Sounding reference signal resource indicator signaling for space division multiplexed communications

By configuring multiple SRS resource sets with dynamic switching indicators and SRIs in DCI for scheduling PUSCH communications, the solution addresses inefficiencies in SRS resource management, enhancing uplink transmission performance in NR networks.

JP7808192B2Active Publication Date: 2026-01-28QUALCOMM INC
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Patent Information

Application Number
JP2024527642
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-11-17
Publication Date
2026-01-28
Estimated Expiration
2041-11-17

AI Technical Summary

Technical Problem

Existing wireless communication systems face challenges in efficiently managing and optimizing the use of sounding reference signal (SRS) resources for spatial division multiplexing (SDM) communications, particularly in New Radio (NR) networks, which affect the performance of uplink transmissions.

Method used

The implementation of a UE and base station configuration to manage multiple SRS resource sets, with dynamic switching indicators and SRS resource indicators (SRIs) in downlink control information (DCI) for scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications, allowing flexible allocation of SRS resources based on indicators and resource amounts.

Benefits of technology

Enhances the efficiency and flexibility of SRS resource management, improving the performance of uplink transmissions in NR networks by optimizing the use of SRS resources for spatial division multiplexing.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

Various aspects of the present disclosure generally relate to wireless communications. In some aspects, a user equipment (UE) may receive configuration information associated with a first sounding reference signal (SRS) resource set including a first SRS resource amount and a second SRS resource set including a second SRS resource amount. The UE may receive downlink control information (DCI) scheduling spatial division multiplexing communication, the DCI indicating a first one or more SRS resources associated with a first set of layers and a second one or more SRS resources associated with a second set of layers from the first SRS resource set and / or the second SRS resource set based on a dynamic switching indicator, a first SRS resource indicator (SRI), a second SRI, the first SRS resource amount, the second SRS resource amount, and / or a highest rank. Numerous other aspects are described.
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Description

[Technical Field]

[0001]

[0001] Aspects of the present disclosure generally relate to wireless communications and to techniques and apparatus for sounding reference signal (SRS) resource indicator (SRI) signaling for spatial division multiplexing (SDM) communications. [Background technology]

[0002] Wireless communication systems are widely deployed to provide various telecommunication services such as telephony, video, data, messaging, and broadcasts. Typical wireless communication systems may utilize multiple access technologies capable of supporting communication with multiple users by sharing available system resources (e.g., bandwidth, transmit power, etc.). Examples of such multiple access technologies 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, time division synchronous code division multiple access (TD-SCDMA) systems, and Long Term Evolution (LTE). LTE / LTE-Advanced is a set of extensions to the Universal Mobile Telecommunications System (UMTS) mobile standard promulgated by the Third Generation Partnership Project (3GPP).

[0003] A wireless network may include one or more base stations that support communication for a single user equipment (UE) or multiple UEs. A UE may communicate with a base station via downlink and uplink communication. "Downlink" (or "DL") refers to the communication link from the base station to the UE, and "uplink" (or "UL") refers to the communication link from the UE to the base station.

[0004]

[0004] The above multiple access techniques have been adopted in various telecommunications standards to provide a common protocol that allows different UEs to communicate on a city, national, regional, and / or global scale. New Radio (NR), sometimes referred to as 5G, is a set of enhancements to the LTE mobile standard promulgated by 3GPP. NR is designed to better support mobile broadband Internet access by improving spectral efficiency, lowering costs, improving service, utilizing new spectrum, and using orthogonal frequency division multiplexing (OFDM) with a cyclic prefix (CP) (CP-OFDM) on the downlink and CP-OFDM and / or single-carrier frequency division multiplexing (SC-FDM) (also known as discrete Fourier transform spread OFDM, DFT-s-OFDM) on the uplink, as well as better integration with other open standards that support beamforming, multiple-input multiple-output (MIMO) antenna technology, and carrier aggregation. As demand for mobile broadband access continues to grow, further improvements in LTE, NR, and other radio access technologies remain useful. Summary of the Invention

[0005] Certain aspects described herein relate to a user equipment (UE) for wireless communication. The user equipment may include a memory and one or more processors coupled to the memory. The one or more processors may be configured to receive, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount. The one or more processors may be configured to receive, from the base station, downlink control information (DCI) scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, a first SRS resource amount, a second SRS resource amount, or a maximum rank associated with the spatial division multiplexed PUSCH communications.

[0006] Certain aspects described herein relate to a method of wireless communication implemented by a UE. The method may include receiving, from a base station, configuration information associated with a first SRS resource set and a second SRS resource set, the first SRS resource set including a first amount of SRS resources and the second SRS resource set including a second amount of SRS resources. The method may include receiving from a base station a DCI scheduling spatial division multiplexed PUSCH communication associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of a first SRS resource set or a second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication.

[0007] Certain aspects described herein relate to a non-transitory computer-readable medium storing a set of instructions for wireless communication by a UE, which, when executed by one or more processors of the UE, may cause the UE to receive, from a base station, configuration information associated with a first SRS resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount. The set of instructions, when executed by one or more processors of a UE, may cause the UE to receive from a base station a DCI scheduling spatial division multiplexed PUSCH communication associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication.

[0008] Certain aspects described herein relate to an apparatus for wireless communication. The apparatus may include means for receiving, from a base station, configuration information associated with a first SRS resource set and a second SRS resource set, the first SRS resource set including a first amount of SRS resources and the second SRS resource set including a second amount of SRS resources. The apparatus may include means for receiving from a base station a DCI scheduling spatial division multiplexed PUSCH communication associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of a first SRS resource set or a second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication.

[0009] Certain aspects described herein relate to a base station for wireless communication. The base station may include a memory and one or more processors coupled to the memory. The one or more processors may be configured to transmit, to a UE, configuration information associated with a first SRS resource set and a second SRS resource set, where the first SRS resource set includes a first amount of SRS resources and the second SRS resource set includes a second amount of SRS resources. The one or more processors may be configured to transmit, to the UE, a DCI scheduling spatial division multiplexed PUSCH communication associated with the first one or more layers and the second one or more layers, the DCI indicating a first one or more SRS resources associated with the first one or more layers and a second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication.

[0010] Certain aspects described herein relate to a method of wireless communication implemented by a base station. The method may include transmitting, to a UE, configuration information associated with a first SRS resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount. The method may include transmitting, to the UE, a DCI scheduling spatial division multiplexed PUSCH communication associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of a first SRS resource set or a second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication.

[0011] Certain aspects described herein relate to a non-transitory computer-readable medium storing a set of instructions for wireless communication by a base station, which, when executed by one or more processors of the base station, may cause the base station to transmit, to a UE, configuration information associated with a first SRS resource set and a second SRS resource set, where the first SRS resource set includes a first SRS resource amount and the second SRS resource set includes a second SRS resource amount. The set of instructions, when executed by one or more processors of the base station, may cause the base station to transmit to a UE a DCI scheduling spatial division multiplexed PUSCH communication associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication.

[0012] Certain aspects described herein relate to an apparatus for wireless communication. The apparatus may include means for transmitting, to a UE, configuration information associated with a first SRS resource set and a second SRS resource set, the first SRS resource set including a first amount of SRS resources and the second SRS resource set including a second amount of SRS resources. The apparatus may include means for transmitting, to the UE, a DCI scheduling spatial division multiplexed PUSCH communication associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of a first SRS resource set or a second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication.

[0013]

[0013] Aspects generally include methods, apparatus, systems, computer program products, non-transitory computer-readable media, user equipment, base stations, wireless communication devices, and / or processing systems substantially as described herein with reference to and as illustrated by the drawings and this specification.

[0014]

[0014] The foregoing has outlined rather broadly the features and technical advantages of embodiments of the present disclosure in order that the following Detailed Description may be better understood. Additional features and advantages are described below. The conception and specific examples disclosed may be readily utilized as a basis for modifying or designing other structures for carrying out the same purposes of the present disclosure. Such equivalent structures do not depart from the scope of the appended claims. The nature of the concepts disclosed herein, both their organization and method of operation, together with associated advantages, will be better understood from the following description when considered in conjunction with the accompanying figures. Each of the figures is provided for purposes of illustration and description, and not as a definition of the limits of the claims.

[0015] Although aspects are described in this disclosure by illustrating some examples, those skilled in the art will understand that such aspects can be implemented in many different configurations and scenarios. The techniques described herein may be implemented using different platform types, devices, systems, shapes, sizes, and / or packaging configurations. For example, some aspects may be implemented via integrated chip embodiments or other non-modular component-based devices (e.g., end-user devices, vehicles, communications devices, computing devices, industrial equipment, retail / purchasing devices, medical devices, and / or artificial intelligence-enabled devices). Aspects may be implemented in chip-level components, modular components, non-modular components, non-chip-level components, device-level components, and / or system-level components. Devices incorporating the described aspects and features may include additional components and features for implementing and practicing the claimed and described aspects. For example, the transmission and reception of wireless signals may involve one or more components for analog and digital applications (e.g., hardware components including antennas, radio frequency (RF) chains, power amplifiers, modulators, buffers, processors, interleavers, adders, and / or summers). It is contemplated that aspects described herein may be practiced in a wide variety of devices, components, systems, distributed configurations, and / or end-user devices of various sizes, shapes, and configurations. [Brief explanation of the drawings]

[0016]

[0016] In order to be able to understand in detail the above-listed features of the present disclosure, a more detailed description briefly summarized above may be obtained by referring to embodiments, some of which are shown in the accompanying drawings. However, since the present description may admit of other equally effective embodiments, it should be noted that the accompanying drawings show only some typical embodiments of the present disclosure and therefore should not be considered as limiting its scope. The same reference numbers in different drawings may identify the same or similar elements. [Figure 1]

[0017] FIG. 1 illustrates an example of a wireless network according to the present disclosure. [Figure 2]

[0018] FIG. 1 illustrates an example of a base station in communication with a user equipment (UE) in a wireless network, according to the present disclosure. [Figure 3]

[0019] FIG. 1 illustrates an example logical architecture of a distributed radio access network (RAN), according to aspects of the present disclosure. [Figure 4]

[0020] FIG. 1 illustrates an example of multiple transmission reception point (TRP) communication in accordance with the present disclosure. [Figure 5]

[0021] FIG. 1 illustrates an example of a sounding reference signal (SRS) resource set, according to the present disclosure. [Figure 6]

[0022] FIG. 1 illustrates an example of dynamic switching between single-TRP (sTRP) and multiple-TRP (mTRP) communication in accordance with the present disclosure. [Figure 7]

[0023] FIG. 1 illustrates an example associated with SRS resource indicator (SRI) signaling for spatial division multiplexing (SDM) communications, in accordance with the present disclosure. [Figure 8]FIG. 1 illustrates an example associated with SRS resource indicator (SRI) signaling for spatial division multiplexing (SDM) communications, in accordance with the present disclosure. [Figure 9]

[0024] FIG. 1 illustrates an example process associated with SRI signaling for SDM communications in accordance with the present disclosure. [Figure 10] FIG. 1 illustrates an example process associated with SRI signaling for SDM communications in accordance with the present disclosure. [Figure 11]

[0025] FIG. 1 is a diagram of an exemplary apparatus for wireless communication in accordance with the present disclosure. [Figure 12] FIG. 1 is a diagram of an exemplary apparatus for wireless communication in accordance with the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0017]

[0026] Various aspects of the present disclosure are described more fully below with reference to the accompanying drawings. However, the present disclosure may be embodied in many different forms and should not be construed as limited to any specific structure or function presented throughout 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. Those skilled in the art will understand that the scope of the present disclosure is intended to encompass any aspect of the present disclosure disclosed herein, whether implemented independently or in combination with any other aspect of the present disclosure. For example, an apparatus may be implemented or a method may be practiced using any number of the aspects described herein. In addition, the scope of the present disclosure is intended to encompass such apparatuses or methods practiced using other structure, functionality, or structure and functionality in addition to or other than the various aspects of the present disclosure described herein. It should be understood that any aspect of the present disclosure disclosed herein may be embodied by one or more elements of a claim.

[0018]

[0027] Several aspects of telecommunications systems will now be presented with reference to various devices and techniques. These devices and techniques are described in the detailed description that follows and illustrated in the accompanying drawings by various blocks, modules, components, circuits, steps, processes, algorithms, etc. (collectively referred to as "elements"). These elements may be implemented using hardware, software, or a combination thereof. Whether such elements are implemented as hardware or software depends on the particular application and design constraints imposed on the overall system.

[0019]

[0028] Although aspects may be described herein using terminology commonly associated with 5G or New Radio (NR) radio access technology (RAT), aspects of the present disclosure may be applicable to other RATs, such as 3G RATs, 4G RATs, and / or post-5G (e.g., 6G) RATs.

[0020]

[0029] 1 is a diagram illustrating an example of a wireless network 100 according to the present disclosure. Wireless network 100 may be or include elements of a 5G (e.g., NR) network and / or a 4G (e.g., Long Term Evolution (LTE)) network, among other examples. Wireless network 100 may include one or more base stations 110 (shown as BS 110a, BS 110b, BS 110c, and BS 110d), user equipment (UE) 120 or multiple UEs 120 (shown as UE 120a, UE 120b, UE 120c, UE 120d, and UE 120e), and / or other network entities. Base station 110 is an entity that communicates with UE 120. Base station 110 (sometimes referred to as a BS) may include, for example, an NR base station, an LTE base station, a Node B, an eNB (e.g., in 4G), a gNB (e.g., in 5G), an access point, and / or a transmit / receive point (TRP). Each base station 110 can provide communication coverage for a particular geographic area. In the Third Generation Partnership Project (3GPP), the term "cell" can refer to the coverage area of ​​a base station 110 and / or a base station subsystem serving that coverage area, depending on the context in which the term is used.

[0021]

[0030] A base station 110 may provide communication coverage for a macro cell, a pico cell, a femto cell, and / or another type of cell. A macro cell may cover a relatively large geographic area (e.g., a few 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 (e.g., a home) and may allow restricted access by UEs 120 that have an association with the femto cell (e.g., UEs 120 in a closed subscriber group (CSG)). A base station 110 for a macro cell may be referred to as a macro base station. A base station 110 for a pico cell may be referred to as a pico base station. A base station 110 for a femto cell may be referred to as a femto base station or a home base station. 1, BS 110a may be a macro base station for macro cell 102a, BS 110b may be a pico base station for pico cell 102b, and BS 110c may be a femto base station for femto cell 102c. A base station may support one or multiple (e.g., three) cells.

[0022]

[0031] In some embodiments, the cells may not necessarily be fixed, and the geographic area of ​​the cells may move according to the location of the base stations 110 that are mobile (e.g., mobile base stations). In some embodiments, the base stations 110 may be interconnected to each other and / or to one or more other base stations 110 or network nodes (not shown) within the wireless network 100 through various types of backhaul interfaces, such as direct physical connections or virtual networks, using any suitable transport network.

[0023]

[0032] Wireless network 100 may include one or more relay stations. A relay station is an entity that can receive a data transmission from an upstream station (e.g., base station 110 or UE 120) and transmit the data transmission to a downstream station (e.g., UE 120 or base station 110). A relay station may be a UE 120 that can relay transmissions for other UEs 120. In the example shown in FIG. 1, BS 110d (e.g., a relay base station) can communicate with BS 110a (e.g., a macro base station) and UE 120d to facilitate communication between BS 110a and UE 120d. A base station 110 that relays communications may be referred to as a relay station, relay base station, repeater, etc.

[0024]

[0033] Wireless network 100 may be a heterogeneous network including different types of base stations 110, such as macro base stations, pico base stations, femto base stations, relay base stations, etc. These different types of base stations 110 may have different transmit power levels, different coverage areas, and / or different susceptibility to interference within wireless network 100. For example, macro base stations may have high transmit power levels (e.g., 5-40 watts), while pico base stations, femto base stations, and relay base stations may have lower transmit power levels (e.g., 0.1-2 watts).

[0025]

[0034] A network controller 130 may be coupled to or in communication with a set of base stations 110 and may provide coordination and control for these base stations 110. Network controller 130 may communicate with the base stations 110 via backhaul communication links. The base stations 110 may communicate with each other directly or indirectly via wireless or wired backhaul communication links.

[0026]

[0035] The UEs 120 may be dispersed throughout the wireless network 100, and each UE 120 may be fixed or mobile. The UEs 120 may include, for example, access terminals, terminals, mobile stations, and / or subscriber units. The UEs 120 may be mobile phones (e.g., smartphones), personal digital assistants (PDAs), wireless modems, wireless communication devices, handheld devices, laptop computers, cordless phones, wireless local loop (WLL) stations, tablets, cameras, gaming devices, netbooks, smartbooks, ultrabooks, medical devices, biometric authentication devices, wearable devices (e.g., smart watches, smart clothing, smart glasses, smart wristbands, smart jewelry (e.g., smart rings or smart bracelets)), entertainment devices (e.g., music devices, video devices, and / or satellite radios), vehicle components or sensors, smart meters / sensors, industrial manufacturing equipment, global positioning system devices, and / or any other suitable devices configured to communicate over a wireless medium.

[0027]

[0036] Some UEs 120 may be considered machine-type communication (MTC) UEs or evolved or enhanced machine-type communication (eMTC) UEs. MTC UEs and / or eMTC UEs may include, for example, a robot, a drone, a remote device, a sensor, a meter, a monitor, and / or a location tag that may communicate with a base station, another device (e.g., a remote device), or some other entity. Some UEs 120 may be considered Internet-of-Things (IoT) devices and / or may be implemented as NB-IoT (narrowband IoT) devices. Some UEs 120 may be considered customer premises equipment. The UE 120 may be included within a housing that houses components of the UE 120, such as a processor component and / or a memory component. In some embodiments, the processor component and the memory component may be coupled to each other. For example, a processor component (e.g., one or more processors) and a memory component (e.g., memory) may be operatively coupled, communicatively coupled, electronically coupled, and / or electrically coupled.

[0028]

[0037] Generally, any number of wireless networks 100 may be deployed in a given geographic area. Each wireless network 100 may support a particular RAT and may operate on one or more frequencies. A RAT may be referred to as a radio technology, air interface, etc. A frequency may be referred to as a carrier, frequency channel, etc. To avoid interference between wireless networks of different RATs, each frequency may support a single RAT in a given geographic area. In some cases, an NR network or a 5G RAT network may be deployed.

[0029]

[0038] In some embodiments, two or more UEs 120 (e.g., shown as UE 120a and UE 120e) can communicate directly (e.g., without using a base station 110 as an intermediary to communicate with each other) using one or more sidelink channels. For example, the UEs 120 may communicate using peer-to-peer (P2P) communication, device-to-device (D2D) communication, vehicle-to-everything (V2X) protocols (which may include, e.g., vehicle-to-vehicle (V2V) protocols, vehicle-to-infrastructure (V2I) protocols, or vehicle-to-pedestrian (V2P) protocols), and / or mesh networks. In such embodiments, the UEs 120 can perform scheduling operations, resource selection operations, and / or other operations described elsewhere herein as being performed by the base station 110.

[0030]

[0039] Devices of wireless network 100 may communicate using an electromagnetic spectrum, which can be subdivided by frequency or wavelength into various classes, bands, channels, etc. For example, devices of wireless network 100 may communicate using one or more operating bands. In 5G NR, two initial operating bands have been identified, designated frequency ranges FR1 (410 MHz to 7.125 GHz) and FR2 (24.25 GHz to 52.6 GHz). It should be understood that FR1 is often referred to (interchangeably) as the “sub-6 GHz” band in various documents and papers, although portions of FR1 are above 6 GHz. Similar nomenclature issues may arise with respect to FR2, which is often referred to (interchangeably) as the “millimeter wave” band in documents and papers, even though it is different from the extremely high frequency (EHF) band (30 GHz to 300 GHz) identified as the “millimeter wave” band by the International Telecommunications Union (ITU).

[0031]

[0040] Frequencies between FR1 and FR2 are often referred to as mid-band frequencies. Recent 5G NR studies have identified operating bands for these mid-band frequencies as a frequency range designated FR3 (7.125 GHz to 24.25 GHz). Frequency bands falling within FR3 may inherit FR1 and / or FR2 characteristics and thus, in effect, extend the features of FR1 and / or FR2 to the mid-band frequencies. Additionally, higher frequency bands are currently being explored to extend 5G NR operation beyond 52.6 GHz. For example, three higher operating bands have been identified as frequency ranges designated FR4a or FR4-1 (52.6 GHz to 71 GHz), FR4 (52.6 GHz to 114.25 GHz), and FR5 (114.25 GHz to 300 GHz). Each of these higher frequency bands falls within the EHF band.

[0032]

[0041] With the above examples in mind, it should be understood that, unless otherwise specified, terms such as "sub-6 GHz," as used herein, may broadly refer to frequencies that may be below 6 GHz, may be within FR1, or may include mid-band frequencies. Furthermore, unless otherwise specified, it should be understood that terms such as "millimeter wave," as used herein, may broadly refer to frequencies that may be within FR2, FR4, FR4-a, or FR4-1, and / or FR5, which may include mid-band frequencies, or may be within the EHF band. Frequencies included within these operating bands (e.g., FR1, FR2, FR3, FR4, FR4-a, FR4-1, and / or FR5) may be modified, and it is contemplated that the techniques described herein are applicable to those modified frequency ranges.

[0033]

[0042] In some aspects, UE 120 may include a communications manager 140. As described in more detail elsewhere herein, communications manager 140 receives configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set from a base station, where the first SRS resource set includes a first amount of SRS resources and the second SRS resource set includes a second amount of SRS resources, and transmits spatial division multiplexing physical uplink shared channel (PUSCH) communications associated with the first one or more layers and the second one or more layers. The communications manager 140 may receive from the base station downlink control information (DCI) scheduling a spatial division multiplexed PUSCH communication, the DCI indicating a first one or more SRS resources associated with a first one or more layers and a second one or more SRS resources associated with a second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, a first SRS resource amount, a second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communication. Additionally or alternatively, the communications manager 140 may perform one or more other operations described herein.

[0034]

[0043] In some aspects, base station 110 may include communications manager 150. As described in more detail elsewhere herein, communications manager 150 transmits to UE configuration information associated with a first SRS resource set and a second SRS resource set, where the first SRS resource set includes a first amount of SRS resources and the second SRS resource set includes a second amount of SRS resources, and transmits DCI for scheduling spatial division multiplexed PUSCH communications associated with the first one or more layers and the second one or more layers, where the DCI includes a dynamic switching indicator. The DCI may be transmitted to the UE indicating a first one or more SRS resources associated with the first one or more layers and a second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of the SRS resource set indicator, the first SRI included in the DCI, the second SRI included in the DCI, the first amount of SRS resources, the second amount of SRS resources, or the highest rank associated with the spatial division multiplexed PUSCH communication. Additionally or alternatively, communications manager 150 may perform one or more other operations described herein.

[0035]

[0044] As noted above, Figure 1 is provided as an example. Other implementations may differ from those described with respect to Figure 1.

[0036]

[0045] 2 is a diagram illustrating an example base station 110 200 communicating with a UE 120 in a wireless network 100 in accordance with the present disclosure. The base station 110 may be equipped with a set of antennas 234a through 234t, such as T antennas (T≧1). The UE 120 may be equipped with a set of antennas 252a through 252r, such as R antennas (R≧1).

[0037]

[0046] At base station 110, transmit processor 220 may receive data intended for UE 120 (or set of UEs 120) from data source 212. Transmit processor 220 may select one or more modulation and coding schemes (MCSs) for UE 120 based at least in part on one or more channel quality indicators (CQIs) received from the UE 120. Base station 110 may process (e.g., encode and modulate) data for UE 120 based at least in part on the MCS(es) selected for UE 120 and provide data symbols for UE 120. Transmit processor 220 may process system information (e.g., related to semi-static resource partitioning information (SRPI)) and control information (e.g., CQI requests, grants, and / or higher layer signaling) and provide overhead symbols and control symbols. The transmit processor 220 may generate reference symbols for a reference signal (e.g., a cell-specific reference signal (CRS) or a demodulation reference signal (DMRS)) and a synchronization signal (e.g., a primary synchronization signal (PSS) or a secondary synchronization signal (SSS)). The transmit (TX) multiple-input multiple-output (MIMO) processor 230 may perform spatial processing (e.g., precoding) on ​​the data symbols, control symbols, overhead symbols, and / or reference symbols, if applicable, and may provide a set of output symbol streams (e.g., T output symbol streams) to a corresponding set of modems 232 (e.g., T modems), denoted as modems 232a through 232t.For example, each output symbol stream may be provided to a modulator component (denoted as MOD) of modem 232. Each modem 232 may use a respective modulator component to process the respective output symbol stream (e.g., for OFDM) to obtain an output sample stream. Each modem 232 may further use a respective modulator component to process (e.g., convert to analog, amplify, filter, and / or upconvert) the output sample stream to obtain a downlink signal. Modems 232a through 232t may transmit a set of downlink signals (e.g., T downlink signals) via a corresponding set of antennas 234 (e.g., T antennas), denoted as antennas 234a through 234t.

[0038]

[0047] At UE 120, a set of antennas 252 (depicted as antennas 252a through 252r) may receive downlink signals from base station 110 and / or other base stations 110 and may provide a set of received signals (e.g., R received signals) to a set of modems 254 (e.g., R modems), depicted as modems 254a through 254r. For example, each received signal may be provided to a demodulator component (depicted as DEMOD) of modem 254. Each modem 254 may use its respective demodulator component to condition (e.g., filter, amplify, downconvert, and / or digitize) the received signal to obtain input samples. Each modem 254 may use its demodulator component to further process the input samples (e.g., for OFDM) to obtain received symbols. A MIMO detector 256 may obtain received symbols from modems 254, perform MIMO detection on the received symbols, if applicable, and provide detected symbols. The receive processor 258 may process (e.g., demodulate and decode) the detected symbols, provide decoded data for the UE 120 to a data sink 260, and provide decoded control and system information to a controller / processor 280. The term “controller / processor” may refer to one or more controllers, one or more processors, or a combination thereof. The channel processor may determine a reference signal received power (RSRP) parameter, a received signal strength indicator (RSSI) parameter, a reference signal received quality (RSRQ) parameter, and / or a CQI parameter, among other examples. In some embodiments, one or more components of the UE 120 may be included within a housing 284.

[0039]

[0048] The network controller 130 may include a communication unit 294, a controller / processor 290, and a memory 292. The network controller 130 may include, for example, one or more devices in a core network. The network controller 130 can communicate with the base stations 110 via the communication unit 294.

[0040]

[0049] One or more antennas (e.g., antennas 234a-t and / or antennas 252a-r) may include or be contained within one or more antenna panels, one or more antenna groups, one or more sets of antenna elements, and / or one or more antenna arrays, among other examples. The antenna panels, antenna groups, sets of antenna elements, and / or antenna arrays may include one or more antenna elements (in a single housing or multiple housings), a set of coplanar antenna elements, a set of non-coplanar antenna elements, and / or one or more antenna elements coupled to one or more transmitting and / or receiving components, such as one or more components of FIG. 2.

[0041]

[0050] The antenna elements and / or sub-elements may be used to generate a beam. A "beam" may refer to a directional transmission, such as a wireless signal, transmitted in the direction of a receiving device. A beam may include a directional signal, a direction associated with the signal, a set of directional resources associated with the signal (e.g., angle of arrival, horizontal direction, vertical direction), and / or a set of parameters indicative of one or more aspects of the directional signal, the direction associated with the signal, and / or the set of directional resources associated with the signal.

[0042]

[0051] As indicated above, antenna elements and / or sub-elements may be used to generate beams. For example, antenna elements may be individually selected or deselected for transmission of a signal (or multiple signals) by controlling the amplitude of one or more corresponding amplifiers. Beamforming involves generating a beam using multiple signals on different antenna elements, where one or more or all of the multiple signals are phase-shifted relative to each other. The formed beam may carry a physical layer or higher-layer reference signal or information. As each signal of the multiple signals radiates from its respective antenna element, the radiated signals interact with each other, interfere (constructively or destructively), and amplify each other to form a resulting beam. The shape (such as amplitude, width, and / or the presence of sidelobes) and direction (such as the angle of the beam relative to the surface of the antenna array) may be dynamically controlled by modifying the phase shift or phase offset of the multiple signals relative to each other.

[0043]

[0052] Beamforming may be used for communications between a UE and a base station, such as for millimeter wave communications. In such cases, the base station may provide the UE with a configuration of transmission configuration indicator (TCI) states, each indicating a beam that may be used by the UE, such as for receiving a physical downlink shared channel (PDSCH). The base station may indicate the activated TCI states to the UE, which the UE may use to select a beam for receiving the PDSCH.

[0044]

[0053] On the uplink, at the UE 120, the transmit processor 264 may receive and process data from the data source 262 and control information from the controller / processor 280 (e.g., for reports including RSRP, RSSI, RSRQ, and / or CQI). The transmit processor 264 may generate reference symbols for one or more reference signals. The symbols from the transmit processor 264 may be precoded by the TX MIMO processor 266, if applicable, further processed by the modem 254 (e.g., for DFT-s-OFDM or CP-OFDM), and transmitted to the base station 110. In some embodiments, the modem 254 of the UE 120 may include a modulator and a demodulator. In some embodiments, the UE 120 includes a transceiver. The transceiver may include any combination of the antenna(s) 252, the modem(s) 254, the MIMO detector 256, the receive processor 258, the transmit processor 264, and / or the TX MIMO processor 266. The transceiver may be used by a processor (e.g., controller / processor 280) and memory 282 to implement aspects of any of the methods described herein (e.g., with reference to Figures 7-12).

[0045]

[0054] At the base station 110, uplink signals from the UE 120 and / or other UEs may be received by an antenna 234, processed by a modem 232 (e.g., a demodulator component of the modem 232, denoted as DEMOD), detected by a MIMO detector 236, if applicable, and further processed by a receive processor 238 to obtain decoded data and control information transmitted by the UE 120. The receive processor 238 may provide the decoded data to a data sink 239 and the decoded control information to a controller / processor 240. The base station 110 may include a communication unit 244 and may communicate with the network controller 130 via the communication unit 244. The base station 110 may include a scheduler 246 for scheduling one or more UEs 120 for downlink and / or uplink communications. In some embodiments, the modem 232 of the base station 110 may include a modulator and a demodulator. In some embodiments, the base station 110 includes a transceiver. The transceiver may include any combination of antenna(s) 234, modem(s) 232, MIMO detector 236, receive processor 238, transmit processor 220, and / or TX MIMO processor 230. The transceiver may be used by a processor (e.g., controller / processor 240) and memory 242 to implement aspects of any of the methods described herein (e.g., with reference to FIGS. 7-12).

[0046]

[0055] The controller / processor 240 of the base station 110, the controller / processor 280 of the UE 120, and / or any other component(s) of FIG. 2 may implement one or more techniques associated with SRI signaling for spatial division multiplexing (SDM) communication, as described in more detail elsewhere herein. For example, the controller / processor 240 of the base station 110, the controller / processor 280 of the UE 120, and / or any other component(s) of FIG. 2 may perform or direct the operation of, for example, process 900 of FIG. 9, process 1000 of FIG. 10, and / or other processes as described herein. The memory 242 and the memory 282 may store data and program codes related to the base station 110 and the UE 120, respectively. In some embodiments, the memory 242 and / or the memory 282 may include a non-transitory computer-readable medium that stores one or more instructions (e.g., code and / or program code) for wireless communication. For example, the one or more instructions, when executed by one or more processors of base station 110 and / or UE 120 (e.g., directly or after being compiled, translated, and / or interpreted), may cause the one or more processors, UE 120, and / or base station 110 to perform or direct operations of, e.g., process 900 of FIG. 9, process 1000 of FIG. 10, and / or other processes as described herein. In some embodiments, executing the instructions may include executing the instructions, translating the instructions, compiling the instructions, and / or interpreting the instructions, among other examples.

[0047]

[0056] In some aspects, UE 120 may include means for receiving from a base station (e.g., using antennas 252, DEMOD 254, MIMO detector 256, receive processor 258, controller / processor 280, and / or memory 282) configuration information associated with a first SRS resource set and a second SRS resource set, where the first SRS resource set includes a first amount of SRS resources and the second SRS resource set includes a second amount of SRS resources; and / or (e.g., using antennas 252, DEMOD 254, MIMO detector 256, receive processor 258, controller / processor 280, and / or memory 282). 254, MIMO detector 256, receive processor 258, controller / processor 280, and / or memory 282) from the base station. The DCI for scheduling spatial division multiplexed PUSCH communication associated with the first one or more layers and the second one or more layers indicates a first one or more SRS resources associated with the first one or more layers and a second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first SRS resource amount, a second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communication. The means by which the UE 120 performs the operations described herein may include, for example, one or more of the communications manager 140, the antenna 252, the modem 254, the MIMO detector 256, the receive processor 258, the transmit processor 264, the TX MIMO processor 266, the controller / processor 280, or the memory 282.

[0048]

[0057] In some aspects, the base station may include (e.g., using controller / processor 240, transmit processor 220, TX MIMO processor 230, MOD 232, antennas 234, and / or memory 242) means for transmitting, to the UE, configuration information associated with a first SRS resource set and a second SRS resource set, where the first SRS resource set includes a first amount of SRS resources and the second SRS resource set includes a second amount of SRS resources; and / or (e.g., using controller / processor 240, transmit processor 220, TX MIMO processor 230, MOD 232, antennas 234, and / or memory 242) means for transmitting, to the UE, configuration information associated with the first SRS resource set and the second SRS resource set, where the first SRS resource set includes a first amount of SRS resources and the second SRS resource set includes a second amount of SRS resources. 232, antennas 234, and / or memory 242) to the UE, the DCI scheduling spatial division multiplexed PUSCH communication associated with the first one or more layers and the second one or more layers, the DCI indicating the first one or more SRS resources associated with the first one or more layers and the second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication. The means by which the base station performs the operations described herein may include, for example, one or more of the communications manager 150, the transmit processor 220, the TX MIMO processor 230, the modem 232, the antenna 234, the MIMO detector 236, the receive processor 238, the controller / processor 240, the memory 242, or the scheduler 246.

[0049]

[0058] 2 are shown as separate components, the functionality described above with respect to the blocks may be implemented in a single hardware, software, or combined component, or in various combinations of components. For example, the functionality described with respect to transmit processor 264, receive processor 258, and / or TX MIMO processor 266 may be performed by or under the control of controller / processor 280.

[0050]

[0059] As noted above, Figure 2 is provided as an example. Other implementations may differ from those described with respect to Figure 2.

[0051]

[0060] FIG. 3 illustrates an example logical architecture of a distributed radio access network (RAN) 300 in accordance with the present disclosure.

[0052]

[0061] The 5G access node 305 may include an access node controller 310. The access node controller 310 may be a central unit (CU) of the distributed RAN 300. In some examples, a backhaul interface to a 5G core network 315 may terminate at the access node controller 310. The 5G core network 315 may include a 5G control plane component 320 and a 5G user plane component 325 (e.g., a 5G gateway), and a backhaul interface for one or both of the 5G control plane and the 5G user plane may terminate at the access node controller 310. Additionally or alternatively, a backhaul interface to one or more neighboring access nodes 330 (e.g., another 5G access node 305 and / or an LTE access node) may terminate at the access node controller 310.

[0053]

[0062] The access node controller 310 may include one or more TRPs 335 and / or communicate with them (e.g., via an F1 Control (F1-C) interface and / or an F1 User (F1-U) interface). The TRPs 335 may be distributed units (DUs) of the distributed RAN 300. In some examples, the TRPs 335 may correspond to the base stations 110 described above with respect to FIG. 1. For example, different TRPs 335 may be included in different base stations 110. Additionally or alternatively, multiple TRPs 335 may be included in a single base station 110. In some aspects, the base station 110 may include a CU (e.g., the access node controller 310) and / or one or more DUs (e.g., one or more TRPs 335). In some cases, the TRPs 335 may be referred to as cells, panels, antenna arrays, arrays, etc.

[0054]

[0063] The TRP 335 may be connected to a single access node controller 310 or to multiple access node controllers 310. In some embodiments, dynamic configuration of separated logical functions may exist within the architecture of the distributed RAN 300. For example, the packet data convergence protocol (PDCP) layer, the radio link control (RLC) layer, and / or the medium access control (MAC) layer may be configured to terminate at the access node controller 310 or at the TRP 335.

[0055]

[0064] In some embodiments, multiple TRPs 335 may transmit communications (e.g., the same or different communications) in the same transmission time interval (TTI) (e.g., slot, minislot, subframe, symbol) or different TTIs using different quasi co-location (QCL) relationships (e.g., different spatial parameters, different TCI states, different precoding parameters, and / or different beamforming parameters). In some embodiments, the TCI state may be used to indicate one or more QCL relationships. The TRPs 335 may be configured to serve traffic to the UE 120 individually (e.g., using dynamic selection) or jointly (e.g., using joint transmission with one or more other TRPs 335).

[0056]

[0065] As noted above, Figure 3 is provided as an example. Other implementations may differ from those described with respect to Figure 3.

[0057]

[0066] 4 illustrates an example of multi-TRP communication 400 according to the present disclosure. Multi-TRP communication may be referred to as multi-panel communication. As shown in FIG. 4, multiple TRPs 405 may communicate with the same UE 120. The TRPs 405 may correspond to the TRPs 335 described above with respect to FIG. 3.

[0058]

[0067] Multiple TRPs 405 (denoted as TRP A and TRP B) may communicate with the same UE 120 in a coordinated manner (e.g., using coordinated multipoint transmission) to improve reliability and / or increase throughput. The TRPs 405 may coordinate such communications over an interface between the TRPs 405 (e.g., a backhaul interface and / or the access node controller 310). The interface may have lower latency and / or higher capacity when the TRPs 405 are co-located at the same base station 110 (e.g., when the TRPs 405 are different antenna arrays or panels of the same base station 110), and may have higher latency and / or lower capacity (compared to co-location) when the TRPs 405 are located at different base stations 110. Different TRPs 405 may communicate with the UE 120 using different QCL relationships (e.g., different TCI states), different DMRS ports, and / or different layers (e.g., of multi-layer communications).

[0059]

[0068] In a first multi-TRP transmission mode (e.g., mode 1), a single physical downlink control channel (PDCCH) may be used to schedule downlink data communications for a single PDSCH. In this case, multiple TRPs 405 (e.g., TRP A and TRP B) may transmit communications to the UE 120 on the same PDSCH. For example, a communication may be transmitted using a single codeword with different spatial layers for different TRPs 405 (e.g., where one codeword maps to a first set of layers transmitted by a first TRP 405 and to a second set of layers transmitted by a second TRP 405). As another example, a communication may be transmitted using multiple codewords, where different codewords are transmitted by different TRPs 405 (e.g., using different sets of layers). In either case, the different TRPs 405 may use different QCL relationships (e.g., different TCI states) for different DMRS ports corresponding to different layers. For example, a first TRP 405 may use a first QCL relationship or a first TCI state for a first set of DMRS ports corresponding to a first set of layers, and a second TRP 405 may use a second (different) QCL relationship or a second (different) TCI state for a second (different) set of DMRS ports corresponding to a second (different) set of layers. In some examples, a TCI state in a DCI (e.g., transmitted on a PDCCH, such as DCI format 1_0 or DCI format 1_1) may indicate a first QCL relationship (e.g., by indicating a first TCI state) and a second QCL relationship (e.g., by indicating a second TCI state). The first TCI state and the second TCI state may be indicated using a TCI field in the DCI. In general, the TCI field may indicate a single TCI state (for single-TRP transmission) or multiple TCI states (for multi-TRP transmission as discussed herein) in this multi-TRP transmission mode (e.g., mode 1).

[0060]

[0069] In a second multi-TRP transmission mode (e.g., mode 2), multiple PDCCHs may be used to schedule downlink data communications for multiple corresponding PDSCHs (e.g., one PDCCH for each PDSCH), where a first PDCCH may schedule a first codeword to be transmitted by the first TRP 405, and a second PDCCH may schedule a second codeword to be transmitted by the second TRP 405. Furthermore, a first DCI (e.g., transmitted by a first TRP 405) may schedule a first PDSCH communication associated with a first set of DMRS ports having a first QCL relationship (e.g., indicated by a first TCI state) to the first TRP 405, and a second DCI (e.g., transmitted by a second TRP 405) may schedule a second PDSCH communication associated with a second set of DMRS ports having a second QCL relationship (e.g., indicated by a second TCI state) to the second TRP 405. In this case, a DCI (e.g., having DCI format 1_0 or DCI format 1_1) may indicate a corresponding TCI state for the TRP 405 corresponding to the DCI. The TCI field of the DCI indicates the corresponding TCI state (e.g., the TCI field of the first DCI indicates the first TCI state, and the TCI field of the second DCI indicates the second TCI state).

[0061]

[0070] As noted above, Figure 4 is provided as an example. Other implementations may differ from what is described with respect to Figure 4.

[0062]

[0071] FIG. 5 is a diagram illustrating an example SRS resource set 500 in accordance with this disclosure.

[0063]

[0072] Base station 110 may configure UE 120 with one or more SRS resource sets to allocate resources for SRS transmission by UE 120. For example, the configuration of the SRS resource sets may be indicated in a radio resource control (RRC) message (e.g., an RRC configuration message or an RRC reconfiguration message). As indicated by reference numeral 505, an SRS resource set may include one or more resources (e.g., denoted as SRS resources), which may include time resources and / or frequency resources (e.g., slots, symbols, resource blocks, and / or periodicity of time resources). For example, in some cases, an SRS resource set may include up to 16 SRS resources.

[0064]

[0073] As indicated by reference numeral 510, an SRS resource may include one or more antenna ports (e.g., in time-frequency resources) on which the SRS should be transmitted. Thus, the configuration of an SRS resource set may indicate one or more time-frequency resources on which the SRS should be transmitted and may indicate one or more antenna ports on which the SRS should be transmitted in those time-frequency resources. In some examples, the configuration of an SRS resource set may indicate a use case of the SRS resource set (e.g., in an SRS-SetUse information element). For example, an SRS resource set may have an antenna switching, codebook, non-codebook, or beam management use case. A "use case" of an SRS resource set may also be referred to as a "use" of the SRS resource set.

[0065]

[0074] In some examples, the configured SRS resource set and / or the configured SRS resources may be indicated (e.g., by base station 110) via an SRI. For example, a DCI scheduling transmission of an SRS using configured SRS resources may include the SRI (e.g., in an SRI field of the DCI) to indicate the SRS resources and / or SRS resource set to be used by UE 120 to transmit the SRS.

[0066]

[0075] The antenna switching SRS resource set may be used to indicate downlink channel state information (CSI) with reciprocity between the uplink and downlink channels. For example, when there is reciprocity between the uplink and downlink channels, base station 110 may use the antenna switching SRS (e.g., SRS transmitted using resources in the antenna switching SRS resource set) to collect downlink CSI (e.g., to determine a downlink precoder to be used to communicate with UE 120).

[0067]

[0076] The codebook SRS resource set may be used to indicate uplink CSI when base station 110 indicates an uplink precoder to UE 120. For example, when base station 110 is configured to indicate an uplink precoder to UE 120 (e.g., using a precoder codebook), base station 110 may use the codebook SRS (e.g., SRS transmitted using resources of the codebook SRS resource set) to collect uplink CSI (e.g., to determine the uplink precoder to be indicated to UE 120 and used by UE 120 to communicate with base station 110). In some examples, at least one virtual port (e.g., a combination of two or more antenna ports) with a maximum transmit power may be supported for the codebook SRS.

[0068]

[0077] In some examples, the UE 120 may be configured with one SRS resource set (e.g., only one) having a usage set for the codebook (e.g., the UE 120 may be configured with only one codebook SRS resource set). In some examples, the codebook SRS resource set may include up to four SRS resources (e.g., up to four SRS resources may be configured for the codebook SRS resource set). Each SRS resource (e.g., included in the codebook SRS resource set) may be configured with a certain number of antenna ports (e.g., in the nrofSRS-Ports information element of the RRC configuration). The SRI in the DCI scheduling the transmission of the codebook SRS may indicate one (e.g., only one) SRS resource in the codebook SRS resource set. The number of ports configured for the indicated SRS resource (e.g., in the nrofSRS-Ports information element) may identify the number of antenna ports for the PUSCH to be used to transmit the communication scheduled by the DCI. UE 120 may transmit a communication scheduled by a DCI (e.g., on a PUSCH) using the same spatial domain filter (e.g., the same uplink beam) as the indicated SRS resource (e.g., the SRS resource indicated by the SRI included in the DCI). The amount of layers (e.g., rank) and / or transmit precoder matrix indicator (TPMI) (e.g., precoder) to be used by UE 120 to transmit a communication scheduled by a DCI (e.g., on a PUSCH) may be indicated via a separate field in the DCI (e.g., in a precoding information field and / or an amount of layers field). As used herein, a "layer" may refer to a data stream. In some cases, a "layer" may be used interchangeably with a "MIMO layer." A "rank" may refer to the amount of layers associated with a given communication. The size (e.g., amount of bits) associated with the SRI may be based at least in part on the amount of SRS resources included in a codebook SRS resource set.

[0069]

[0078] The non-codebook SRS resource set may be used to indicate uplink CSI when UE 120 selects an uplink precoder (e.g., instead of base station 110 indicating an uplink precoder to be used by UE 120). For example, when UE 120 is configured to select an uplink precoder, base station 110 may use a non-codebook SRS (e.g., an SRS transmitted using resources of a non-codebook SRS resource set) to collect uplink CSI. In this case, the non-codebook SRS may be precoded using a precoder selected by UE 120 (e.g., which may be indicated to base station 110). The beam management SRS resource set may be used to indicate CSI for millimeter wave communications.

[0070]

[0079] In some examples, the UE 120 may be configured with one SRS resource set (e.g., only one SRS resource set) with a usage set for the non-codebook (e.g., the UE 120 may be configured with only one non-codebook SRS resource set). In some examples, the non-codebook SRS resource set may include up to four SRS resources (e.g., up to four SRS resources may be configured for the non-codebook SRS resource set). In some examples, each SRS resource included in the non-codebook SRS resource set may be associated with one (e.g., a single) antenna port (e.g., a single SRS port). The non-codebook SRS resource set may be used to facilitate non-codebook-based PUSCH transmissions. For example, an SRI in the DCI may indicate one or more SRS resources from the non-codebook-based PUSCH transmission (e.g., a single SRI may include one or more SRS resources). The amount of SRS resources indicated by the SRI may indicate the amount of layers (e.g., rank) associated with the non-codebook-based transmission scheduled by the DCI (e.g., to be transmitted via the PUSCH). The communication scheduled by the DCI may use the same precoder and the same spatial domain filter (e.g., the same uplink beam) as the SRS resource(s) indicated by the SRI.

[0071]

[0080] The size (e.g., amount of bits) associated with the SRI may be based at least in part on the amount of SRS resources included in the non-codebook SRS resource set. For example, the size (e.g., amount of bits) associated with the SRI may be based at least in part on the highest rank associated with the PUSCH and the amount of SRS resources included in the non-codebook SRS resource set. The highest rank of the PUSCH may be configured (e.g., in a MIMO configuration, such as the upper layer parameter maxMIMO-Layers of the PUSCH configuration) or may be based at least in part on the amount of layers supported by the UE 120 for the PUSCH (e.g., for non-codebook-based operation). The size of the SRI may be defined by a wireless communications standard such as 3GPP (e.g., in 3GPP Technical Specification 38.212) or may be otherwise determined. For example, the size of the SRI (e.g., amount of bits associated with the SRI) may be determined according to the formula

[0072]

number

[0073] wherein L max is the highest rank associated with PUSCH, and N SRS is the amount of SRS resources included in the non-codebook SRS resource set. For example, the equation described above may be used to identify the size of the SRI when upper layer parameters (e.g., in the txConfig upper layer parameters) indicate that the transmission is a non-codebook transmission. In other words, the equation described above may be used to identify the size of the SRI for a non-codebook-based PUSCH transmission.

[0074]

[0081] SRS resources may be configured as periodic, semi-persistent (sometimes referred to as semi-persistent scheduling (SPS)), or aperiodic. Periodic SRS resources may be configured via a configuration message indicating the periodicity of the SRS resources (e.g., slot-level periodicity where the SRS resources occur every Y slots) and the slot offset. In some cases, periodic SRS resources may be always activated and may not be dynamically activated or deactivated. Semi-persistent SRS resources may also be configured via a configuration message indicating the periodicity and slot offset of the semi-persistent SRS resources and may be dynamically activated and deactivated (e.g., using a DCI or a MAC control element (CE) (MAC-CE)). Aperiodic SRS resources may be dynamically triggered, such as via a DCI (e.g., a UE-specific DCI or a group-common DCI) or a MAC-CE.

[0075]

[0082] In some examples, UE 120 may be configured with a mapping between SRS ports (e.g., antenna ports) and corresponding SRS resources. UE 120 may transmit SRS on a particular SRS resource using the SRS port indicated in the configuration. In some examples, the SRS resource may span N contiguous symbols within a slot (e.g., where N is equal to 1, 2, or 4). UE 120 may be configured with X SRS ports (e.g., where X≦4). In some examples, each of the X SRS ports may be mapped to a corresponding symbol of the SRS resource and used for transmission of the SRS within that symbol.

[0076]

[0083] 5, in some examples, different SRS resource sets indicated to UE 120 (e.g., having different use cases) may overlap (e.g., in time and / or frequency, such as within the same slot). For example, as indicated by reference numeral 515, a first SRS resource set (e.g., denoted as SRS resource set 1) is shown as having an antenna switching use case. As shown, this example antenna switching SRS resource set includes a first SRS resource (denoted as SRS resource A) and a second SRS resource (denoted as SRS resource B). Thus, an antenna switching SRS may be transmitted in SRS resource A (e.g., a first time-frequency resource) using antenna port 0 and antenna port 1, and in SRS resource B (e.g., a second time-frequency resource) using antenna port 2 and antenna port 3.

[0077]

[0084] As indicated by reference numeral 520, a second SRS resource set (e.g., denoted as SRS resource set 2) may be a codebook use case. As shown, this example codebook SRS resource set includes only a first SRS resource (denoted as SRS resource A). Thus, a codebook SRS may be transmitted in SRS resource A (e.g., the first time-frequency resource) using antenna port 0 and antenna port 1. In this case, UE 120 may not transmit a codebook SRS in SRS resource B (e.g., the second time-frequency resource) using antenna port 2 and antenna port 3.

[0078]

[0085] As noted above, Figure 5 is provided as an example. Other implementations may differ from those described with respect to Figure 5.

[0079]

[0086] FIG. 6 illustrates an example 600 of dynamic switching between single-TRP (sTRP) and multi-TRP (mTRP) communication according to the present disclosure. For example, in some cases, a UE may communicate with two TRPs (e.g., in a manner similar to that described with respect to FIG. 4). Communication with more than one TRP may be referred to as mTRP communication, while communication with one TRP may be referred to as sTRP communication. In an mTRP, two sets of PUSCH repetitions may correspond to two SRS resource sets. For example, a DCI transmission may indicate two beams and two sets of power control parameters using two corresponding SRI fields. In the case of a codebook-based PUSCH, the DCI transmission also indicates two TPMIs.

[0080]

[0087] The PUSCH repetitions may be transmitted using time division multiplexing (TDM), in which case they correspond to different transmission parameters (beam / spatial relationship, power control, precoding). In some cases, the PUSCH repetitions scheduled by a single DCI transmission may belong to two sets, where each set has its own transmission parameters.

[0081]

[0088] In some cases, a UE may be configured to dynamically switch between sTRP communication and mTRP communication. For dynamic switching between sTRP and mTRP (e.g., dynamic switching between one set of transmission parameters for PUSCH repetitions and two sets of transmission parameters for PUSCH repetitions), wireless communication standards (e.g., 3GPP) have introduced a new field into the DCI format. The new field, sometimes referred to as a dynamic switching field or dynamic switching indicator, may be two bits and may indicate that the UE should use only the first set of parameters (e.g., for transmitting on the first TRP, TRP1), only the second set of parameters (e.g., for transmitting on the second TRP, TRP2), use both sets of parameters for the two sets of repetitions having a first order (TRP1, TRP2), or use both sets of parameters for the two sets of repetitions having a second order (TRP2, TRP1), which may be referred to as reverse order. For TDM communication, the rank and antenna port are the same across all repetitions.

[0082]

[0089] For example, as indicated by reference numeral 605 in FIG. 6, the DCI may schedule four repetitions of a PUSCH transmission (e.g., may schedule four PUSCH repetitions). The DCI may indicate a first SRS resource set (e.g., via a first SRI included in the DCI) and a second SRS resource set (e.g., via a second SRI included in the DCI). As described in more detail elsewhere herein, the SRS resource and / or SRS resource set (e.g., indicated via an SRI) may indicate a beam and / or a set of transmission parameters to be used for the PUSCH transmission (e.g., PUSCH repetition(s)) scheduled by the DCI. The DCI may also include a dynamic switching indicator (e.g., may include a dynamic switching field). The value (e.g., code point) of the dynamic switching indicator may indicate whether the uplink transmission scheduled by the DCI is an sTRP communication (e.g., as indicated by reference numeral 610 where the dynamic switching indicator has a value of "00" and by reference numeral 615 where the dynamic switching indicator has a value of "01") or an mTRP communication (e.g., as indicated by reference numeral 620 where the dynamic switching indicator has a value of "10" and by reference numeral 625 where the dynamic switching indicator has a value of "11"). In addition, the value (e.g., code point) of the dynamic switching indicator may indicate which SRS resource set should be associated with the uplink transmission scheduled by the DCI (e.g., in the case of an sTRP communication). In the case of an mTRP communication, the value (e.g., code point) of the dynamic switching indicator may indicate an order or pattern (e.g., of multiple SRS resource sets) to be used by the UE to transmit the PUSCH repetitions scheduled by the DCI.

[0083]

[0090] For example, as indicated by reference numeral 610, a first value or code point (e.g., "00") of the dynamic switching indicator may indicate that the PUSCH repetition scheduled by the DCI should be an sTRP communication. In addition, the first value or code point (e.g., "00") may indicate that the PUSCH repetition should be associated with a first SRS resource set (e.g., indicated by a first SRI included in the DCI). Thus, the UE may transmit the PUSCH repetition using a set of beams and / or transmission parameters indicated by the first SRS resource set (e.g., indicated by SRS resources included in the first SRS resource set).

[0084]

[0091] As another example, as indicated by reference numeral 615, a second value or code point (e.g., "01") of the dynamic switching indicator may indicate that the PUSCH repetition scheduled by the DCI should be an sTRP communication. In addition, the second value or code point (e.g., "01") may indicate that the PUSCH repetition should be associated with a second SRS resource set (e.g., indicated by a second SRI included in the DCI). Thus, the UE may transmit the PUSCH repetition using a set of beams and / or transmission parameters indicated by the second SRS resource set (e.g., indicated by SRS resources included in the second SRS resource set).

[0085]

[0092] As another example, as indicated by reference numeral 620, a third value or code point (e.g., “10”) of the dynamic switching indicator may indicate that the PUSCH repetition scheduled by the DCI should be an mTRP communication. For example, the third value or code point (e.g., “10”) may indicate that both the first SRS resource set and the second SRS resource set should be used to identify a beam and / or transmission parameters for the PUSCH repetition. In addition, the third value or code point (e.g., “10”) may indicate a first pattern associated with the PUSCH repetition. For example, the first pattern may indicate that the first PUSCH repetition and the third PUSCH repetition should be associated with the first SRS resource set, and that the second PUSCH repetition and the fourth PUSCH repetition should be associated with the second SRS resource set. The UE may transmit the first PUSCH repetition and the third PUSCH repetition using the first beam and / or first set of transmission parameters indicated by the first SRS resource set. The UE may transmit the second and fourth PUSCH repetitions using a second beam and / or a second set of transmission parameters indicated by a second SRS resource set. For example, the UE may transmit the first and third PUSCH repetitions to a first TRP and may transmit the second and fourth PUSCH repetitions to a second TRP. The first pattern shown in FIG. 6 is provided as an example, and other patterns are possible, such as a sequential pattern in which the first and second PUSCH repetitions are associated with the first SRS resource set and the third and fourth PUSCH repetitions are associated with the second SRS resource set.

[0086]

[0093] As yet another example, as indicated by reference numeral 625, a fourth value or code point (e.g., “11”) of the dynamic switching indicator may indicate that the PUSCH repetition scheduled by the DCI should be an mTRP communication. For example, the fourth value or code point (e.g., “11”) may indicate that both the first SRS resource set and the second SRS resource set should be used to identify a beam and / or transmission parameters for the PUSCH repetition. In addition, the fourth value or code point (e.g., “11”) may indicate a second pattern associated with the PUSCH repetition. For example, the second pattern may indicate that the first PUSCH repetition and the third PUSCH repetition should be associated with the second SRS resource set, and that the second PUSCH repetition and the fourth PUSCH repetition should be associated with the first SRS resource set. The UE may transmit the first PUSCH repetition and the third PUSCH repetition using the second beam and / or second set of transmission parameters indicated by the second SRS resource set. The UE may transmit the second and fourth PUSCH repetitions using a first beam and / or a first set of transmission parameters indicated by a first SRS resource set. For example, the UE may transmit the first and third PUSCH repetitions to a second TRP and may transmit the second and fourth PUSCH repetitions to the first TRP. The second pattern shown in FIG. 6 is provided as an example, and other patterns are possible, such as a sequential pattern in which the first and second PUSCH repetitions are associated with the second SRS resource set and the third and fourth PUSCH repetitions are associated with the first SRS resource set.

[0087]

[0094] In this way, the UE can be scheduled to dynamically switch between sTRP and mTRP communication. In addition, a single DCI can schedule the UE to transmit PUSCH repetitions in a TDM manner, where the PUSCH repetitions correspond to different transmission parameters (beam / spatial relationship, power control, precoding).

[0088]

[0095] In the case of SDM for PUSCH, different sets of layers have different transmission parameters (e.g., different beams, different sets of power control parameters, and / or different TPMIs, among other examples). For example, a first set of layers may be associated with a first SRS resource set, a first beam, and / or a first set of transmission parameters, among other examples, and a second set of layers may be associated with a second SRS resource set, a second beam, and / or a second set of transmission parameters, among other examples. The first set of layers may be associated with the first SRS resource set, and the second set of layers may be associated with the second SRS resource set. In some cases, several rank combinations may be supported, such as, for example, rank combination 1+1 (e.g., the first set of layers includes a single layer and the second set of layers includes a single layer), 1+2 (e.g., the first set of layers includes a single layer and the second set of layers includes two layers), 2+1 (e.g., the first set of layers includes two layers and the second set of layers includes a single layer), 2+2 (e.g., the first set of layers includes two layers and the second set of layers includes two layers), 1+3 (e.g., the first set of layers includes a single layer and the second set of layers includes three layers), and / or 3+1 (e.g., the first set of layers includes three layers and the second set of layers includes a single layer), among other examples.

[0089]

[0096] However, wireless communication standards do not specify a technique for determining which SRS resource set should be associated with the first set of layers and which SRS resource set should be associated with the second set of layers for SDM PUSCH transmission. For example, when a DCI includes two SRIs, the two SRIs may indicate SRS resources from a single SRS resource set for the first set of layers and the second set of layers (e.g., for sTRP communication), or may indicate SRS resources from both the SRS resource sets for the first set of layers and the second set of layers (e.g., for mTRP communication). However, without a rule specifying a mapping from layers to SRS resource sets, the UE's mapping may not be expected by the base station, resulting in communication failures and network inefficiencies. In addition, wireless communication standards do not specify a technique for determining the size of the SRI(s) included in a DCI for non-codebook-based SDM PUSCH transmission. As described elsewhere herein, the size of the SRI for a non-codebook-based PUSCH transmission may be based at least in part on the highest rank and the amount of SRS resources included in the non-codebook SRS resource set. For example, different SRS resource sets may include different numbers of SRS resources. In the absence of rules specifying the design of the SRI for SDM PUSCH transmission (e.g., not specifying the size of the SRI), different networks may use SRIs of different sizes (e.g., different networks may use different amounts of bits for each SRI included in a DCI scheduling a non-codebook-based PUSCH transmission), which may result in the UE being unable to receive and / or decode the SRI in some cases, such as when the UE expects an SRI of a different design than the design used by the network.

[0090]

[0097] Some aspects of the techniques and apparatus described herein may facilitate SRI signaling to associate SRS resource sets and / or SRS resources with different layers for SDM. For example, in some aspects, a UE may receive configuration information associated with a first SRS resource set and a second SRS resource set, where the first SRS resource set includes a first amount of SRS resources and the second SRS resource set includes a second amount of SRS resources. The UE may receive DCI scheduling SDM PUSCH communications associated with the first layer(s) and the second layer(s). The DCI may indicate first one or more SRS resources associated with the first layer(s) and second one or more SRS resources associated with the second layer(s). The first one or more SRS resources and second one or more SRS resources may be from the first SRS resource set and / or the second SRS resource set. The DCI may indicate the first one or more SRS resources and the second one or more SRS resources based at least in part on a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, and / or a highest rank associated with the SDM PUSCH communication, among other examples. In this manner, certain aspects of the techniques described herein can facilitate mapping SRS resources and / or SRS resource sets to layers of SDM PUSCH transmissions via an SRI included in the DCI and / or via a dynamic switching indicator included in the DCI, thereby improving efficiency and, in this way, positively impacting network performance.

[0091]

[0098] As noted above, Figure 6 is provided as an example. Other implementations may differ from those described with respect to Figure 6.

[0092]

[0099] 7 is a diagram illustrating an example 700 associated with SRI signaling for SDM communication in accordance with the present disclosure. As shown in FIG. 7, base station 110 and UE 120 may communicate with each other over a wireless network, such as wireless network 100.

[0093]

[0100] As indicated by reference numeral 705, the base station 110 may transmit, and the UE 120 may receive, configuration information. In some aspects, the UE 120 may receive the configuration information from another device (e.g., from another base station or another UE). In some aspects, the UE 120 may receive the configuration information via RRC signaling and / or MAC signaling (e.g., MAC-CE). In some aspects, the configuration information may include an indication of one or more configuration parameters for selection by the UE (e.g., already known to and / or hard-coded on the UE 120) and / or explicit configuration information used by the UE 120 to configure itself.

[0094]

[0101] In some aspects, the configuration information may include an SRS configuration. For example, the configuration information may configure one or more SRS resource sets. For example, the configuration information may indicate one or more SRS-ResourceSet information elements (e.g., as defined by a wireless communication standard such as 3GPP or otherwise defined). For example, the configuration information may configure a first SRS resource set and a second SRS resource set. The first SRS resource set and the second SRS resource set may be non-codebook SRS resource sets (e.g., associated with a non-codebook use or use case). The first SRS resource set may include a first SRS resource amount (e.g., referred to herein as N1), and the second SRS resource set may include a second SRS resource amount (e.g., referred to herein as N2).

[0095]

[0102] In some aspects, the configuration information may be associated with an SDM configuration. The SDM configuration may be associated with a PUSCH having a first set of layers (e.g., a first one or more layers) and a second set of layers (e.g., a second one or more layers). The first set of layers may include a first amount of layers, and the second set of layers may include a second amount of layers.

[0096]

[0103] In some aspects, the UE 120 may configure itself to communicate with the base station 110. In some aspects, the UE 120 may configure the UE 120 based at least in part on the configuration information. In some aspects, the UE 120 may be configured to perform one or more operations described herein.

[0097]

[0104] In some aspects, the UE 120 may transmit, and the base station 110 may receive, an indication of the UE 120's capability to communicate (e.g., one or more of uplink or downlink transmissions) using SRI signaling for SDM PUSCH communication as described herein. In some aspects, the UE 120 may transmit the indication via RRC signaling, one or more MAC-CE, and / or physical uplink control channel (PUCCH) messages, among other examples.

[0098]

[0105] As indicated by reference numeral 710, base station 110 may transmit, and UE 120 may receive, a DCI (e.g., a DCI transmission). In particular, the DCI may schedule non-codebook-based SDM PUSCH communication. The DCI may include a first SRI (e.g., a first SRI field) and a second SRI (e.g., a second SRI field). In some aspects, the DCI may indicate two beams and / or two sets of power control parameters for two sets of layers via the two SRIs included within the DCI. In other words, the DCI may indicate (e.g., via the first SRI and / or the second SRI) a first beam and / or a first set of power control parameters for a first set of layers (e.g., a first layer or layers) associated with the non-codebook-based SDM PUSCH communication. Additionally, the DCI (e.g., via the first SRI and / or the second SRI) may indicate a second beam and / or a second set of power control parameters for a second set of layers (e.g., a second layer or layers) associated with non-codebook-based SDM PUSCH communication.

[0099]

[0106] In some aspects, the DCI may indicate a first one or more SRS resources associated with a first set of layers (e.g., a first one or more layers) and a second one or more SRS resources associated with a second set of layers (e.g., a second one or more layers) from at least one of a first SRS resource set or a second SRS resource set. The DCI may indicate the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set (e.g., a first non-codebook SRS resource set) and / or the second SRS resource set (e.g., a second non-codebook SRS resource set). In some aspects, the DCI may indicate the first one or more SRS resources and the second one or more SRS resources based at least in part on a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources (e.g., N1), a second amount of SRS resources (e.g., N2), and / or a highest rank associated with the PUSCH (e.g., associated with the SDM communication scheduled by the DCI), among other examples.

[0100]

[0107] For example, in some aspects, two SRIs may jointly indicate SRS resources from a single SRS resource set (e.g., for sTRP SDM communication when SDM is configured). As used herein, "jointly indicate" may refer to both a first indicator (e.g., a value of the first indicator) and a second indicator (e.g., a value of the second indicator) being used to identify information. In some aspects, "jointly indicate" may refer to the first SRI and the second SRI being included in a joint field or the same field of a DCI. For example, the first SRI and the second SRI may jointly indicate one or more SRS resources from the first SRS resource set based at least in part on the dynamic switching indicator being associated with the first value. Alternatively, the first SRI and the second SRI may jointly indicate one or more SRS resources from the second SRS resource set based at least in part on the dynamic switching indicator being associated with the second value. For example, a dynamic switching indicator value (e.g., code point) of “00” may indicate that the first SRI and the second SRI jointly indicate one or more SRS resources from a first SRS resource set for SDM communication, while a dynamic switching indicator value (e.g., code point) of “01” may indicate that the first SRI and the second SRI jointly indicate one or more SRS resources from a second SRS resource set for SDM communication.

[0101]

[0108] In some aspects, the amount of one or more SRS resources from the first SRS resource set (e.g., jointly indicated by the first SRI and the second SRI when the dynamic switching indicator indicates a value of "00") is based at least in part on the first SRS resource amount (e.g., included in the first SRS resource set) and the highest rank (e.g., of the PUSCH). For example, the amount of SRS resources from the first SRS resource set jointly indicated by the first SRI and the second SRI may be less than or equal to the minimum of the highest rank and the first SRS resource amount (e.g., min(Lmax ,N1) or less). Similarly, the amount of one or more SRS resources from the second SRS resource set (e.g., indicated jointly by the first SRI and the second SRI when the dynamic switching indicator indicates a value of "01") is based at least in part on the amount of second SRS resources (e.g., included in the second SRS resource set) and the highest rank. For example, the amount of SRS resources from the second SRS resource set jointly indicated by the first SRI and the second SRI may be less than or equal to the minimum of the highest rank and the amount of second SRS resources (e.g., min(L max ,N2) or less).

[0102]

[0109] In the case of sTRP communication (e.g., when SDM is configured), the first SRI and the second SRI may be associated with an aggregated size (e.g., a size including the size of the first SRI and the size of the second SRI). The aggregate size may be based at least in part on a first quantity of bits that is based at least in part on a first quantity of SRS resources (e.g., included in a first SRS resource set) and a highest rank. For example, the aggregate size may be based at least in part on a highest rank associated with a PUSCH and N1. For example, the first quantity of bits may be expressed as the formula:

[0103]

number

[0104] Alternatively, the aggregate size may be based at least in part on a second quantity of bits that is based at least in part on a second quantity of SRS resources (e.g., included in the second SRS resource set) and the highest rank. For example, the second quantity of bits may be determined according to the formula:

[0105]

number

[0106] In some aspects, the amount of bits required for the SRI for sTRP communication (e.g., when SDM is configured) may be the maximum of the first amount of bits and the second amount of bits. For example, the amount of bits required for the SRI for sTRP communication (e.g., when SDM is configured) may be determined according to

[0107]

number

[0108] It could be.

[0109]

[0110] In some aspects, the first SRS resource set is the first highest ranked

[0110]

number

[0111] and the second SRS resource set may be associated with the second highest ranked

[0112]

number

[0113] In addition, the PUSCH may be associated with the highest rank (e.g., L max ) In the case of sTRP communication (e.g., when SDM is configured), the highest rank of sTRP SDM communication is L max and

[0114]

number

[0115] For example, the highest rank can be the minimum of

[0116]

number

[0117] In such an example (e.g., if each SRS resource set is associated with a highest rank), the aggregate size of the SRI field may be the sum of the aggregate size of the highest rank L max , the first highest rank

[0118]

number

[0119] , the second highest rank

[0120]

number

[0121] , and a first bit amount that is based at least in part on the first SRS resource amount N1. For example, the first bit amount may be based at least in part on the formula:

[0122]

number

[0123] Alternatively, the aggregate size of the SRI field may be determined according to the highest rank L max , the first highest rank

[0124]

number

[0125] , the second highest rank

[0126]

number

[0127] , and the first amount of bits, which is based at least in part on the second amount of SRS resources N2. For example, the first amount of bits may be based at least in part on the formula:

[0128]

number

[0129] In some aspects, the number of bits required for SRI for sTRP communication (e.g., when SDM is configured) may be the maximum of the first amount of bits and the second amount of bits. For example, the number of bits required for SRI for sTRP communication (e.g., when SDM is configured) may be determined according to

[0130]

number

[0131] It could be.

[0132] In an example where each SRS resource set is associated with the highest rank, the maximum quantity associated with one or more SRS resources from the first SRS resource set (e.g., jointly indicated by the first SRI and the second SRI when the dynamic switching indicator indicates a value of “00”) is the maximum quantity associated with one or more SRS resources from the first SRS resource set with the highest rank L max , the first highest rank

[0133]

number

[0134] , the second highest rank

[0135]

number

[0136] , and the first SRS resource amount N1. For example, for the dynamic switching code point "00", the first SRI and the second SRI are based at least in part on the highest ranking L max , the first highest rank

[0137]

number

[0138] and the second highest rank

[0139]

number

[0140] combinations (for example

[0141]

number

[0142] ), and up to a minimum of a first number N1 of SRS resources. For example, the amount of resources from the first SRS resource set jointly indicated by the first SRI and the second SRI may be:

[0143]

number

[0144] Similarly, the maximum amount associated with one or more SRS resources from the second SRS resource set (e.g., jointly indicated by the first SRI and the second SRI when the dynamic switching indicator indicates a value of “01”) may be the maximum amount associated with the one or more SRS resources from the second SRS resource set with the highest rank L max , the first highest rank

[0145]

number

[0146] , the second highest rank

[0147]

number

[0148] , and the second SRS resource amount N2. For example, for the dynamic switching code point "01", the first SRI and the second SRI may be based at least in part on the highest rank L max , the first highest rank

[0149]

number

[0150] and the second highest rank

[0151]

number

[0152] combinations (for example

[0153]

number

[0154] ), and up to a minimum of a second number N2 of SRS resources together. For example, the amount of resources from the second SRS resource set jointly indicated by the first SRI and the second SRI may be

[0155]

number

[0156] It may be the following:

[0157] For mTRP SDM communication, the DCI may indicate SRS resources from both a first SRS resource set and a second SRS resource set. In some aspects, a restriction may be defined indicating the SRS resources (or the amount of SRS resources) that may be indicated by the DCI for mTRP SDM communication (e.g., from the first SRS resource set and / or the second SRS resource set). The restriction may reduce the amount of possible combinations of SRS resources that may be indicated by the DCI, thereby ensuring that the size of the SRS resource information included within the DCI does not become excessively large. For example, the DCI may indicate up to a first amount of indicated SRS resources (e.g., a first maximum amount of SRS resources) from a first subset of SRS resources in the first SRS resource set and up to a second amount of indicated SRS resources (e.g., a second maximum amount of SRS resources) from a second subset of SRS resources in the second SRS resource set. The first subset and the second subset may be SRS resources that are available for selection for mTRP SDM communication (e.g., subject to the constraints described above).

[0158] In some aspects, the amount of SRS resources included in the first subset of SRS resources is based at least in part on the first amount of SRS resources (e.g., included in the first SRS resource set) and a portion of the highest rank. max A portion of the is half of the highest rank (e.g.

[0159]

number

[0160] For example, the amount of SRS resources included in the first subset of SRS resources may be the minimum of the first SRS resource amount and the highest ranked portion thereof (e.g., the amount of SRS resources included in the first subset may be

[0161]

number

[0162] Similarly, the amount of SRS resources included in the second subset of SRS resources is based at least in part on the amount of second SRS resources (e.g., included in the second SRS resource set) and the highest-ranked portion (e.g., which may be the same portion or a different portion than the portion associated with the first subset). In some aspects, the portion associated with the second subset may be based at least in part on the portion associated with the first subset. For example, if the portion associated with the first subset is P1, then the portion associated with the second subset may be L max For example, the portion associated with the second subset may be equal to

[0163]

number

[0164] In some aspects, the amount of SRS resources included in the second subset of SRS resources may be the minimum of the second amount of SRS resources and the highest-ranked portion (e.g., the amount of SRS resources included in the second subset may be

[0165]

number

[0166] In some aspects, the first subset of SRS resources may include the first Z SRS resources from a first SRS resource set (e.g., according to the order of identifiers associated with the SRS resources included in the first SRS resource set), where Z is the amount of SRS resources included in the first subset of SRS resources. The second subset of SRS resources may include the first Q SRS resources from a second SRS resource set (e.g., according to the order of identifiers associated with the SRS resources included in the second SRS resource set), where Q is the amount of SRS resources included in the second subset of SRS resources.

[0167] In the case of mTRP SDM communication, a first SRI included in a DCI may indicate a first one or more indicated resources from a first subset of SRS resources of a first SRS resource set associated with a first set of layers. Similarly, a second SRI included in a DCI may indicate a second one or more indicated resources from a second subset of SRS resources of a second SRS resource set associated with a second set of layers. The first SRI may indicate up to (e.g., a maximum of) a first amount of indicated SRS resources from the first subset of SRS resources (e.g., a first maximum amount of SRS resources). The first maximum amount of SRS resources may be based at least in part on the first amount of SRS resources (e.g., included in the first SRS resource set) and the highest-ranked portion thereof associated with the first subset. For example, the first maximum amount of SRS resources may be:

[0168]

number

[0169] Similarly, the second SRI may indicate up to (e.g., its maximum value) a second maximum amount of SRS resources from a second subset of SRS resources. The second maximum amount of SRS resources may be based at least in part on the second amount of SRS resources (e.g., included in the second SRS resource set) and the highest-ranked portion thereof associated with the second subset. For example, the second maximum amount of SRS resources may be

[0170]

number

[0171] It may include up to (e.g., its maximum value).

[0172] In some aspects, the configuration information may configure a third SRS resource set and a fourth SRS resource set (e.g., in addition to the first SRS resource set and the second SRS resource set). The third SRS resource set and the fourth SRS resource set may be non-codebook SRS resource sets. In some aspects, the first set of SRS resources included in the first SRS resource set may also be included in the third SRS resource set. For example, the amount of SRS resources included in the first set of SRS resources (e.g., included in both the first SRS resource set and the third SRS resource set) may be based at least in part on the amount of first SRS resources (e.g., included in the first SRS resource set and the highest-ranked portion thereof). For example, the amount of first SRS resources included in the first SRS resource set and the third SRS resource set may be based at least in part on the amount of first SRS resources (e.g., included in the first SRS resource set and the highest-ranked portion thereof).

[0173]

number

[0174] The SRS resources may be the same SRS resources. In addition, the second set of SRS resources included in the second SRS resource set may also be included in the fourth SRS resource set. For example, the amount of SRS resources included in the second set of SRS resources may be based at least in part on the amount of the second SRS resources (e.g., included in the second SRS resource set) and the highest-ranked portion thereof. For example, the first SRS resources included in the second SRS resource set and the fourth SRS resource set may be based at least in part on the amount of the second SRS resources (e.g., included in the second SRS resource set) and the highest-ranked portion thereof.

[0175]

number

[0176] The SRS resources may be the same SRS resources. In such an example, the first SRS resource set and the second SRS resource set may be used for mTRP communication (e.g., when SDM is configured), and the third SRS resource set and the fourth SRS resource set may be used for sTRP communication.

[0177] In some aspects, the SRS resources indicated for mTRP SDM communication may not be subject to the limitations described above. For example, a first SRI may indicate one or more SRS resources from a first SRS resource set (e.g., not from a first subset of SRS resources included in the first SRS resource set), and a second SRI may indicate one or more SRS resources from a second SRS resource set (e.g., not from a second subset of SRS resources included in the second SRS resource set). For example, the first SRI may indicate one or more SRS resources from the first SRS resource set.

[0178]

number

[0179] The second SRI may indicate up to (e.g., a maximum of) the number of SRS resources (e.g., where one or more SRS resources may include any RSR resource included in the first SRS resource set). Similarly, the second SRI may indicate up to (e.g., a maximum of) the number of SRS resources from the second SRS resource set.

[0180]

number

[0181] The second SRS resource set may indicate up to (eg, a maximum of) the number of SRS resources (eg, where the one or more SRS resources may include any SRS resource included in the second SRS resource set).

[0182]

[0117] In the case of mTRP SDM communication, the first SRS resource set is the first highest ranked

[0183]

number

[0184] and the second SRS resource set is the second highest ranked

[0185]

number

[0186] In an example associated with the first SRI, the first SRI may indicate one or more resources from a first SRS resource set, and the second SRI may indicate one or more resources from a second SRS resource set. The one or more resources indicated by the first SRI (e.g., from the first SRS resource set) may be the first highest-ranked resource.

[0187]

number

[0188] and a first amount of SRS resources (e.g., included in the first SRS resource set). For example, one or more resources indicated by a first SRI (e.g., from the first SRS resource set) may be up to (e.g., a maximum of)

[0189]

number

[0190] The one or more resources indicated by the second SRI (e.g., from the second SRS resource set) may be up to (e.g., its maximum value).

[0191]

number

[0192] and a second amount of SRS resources (e.g., included in the second SRS resource set). For example, one or more resources indicated by the second SRI (from the second SRS resource set) may be:

[0193]

number

[0194] It can be up to (eg, its maximum value).

[0195] For mTRP SDM communications, the dynamic switching indicator may indicate a value of “10” or “11.” Different values ​​(e.g., different code points) may indicate different patterns for mTRP SDM communications, but the association between the SRI and the SRS resource may be the same for the dynamic switching indicator code point associated with the mTRP SDM communication (e.g., the association between the SRI and the SRS resource set may be the same for dynamic switching code points “10” and “11”).

[0196]

[0119] Collectively (e.g., for both mTRP and sTRP SDM communications), the first SRI and the second SRI are associated with an aggregate size that is at least partially based on a first bit amount based at least in part on the first SRS resource amount and the highest rank, a second bit amount based at least in part on the second SRS resource amount and the highest rank, and / or a third bit amount that is at least in part based on a combination of a fourth bit amount based at least in part on the first SRS resource amount and a portion of the highest rank and a fifth bit amount based at least in part on the second SRS resource amount and that portion of the highest rank. For example, the aggregate size of the first SRI and the second SRI may be the maximum of the first bit amount, the second bit amount, and the third bit amount. In other words, the aggregate size of the first SRI and the second SRI (e.g., required to account for both mTRP communication and sTRP SDM communication) may be determined in an example where the SRS resources available for mTRP communication are subject to the limitations described above.

[0197]

number

[0198] In an example where the SRS resources available for mTRP communication are not subject to the limitations described above, the aggregate size of the first SRI and the second SRI (e.g., required to account for both mTRP communication and sTRP SDM communication) may be

[0199]

number

[0200] The first SRS resource set may be the first highest ranked

[0201]

number

[0202] and the second SRS resource set is the second highest ranked

[0203]

number

[0204] In the example associated with, the aggregate size of the first SRI and the second SRI (e.g., required to account for both mTRP and sTRP SDM communications) is

[0205]

number

[0206] It could be.

[0207] The following table provides examples of sizes of SRIs included in DCIs for SDM communication (e.g., for both sTRP communication and mTRP communication). In the table, entries include information indicating the aggregate size of SRIs for joint instruction (e.g., for sTRP communication when SDM is configured) and the size of each SRI for mTRP communication. For example, an entry indicates (aggregate size of SRIs for joint instruction), (size of first SRI for mTRP communication) + (size of second SRI for mTRP communication). The indicated sizes may be in bits.

[0208] [Table 1]

[0209]

[0121] Table 1 shows the highest rank of 4, L max In addition, Table 1 shows an example in which the SRS resources available for selection for mTRP communication are subject to the limitations described above. Entries associated with (N1,N2) values ​​of (4,4), (3,4), (2,4), (4,3), (4,2), (2,1), (1,2), and (1,1) may not be associated with zero padding (e.g., zero padding may not be required in this scenario). "Zero padding" may refer to extending a signal having a value of zero (e.g., "0") to extend the length of the signal (e.g., in the time domain). Entries associated with (N1,N2) values ​​of (3,3), (3,2), (2,3), and (2,2) may be associated with zero padding for sTRP joint SRI indication. Entries associated with (N1,N2) values ​​of (1,4), (1,3), (4,1), and (3,1) may be associated with 0 padding for mTRP SRI indication.

[0210] [Table 2]

[0211]

[0122] Table 2 shows the highest rank of 3, L max In addition, Table 2 shows an example where the SRS resources available for selection for mTRP communication are subject to the limitations discussed above. Entries associated with (N1,N2) values ​​of (2,2), (2,1), and (1,1) may not be associated with zero padding (e.g., zero padding may not be required in this scenario). The remaining entries in Table 2 may be associated with zero padding for mTRP SRI indication.

[0212]

[0123] [Table 3]

[0213]

[0124] Table 3 shows the highest rank of 2, L max Additionally, Table 3 shows an example where the SRS resources available for selection for mTRP communication are subject to the limitations discussed above. The entry associated with an (N1,N2) value of (1,1) may not be associated with zero padding (e.g., zero padding may not be required in this scenario). The remaining entries in Table 3 may be associated with zero padding for mTRP SRI indication.

[0214] [Table 4]

[0215]

[0125] Table 4 shows the highest rank of 4, L max In addition, Table 4 shows an example in which the SRS resources available for selection for mTRP communication are not subject to the limitations described above. Entries associated with (N1,N2) values ​​of (4,1), (3,1), (2,1), (1,1), (1,4), (1,3), and (1,2) may not be associated with zero padding (e.g., zero padding may not be required in this scenario). The remaining entries in Table 4 may be associated with zero padding for sTRP joint SRI indication.

[0216] [Table 5]

[0217]

[0126] Table 5 shows the highest rank of 3, L maxIn addition, Table 5 shows an example in which the SRS resources available for selection for mTRP communication are not subject to the limitations described above. Entries associated with (N1,N2) values ​​of (4,1), (3,1), (2,1), (2,4), and (1,1) may not be associated with zero padding (e.g., zero padding may not be required in this scenario). Entries associated with (N1,N2) values ​​of (1,4), (1,3), and (1,2) may be associated with zero padding for mTRP SRI indication. The remaining entries in Table 5 may be associated with zero padding for sTRP joint SRI indication.

[0218] [Table 6]

[0219]

[0127] Table 6 shows the highest rank of 2, L max In addition, Table 6 shows an example in which the SRS resources available for selection for mTRP communication are not subject to the limitations described above. Entries associated with (N1,N2) values ​​of (4,4), (4,3), (3,4), (3,2), (2,3), (2,2), and (1,1) may not be associated with zero padding (e.g., zero padding may not be required in this scenario). An entry associated with an (N1,N2) value of (3,3) may be associated with zero padding for sTRP joint SRI indication. The remaining entries in Table 6 may be associated with zero padding for mTRP SRI indication.

[0220] [Table 7]

[0221]

[0128] Table 7 shows the highest rank of 4, L max In addition, Table 5 shows that the first SRS resource set is associated with the first highest ranking

[0222]

number

[0223] and the second SRS resource set is the second highest ranked

[0224]

number

[0225] Table 7 shows examples associated with

[0226]

number

[0227] is 3,

[0228]

number

[0229] 1 is 1. Entries associated with (N1,N2) values ​​of (4,2), (4,1), (3,1), (2,1), and (1,1) may not be associated with zero padding (e.g., zero padding may not be required in this scenario). Entries associated with (N1,N2) values ​​of (1,4), (1,3), and (1,2) may be associated with zero padding for mTRP SRI indication. The remaining entries in Table 5 may be associated with zero padding for sTRP joint SRI indication.

[0230] As indicated by reference numeral 715, UE 120 may determine SRS resources indicated by the DCI and / or SRS resource-to-layer mapping indicated by the DCI. For example, UE 120 may determine an associated inter-SRI resource set for an SRI included in the DCI. UE 120 may identify SRS resources associated with a first set of layers for SDM communication scheduled by the DCI. UE 120 may identify a beam and / or a set of power control parameters for the first set of layers based at least in part on the identified SRS resources associated with the first set of layers. Additionally, UE 120 may identify SRS resources associated with a second set of layers for SDM communication scheduled by the DCI. UE 120 may identify a beam and / or a set of power control parameters for the second set of layers based at least in part on the identified SRS resources associated with the second set of layers. In some aspects, whether the SDM communication scheduled by the DCI is an sTRP communication (e.g., associated with a single SRS resource set) or an mTRP communication (e.g., associated with multiple SRS resource sets) may be indicated by the DCI (e.g., via a dynamic switching indicator included within the DCI).

[0231] As indicated by reference numeral 720, UE 120 may transmit, and base station 110 may receive, an SDM communication (e.g., an SDM PUSCH communication) scheduled by the DCI using a first SRS resource(s) for the first layer(s) (e.g., to identify beams and / or power control parameters for the first layer(s)) and a second SRS resource(s) for the second layer(s) (e.g., to identify beams and / or power control parameters for the second layer(s). For example, UE 120 may transmit the first layer(s) using a first beam, a first set of power control parameters, and / or a first set of transmission parameters associated with the first SRS resource(s). UE 120 may transmit the second layer(s) using a second beam, a second set of power control parameters, and / or a second set of transmission parameters associated with the second SRS resource(s). As described elsewhere herein, SDM communication (eg, SDM PUSCH communication) may be non-codebook based PUSCH communication.

[0232]

[0131] As noted above, Figure 7 is provided as an example. Other implementations may differ from what is described with respect to Figure 7.

[0233] 8 illustrates examples 800, 810, and 820 associated with SRI signaling for SDM services in accordance with the present disclosure. Example 800 illustrates a DCI indicating SRS resources associated with mTRP SDM PUSCH communication. Examples 810 and 820 illustrate DCI indicating SRS resources associated with sTRP SDM PUSCH communication.

[0234] 8 and example 800, a DCI may indicate that it is scheduling mTRP communication via a dynamic switching indicator (e.g., a dynamic switching field). For example, a dynamic switching indicator value (e.g., a code point) of “10” and / or “11” may indicate that the DCI is scheduling mTRP communication. In such an example, a first SRI included in the DCI may indicate a first SRS resource or resources from a first SRS resource set. A second SRI included in the DCI may indicate a second SRS resource or resources from a second SRS resource set. The first SRS resource or resources may be associated with a first layer or layers of SDM PUSCH communication scheduled by the DCI, and the second SRS resource or resources may be associated with a second layer or layers of SDM PUSCH communication scheduled by the DCI. 8, a first SRI may indicate a first SRS resource (e.g., SRS resource 1) and a second SRS resource (e.g., SRS resource 2) from a first SRS resource set, and a second SRS resource (e.g., SRS resource 1) from a second SRS resource set.

[0235] In some aspects, the restriction may indicate that only a subset of SRS resources from the SRS resources included in an SRS resource set is available for selection for mTRP communication. For example, as shown in FIG. 8, for a first SRS resource set, only a first SRS resource (e.g., SRS resource 1) and a second SRS resource (e.g., SRS resource 2) from the first SRS resource set are available for selection for mTRP communication. Similarly, for a second SRS resource set, only a first SRS resource (e.g., SRS resource 1) and a second SRS resource (e.g., SRS resource 2) from the second SRS resource set are available for selection for mTRP communication. Determination of the amount of SRS resources available for selection for mTRP communication (e.g., the amount of SRS resources included in each subset) is described in more detail elsewhere herein, such as with respect to FIG. 7.

[0236] In some other aspects, constraints may not be suitable. In such examples, all SRS resources included in an SRS resource set may be available for selection (e.g., by a base station) for mTRP communication. For example, rather than only the first SRS resource (e.g., SRS resource 1) and the second SRS resource (e.g., SRS resource 2) from the first SRS resource set being available for selection, the first SRS resource set may indicate one or more SRS resources from the first SRS resource (e.g., SRS resource 1), the second SRS resource (e.g., SRS resource 2), the third SRS resource (e.g., SRS resource 3), and the fourth SRS resource (e.g., SRS resource 4) for mTRP communication.

[0237] As shown in example 810, in some cases, the first SRI and the second SRI may jointly indicate one or more SRS resources from a first SRS resource set (e.g., for sTRP communication). For example, the dynamic switching indicator may indicate that the DCI is scheduling sTRP communication and may indicate that the first SRS resource set is associated with the joint instruction provided by the first SRI and the second SRI (e.g., based at least in part on the inclusion of a value (e.g., codepoint) of “00” in the dynamic switching field of the DCI). For example, as shown in FIG. 8, the first SRI and the second SRI may jointly indicate a first SRS resource (e.g., SRS resource 1), a second SRS resource (e.g., SRS resource 2), and a third SRS resource (e.g., SRS resource 3) from the first SRS resource set. The SRS resources may be used to identify beams and / or power control parameters for different sets of layers for sTRP SDM PUSCH communication scheduled by DCI.

[0238] As shown in example 820, the first SRI and the second SRI may jointly indicate one or more SRS resources from a second SRS resource set (e.g., for sTRP communication). For example, the dynamic switching indicator may indicate that the DCI is scheduling sTRP communication and may indicate that the second SRS resource set is associated with the joint instruction provided by the first SRI and the second SRI (e.g., based at least in part on the inclusion of a value (e.g., codepoint) of “01” in the dynamic switching field of the DCI). For example, as shown in FIG. 8, the first SRI and the second SRI may jointly indicate a first SRS resource (e.g., SRS resource 1), a second SRS resource (e.g., SRS resource 2), and a third SRS resource (e.g., SRS resource 3) from the second SRS resource set. The SRS resources may be used to identify beams and / or power control parameters for different sets of layers for sTRP SDM PUSCH communication scheduled by the DCI.

[0239]

[0138] As noted above, Figure 8 is provided as an example. Other implementations may differ from what is described with respect to Figure 8.

[0240] 9 illustrates an example process 900 performed, for example, by a UE, in accordance with the present disclosure. The example process 900 is an example in which a UE (e.g., UE 120) performs operations associated with SRI signaling for SDM communication.

[0241] 9, in some aspects, process 900 may include receiving, from a base station, configuration information associated with a first SRS resource set and a second SRS resource set, where the first SRS resource set includes a first amount of SRS resources and the second SRS resource set includes a second amount of SRS resources (block 910). For example, the UE may receive (e.g., using the communications manager 140 and / or the receiving component 1102 shown in FIG. 11) configuration information associated with the first SRS resource set and the second SRS resource set, where the first SRS resource set includes the first amount of SRS resources and the second SRS resource set includes the second amount of SRS resources from the base station, e.g., as described above with reference to FIG. 7 and / or FIG. 8.

[0242]

[0141] As further shown in FIG. 9, in some aspects, process 900 may include receiving from the base station a DCI scheduling spatial division multiplexed PUSCH communication associated with a first one or more layers and a second one or more layers, the DCI indicating a first one or more SRS resources associated with the first one or more layers and a second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first SRS resource amount, a second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communication (block 920). For example, the UE may receive (e.g., using the communications manager 140 and / or the receiving component 1102 shown in FIG. 11 ) from the base station a DCI scheduling spatial division multiplexed PUSCH communication associated with a first one or more layers and a second one or more layers, e.g., as described above with reference to FIG. 7 and / or FIG. 8 , the DCI indicating a first one or more SRS resources associated with the first one or more layers and a second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first SRS resource amount, a second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communication. For example, the DCI may jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set (e.g., a first SRI and a second SRI may jointly indicate).As another example, the DCI may jointly indicate a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set (e.g., the first SRI and the second SRI may jointly indicate). As another example, the DCI may indicate a first one or more SRS resources from a first SRS resource set (e.g., via the first SRI), and the DCI may indicate a second one or more SRS resources from the second SRS resource set (e.g., via the second SRI).

[0243]

[0142] Process 900 may include additional aspects, such as any single aspect or any combination of aspects described below and / or with respect to one or more other processes described elsewhere in this specification.

[0244]

[0143] In a first aspect, the process 900 includes transmitting spatial division multiplexed PUSCH communication using first one or more SRS resources for first one or more layers and second one or more SRS resources for second one or more layers.

[0245]

[0144] In a second aspect, alone or in combination with the first aspect, transmitting spatial division multiplexed PUSCH communication includes transmitting a first one or more layers using a first beam or a first set of transmission parameters associated with a first one or more SRS resources, and transmitting a second one or more layers using a second beam or a second set of transmission parameters associated with a second one or more SRS resources.

[0246]

[0145] In a third aspect, alone or in combination with one or more of the first and second aspects, the spatial division multiplexed PUSCH communication is a non-codebook based PUSCH communication.

[0247]

[0146] In a fourth aspect, alone or in combination with one or more of the first to third aspects, the first SRI and the second SRI are associated with an aggregate size that is at least partially based on a first bit amount that is based at least in part on the first SRS resource amount and the highest rank, or a second bit amount that is at least partially based on the second SRS resource amount and the highest rank.

[0248]

[0147] In a fifth aspect, alone or in combination with one or more of the first to fourth aspects, the first SRI and the second SRI jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value, or a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

[0249]

[0148] In a sixth aspect, alone or in combination with one or more of the first to fifth aspects, the quantity of the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set is based at least in part on the quantity of the first SRS resources and the highest rank, and the quantity of the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set is based at least in part on the quantity of the second SRS resources and the highest rank.

[0250]

[0149] In a seventh aspect, alone or in combination with one or more of the first to sixth aspects, a DCI indicates SRS resources from both a first SRS resource set and a second SRS resource set, and the DCI indicates up to a first maximum amount of the indicated SRS resources from a first subset of the SRS resources of the first SRS resource set and up to a second amount of the indicated SRS resources from a second subset of the SRS resources of the second SRS resource set.

[0251]

[0150] In an eighth aspect, alone or in combination with one or more of the first to seventh aspects, the amount of SRS resources included in a first subset of SRS resources is based at least in part on the first SRS resource amount and a portion of the highest rank, and the amount of SRS resources included in a second subset of SRS resources is based at least in part on the second SRS resource amount and a portion of the highest rank.

[0252]

[0151] In a ninth aspect, alone or in combination with one or more of the first to eighth aspects, the first SRI indicates a first one or more SRS resources from a first subset of SRS resources of a first SRS resource set associated with a first one or more layers, and the second SRI indicates a second one or more SRS resources from a second subset of SRS resources of a second SRS resource set associated with a second one or more layers.

[0253]

[0152] In a tenth aspect, alone or in combination with one or more of the first to ninth aspects, the first SRI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources, and the second SRI indicates up to a second maximum amount of SRS resources from a second subset of SRS resources.

[0254]

[0153] In an eleventh aspect, alone or in combination with one or more of the first to tenth aspects, the first SRI and the second SRI are associated with an aggregate size that is at least partially based on a first bit amount based at least in part on the first SRS resource amount and the highest rank, a second bit amount based at least in part on the second SRS resource amount and the highest rank, or a third bit amount that is at least in part based on a combination of a fourth bit amount based at least in part on the first SRS resource amount and a portion of the highest rank and a fifth bit amount based at least in part on the second SRS resource amount and that portion of the highest rank.

[0255]

[0154] In a twelfth aspect, alone or in combination with one or more of the first to eleventh aspects, the configuration information indicates a third SRS resource set and a fourth SRS resource set, wherein a first set of SRS resources included in the first SRS resource set are included in the third SRS resource set, and a second set of SRS resources included in the second SRS resource set are included in the fourth SRS resource set.

[0256]

[0155] In a thirteenth aspect, alone or in combination with one or more of the first to twelfth aspects, the amount of SRS resources included in a first set of SRS resources is based at least in part on the amount of first SRS resources and a portion of the highest rank, and the amount of SRS resources included in a second set of SRS resources is based at least in part on the amount of second SRS resources and a portion of the highest rank.

[0257]

[0156] In a fourteenth aspect, alone or in combination with one or more of the first to thirteenth aspects, a DCI indicates SRS resources from both a first SRS resource set and a second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from the first SRS resource set and up to a second maximum amount of the indicated SRS resources from the second SRS resource set.

[0258]

[0157] In a fifteenth aspect, alone or in combination with one or more of the first to fourteenth aspects, a first maximum amount of SRS resources is based at least in part on a first SRS resource amount and a portion of the highest rank, and a second maximum amount of SRS resources is based at least in part on a second SRS resource amount and a portion of the highest rank.

[0259]

[0158] In a sixteenth aspect, alone or in combination with one or more of the first to fifteenth aspects, the first SRI indicates a first one or more SRS resources from a first SRS resource set associated with a first one or more layers, and the second SRI indicates a second one or more SRS resources from a second SRS resource set associated with a second one or more layers.

[0260]

[0159] In a seventeenth aspect, alone or in combination with one or more of the first to sixteenth aspects, the first SRI indicates up to a first maximum amount of indicated SRS resources from a first SRS resource set, and the second SRI indicates up to a second maximum amount of indicated SRS resources from a second SRS resource set.

[0261]

[0160] In an eighteenth aspect, alone or in combination with one or more of the first to seventeenth aspects, a first SRS resource set is associated with a first highest rank and a second SRS resource set is associated with a second highest rank.

[0262]

[0161] In a 19th aspect, alone or in combination with one or more of the first to eighteenth aspects, the first SRI indicates up to a first maximum amount of SRS resources from a first SRS resource set, the first amount being based at least in part on the first highest rank and the first SRS resource amount, and the second SRI indicates up to a second maximum amount of SRS resources from a second SRS resource set, the second amount being based at least in part on the second highest rank and the second SRS resource amount.

[0263]

[0162] In a twentieth aspect, alone or in combination with one or more of the first to nineteenth aspects, the first SRI and the second SRI jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value, or a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

[0264]

[0163] In a 21st aspect, alone or in combination with one or more of the first to 20th aspects, a first maximum amount associated with a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set is based at least in part on the highest rank, the first highest rank, the second highest rank, and the first SRS resource amount, and a second maximum amount associated with a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set is based at least in part on the highest rank, the first highest rank, the second highest rank, and the second SRS resource amount.

[0265] 9 illustrates example blocks of process 900, in some aspects process 900 may include additional, fewer, different, or differently arranged blocks compared to the blocks illustrated in FIG 9. Additionally or alternatively, two or more of the blocks of process 900 may be performed in parallel.

[0266] 10 illustrates an example process 1000 performed, for example, by a base station, in accordance with the present disclosure. Example process 1000 is an example in which a base station (e.g., base station 110) performs operations associated with SRI signaling for SDM communication.

[0267] 10, in some aspects, process 1000 may include transmitting, to the UE, configuration information associated with a first SRS resource set and a second SRS resource set, where the first SRS resource set includes a first amount of SRS resources and the second SRS resource set includes a second amount of SRS resources (block 1010). For example, the base station (e.g., using the communications manager 150 and / or the transmitting component 1204 shown in FIG. 12) may transmit, to the UE, configuration information associated with the first SRS resource set and the second SRS resource set, where the first SRS resource set includes the first amount of SRS resources and the second SRS resource set includes the second amount of SRS resources, e.g., as described above with reference to FIG. 7 and / or FIG. 8.

[0268]

[0167] As further shown in FIG. 10, in some aspects, process 1000 may include transmitting to the UE a DCI scheduling spatial division multiplexed PUSCH communication associated with the first one or more layers and the second one or more layers, the DCI indicating the first one or more SRS resources associated with the first one or more layers and the second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first SRS resource amount, a second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communication (block 1020). For example, the base station (e.g., using the communications manager 150 and / or the transmitting component 1204 shown in FIG. 12 ) may transmit to the UE a DCI scheduling spatial division multiplexed PUSCH communications associated with the first one or more layers and the second one or more layers, e.g., as described above with reference to FIG. 7 and / or FIG. 8 , the DCI indicating the first one or more SRS resources associated with the first one or more layers and the second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of the dynamic switching indicator included in the DCI, the first SRI included in the DCI, the second SRI included in the DCI, the first SRS resource amount, the second SRS resource amount, or the highest rank associated with the spatial division multiplexed PUSCH communications. For example, the DCI may jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set. As another example, the DCI may jointly indicate a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set.As another example, the DCI may indicate a first one or more SRS resources from a first SRS resource set and may indicate a second one or more SRS resources from a second SRS resource set.

[0269]

[0168] Process 1000 may include additional aspects, such as any single aspect or any combination of aspects described below and / or with respect to one or more other processes described elsewhere in this specification.

[0270]

[0169] In a first aspect, the process 1000 includes receiving spatial division multiplexed PUSCH communication from a UE using first one or more SRS resources for first one or more layers and second one or more SRS resources for second one or more layers.

[0271]

[0170] In a second aspect, alone or in combination with the first aspect, transmitting spatial division multiplexed PUSCH communication includes receiving a first one or more layers using a first beam or a first set of transmission parameters associated with a first one or more SRS resources, and receiving a second one or more layers using a second beam or a second set of transmission parameters associated with a second one or more SRS resources.

[0272]

[0171] In a third aspect, alone or in combination with one or more of the first and second aspects, the spatial division multiplexed PUSCH communication is a non-codebook based PUSCH communication.

[0273]

[0172] In a fourth aspect, alone or in combination with one or more of the first to third aspects, the first SRI and the second SRI are associated with an aggregate size that is at least partially based on a first bit amount that is based at least in part on the first SRS resource amount and the highest rank, or a second bit amount that is at least partially based on the second SRS resource amount and the highest rank.

[0274]

[0173] In a fifth aspect, alone or in combination with one or more of the first to fourth aspects, the first SRI and the second SRI jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value, or a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

[0275]

[0174] In a sixth aspect, alone or in combination with one or more of the first to fifth aspects, the quantity of the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set is based at least in part on the quantity of the first SRS resources and the highest rank, and the quantity of the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set is based at least in part on the quantity of the second SRS resources and the highest rank.

[0276]

[0175] In a seventh aspect, alone or in combination with one or more of the first to sixth aspects, the DCI indicates SRS resources from both a first SRS resource set and a second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources in the first SRS resource set and up to a second maximum amount of SRS resources from a second subset of SRS resources in the second SRS resource set.

[0277]

[0176] In an eighth aspect, alone or in combination with one or more of the first to seventh aspects, the amount of SRS resources included in a first subset of SRS resources is based at least in part on the first SRS resource amount and a portion of the highest rank, and the amount of SRS resources included in a second subset of SRS resources is based at least in part on the second SRS resource amount and a portion of the highest rank.

[0278]

[0177] In a ninth aspect, alone or in combination with one or more of the first to eighth aspects, the first SRI indicates a first one or more SRS resources from a first subset of SRS resources of a first SRS resource set associated with a first one or more layers, and the second SRI indicates a second one or more SRS resources from a second subset of SRS resources of a second SRS resource set associated with a second one or more layers.

[0279]

[0178] In a tenth aspect, alone or in combination with one or more of the first to ninth aspects, the first SRI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources, and the second SRI indicates up to a second maximum amount of SRS resources from a second subset of SRS resources.

[0280]

[0179] In an eleventh aspect, alone or in combination with one or more of the first to tenth aspects, the first SRI and the second SRI are associated with an aggregate size that is at least partially based on a first bit amount based at least in part on the first SRS resource amount and the highest rank, a second bit amount based at least in part on the second SRS resource amount and the highest rank, or a third bit amount that is at least in part based on a combination of a fourth bit amount based at least in part on the first SRS resource amount and a portion of the highest rank and a fifth bit amount based at least in part on the second SRS resource amount and that portion of the highest rank.

[0281]

[0180] In a twelfth aspect, alone or in combination with one or more of the first to eleventh aspects, the configuration information indicates a third SRS resource set and a fourth SRS resource set, wherein a first set of SRS resources included in the first SRS resource set are included in the third SRS resource set, and a second set of SRS resources included in the second SRS resource set are included in the fourth SRS resource set.

[0282]

[0181] In a thirteenth aspect, alone or in combination with one or more of the first to twelfth aspects, the amount of SRS resources included in a first set of SRS resources is based at least in part on the amount of first SRS resources and a portion of the highest rank, and the amount of SRS resources included in a second set of SRS resources is based at least in part on the amount of second SRS resources and the portion of the highest rank.

[0283]

[0182] In a fourteenth aspect, alone or in combination with one or more of the first to thirteenth aspects, the DCI indicates SRS resources from both a first SRS resource set and a second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from the first SRS resource set and up to a second maximum amount of SRS resources from the second SRS resource set.

[0284]

[0183] In a fifteenth aspect, alone or in combination with one or more of the first to fourteenth aspects, a first maximum amount of SRS resources is based at least in part on a first SRS resource amount and a portion of the highest rank, and a second maximum amount of SRS resources is based at least in part on a second SRS resource amount and a portion of the highest rank.

[0285]

[0184] In a sixteenth aspect, alone or in combination with one or more of the first to fifteenth aspects, the first SRI indicates a first one or more SRS resources from a first SRS resource set associated with a first one or more layers, and the second SRI indicates a second one or more SRS resources from a second SRS resource set associated with a second one or more layers.

[0286]

[0185] In a seventeenth aspect, alone or in combination with one or more of the first to sixteenth aspects, the first SRI indicates up to a first maximum amount of SRS resources from a first SRS resource set, and the second SRI indicates up to a second maximum amount of SRS resources from a second SRS resource set.

[0287]

[0186] In an eighteenth aspect, alone or in combination with one or more of the first to seventeenth aspects, a first SRS resource set is associated with a first highest rank and a second SRS resource set is associated with a second highest rank.

[0288]

[0187] In a 19th aspect, alone or in combination with one or more of the first to eighteenth aspects, the first SRI indicates up to a first maximum amount of SRS resources from a first SRS resource set, the first maximum amount being based at least in part on the first highest rank and the first SRS resource amount, and the second SRI indicates up to a second maximum amount of SRS resources from a second SRS resource set, the second maximum amount being based at least in part on the second highest rank and the second SRS resource amount.

[0289]

[0188] In a twentieth aspect, alone or in combination with one or more of the first to nineteenth aspects, the first SRI and the second SRI jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value, or a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

[0290]

[0189] In a 21st aspect, alone or in combination with one or more of the first to 20th aspects, a first maximum amount associated with a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set is based at least in part on the highest rank, the first highest rank, the second highest rank, and the first SRS resource amount, and a second maximum amount associated with a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set is based at least in part on the highest rank, the first highest rank, the second highest rank, and the second SRS resource amount.

[0291]

[0190] Figure 10 illustrates example blocks of process 1000, but in some aspects process 1000 may include additional, fewer, different, or differently arranged blocks compared to the blocks illustrated in Figure 10. Additionally or alternatively, two or more of the blocks of process 1000 may be performed in parallel.

[0292] 11 is a diagram of an example apparatus 1100 for wireless communication. The apparatus 1100 may be a UE, or a UE may include the apparatus 1100. In some aspects, the apparatus 1100 includes a receiving component 1102 and a transmitting component 1104, which may be in communication with one another (e.g., via one or more buses and / or one or more other components). As shown, the apparatus 1100 may communicate with another apparatus 1106 (such as a UE, a base station, or another wireless communication device) using the receiving component 1102 and the transmitting component 1104. As further shown, the apparatus 1100 may include a communications manager 140. The communications manager 140 may include, among other examples, an SRS resource identification component 1108.

[0293] In some aspects, apparatus 1100 may be configured to perform one or more operations described herein with respect to FIG. 7 and FIG. 8. Additionally or alternatively, apparatus 1100 may be configured to perform one or more processes described herein, such as process 900 of FIG. 9, or a combination thereof. In some aspects, apparatus 1100 and / or one or more components shown in FIG. 11 may include one or more components of a UE described in connection with FIG. 2. Additionally or alternatively, one or more components shown in FIG. 11 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 memory. 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 a controller or processor to perform the function or operation of the component.

[0294] The receiving component 1102 may receive communications, such as reference signals, control information, data communications, or a combination thereof, from the device 1106. The receiving component 1102 may provide the received communications to one or more other components of the device 1100. In some aspects, the receiving component 1102 may perform signal processing (such as filtering, amplification, demodulation, analog-to-digital conversion, demultiplexing, deinterleaving, demapping, equalization, interference cancellation, or decoding, among other examples) on the received communications and provide the processed signals to one or more other components of the device 1100. In some aspects, the receiving component 1102 may include one or more antennas, a modem, a demodulator, a MIMO detector, a receive processor, a controller / processor, a memory, or a combination thereof of a UE as described with respect to FIG.

[0295] The transmitting component 1104 can transmit a communication to the device 1106, such as a reference signal, control information, a data communication, or a combination thereof. In some aspects, one or more other components of the device 1100 can generate a communication and provide the generated communication to the transmitting component 1104 for transmission to the device 1106. In some aspects, the transmitting component 1104 can perform signal processing (such as filtering, amplification, modulation, digital-to-analog conversion, multiplexing, interleaving, mapping, or encoding, among other examples) on the generated communication and can transmit the processed signal to the device 1106. In some aspects, the transmitting component 1104 may include one or more antennas, a modem, a modulator, a transmit MIMO processor, a transmit processor, a controller / processor, a memory, or a combination thereof, of a UE as described with respect to FIG. 2. In some aspects, the transmitting component 1104 can be co-located with the receiving component 1102 in a transceiver.

[0296]

[0195] The receiving component 1102 can receive configuration information associated with a first SRS resource set and a second SRS resource set from a base station, where the first SRS resource set includes a first SRS resource amount and the second SRS resource set includes a second SRS resource amount. The receiving component 1102 may receive from the base station a DCI scheduling spatial division multiplexed PUSCH communication associated with the first one or more layers and the second one or more layers, the DCI indicating the first one or more SRS resources associated with the first one or more layers and the second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication.

[0297]

[0196] The transmitting component 1104 may transmit spatial division multiplexed PUSCH communication using a first one or more SRS resources for a first one or more layers and a second one or more SRS resources for a second one or more layers.

[0298] The SRS resource identification component 1108 may identify, based at least in part on the DCI, a first one or more SRS resources associated with the first one or more layers and a second one or more SRS resources associated with the second one or more layers. For example, the SRS resource identification component 1108 may identify, based at least in part on the first SRI and / or the second SRI, a first one or more SRS resources associated with the first one or more layers and a second one or more SRS resources associated with the second one or more layers.

[0299]

[0198] The number and arrangement of components shown in Figure 11 are provided as an example. In practice, there may be additional, fewer, different, or differently arranged components compared to the components shown in Figure 11. Furthermore, two or more components shown in Figure 11 may be implemented within a single component, or a single component shown in Figure 11 may be implemented as multiple distributed components. Additionally or alternatively, a set of components shown in Figure 11 may perform one or more functions that are described as being performed by another set of components shown in Figure 11.

[0300] 12 is a diagram of an example apparatus 1200 for wireless communication. The apparatus 1200 may be a base station, or a base station may include the apparatus 1200. In some aspects, the apparatus 1200 includes a receiving component 1202 and a transmitting component 1204, which may be in communication with one another (e.g., via one or more buses and / or one or more other components). As shown, the apparatus 1200 may communicate with another apparatus 1206 (such as a UE, a base station, or another wireless communication device) using the receiving component 1202 and the transmitting component 1204. As further shown, the apparatus 1200 may include a communications manager 150. The communications manager 150 may include, among other examples, an SRS resource determination component 1208.

[0301] In some aspects, apparatus 1200 may be configured to perform one or more operations described herein with respect to FIGS. 7 and 8. Additionally or alternatively, apparatus 1200 may be configured to perform one or more processes described herein, such as process 1000 of FIG. 10, or a combination thereof. In some aspects, apparatus 1200 and / or one or more components shown in FIG. 12 may include one or more components of a base station described with respect to FIG. 2. Additionally or alternatively, one or more components shown in FIG. 12 may be implemented within one or more components described with respect to 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 memory. 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 a controller or processor to perform the function or operation of the component.

[0302] The receiving component 1202 can receive communications from the device 1206, such as reference signals, control information, data communications, or a combination thereof. The receiving component 1202 can provide the received communications to one or more other components of the device 1200. In some aspects, the receiving component 1202 can perform signal processing (such as filtering, amplification, demodulation, analog-to-digital conversion, demultiplexing, deinterleaving, demapping, equalization, interference cancellation, or decoding, among other examples) on the received communications and can provide the processed signals to one or more other components of the device 1200. In some aspects, the receiving component 1202 may include one or more antennas, a modem, a demodulator, a MIMO detector, a receive processor, a controller / processor, a memory, or a combination thereof of the base station described with respect to FIG.

[0303] The transmitting component 1204 can transmit a communication to the device 1206, such as a reference signal, control information, a data communication, or a combination thereof. In some aspects, one or more other components of the device 1200 can generate a communication and provide the generated communication to the transmitting component 1204 for transmission to the device 1206. In some aspects, the transmitting component 1204 can perform signal processing (such as filtering, amplification, modulation, digital-to-analog conversion, multiplexing, interleaving, mapping, or encoding, among other examples) on the generated communication and can transmit the processed signal to the device 1206. In some aspects, the transmitting component 1204 may include one or more antennas, a modem, a modulator, a transmit MIMO processor, a transmit processor, a controller / processor, a memory, or a combination thereof, of the base station described in connection with FIG. 2. In some aspects, the transmitting component 1204 can be collocated with the receiving component 1202 in a transceiver.

[0304]

[0203] The transmitting component 1204 may transmit, to the UE, configuration information associated with a first SRS resource set and a second SRS resource set, where the first SRS resource set includes a first SRS resource amount and the second SRS resource set includes a second SRS resource amount. The transmitting component 1204 may transmit to the UE a DCI scheduling spatial division multiplexed PUSCH communication associated with the first one or more layers and the second one or more layers, the DCI indicating the first one or more SRS resources associated with the first one or more layers and the second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRI included in the DCI, a second SRI included in the DCI, a first amount of SRS resources, a second amount of SRS resources, or a highest rank associated with the spatial division multiplexed PUSCH communication.

[0305]

[0204] The receiving component 1202 may receive spatial division multiplexed PUSCH communication from a UE using a first one or more SRS resources for a first one or more layers and a second one or more SRS resources for a second one or more layers.

[0306]

[0205] The SRS resource determination component 1208 may determine a first one or more SRS resources from a first SRS resource set and a second one or more SRS resources from a second SRS resource set to be associated with spatial division multiplexed PUSCH communication.

[0307]

[0206] The number and arrangement of components shown in Figure 12 are provided as an example. In practice, there may be additional, fewer, different, or differently arranged components compared to the components shown in Figure 12. Furthermore, two or more components shown in Figure 12 may be implemented within a single component, or a single component shown in Figure 12 may be implemented as multiple distributed components. Additionally or alternatively, a set of components shown in Figure 12 may perform one or more functions that are described as being performed by another set of components shown in Figure 12.

[0308]

[0207] The following provides an overview of some aspects of the present disclosure.

[0309] Aspect 1: A method of wireless communications implemented by a user equipment (UE), comprising: receiving, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; and downlink control information (DCI) scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications associated with the first one or more layers and the second one or more layers, the DCI comprising: receiving from a base station a dynamic switching indicator (DCI) indicating a first one or more SRS resources associated with a first one or more layers and a second one or more SRS resources associated with a second one or more layers from at least one of a first SRS resource set or a second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the CI, a first SRI included in the DCI, a second SRI included in the DCI, a first SRS resource amount, a second SRS resource amount, or a highest rank associated with spatial division multiplexed PUSCH communication.

[0310]

[0209] Aspect 2: The method of aspect 1, further comprising transmitting spatial division multiplexed PUSCH communication using a first one or more SRS resources for a first one or more layers and a second one or more SRS resources for a second one or more layers.

[0311]

[0210] Aspect 3: The method of aspect 2, wherein transmitting spatial division multiplexed PUSCH communication includes transmitting a first one or more layers using a first beam or a first set of transmission parameters associated with a first one or more SRS resources, and transmitting a second one or more layers using a second beam or a second set of transmission parameters associated with a second one or more SRS resources.

[0312]

[0211] Aspect 4: The method of any of aspects 1 to 3, wherein the spatial division multiplexed PUSCH communication is a non-codebook based PUSCH communication.

[0313]

[0212] Aspect 5: Any of the methods of aspects 1 to 4, wherein the first SRI and the second SRI are associated with an aggregate size that is at least partially based on a first bit amount that is based at least in part on the first SRS resource amount and the highest rank, or a second bit amount that is at least partially based on the second SRS resource amount and the highest rank.

[0314]

[0213] Aspect 6: Any of the methods of aspects 1 to 5, wherein the first SRI and the second SRI jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value, or a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

[0315]

[0214] Aspect 7: The method of aspect 6, wherein the quantity of the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set is based at least in part on the quantity of the first SRS resources and the highest rank, and the quantity of the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set is based at least in part on the quantity of the second SRS resources and the highest rank.

[0316]

[0215] Aspect 8: The method of any of aspects 1 to 7, wherein the DCI indicates SRS resources from both a first SRS resource set and a second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources in the first SRS resource set and up to a second maximum amount of SRS resources from a second subset of SRS resources in the second SRS resource set.

[0317]

[0216] Aspect 9: The method of aspect 8, wherein the amount of SRS resources included in a first subset of SRS resources is based at least in part on the first SRS resource amount and a portion of the highest rank, and the amount of SRS resources included in a second subset of SRS resources is based at least in part on the second SRS resource amount and a portion of the highest rank.

[0318]

[0217] Aspect 10: Any of the methods of aspects 1 to 9, wherein the first SRI indicates a first one or more SRS resources from a first subset of SRS resources of a first SRS resource set associated with a first one or more layers, and the second SRI indicates a second one or more SRS resources from a second subset of SRS resources of a second SRS resource set associated with a second one or more layers.

[0319]

[0218] Aspect 11: The method of aspect 10, wherein the first SRI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources, and the second SRI indicates up to a second maximum amount of SRS resources from a second subset of SRS resources.

[0320]

[0219] Aspect 12: Any of the methods of aspects 1 to 11, wherein the first SRI and the second SRI are associated with an aggregate size that is at least partially based on a first bit amount based at least in part on the first SRS resource amount and the highest rank, a second bit amount based at least in part on the second SRS resource amount and the highest rank, or a third bit amount that is at least in part based on a combination of a fourth bit amount based at least in part on the first SRS resource amount and a portion of the highest rank and a fifth bit amount based at least in part on the second SRS resource amount and a portion of the highest rank.

[0321]

[0220] Aspect 13: Any of the methods of aspects 1 to 12, wherein the configuration information indicates a third SRS resource set and a fourth SRS resource set, and a first set of SRS resources included in the first SRS resource set are included in the third SRS resource set, and a second set of SRS resources included in the second SRS resource set are included in the fourth SRS resource set.

[0322]

[0221] Aspect 14: The method of aspect 13, wherein the amount of SRS resources included in the first set of SRS resources is based at least in part on the amount of the first SRS resources and a portion of the highest rank, and the amount of SRS resources included in the second set of SRS resources is based at least in part on the amount of the second SRS resources and a portion of the highest rank.

[0323]

[0222] Aspect 15: Any of the methods of aspects 1 to 14, wherein the DCI indicates SRS resources from both a first SRS resource set and a second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from the first SRS resource set and up to a second maximum amount of SRS resources from the second SRS resource set.

[0324]

[0223] Aspect 16: The method of aspect 15, wherein the first maximum amount of SRS resources is based at least in part on the first SRS resource amount and a portion of the highest rank, and the second maximum amount of SRS resources is based at least in part on the second SRS resource amount and a portion of the highest rank.

[0325]

[0224] Aspect 17: Any of the methods of aspects 1 to 16, wherein the first SRI indicates a first one or more SRS resources from a first SRS resource set associated with a first one or more layers, and the second SRI indicates a second one or more SRS resources from a second SRS resource set associated with a second one or more layers.

[0326]

[0225] Aspect 18: The method of aspect 17, wherein the first SRI indicates up to a first maximum amount of SRS resources from a first SRS resource set, and the second SRI indicates up to a second maximum amount of SRS resources from a second SRS resource set.

[0327] Aspect 19: The method of any of aspects 1 to 18, wherein the first SRS resource set is associated with a first highest rank and the second SRS resource set is associated with a second highest rank.

[0328]

[0227] Aspect 20: The method of aspect 19, wherein the first SRI indicates up to a first maximum amount of SRS resources from a first SRS resource set, the first maximum amount being based at least in part on the first highest rank and the first SRS resource amount, and the second SRI indicates up to a second maximum amount of SRS resources from a second SRS resource set, the second maximum amount being based at least in part on the second highest rank and the second SRS resource amount.

[0329]

[0228] Aspect 21: Any of the methods of aspects 19 to 20, wherein the first SRI and the second SRI jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value, or a first one or more SRS resources and a second one or more resources from a second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

[0330]

[0229] Aspect 22: The method of aspect 21, wherein a first maximum amount associated with the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set is based at least in part on the highest rank, the first highest rank, the second highest rank, and the first SRS resource amount, and a second maximum amount associated with the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set is based at least in part on the highest rank, the first highest rank, the second highest rank, and the second SRS resource amount.

[0331] Aspect 23: A method of wireless communication implemented by a base station, comprising: transmitting, to a user equipment (UE), configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; and downlink control information (DCI) scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications associated with the first one or more layers and the second one or more layers, transmitting a DCI to the UE, the DCI indicating a first one or more SRS resources associated with a first one or more layers and a second one or more SRS resources associated with a second one or more layers from at least one of a first SRS resource set or a second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, a first SRS resource amount, a second SRS resource amount, or a highest rank associated with spatial division multiplexed PUSCH communication.

[0332]

[0231] Aspect 24: The method of aspect 23, further comprising receiving spatial division multiplexed PUSCH communication from the UE using a first one or more SRS resources for a first one or more layers and a second one or more SRS resources for a second one or more layers.

[0333]

[0232] Aspect 25: The method of aspect 24, wherein transmitting spatial division multiplexed PUSCH communication includes receiving a first one or more layers using a first beam or a first set of transmission parameters associated with a first one or more SRS resources, and receiving a second one or more layers using a second beam or a second set of transmission parameters associated with a second one or more SRS resources.

[0334]

[0233] Example 26: The method of any of Examples 23 to 25, wherein the spatial division multiplexed PUSCH communication is a non-codebook based PUSCH communication.

[0335]

[0234] Aspect 27: Any of the methods of aspects 23 to 26, wherein the first SRI and the second SRI are associated with an aggregate size that is at least partially based on a first bit amount that is based at least in part on the first SRS resource amount and the highest rank, or a second bit amount that is at least partially based on the second SRS resource amount and the highest rank.

[0336]

[0235] Aspect 28: Any of the methods of aspects 23 to 27, wherein the first SRI and the second SRI jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value, or a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

[0337]

[0236] Aspect 29: The method of aspect 28, wherein the quantity of the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set is based at least in part on the quantity of the first SRS resources and the highest rank, and the quantity of the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set is based at least in part on the quantity of the second SRS resources and the highest rank.

[0338]

[0237] Aspect 30: The method of any of aspects 23 to 29, wherein the DCI indicates SRS resources from both a first SRS resource set and a second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources in the first SRS resource set and up to a second maximum amount of SRS resources from a second subset of SRS resources in the second SRS resource set.

[0339]

[0238] Aspect 31: The method of aspect 30, wherein the amount of SRS resources included in a first subset of SRS resources is based at least in part on the first SRS resource amount and a portion of the highest rank, and the amount of SRS resources included in a second subset of SRS resources is based at least in part on the second SRS resource amount and a portion of the highest rank.

[0340]

[0239] Aspect 32: Any of the methods of aspects 23 to 31, wherein the first SRI indicates a first one or more SRS resources from a first subset of SRS resources of a first SRS resource set associated with a first one or more layers, and the second SRI indicates a second one or more SRS resources from a second subset of SRS resources of a second SRS resource set associated with a second one or more layers.

[0341]

[0240] Aspect 33: The method of aspect 32, wherein the first SRI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources, and the second SRI indicates up to a second maximum amount of SRS resources from a second subset of SRS resources.

[0342]

[0241] Aspect 34: Any of the methods of aspects 23 to 33, wherein the first SRI and the second SRI are associated with an aggregate size that is at least partially based on a first bit amount based at least in part on the first SRS resource amount and the highest rank, a second bit amount based at least in part on the second SRS resource amount and the highest rank, or a third bit amount that is at least in part based on a combination of a fourth bit amount based at least in part on the first SRS resource amount and a portion of the highest rank and a fifth bit amount based at least in part on the second SRS resource amount and a portion of the highest rank.

[0343]

[0242] Aspect 35: Any of the methods of aspects 23 to 34, wherein the configuration information indicates a third SRS resource set and a fourth SRS resource set, and a first set of SRS resources included in the first SRS resource set are included in the third SRS resource set, and a second set of SRS resources included in the second SRS resource set are included in the fourth SRS resource set.

[0344]

[0243] Aspect 36: The method of aspect 35, wherein the amount of SRS resources included in the first set of SRS resources is based at least in part on the amount of the first SRS resources and a portion of the highest rank, and the amount of SRS resources included in the second set of SRS resources is based at least in part on the amount of the second SRS resources and a portion of the highest rank.

[0345]

[0244] Aspect 37: Any of the methods of aspects 23 to 36, wherein the DCI indicates SRS resources from both a first SRS resource set and a second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from the first SRS resource set and up to a second maximum amount of SRS resources from the second SRS resource set.

[0346]

[0245] Aspect 38: The method of aspect 37, wherein the first maximum amount of SRS resources is based at least in part on the first SRS resource amount and a portion of the highest rank, and the second maximum amount of SRS resources is based at least in part on the second SRS resource amount and a portion of the highest rank.

[0347]

[0246] Aspect 39: Any of the methods of aspects 23 to 38, wherein the first SRI indicates a first one or more SRS resources from a first SRS resource set associated with a first one or more layers, and the second SRI indicates a second one or more SRS resources from a second SRS resource set associated with a second one or more layers.

[0348]

[0247] Aspect 40: The method of aspect 39, wherein the first SRI indicates up to a first maximum amount of SRS resources from a first SRS resource set, and the second SRI indicates up to a second maximum amount of SRS resources from a second SRS resource set.

[0349] Aspect 41: The method of any of aspects 23 to 40, wherein the first SRS resource set is associated with a first highest rank and the second SRS resource set is associated with a second highest rank.

[0350]

[0249] Aspect 42: The method of aspect 41, wherein the first SRI indicates up to a first maximum amount of SRS resources from a first SRS resource set, the first maximum amount being based at least in part on the first highest rank and the first SRS resource amount, and the second SRI indicates up to a second maximum amount of SRS resources from a second SRS resource set, the second maximum amount being based at least in part on the second highest rank and the second SRS resource amount.

[0351]

[0250] Aspect 43: Any of the methods of aspects 41 to 42, wherein the first SRI and the second SRI jointly indicate a first one or more SRS resources and a second one or more SRS resources from a first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value, or a first one or more SRS resources and a second one or more SRS resources from a second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

[0352]

[0251] Aspect 44: The method of aspect 43, wherein a first maximum amount associated with the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set is based at least in part on the highest rank, the first highest rank, the second highest rank, and the first SRS resource amount, and a second maximum amount associated with the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set is based at least in part on the highest rank, the first highest rank, the second highest rank, and the second SRS resource amount.

[0353]

[0252] Aspect 45: An apparatus for wireless communication in a device, comprising: a processor; a memory coupled to the processor; and instructions stored in the memory, the instructions being executable by the processor to cause the apparatus to perform one or more of the methods of aspects 1 to 22.

[0354]

[0253] Aspect 46: A device for wireless communication, comprising: a memory; and one or more processors coupled to the memory, wherein the one or more processors are configured to perform a method described in one or more of aspects 1 to 22.

[0355]

[0254] Aspect 47: An apparatus for wireless communication, comprising at least one means for performing one or more of the methods of aspects 1 to 22.

[0356]

[0255] Aspect 48: A non-transitory computer-readable medium storing code for wireless communication, the code including instructions executable by a processor to implement one or more of the methods of aspects 1 to 22.

[0357]

[0256] Aspect 49: A non-transitory computer-readable medium storing a set of instructions for wireless communication, the set of instructions including one or more instructions that, when executed by one or more processors of the device, cause the device to perform one or more methods of aspects 1 to 22.

[0358]

[0257] Aspect 50: An apparatus for wireless communication in a device, comprising: a processor; a memory coupled to the processor; and instructions stored in the memory, the instructions being executable by the processor to cause the apparatus to perform one or more of the methods of aspects 23 to 44.

[0359]

[0258] Aspect 51: A device for wireless communication, comprising: a memory; and one or more processors coupled to the memory, wherein the one or more processors are configured to perform one or more of the methods of aspects 23 to 44.

[0360]

[0259] Aspect 52: An apparatus for wireless communication, comprising at least one means for performing one or more of the methods of aspects 23 to 44.

[0361]

[0260] Aspect 53: A non-transitory computer-readable medium storing code for wireless communication, the code including instructions executable by a processor to implement one or more of the methods of aspects 23 to 44.

[0362]

[0261] Aspect 54: A non-transitory computer-readable medium storing a set of instructions for wireless communication, the set of instructions including one or more instructions that, when executed by one or more processors of the device, cause the device to perform one or more methods of aspects 23 to 44.

[0363]

[0262] The above disclosure provides illustration and description, but is not intended to be exhaustive or to limit the embodiments to the precise form disclosed. Modifications and variations may be made in light of the above disclosure or may be acquired from practice of the embodiments.

[0364] As used herein, the term “component” shall be broadly construed as hardware and / or combinations of hardware and software. “Software” shall be broadly construed to mean, among other examples, instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executable files, threads of execution, procedures, and / or functions, whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise. As used herein, a “processor” is implemented in hardware and / or a combination of hardware and software. It will be apparent that the systems and / or methods described herein may be implemented in different forms of hardware and / or combinations of hardware and software. The actual specialized control hardware or software code used to implement these systems and / or methods is not intended to limit the aspects. Accordingly, those skilled in the art will understand that software and hardware may be designed to implement the systems and / or methods based, at least in part, on the description herein, and therefore the operation and behavior of the systems and / or methods will be described herein without reference to specific software code.

[0365]

[0264] As used herein, "meeting a threshold" may 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, not equal to the threshold, etc., depending on the context.

[0366]

[0265] Even if particular combinations of features are recited in the claims and / or disclosed herein, 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 and / or disclosed herein. The disclosure of various aspects includes each dependent claim in combination with every other claim in the claim set. As used herein, a phrase referring to "at least one of" a listing 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 include a, b, c, a+b, a+c, b+c, and a+b+c, as well as any combination having multiples of the same element (e.g., 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 permutation of a, b, and c).

[0367]

[0266] As used herein, no element, act, or instruction should be construed as critical or required 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 referred to in connection with the article "the" and may be used interchangeably with "one or more." Further, 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, terms such as "has," "have," and "having" are intended to be open-ended terms that do not limit the elements they modify (e.g., an element that "has" A can also have B). Additionally, the phrase "based on" is intended to mean "based at least in part on," unless expressly stated otherwise. Also, as used herein, the term "or" is intended to be inclusive when used consecutively and may be used interchangeably with "and / or" unless expressly stated otherwise (e.g., when used in combination with "either" or "only one of"). The inventions described in the claims of the present application as originally filed are set forth below. [C1] A user equipment (UE) for wireless communications, comprising: Memory and one or more processors coupled to the memory; wherein the one or more processors: receiving, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; receive from the base station downlink control information (DCI) for scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, the first SRS resource amount, the second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communications; The UE is configured as follows: [C2] the one or more processors: Transmitting the spatial division multiplexed PUSCH communication using the first one or more SRS resources for the first one or more layers and the second one or more SRS resources for the second one or more layers. 3. The UE of claim 1, further configured: [C3] the one or more processors, for transmitting the spatial division multiplexed PUSCH communication, Transmitting the first one or more layers using a first beam or a first set of transmission parameters associated with the first one or more SRS resources; Transmitting the second one or more layers using a second beam or a second set of transmission parameters associated with the second one or more SRS resources. The UE according to C2, configured to: [C4] The UE of C1, wherein the spatial division multiplexed PUSCH communication is a non-codebook based PUSCH communication. [C5] The first SRI and the second SRI are a first amount of bits based at least in part on the first amount of SRS resources and the highest rank; or a second amount of bits based at least in part on the second amount of SRS resources and the highest rank; The UE of claim 1, wherein the UE is associated with an aggregate size based at least in part on the aggregate size. [C6] The first SRI and the second SRI are the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value; or UE of C1, wherein the UE jointly indicates the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value. [C7] UE according to C1, wherein the DCI indicates SRS resources from both the first SRS resource set and the second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources in the first SRS resource set and up to a second maximum amount of SRS resources from a second subset of SRS resources in the second SRS resource set. [C8] the first SRI indicating the first one or more SRS resources from a first subset of SRS resources of the first SRS resource set associated with the first one or more layers; The UE of C1, wherein the second SRI indicates the second one or more SRS resources from a second subset of SRS resources of the second SRS resource set associated with the second one or more layers. [C9] The first SRI and the second SRI are a first bit amount based at least in part on the first SRS resource amount and the highest rank; a second amount of bits based at least in part on the second amount of SRS resources and the highest rank; or a third amount of bits based at least in part on a combination of a fourth amount of bits based at least in part on the first amount of SRS resources and a portion of the highest rank, and a fifth amount of bits based at least in part on the second amount of SRS resources and the portion of the highest rank. The UE of claim 1, wherein the UE is associated with an aggregate size based at least in part on the aggregate size. [C10] UE according to C1, wherein the configuration information indicates a third SRS resource set and a fourth SRS resource set, a first set of SRS resources included in the first SRS resource set being included in the third SRS resource set, and a second set of SRS resources included in the second SRS resource set being included in the fourth SRS resource set. [C11] UE according to C1, wherein the DCI indicates SRS resources from both the first SRS resource set and the second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from the first SRS resource set and up to a second maximum amount of SRS resources from the second SRS resource set. [C12] the first SRI indicating the first one or more SRS resources from the first SRS resource set associated with the first one or more layers; The UE of C1, wherein the second SRI indicates the second one or more SRS resources from the second SRS resource set associated with the second one or more layers. [C13] The UE of C1, wherein the first SRS resource set is associated with a first highest rank and the second SRS resource set is associated with a second highest rank. [C14] the first SRI indicates up to a first maximum amount of SRS resources from the first SRS resource set, the first maximum amount being based at least in part on the first highest rank and the first amount of SRS resources; The UE of C13, wherein the second SRI indicates up to a second maximum amount of SRS resources from the second SRS resource set, the second maximum amount being based at least in part on the second highest rank and the second amount of SRS resources. [C15] The first SRI and the second SRI are the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value; or UE according to C13, wherein the UE jointly indicates the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value. [C16] 1. A method of wireless communication implemented by a user equipment (UE), comprising: receiving, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; receiving from the base station downlink control information (DCI) scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, the first SRS resource amount, the second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communications; A method comprising: [C17] Transmitting the spatial division multiplexed PUSCH communication using the first one or more SRS resources for the first one or more layers and the second one or more SRS resources for the second one or more layers. The method of C15, further comprising: [C18] The method of C15, wherein the spatial division multiplexed PUSCH communication is a non-codebook based PUSCH communication. [C19] The first SRI and the second SRI are a first amount of bits based at least in part on the first amount of SRS resources and the highest rank; or a second amount of bits based at least in part on the second amount of SRS resources and the highest rank; The method of claim 15, wherein the aggregate size is based at least in part on the [C20] The first SRI and the second SRI are the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value; or The method of C15, jointly indicating the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value. [C21] The method of C15, wherein the DCI indicates SRS resources from both the first SRS resource set and the second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources in the first SRS resource set and up to a second maximum amount of SRS resources from a second subset of SRS resources in the second SRS resource set. [C22] the first SRI indicating the first one or more SRS resources from a first subset of SRS resources of the first SRS resource set associated with the first one or more layers; The method of C15, wherein the second SRI indicates the second one or more SRS resources from a second subset of SRS resources of the second SRS resource set associated with the second one or more layers. [C23] The first SRI and the second SRI are a first bit amount based at least in part on the first SRS resource amount and the highest rank; a second amount of bits based at least in part on the second amount of SRS resources and the highest rank; or a third amount of bits based at least in part on a combination of a fourth amount of bits based at least in part on the first amount of SRS resources and a portion of the highest rank, and a fifth amount of bits based at least in part on the second amount of SRS resources and the portion of the highest rank. The method of claim 15, wherein the aggregate size is based at least in part on the [C24] The method of C15, wherein the configuration information indicates a third SRS resource set and a fourth SRS resource set, a first set of SRS resources included in the first SRS resource set being included in the third SRS resource set, and a second set of SRS resources included in the second SRS resource set being included in the fourth SRS resource set. [C25] The method of C15, wherein the DCI indicates SRS resources from both the first SRS resource set and the second SRS resource set, and the DCI indicates up to a first maximum amount of SRS resources from the first SRS resource set and up to a second maximum amount of SRS resources from the second SRS resource set. [C26] the first SRI indicating the first one or more SRS resources from the first SRS resource set associated with the first one or more layers; The method of C15, wherein the second SRI indicates the second one or more SRS resources from the second SRS resource set associated with the second one or more layers. [C27] The method of C15, wherein the first SRS resource set is associated with a first highest rank and the second SRS resource set is associated with a second highest rank. [C28] the first SRI indicates up to a first maximum amount of SRS resources from the first SRS resource set, the first maximum amount being based at least in part on the first highest rank and the first amount of SRS resources; The method of C26, wherein the second SRI indicates up to a second maximum amount of the indicated SRS resources from the second SRS resource set, the second maximum amount being based at least in part on the second highest rank and the second SRS resource amount. [C29] 1. A non-transitory computer-readable medium storing a set of instructions for wireless communication, the set of instructions comprising: The method includes one or more instructions, which, when executed by one or more processors of a user equipment (UE), cause the UE to: receiving, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; 10. The method of claim 1, further comprising: receiving, from the base station, downlink control information (DCI) for scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications associated with first one or more layers and second one or more layers, the DCI indicating a first one or more SRS resources associated with the first one or more layers and a second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, the first SRS resource amount, the second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communications. [C30] 1. An apparatus for wireless communication, comprising: means for receiving, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; and means for receiving from the base station downlink control information (DCI) scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications associated with first one or more layers and second one or more layers, the DCI indicating a first one or more SRS resources associated with the first one or more layers and a second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, the first SRS resource amount, the second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communications.

Claims

1. 1. A user equipment (UE) for wireless communications, comprising: Memory and one or more processors coupled to the memory; wherein the one or more processors: receiving, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; receive from the base station downlink control information (DCI) scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, the first SRS resource amount, the second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communications; It is structured as follows: The UE, wherein the first SRS resource set is associated with a first highest rank and the second SRS resource set is associated with a second highest rank.

2. the one or more processors: transmitting the spatial division multiplexed PUSCH communication using the first one or more SRS resources for the first one or more layers and the second one or more SRS resources for the second one or more layers. The UE of claim 1 , further configured to:

3. the one or more processors, for transmitting the spatial division multiplexed PUSCH communication, Transmitting the first one or more layers using a first beam or a first set of transmission parameters associated with the first one or more SRS resources; Transmitting the second one or more layers using a second beam or a second set of transmission parameters associated with the second one or more SRS resources. The UE of claim 2 , configured to:

4. 2. The UE of claim 1, wherein the spatial division multiplexed PUSCH communication is a non-codebook based PUSCH communication.

5. The first SRI and the second SRI are a first amount of bits based at least in part on the first amount of SRS resources and the highest rank; or a second amount of bits based at least in part on the second amount of SRS resources and the highest rank; 10. The UE of claim 1, wherein the UE is associated with an aggregate size based at least in part on:

6. The first SRI and the second SRI are the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value; or 2. The UE of claim 1, wherein the UE jointly indicates the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

7. 2. The UE of claim 1, wherein the DCI indicates SRS resources from both the first SRS resource set and the second SRS resource set, and wherein the DCI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources of the first SRS resource set and up to a second maximum amount of SRS resources from a second subset of SRS resources of the second SRS resource set.

8. the first SRI indicates the first one or more SRS resources from a first subset of SRS resources of the first SRS resource set associated with the first one or more layers; 2. The UE of claim 1, wherein the second SRI indicates the second one or more SRS resources from a second subset of SRS resources of the second SRS resource set associated with the second one or more layers.

9. The first SRI and the second SRI are a first amount of bits based at least in part on the first amount of SRS resources and the highest rank; a second amount of bits based at least in part on the second amount of SRS resources and the highest rank; or a third amount of bits based at least in part on a combination of a fourth amount of bits based at least in part on the first amount of SRS resources and a portion of the highest rank, and a fifth amount of bits based at least in part on the second amount of SRS resources and the portion of the highest rank.

10. The UE of claim 1, wherein the UE is associated with an aggregate size based at least in part on:

10. 2. The UE of claim 1, wherein the configuration information indicates a third SRS resource set and a fourth SRS resource set, wherein a first set of SRS resources included in the first SRS resource set is included in the third SRS resource set, and a second set of SRS resources included in the second SRS resource set is included in the fourth SRS resource set.

11. 2. The UE of claim 1, wherein the DCI indicates SRS resources from both the first SRS resource set and the second SRS resource set, and wherein the DCI indicates up to a first maximum amount of SRS resources from the first SRS resource set and up to a second maximum amount of SRS resources from the second SRS resource set.

12. the first SRI indicating the first one or more SRS resources from the first SRS resource set associated with the first one or more layers; 2. The UE of claim 1, wherein the second SRI indicates the second one or more SRS resources from the second SRS resource set associated with the second one or more layers.

13. the first SRI indicates up to a first maximum amount of SRS resources from the first SRS resource set, the first maximum amount being based at least in part on the first highest rank and the first amount of SRS resources; 2. The UE of claim 1, wherein the second SRI indicates up to a second maximum amount of SRS resources from the second SRS resource set, the second maximum amount being based at least in part on the second highest rank and the second amount of SRS resources.

14. The first SRI and the second SRI are the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value; or 2. The UE of claim 1, wherein the UE jointly indicates the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

15. 1. A method of wireless communication implemented by a user equipment (UE), comprising: receiving, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; receiving from the base station downlink control information (DCI) scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communication associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, the first SRS resource amount, the second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communication; Including, The method, wherein the first SRS resource set is associated with a first highest rank and the second SRS resource set is associated with a second highest rank.

16. Transmitting the spatial division multiplexed PUSCH communication using the first one or more SRS resources for the first one or more layers and the second one or more SRS resources for the second one or more layers.

16. The method of claim 15, further comprising:

17. 16. The method of claim 15, wherein the spatial division multiplexed PUSCH communication is a non-codebook based PUSCH communication.

18. The first SRI and the second SRI are a first amount of bits based at least in part on the first amount of SRS resources and the highest rank; or a second amount of bits based at least in part on the second amount of SRS resources and the highest rank; 16. The method of claim 15, wherein the aggregate size is based at least in part on:

19. The first SRI and the second SRI are the first one or more SRS resources and the second one or more SRS resources from the first SRS resource set based at least in part on the dynamic switching indicator being associated with a first value; or 16. The method of claim 15, jointly indicating the first one or more SRS resources and the second one or more SRS resources from the second SRS resource set based at least in part on the dynamic switching indicator being associated with a second value.

20. 16. The method of claim 15, wherein the DCI indicates SRS resources from both the first SRS resource set and the second SRS resource set, and wherein the DCI indicates up to a first maximum amount of SRS resources from a first subset of SRS resources of the first SRS resource set and up to a second maximum amount of SRS resources from a second subset of SRS resources of the second SRS resource set.

21. the first SRI indicates the first one or more SRS resources from a first subset of SRS resources of the first SRS resource set associated with the first one or more layers; 16. The method of claim 15, wherein the second SRI indicates the second one or more SRS resources from a second subset of SRS resources of the second SRS resource set associated with the second one or more layers.

22. The first SRI and the second SRI are a first amount of bits based at least in part on the first amount of SRS resources and the highest rank; a second amount of bits based at least in part on the second amount of SRS resources and the highest rank; or a third amount of bits based at least in part on a combination of a fourth amount of bits based at least in part on the first amount of SRS resources and a portion of the highest rank, and a fifth amount of bits based at least in part on the second amount of SRS resources and the portion of the highest rank.

16. The method of claim 15, wherein the aggregate size is based at least in part on:

23. 16. The method of claim 15, wherein the configuration information indicates a third SRS resource set and a fourth SRS resource set, wherein a first set of SRS resources included in the first SRS resource set is included in the third SRS resource set, and a second set of SRS resources included in the second SRS resource set is included in the fourth SRS resource set.

24. 16. The method of claim 15, wherein the DCI indicates SRS resources from both the first SRS resource set and the second SRS resource set, and wherein the DCI indicates up to a first maximum amount of SRS resources from the first SRS resource set and up to a second maximum amount of SRS resources from the second SRS resource set.

25. the first SRI indicating the first one or more SRS resources from the first SRS resource set associated with the first one or more layers; 16. The method of claim 15, wherein the second SRI indicates the second one or more SRS resources from the second SRS resource set associated with the second one or more layers.

26. the first SRI indicates up to a first maximum amount of SRS resources from the first SRS resource set, the first maximum amount being based at least in part on the first highest rank and the first amount of SRS resources; 17. The method of claim 16, wherein the second SRI indicates up to a second maximum amount of indicated SRS resources from the second SRS resource set, the second maximum amount being based at least in part on the second highest rank and the second amount of SRS resources.

27. 1. A non-transitory computer-readable medium storing a set of instructions for wireless communication, the set of instructions comprising: The method includes one or more instructions, which, when executed by one or more processors of a user equipment (UE), cause the UE to: receiving, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; receive from the base station downlink control information (DCI) scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communication associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, the first SRS resource amount, the second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communication; 10. A non-transitory computer-readable medium, wherein the first SRS resource set is associated with a first highest rank and the second SRS resource set is associated with a second highest rank.

28. 1. An apparatus for wireless communication, comprising: means for receiving, from a base station, configuration information associated with a first sounding reference signal (SRS) resource set and a second SRS resource set, the first SRS resource set including a first SRS resource amount and the second SRS resource set including a second SRS resource amount; means for receiving from the base station downlink control information (DCI) scheduling spatial division multiplexed physical uplink shared channel (PUSCH) communications associated with first one or more layers and second one or more layers, the DCI indicating first one or more SRS resources associated with the first one or more layers and second one or more SRS resources associated with the second one or more layers from at least one of the first SRS resource set or the second SRS resource set based at least in part on at least one of a dynamic switching indicator included in the DCI, a first SRS resource indicator (SRI) included in the DCI, a second SRI included in the DCI, the first SRS resource amount, the second SRS resource amount, or a highest rank associated with the spatial division multiplexed PUSCH communications; The apparatus, wherein the first SRS resource set is associated with a first highest rank and the second SRS resource set is associated with a second highest rank.

Citation Information

Patent Citations

  • Method and device for transmitting or receiving pusch in wireless communication system

    WO2021187823A1