one or more modems, one or more demodulators, one or more MIMO detectors, one or more receive processors, one or more controllers / processors, one or more memories, or a combination thereof, of the network entity described in connection with Fig. 2.
[0201] The transmission component 1604 may transmit communications, such as reference signals, control information, data communications, or a combination thereof, to the apparatus 1606. In some aspects, one or more other components of the apparatus 1600 may generate communications and may provide the generated communications to the transmission component 1604 for transmission to the apparatus 1606. In some aspects, the transmission component 1604 may perform signal processing on the generated communications (such as filtering, amplification, modulation, digital-to-analog conversion, multiplexing, interleaving, mapping, or encoding, among other examples) , and may transmit the processed signals to the apparatus 1606. In some aspects, the transmission component 1604 may include one or more antennas, one or more modems, one or more modulators, one or more transmit MIMO processors, one or more transmit processors, one or more controllers / processors, one or more memories, or a combination thereof, of the network entity described in connection with Fig. 2. In some aspects, the transmission component 1604 may be co-located with the reception component 1602 in one or more transceivers.
[0202] The measurement component 1608 may generate BWP information that indicates a BWP within which NZP CSI-RSs are to measured. The transmission component 1604 may transmit an NZP CSI configuration with the BWP information to measure an NZP CSI-RS of a candidate cell within a BWP. The reception component 1602 may receive a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0203] The transmission component 1604 may transmit BWP information that identifies the BWP. The transmission component 1604 may transmit, in an LTM candidate configuration, BWP information that indicates the BWP. The transmission component 1604 may transmit an indication of the BWP via a first active downlink BWP parameter of the candidate cell.
[0204] The number and arrangement of components shown in Fig. 16 are provided as an example. In practice, there may be additional components, fewer components, different components, or differently arranged components than those shown in Fig. 16. Furthermore, two or more components shown in Fig. 16 may be implemented within a single component, or a single component shown in Fig. 16 may be implemented as multiple, distributed components. Additionally, or alternatively, a set of (one or more) components shown in Fig. 16 may perform one or more functions described as being performed by another set of components shown in Fig. 16.
[0205] Fig. 17 is a diagram illustrating an example 1700 of a hardware implementation for an apparatus 1705 employing a processing system 1710, in accordance with the present disclosure. The apparatus 1705 may be a network entity or may be at (e.g., included in) a network entity.
[0206] The processing system 1710 may be implemented with a bus architecture, represented generally by the bus 1715. The bus 1715 may include any number of interconnecting buses and bridges depending on the specific application of the processing system 1710 and the overall design constraints. The bus 1715 links together various circuits including one or more processors and / or hardware components, represented by the processor (or processing circuitry) 1720, the illustrated components, and the computer-readable medium / memory (or memory circuitry) 1725. The processor 1720 may include multiple processors, such as processor 1720a, memory 1720b, and memory 1720c. The memory 1725 may include multiple memories, such as memory 1725a, memory 1725b, and memory 1725c. The bus 1715 may also link various other circuits, such as timing sources, peripherals, voltage regulators, and / or power management circuits.
[0207] The processing system 1710 may be coupled to one or more transceivers 1730. A transceiver 1730 is coupled to one or more antennas 1735. The transceiver 1730 provides a means for communicating with various other apparatuses over a transmission medium. The transceiver 1730 receives a signal from the one or more antennas 1735, extracts information from the received signal, and provides the extracted information to the processing system 1710, specifically the reception component 1602. In addition, the transceiver 1730 receives information from the processing system 1710, specifically the transmission component 1604, and generates a signal to be applied to the one or more antennas 1735 based at least in part on the received information.
[0208] The processing system 1710 includes one or more processors 1720 coupled to a computer-readable medium / memory 1725. A processor 1720 is responsible for general processing, including the execution of software stored on the computer-readable medium / memory 1725. The software, when executed by the processor 1720, causes the processing system 1710 to perform the various functions described herein for any particular apparatus. The computer-readable medium / memory 1725 may also be used for storing data that is manipulated by the processor 1720 when executing software. The processing system further includes at least one of the illustrated components. The components may be software modules running in the processor 1720, resident / stored in the computer readable medium / memory 1725, one or more hardware modules coupled to the processor 1720, or some combination thereof.
[0209] In some aspects, the processing system 1710 may be a component of the network node 110 and may include one or more memories, such as the memory 242, and / or may include one or more processors, such as at least one of the TX MIMO processor 216, the RX processor 238, and / or the controller / processor 240. In some aspects, the apparatus 1705 for wireless communication includes means for transmitting an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP; and receiving a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP. The aforementioned means may be one or more of the aforementioned components of the apparatus 1600 and / or the processing system 1710 of the apparatus 1705 configured to perform the functions recited by the aforementioned means. As described elsewhere herein, the processing system 1710 may include the TX MIMO processor 216, the receive processor 238, and / or the controller / processor 240. In one configuration, the aforementioned means may be the TX MIMO processor 216, the receive processor 238, and / or the controller / processor 240 configured to perform the functions and / or operations recited herein.
[0210] Fig. 17 is provided as an example. Other examples may differ from what is described in connection with Fig. 17.
[0211] Fig. 18 is a diagram illustrating an example 1800 of an implementation of code and circuitry for an apparatus 1805, in accordance with the present disclosure. The circuity may include processing circuitry and memory circuitry. The apparatus 1805 may be a network entity, or a network entity may include the apparatus 1805.
[0212] As shown in Fig. 18, the apparatus 1805 may include circuitry for transmitting an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP (circuitry 1820) . For example, the circuitry 1820 may enable the apparatus 1805 to transmit an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP.
[0213] As shown in Fig. 18, the apparatus 1805 may include, stored in computer-readable medium 1725, code for transmitting an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP (code 1825) . For example, the code 1825, when executed by processor 1720, may cause processor 1720 to cause transceiver 1730 to transmit an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within a BWP.
[0214] As shown in Fig. 18, the apparatus 1805 may include circuitry for receiving a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP (circuitry 1830) . For example, the circuitry 1830 may enable the apparatus 1805 to receive a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0215] As shown in Fig. 18, the apparatus 1805 may include, stored in computer-readable medium 1725, code for receiving a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP (code 1835) . For example, the code 1835, when executed by processor 1720, may cause processor 1720 to cause transceiver 1730 to receive a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0216] Fig. 18 is provided as an example. Other examples may differ from what is described in connection with Fig. 18.
[0217] The following provides an overview of some Aspects of the present disclosure:
[0218] Aspect 1: A method of wireless communication performed at a user equipment (UE) , comprising: receiving a non-zero power (NZP) channel state information (CSI) configuration for a candidate cell with information to measure an NZP CSI reference signal (CSI-RS) within a bandwidth part (BWP) ; and transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0219] Aspect 2: The method of Aspect 1, wherein the NZP CSI configuration includes an NZP CSI reference signal (CSI-RS) resource set for the candidate cell.
[0220] Aspect 3: The method of any of Aspects 1-2, wherein the NZP CSI configuration is associated with a Layer 1 and Layer 2 triggered mobility (LTM) configuration for the candidate cell.
[0221] Aspect 4: The method of any of Aspects 1-3, wherein the BWP information indicates a start of the BWP and a size of the BWP.
[0222] Aspect 5: The method of any of Aspects 1-4, further comprising receiving, in a radio resource control message, BWP information that identifies the BWP.
[0223] Aspect 6: The method of any of Aspects 1-5, further comprising receiving, in a Layer 1 and Layer 2 triggered mobility (LTM) candidate configuration, BWP information that indicates the BWP.
[0224] Aspect 7: The method of any of Aspects 1-6, further comprising measuring resource blocks (RBs) in the BWP for a configured NZP CSI reference signal (CSI-RS) based at least in part on RB information configured by a frequency band parameter.
[0225] Aspect 8: The method of any of Aspects 1-7, wherein the BWP is indicated by a first active downlink BWP parameter of the candidate cell.
[0226] Aspect 9: The method of any of Aspects 1-8, wherein the BWP corresponds to a virtual BWP that starts at a starting resource block and that has a size that is based at least in part on a size of another resource.
[0227] Aspect 10: A method of wireless communication performed at a user equipment (UE) , comprising: receiving a non-zero power (NZP) channel state information (CSI) reference signal from a candidate cell in a bandwidth part (BWP) that is specified for CSI measurement; and transmitting a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0228] Aspect 11: The method of Aspect 10, further comprising receiving BWP information that indicates a start of the BWP and a size of the BWP.
[0229] Aspect 12: The method of any of Aspects 10-11, further comprising receiving, in a Layer 1 and Layer 2 triggered mobility (LTM) candidate configuration, BWP information that indicates the BWP.
[0230] Aspect 13: The method of any of Aspects 10-12, wherein the measuring includes measuring resource blocks (RBs) in the BWP for the NZP CSI reference signal (CSI-RS) based at least in part on RB information configured by a frequency band parameter.
[0231] Aspect 14: The method of any of Aspects 10-13, wherein the BWP is indicated by a first active downlink BWP parameter of the candidate cell.
[0232] Aspect 15: The method of any of Aspects 10-14, wherein the BWP corresponds to a virtual BWP that starts at a starting resource block and that has a size that is based at least in part on a size of another resource.
[0233] Aspect 16: A method of wireless communication performed at a network entity, comprising: transmitting a non-zero power (NZP) channel state information (CSI) configuration with information to measure an NZP CSI reference signal (CSI-RS) of a candidate cell within a bandwidth part (BWP) ; and receiving a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0234] Aspect 17: The method of Aspect 16, further comprising transmitting BWP information that identifies the BWP.
[0235] Aspect 18: The method of any of Aspects 16-17, further comprising transmitting, in a Layer 1 and Layer 2 triggered mobility (LTM) candidate configuration, BWP information that indicates the BWP.
[0236] Aspect 19: The method of any of Aspects 16-18, further comprising transmitting an indication of the BWP via a first active downlink BWP parameter of the candidate cell.
[0237] Aspect 20: The method of any of Aspects 16-19, wherein the BWP corresponds to a virtual BWP that starts at a starting resource block and that has a size that is based at least in part on a size of another resource.
[0238] Aspect 21: An apparatus for wireless communication at a device, the apparatus comprising one or more processors; one or more memories coupled with the one or more processors; and instructions stored in the one or more memories and executable by the one or more processors to cause the apparatus to perform the method of one or more of Aspects 1-20.
[0239] Aspect 22: An apparatus for wireless communication at a device, the apparatus comprising one or more memories and one or more processors coupled to the one or more memories, the one or more processors configured to cause the device to perform the method of one or more of Aspects 1-20.
[0240] Aspect 23: An apparatus for wireless communication, the apparatus comprising at least one means for performing the method of one or more of Aspects 1-20.
[0241] Aspect 24: A non-transitory computer-readable medium storing code for wireless communication, the code comprising instructions executable by one or more processors to perform the method of one or more of Aspects 1-20.
[0242] Aspect 25: A non-transitory computer-readable medium storing a set of instructions for wireless communication, the set of instructions comprising one or more instructions that, when executed by one or more processors of a device, cause the device to perform the method of one or more of Aspects 1-20.
[0243] Aspect 26: A device for wireless communication, the device comprising a processing system that includes one or more processors and one or more memories coupled with the one or more processors, the processing system configured to cause the device to perform the method of one or more of Aspects 1-20.
[0244] Aspect 27: An apparatus for wireless communication at a device, the apparatus comprising one or more memories and one or more processors coupled to the one or more memories, the one or more processors individually or collectively configured to cause the device to perform the method of one or more of Aspects 1-20.
[0245] Aspect 28: An apparatus for wireless communication at a user equipment (UE) , comprising: a processing system that includes processor circuitry and memory circuitry that stores code and is coupled with the processor circuitry, the processing system configured to cause the UE to perform the method of one or more of Aspects 1-15.
[0246] Aspect 29: An apparatus for wireless communication at a network entity, comprising: a processing system that includes processor circuitry and memory circuitry that stores code and is coupled with the processor circuitry, the processing system configured to cause the network entity to perform the method of one or more of Aspects 16-20.
[0247] Aspect 30: An apparatus for wireless communication at a user equipment (UE) , comprising: one or more memories; and one or more processors coupled to the one or more memories, the one or more processors configured to cause the UE to: receive a non-zero power (NZP) channel state information (CSI) configuration for a candidate cell with information to measure an NZP CSI reference signal (CSI-RS) within a bandwidth part (BWP) ; and transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0248] Aspect 31: The apparatus of Aspect 30, wherein the one or more processors are configured, individually or collectively, to cause the UE to: receive an NZP CSI configuration for a candidate cell with information to measure an NZP CSI reference signal within the BWP; and transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0249] Aspect 32: An apparatus for wireless communication at a user equipment (UE) , comprising: one or more memories; and one or more processors coupled to the one or more memories, the one or more processors configured to cause the UE to: receive a non-zero power (NZP) channel state information (CSI) reference signal from a candidate cell in a bandwidth part (BWP) that is specified for CSI measurement; and transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0250] Aspect 33: The apparatus of Aspect 32, wherein the one or more processors are configured, individually or collectively, to cause the UE to: receive an NZP CSI-RS from a candidate cell in the BWP that is specified for CSI measurement; and transmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0251] Aspect 34: An apparatus for wireless communication at a network entity, comprising: one or more memories; and one or more processors coupled to the one or more memories, the one or more processors configured to cause the network entity to: transmit a non-zero power (NZP) channel state information (CSI) configuration with information to measure an NZP CSI reference signal (CSI-RS) of a candidate cell within a bandwidth part (BWP) ; and receive a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0252] Aspect 35: The apparatus of Aspect 34, wherein the one or more processors are configured, individually or collectively, to cause the UE to: transmit an NZP CSI configuration with information to measure an NZP CSI-RS of a candidate cell within the BWP; and receive a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.
[0253] The foregoing disclosure provides illustration and description but is not intended to be exhaustive or to limit the aspects to the precise forms disclosed. Modifications and variations may be made in light of the above disclosure or may be acquired from practice of the aspects.
[0254] As used herein, the term “component” is intended to be broadly construed as hardware or a combination of hardware and at least one of software or firmware. “Software” shall be construed broadly to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executables, threads of execution, procedures, or functions, among other examples, whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise. As used herein, a “processor” is implemented in hardware or a combination of hardware and software. It will be apparent that systems or methods described herein may be implemented in different forms of hardware or a combination of hardware and software. The actual specialized control hardware or software code used to implement these systems or methods is not limiting of the aspects. Thus, the operation and behavior of the systems or methods are described herein without reference to specific software code, because those skilled in the art will understand that software and hardware can be designed to implement the systems or methods based, at least in part, on the description herein. A component being configured to perform a function means that the component has a capability to perform the function, and does not require the function to be actually performed by the component, unless noted otherwise.
[0255] As used herein, “satisfying a threshold” may, depending on the context, refer to a value being greater than the threshold, greater than or equal to the threshold, less than the threshold, less than or equal to the threshold, equal to the threshold, or not equal to the threshold, among other examples.
[0256] As used herein, a phrase referring to “at least one of” a list of items refers to any combination of those items, including single members. As an example, “at least one of: a, b, or c” is intended to cover a, b, c, a + b, a + c, b + c, and a + b + c, as well as any combination with multiples of the same element (for example, a + a, a + a + a, a + a + b, a + a + c, a + b + b, a + c + c, b + b, b + b + b, b + b + c, c + c, and c + c + c, or any other ordering of a, b, and c) .
[0257] No element, act, or instruction used herein should be construed as critical or essential unless explicitly described as such. Also, as used herein, the articles “a” and “an” are intended to include one or more items and may be used interchangeably with “one or more. ” Further, as used herein, the article “the” is intended to include one or more items referenced in connection with the article “the” and may be used interchangeably with “the one or more. ” Furthermore, as used herein, the terms “set” and “group” are intended to include one or more items and may be used interchangeably with “one or more. ” Where only one item is intended, the phrase “only one” or similar language is used. Also, as used herein, the terms “has, ” “have, ” “having, ” and similar terms are intended to be open-ended terms that do not limit an element that they modify (for example, an element “having” A may also have B) . Further, the phrase “based on” is intended to mean “based on or otherwise in association with” unless explicitly stated otherwise. Also, as used herein, the term “or” is intended to be inclusive when used in a series and may be used interchangeably with “and / or, ” unless explicitly stated otherwise (for example, if used in combination with “either” or “only one of” ) . It should be understood that “one or more” is equivalent to “at least one. ”
[0258] Even though particular combinations of features are recited in the claims or disclosed in the specification, these combinations are not intended to limit the disclosure of various aspects. Many of these features may be combined in ways not specifically recited in the claims or disclosed in the specification. The disclosure of various aspects includes each dependent claim in combination with every other claim in the claim set.
Claims
1.An apparatus for wireless communication at a user equipment (UE) , comprising:one or more memories; andone or more processors coupled to the one or more memories and configured to cause the UE to:receive a non-zero power (NZP) channel state information (CSI) configuration for a candidate cell with information to measure an NZP CSI reference signal (CSI-RS) within a bandwidth part (BWP) ; andtransmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.2.The apparatus of claim 1, wherein the NZP CSI configuration includes an NZP CSI-RS resource set for the candidate cell.3.The apparatus of claim 1, wherein the NZP CSI configuration is associated with a Layer 1 and Layer 2 triggered mobility (LTM) configuration for the candidate cell.4.The apparatus of claim 1, wherein the BWP information indicates a start of the BWP and a size of the BWP.5.The apparatus of claim 1, wherein the one or more processors are configured to cause the UE to receive, in a radio resource control message, BWP information that identifies the BWP.6.The apparatus of claim 1, wherein the one or more processors are configured to cause the UE to receive, in a Layer 1 and Layer 2 triggered mobility (LTM) candidate configuration, BWP information that indicates the BWP.7.The apparatus of claim 1, wherein the one or more processors are configured to cause the UE to measure resource blocks (RBs) in the BWP for a configured NZP CSI-RS based at least in part on RB information configured by a frequency band parameter.8.The apparatus of claim 1, wherein the BWP is indicated by a first active downlink BWP parameter of the candidate cell.9.The apparatus of claim 1, wherein the BWP corresponds to a virtual BWP that starts at a starting resource block and that has a same size as another resource.10.An apparatus for wireless communication at a user equipment (UE) , comprising:one or more memories; andone or more processors coupled to the one or more memories and configured to cause the UE to:receive a non-zero power (NZP) channel state information reference signal (CSI-RS) from a candidate cell in a bandwidth part (BWP) that is specified for CSI measurement; andtransmit a CSI report based at least in part on a measurement of the NZP CSI-RS taken within the BWP.11.The apparatus of claim 10, wherein the one or more processors are configured to cause the UE to receive BWP information that indicates a start of the BWP and a size of the BWP.12.The apparatus of claim 10, wherein the one or more processors are configured to cause the UE to receive, in a Layer 1 and Layer 2 triggered mobility (LTM) candidate configuration, BWP information that indicates the BWP.13.The apparatus of claim 10, wherein the one or more processors are configured to cause the UE to measure resource blocks (RBs) in the BWP for the NZP CSI-RS based at least in part on RB information configured by a frequency band parameter.14.The apparatus of claim 10, wherein the BWP is indicated by a first active downlink BWP parameter of the candidate cell.15.The apparatus of claim 10, wherein the BWP corresponds to a virtual BWP that starts at a starting resource block and that has a size that is based at least in part on a size of another resource.16.An apparatus for wireless communication at a network entity, comprising:one or more memories; andone or more processors coupled to the one or more memories and configured to cause the network entity to:transmit a non-zero power (NZP) channel state information (CSI) configuration with information to measure an NZP CSI reference signal (CSI-RS) of a candidate cell within a bandwidth part (BWP) ; andreceive a CSI report based at least in part on a measurement of the NZP-CSI-RS taken within the BWP.17.The apparatus of claim 16, wherein the one or more processors are configured to cause the network entity to transmit BWP information that identifies the BWP.18.The apparatus of claim 16, wherein the one or more processors are configured to cause the network entity to transmit, in a Layer 1 and Layer 2 triggered mobility (LTM) candidate configuration, BWP information that indicates the BWP.19.The apparatus of claim 16, wherein the one or more processors are individually or collectively configured to cause the network entity to transmit an indication of the BWP via a first active downlink BWP parameter of the candidate cell.20.The apparatus of claim 16, wherein the BWP corresponds to a virtual BWP that starts at a starting resource block and that has a size that is based at least in part on a size of another resource.
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