User equipment communication while operating in a secondary cell group deactivated state

By performing RLM and BFD measurements, the UE in an SCG deactivated state can efficiently detect and recover from radio link failures, enhancing communication efficiency and reducing power consumption.

JP2026000922AActive Publication Date: 2026-01-06QUALCOMM INC
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Patent Information

Application Number
JP2025141512
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-05-27
Filing Date
2025-08-27
Publication Date
2026-01-06
Estimated Expiration
2041-12-28

AI Technical Summary

Technical Problem

Existing wireless communication systems face challenges in efficiently managing user equipment (UE) operations in a secondary cell group (SCG) deactivated state, particularly in detecting radio link failures and beam faults, which can lead to power consumption and communication inefficiencies.

Method used

The UE performs radio link monitoring (RLM) and beam fault detection (BFD) reference signal measurements while in an SCG deactivated state and transmits SCG failure information to a master node, enabling RRC reconfiguration for power-efficient recovery.

Benefits of technology

This approach allows for timely detection of radio link failures and beam faults, reducing power consumption and improving communication efficiency by enabling seamless transitions between deactivated and activated states.

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Abstract

Techniques and apparatus related to wireless communications are provided.SOLUTION: Various aspects of the present disclosure generally relate to wireless communications. In some aspects, a user equipment (UE) may perform a radio link monitoring (RLM) reference signal measurement on a primary secondary cell (PSCell) while the UE is operating in a secondary cell group (SCG) deactivated state. The UE may perform a beam failure detection (BFD) reference signal measurement while the UE is operating in the SCG deactivated state. The UE may transmit an SCG failure information message to a master node associated with a master cell group (MCG) based at least in part on one of a PSCell radio link failure (RLF) detection based at least in part on the RLM reference signal measurements, or a BFD based at least in part on the BFD reference signal measurements. Numerous other aspects are described.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This patent application claims priority to U.S. Provisional Patent Application No. 63 / 136,112, entitled "USER EQUIPMENT COMMUNICATIONS WHILE OPERATING IN A SECONDARY CELL GROUP DEACTIVATED STATE," filed January 11, 2021, and U.S. Non-Provisional Patent Application No. 17 / 332,366, entitled "USER EQUIPMENT COMMUNICATIONS WHILE OPERATING IN A SECONDARY CELL GROUP DEACTIVATED STATE," filed May 27, 2021, which are expressly incorporated herein by reference.

[0002] Aspects of the present disclosure relate generally to wireless communications, and to techniques and apparatus for user equipment (UE) communications while operating in a secondary cell group (SCG) deactivated state. [Background technology]

[0003] Wireless communication systems are widely deployed to provide various telecommunication services such as telephony, video, data, messaging, and broadcasts. A typical wireless communication system 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 3rd Generation Partnership Project (3GPP®).

[0004] A wireless network may include several base stations (BSs) that can support communication for several user equipments (UEs). The UEs may communicate with the base stations via a downlink and an uplink. The downlink (or forward link) refers to the communication link from the base station to the UE, and the uplink (or reverse link) refers to the communication link from the UE to the base station. As described in more detail herein, a base station may be referred to as a Node B, gNB, access point (AP), radio head, transmit / receive point (TRP), new radio (NR) BS, 5G Node B, etc.

[0005] The above multiple access technologies have been adopted in various telecommunications standards to provide common protocols that enable different user equipment to communicate at city, national, regional, and even global levels. NR, sometimes referred to as 5G, is a set of extensions to the LTE mobile standard promulgated by 3GPP. NR is designed to improve spectral efficiency, reduce costs, improve service, utilize new spectrum, and better support mobile broadband Internet access by using orthogonal frequency division multiplexing (OFDM) with cyclic prefix (CP) (CP-OFDM) on the downlink (DL) and CP-OFDM and / or SC-FDM (e.g., also known as discrete Fourier transform spread OFDM (DFT-s-OFDM)) on the uplink (UL) to better integrate with other open standards, as well as by supporting 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 [Means for solving the problem]

[0006] In some aspects, a UE for wireless communication includes a memory and one or more processors operably coupled to the memory, the one or more processors configured to perform radio link monitoring (RLM) reference signal measurements on a primary secondary cell (PSCell) while the UE is operating in an SCG deactivated state, perform beam fault detection (BFD) reference signal measurements while the UE is operating in the SCG deactivated state, and transmit an SCG fault information message to a master node associated with a master cell group (MCG) based at least in part on one of the PSCell radio link failure (RLF) detection based at least in part on the RLM reference signal measurements or the BFD based at least in part on the BFD reference signal measurements.

[0007] In some aspects, a master node for wireless communication includes a memory and one or more processors operably coupled to the memory, wherein the one or more processors are configured to: receive an SCG failure information message from a UE operating in an SCG deactivated state based at least in part on one of PSCell RLF detection based at least in part on RLM reference signal measurements or BFD based at least in part on BFD reference signal measurements; transmit the SCG failure information message to a secondary node; receive a radio resource control (RRC) reconfiguration from the secondary node based at least in part on the SCG failure information message; and transmit the RRC reconfiguration received from the secondary node to the UE.

[0008] In some aspects, a method of wireless communication performed by a UE includes performing RLM reference signal measurements on a PSCell while the UE is operating in an SCG deactivated state; performing BFD reference signal measurements while the UE is operating in an SCG deactivated state; and transmitting an SCG fault information message to a master node associated with an MCG based at least in part on one of PSCell RLF detection based at least in part on the RLM reference signal measurements or BFD based at least in part on the BFD reference signal measurements.

[0009] In some aspects, a method of wireless communication performed by a master node includes receiving an SCG failure information message from a UE operating in an SCG deactivated state based at least in part on one of PSCell RLF detection based at least in part on RLM reference signal measurements or BFD based at least in part on BFD reference signal measurements; transmitting the SCG failure information message to a secondary node; receiving an RRC reconfiguration from the secondary node based at least in part on the SCG failure information message; and transmitting the RRC reconfiguration received from the secondary node to the UE.

[0010] In some aspects, a non-transitory computer-readable medium storing a set of instructions for wireless communications includes one or more instructions that, when executed by one or more processors of a UE, cause the UE to perform RLM reference signal measurements on a PSCell while the UE is operating in an SCG deactivated state, perform BFD reference signal measurements while the UE is operating in an SCG deactivated state, and transmit an SCG fault information message to a master node associated with an MCG based at least in part on one of PSCell RLF detection based at least in part on the RLM reference signal measurements or BFD based at least in part on the BFD reference signal measurements.

[0011] In some aspects, a non-transitory computer-readable medium storing a set of instructions for wireless communications includes one or more instructions that, when executed by one or more processes of a master node, cause the master node to receive an SCG failure information message from a UE operating in an SCG deactivated state based at least in part on one of PSCell RLF detection based at least in part on RLM reference signal measurements or BFD based at least in part on BFD reference signal measurements; transmit the SCG failure information message to a secondary node; receive an RRC reconfiguration from the secondary node that is based at least in part on the SCG failure information message; and transmit the RRC reconfiguration received from the secondary node to the UE.

[0012] In some aspects, an apparatus for wireless communication includes means for performing RLM reference signal measurements on a PSCell while the apparatus is operating in an SCG deactivated state; means for performing BFD reference signal measurements while the apparatus is operating in an SCG deactivated state; and means for transmitting an SCG fault information message to a master node associated with an MCG based at least in part on one of PSCell RLF detection based at least in part on the RLM reference signal measurements or BFD based at least in part on the BFD reference signal measurements.

[0013] In certain aspects, an apparatus for wireless communication includes means for receiving an SCG failure information message from a UE operating in an SCG deactivated state based at least in part on one of PSCell RLF detection based at least in part on RLM reference signal measurements or BFD based at least in part on BFD reference signal measurements; means for transmitting the SCG failure information message to a secondary node; means for receiving an RRC reconfiguration from the secondary node based at least in part on the SCG failure information message; and means for transmitting the RRC reconfiguration received from the secondary node to the UE.

[0014] Aspects generally include methods, apparatus, systems, computer program products, non-transitory computer-readable media, user equipment, base stations, nodes, master nodes, secondary nodes, wireless communication devices, and / or processing systems as fully described herein with reference to and as illustrated in the drawings and this specification.

[0015] The foregoing has outlined rather broadly the features and technical advantages of examples according to the present disclosure in order that the following Detailed Description may be better understood. Additional features and advantages will be described below. The concepts and examples disclosed may readily be used 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 drawings. Each of the figures is provided for the purpose of illustration and description, and not as a definition of the limits of the claims.

[0016] 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 by 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, or artificial intelligence-enabled devices). Aspects may be implemented with chip-level components, modular components, non-modular components, non-chip-level components, device-level components, or system-level components. Devices incorporating the described aspects and features may include additional components and features for the implementation and practice of the claims and described aspects. For example, transmission and reception of wireless signals may include several components for analog and digital applications (e.g., hardware components including antennas, RF chains, power amplifiers, modulators, buffers, processors, interleavers, adders, or summers). It is contemplated that the aspects described herein may be practiced in a wide variety of devices, components, systems, distributed configurations, or end-user devices of various sizes, shapes, and configurations.

[0017] So that the above-listed features of the present disclosure may be understood in detail, a more detailed description, briefly summarized above, may be had by reference 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 illustrate only some typical embodiments of the present disclosure and therefore should not be considered limiting of its scope. The same reference numbers in different drawings may identify the same or similar elements. [Brief explanation of the drawings]

[0018] [Figure 1] FIG. 1 illustrates an example of a wireless network according to the present disclosure. [Figure 2] FIG. 1 illustrates an example of a base station in communication with a UE in a wireless network, in accordance with the present disclosure. [Figure 3] FIG. 1 illustrates an example associated with UE communications while operating in an SCG deactivated state, according to the present disclosure. [Figure 4] FIG. 1 illustrates an example process associated with UE communications while operating in an SCG deactivated state, in accordance with the present disclosure. [Figure 5] FIG. 1 illustrates an example process associated with UE communications while operating in an SCG deactivated state, in accordance with the present disclosure. [Figure 6] FIG. 1 is a block diagram of an exemplary apparatus for wireless communication according to the present disclosure. [Figure 7] FIG. 1 is a block diagram of an exemplary apparatus for wireless communication according to the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0019] 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 intended so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. Based on the teachings herein, those skilled in the art will appreciate 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 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.

[0020] Several aspects of telecommunications systems will now be presented with reference to various apparatus and techniques. These apparatus and techniques are described in the following detailed description 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.

[0021] It should be noted that although aspects may be described herein using terminology commonly associated with 5G or New Radio (NR) radio access technologies (RATs), aspects of the present disclosure may apply to other RATs, such as 3G RATs, 4G RATs, and / or post-5G (e.g., 6G) RATs.

[0022] FIG. 1 illustrates an example of a wireless network 100 according to the present disclosure. The wireless network 100 may be or include elements of a 5G (NR) network and / or an LTE network, among other examples. The wireless network 100 may include several base stations 110 (shown as BS 110a, BS 110b, BS 110c, and BS 110d) and other network entities. A base station (BS) is an entity that communicates with user equipment (UE) and may also be referred to as an NR BS, Node B, gNB, 5G Node B (NB), access point, transmit reception point (TRP), etc. Each base station may provide communication coverage for a particular geographic area. In 3GPP, the term “cell” can refer to the coverage area of ​​a base station and / or a base station subsystem serving this coverage area, depending on the context in which the term is used.

[0023] A base station 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 with a service subscription. A pico cell may cover a relatively small geographic area and may allow unrestricted access by UEs with a service subscription. A femto cell may cover a relatively small geographic area (e.g., a home) and may allow restricted access by UEs that have an association with the femto cell (e.g., UEs in a Closed Subscriber Group (CSG)). A base station for a macro cell may be referred to as a macro base station. A base station for a pico cell may be referred to as a pico base station. A base station for a femto cell may be referred to as a femto base station or a home base station. In the example shown in FIG. 1, base station 110a may be a macro base station for macro cell 102a, base station 110b may be a pico base station for pico cell 102b, and base station 110c may be a femto base station for femto cell 102c. A base station may support one or more (e.g., three) cells. The terms “eNB,” “base station,” “NR BS,” “gNB,” “TRP,” “AP,” “Node B,” “5G NB,” and “cell” may be used interchangeably herein.

[0024] In some aspects, the cells may not necessarily be fixed, and the geographic area of ​​the cells may move according to the location of the mobile base station. In some aspects, the base stations may be interconnected to each other and / or to one or more other base stations or network nodes (not shown) in wireless network 100 through various types of backhaul interfaces, such as direct physical connections or virtual networks, using any suitable transport network.

[0025] Wireless network 100 may also include relay stations. A relay station is an entity that can receive data transmissions from an upstream station (e.g., a base station or a UE) and send the data transmissions to a downstream station (e.g., a UE or a base station). A relay station may also be a UE that can relay transmissions for other UEs. In the example shown in FIG. 1, relay base station 110d may communicate with macro base station 110a and UE 120d to facilitate communication between base station 110a and UE 120d. A relay base station may also be called a relay station, a relay base station, a relay, etc.

[0026] Wireless network 100 may be a heterogeneous network including different types of base stations, such as macro base stations, pico base stations, femto base stations, relay base stations, etc. These different types of base stations may have different transmit power levels, different coverage areas, and may have different impacts on interference in 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).

[0027] A network controller 130 may couple to a set of base stations and provide coordination and control for these base stations. The network controller 130 may communicate with the base stations via a backhaul. The base stations may also communicate with each other directly or indirectly, e.g., via wireless or wireline backhaul.

[0028] The UEs 120 (e.g., 120a, 120b, 120c) may be dispersed throughout the wireless network 100, and each UE may be fixed or mobile. A UE may also be referred to as an access terminal, terminal, mobile station, subscriber unit, station, etc. A UE may be a cellular phone (e.g., a smartphone), a personal digital assistant (PDA), a wireless modem, a wireless communication device, a handheld device, a laptop computer, a cordless phone, a wireless local loop (WLL) station, a tablet, a camera, a gaming device, a netbook, a smartbook, an ultrabook, a medical device or equipment, a biometric sensor / device, a wearable device (smart watch, smart clothing, smart glasses, smart wristband, smart jewelry (e.g., smart ring, smart bracelet)), an entertainment device (e.g., a music or video device, or satellite radio), a vehicle component or sensor, a smart meter / sensor, industrial manufacturing equipment, a global positioning system device, or any other suitable device configured to communicate via a wireless or wired medium.

[0029] Some UEs may be considered machine-type communication (MTC) UEs or evolved or enhanced machine-type communication (eMTC) UEs. MTC UEs and eMTC UEs include, for example, robots, drones, remote devices, sensors, meters, monitors, and / or location tags that may communicate with a base station, another device (e.g., a remote device), or some other entity. A wireless node may provide connectivity for or to a network (e.g., a wide area network such as the Internet or a cellular network) via, for example, a wired or wireless communication link. Some UEs may be considered Internet of Things (IoT) devices and / or may be implemented as NB-IoT (narrowband Internet of Things) devices. Some UEs may be considered customer premises equipment (CPE). 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 aspects, 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.

[0030] Generally, any number of wireless networks may be deployed in a given geographic area. Each wireless network may support a particular RAT and may operate on one or more frequencies. A RAT may also be referred to as a radio technology, air interface, etc. A frequency may also be referred to as a carrier, frequency channel, etc. Each frequency may support a single RAT in a given geographic area to avoid interference between wireless networks of different RATs. In some cases, an NR network or a 5G RAT network may be deployed.

[0031] In some aspects, two or more UEs 120 (e.g., shown as UE 120a and UE 120e) may communicate directly (e.g., without using a base station 110 as an intermediary for communicating 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, a vehicle-to-everything (V2X) protocol (which may include, e.g., a vehicle-to-vehicle (V2V) protocol or a vehicle-to-infrastructure (V2I) protocol, etc.), and / or a mesh network. In this case, the UEs 120 may perform scheduling operations, resource selection operations, and / or other operations described elsewhere herein as being performed by the base station 110.

[0032] The devices of wireless network 100 may communicate using an electromagnetic spectrum, which may be subdivided into various classes, bands, channels, etc. based on frequency or wavelength. For example, the devices of wireless network 100 may communicate using an operating band having a first frequency range (FR1) that may range from 410 MHz to 7.125 GHz and / or an operating band having a second frequency range (FR2) that may range from 24.25 GHz to 52.6 GHz. Frequencies between FR1 and FR2 are sometimes referred to as mid-band frequencies. Although a portion of FR1 is greater than 6 GHz, FR1 is often referred to as the “sub-6 GHz” band. Similarly, FR2 is often referred to as the “millimeter wave” band, 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). Thus, unless otherwise specified, it should be understood that terms such as "sub-6 GHz," as used herein, can broadly refer to frequencies below 6 GHz, frequencies within FR1, and / or mid-band frequencies (e.g., greater than 7.125 GHz). Similarly, unless otherwise specified, it should be understood that terms such as "millimeter wave," as used herein, can broadly refer to frequencies within the EHF band, frequencies within FR2, and / or mid-band frequencies (e.g., less than 24.25 GHz). The frequencies included in FR1 and FR2 may be modified, and it is contemplated that the techniques described herein are applicable to those modified frequency ranges.

[0033] As indicated above, Figure 1 is provided as an example. Other examples may differ from the example described with respect to Figure 1.

[0034] 2 is a diagram illustrating an example base station 110 200 communicating with a UE 120 in wireless network 100 in accordance with the present disclosure. Base station 110 may be equipped with T antennas 234a through 234t, and UE 120 may be equipped with R antennas 252a through 252r, where in general T≧1 and R≧1.

[0035] At base station 110, transmit processor 220 may receive data for one or more UEs from data source 212, select one or more modulation and coding schemes (MCSs) for each UE based at least in part on a channel quality indicator (CQI) received from the UE, process (e.g., encode and modulate) the data for each UE based at least in part on the MCS selected for the UE, and provide data symbols to all UEs. Transmit processor 220 may also process system information (e.g., for semi-static resource partitioning information (SRPI)) and control information (e.g., CQI requests, grants, and / or higher layer signaling) and provide overhead and control symbols. Transmit processor 220 may also generate reference symbols for reference signals (e.g., cell-specific reference signals (CRS) or demodulation reference signals (DMRS)) and synchronization signals (e.g., primary synchronization signals (PSS) or secondary synchronization signals (SSS)). A 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 T output symbol streams to T modulators (MODs) 232a through 232t. Each modulator 232 may process a respective output symbol stream (e.g., for OFDM) to obtain an output sample stream. Each modulator 232 may further process (e.g., convert to analog, amplify, filter, and upconvert) the output sample stream to obtain a downlink signal. The T downlink signals from modulators 232a through 232t may be transmitted via T antennas 234a through 234t, respectively.

[0036] At UE 120, antennas 252a through 252r may receive downlink signals from base station 110 and / or other base stations and may provide received signals to demodulators (DEMODs) 254a through 254r, respectively. Each demodulator 254 may condition (e.g., filter, amplify, downconvert, and digitize) the received signal to obtain input samples. Each demodulator 254 may further process the input samples (e.g., for OFDM) to obtain received symbols. A MIMO detector 256 may obtain received symbols from all R demodulators 254a through 254r, perform MIMO detection on the received symbols if applicable, and provide detected symbols. A receive processor 258 may process (e.g., demodulate and decode) the detected symbols, provide decoded data for UE 120 to a data sink 260, and provide decoded control information and system information to 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 channel quality indicator (CQI) parameter, among other examples. In some aspects, one or more components of the UE 120 may be included in the housing 284.

[0037] 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 may communicate with the base stations 110 via the communication unit 294.

[0038] Antennas (e.g., antennas 234a-234t and / or antennas 252a-252r) may include or be contained within one or more antenna panels, antenna groups, sets of antenna elements, and / or antenna arrays, among other examples. An antenna panel, antenna group, set of antenna elements, and / or antenna array may include one or more antenna elements. An antenna panel, antenna group, set of antenna elements, and / or antenna array may include a set of coplanar antenna elements and / or a set of non-coplanar antenna elements. An antenna panel, antenna group, set of antenna elements, and / or antenna array may include antenna elements within a single housing and / or antenna elements within multiple housings. An antenna panel, antenna group, set of antenna elements, and / or antenna array may include one or more antenna elements coupled to one or more transmitting and / or receiving components, such as one or more components of FIG. 2.

[0039] 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 reporting including RSRP, RSSI, RSRQ, and / or CQI). The transmit processor 264 may also generate reference symbols for one or more reference signals. The symbols from the transmit processor 264 may be precoded by a TX MIMO processor 266, if applicable, further processed by modulators 254a-254r (e.g., for DFT-s-OFDM or CP-OFDM), and transmitted to the base station 110. In some aspects, the modulator and demodulator (e.g., MOD / DEMOD 254) of the UE 120 may be included within the modem of the UE 120. In some aspects, the UE 120 includes a transceiver. The transceiver may include any combination of antennas 252, modulators and / or demodulators 254, MIMO detectors 256, receive processors 258, transmit processors 264, and / or TX MIMO processors 266. The transceiver may be used to perform any aspects of the methods described herein, for example, via a processor (e.g., controller / processor 280) and memory 282, as described with respect to FIGS.

[0040] At the base station 110, uplink signals from the UE 120 and other UEs may be received by the antenna 234, processed by a demodulator 232, detected by a MIMO detector 236, if applicable, and further processed by a receive processor 238 to obtain decoded data and control information sent 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 to schedule the UE 120 for downlink and / or uplink communication. In some aspects, a modulator and demodulator (e.g., MOD / DEMOD 232) of the base station 110 may be included within a modem of the base station 110. In some aspects, the base station 110 includes a transceiver. The transceiver may include any combination of antennas 234, modulators and / or demodulators 232, MIMO detectors 236, receive processors 238, transmit processors 220, and / or TX MIMO processors 230. The transceiver may be used to perform any aspects of the methods described herein, for example, by a processor (e.g., controller / processor 240) and memory 242, as described with respect to FIGS.

[0041] The controller / processor 240 of the base station 110, the controller / processor 280 of the UE 120, and / or any other components of FIG. 2 may perform one or more techniques associated with UE communications while operating in an SCG deactivated state, 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 components of FIG. 2 may perform or direct the operation of, for example, process 400 of FIG. 4, process 500 of FIG. 5, and / or other processes as described herein. The memory 242 and the memory 282 may store data and program codes for the base station 110 and the UE 120, respectively. In some aspects, 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 the base station 110 and / or the UE 120 (e.g., immediately or after being compiled, converted, and / or interpreted), may cause the one or more processors, the UE 120, and / or the base station 110 to perform or direct operations of, e.g., process 400 of FIG. 4, process 500 of FIG. 5, and / or other processes as described herein. In some aspects, executing the instructions may include executing the instructions, converting the instructions, compiling the instructions, and / or interpreting the instructions, among other examples.

[0042] In some aspects, a UE (e.g., UE 120) includes means for performing RLM reference signal measurements on a PSCell while the UE is operating in an SCG deactivated state, means for performing BFD reference signal measurements while the UE is operating in an SCG deactivated state, or means for transmitting an SCG failure information message to a master node associated with an MCG based at least in part on one of: PSCell RLF detection based at least in part on the RLM reference signal measurements, or BFD based at least in part on the BFD reference signal measurements. The means for the UE to perform the operations described herein may include, for example, one or more of antenna 252, demodulator 254, MIMO detector 256, receive processor 258, transmit processor 264, TX MIMO processor 266, modulator 254, controller / processor 280, or memory 282.

[0043] In some aspects, the master node (e.g., base station 110) includes means for receiving an SCG failure information message from a UE operating in an SCG deactivated state based at least in part on one of PSCell RLF detection based at least in part on RLM reference signal measurements or BFD based at least in part on BFD reference signal measurements; transmitting the SCG failure information message to a secondary node; receiving an RRC reconfiguration from the secondary node based at least in part on the SCG failure information message; and transmitting the RRC reconfiguration received from the secondary node to the UE.

[0044] In some aspects, a master node as described herein is a base station 110, is included within the base station 110, or includes one or more components of the base station 110 shown in FIG. 2. In some aspects, the means for the master node to perform the operations described herein may include, for example, one or more of the transmit processor 220, the TX MIMO processor 230, the modulator 232, the antenna 234, the demodulator 232, the MIMO detector 236, the receive processor 238, the controller / processor 240, the memory 242, or the scheduler 246.

[0045] 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.

[0046] As noted above, Figure 2 is given as an example. Other examples may differ from those described with respect to Figure 2.

[0047] When the UE, the master node, and / or the secondary node does not currently have data to transmit via the SCG, the UE may enter an SCG deactivated state to conserve power. The UE can enter the SCG deactivated state based at least in part on a deactivation command received from a base station. The UE may transition from the SCG deactivated state to the SCG activated state based at least in part on data being available at the UE for transmission via the SCG, the UE, the master node, and / or the secondary node, and based at least in part on the UE receiving an activation command from the base station.

[0048] When the UE is operating in an SCG deactivated state, the UE may perform radio resource management (RRM) measurements, RLM measurements, and / or BFD for a PSCell. The UE may detect RLF for a PSCell based at least in part on the RRM measurements and / or RLM measurements. RLF may occur for a UE when the UE's PSCell is out of coverage.

[0049] During an RLM procedure performed while the UE is operating in an SCG deactivated state, the UE may measure downlink RLM reference signals relative to a PSCell received from the base station, where the downlink RLM reference signals may correspond to a synchronization signal block (SSB) or physical broadcast channel (PBCH) signal, or may correspond to a periodic channel state information reference signal (CSI-RS) transmitted on a beam. The UE may be configured with a set of RLM reference signals, which may be transmitted from the base station in the UE's currently used beam and / or the UE's neighbor beams.

[0050] As an example, a base station may transmit a first RLM reference signal on a first beam, a second RLM reference signal on a second beam, and a third RLM reference signal on a third beam, where the second beam may be associated with a currently used beam and the first and third beams may be associated with neighbor beams.

[0051] The UE may be configured to measure a maximum number of RLM reference signals based at least in part on the carrier frequency. For example, for carrier frequencies below 3 GHz, the UE may be configured to measure a maximum of two RLM reference signals. For carrier frequencies between 3 GHz and 6 GHz, the UE may be configured to measure a maximum of four RLM reference signals. For carrier frequencies above 6 GHz, the UE may be configured to measure a maximum of eight RLM reference signals.

[0052] Because different sets of beams may provide coverage in different portions of the cell, a moving UE, such as a UE moving within the cell, may be provided with an updated set of RLM reference signals to monitor as the UE moves throughout the cell. For example, the UE may receive an indication of an updated set of RLM reference signals from the base station based at least in part on the UE moving from a first area of ​​the cell to a second area of ​​the cell.

[0053] The UE may detect RLM based at least in part on the out-of-sync indication and / or the in-sync indication. The out-of-sync indication is detected when the out-of-sync indication exceeds a configured threshold (Q out ) (e.g., all of the RLM reference signals configured for the UE). An out-of-sync indication may correspond to the presence of an RLF for the UE. An in-sync indication may correspond to the presence of an RLF for the UE. in ), the RLF may be associated with an RLM reference signal (e.g., any of the RLM reference signals configured for the UE) greater than . The in-sync indication may correspond to the absence of RLM for the UE. After the UE detects a certain number of consecutive out-of-sync indications, indicating that channel conditions have deteriorated, the UE may detect an RLF when no in-sync indication occurs within the duration of the timer.

[0054] The UE may measure a set of configured BFD reference signals, such as periodic CSI-RS, transmitted from the base station to the UE on a set of beams. The UE may determine whether the BFD reference signals (e.g., all BFD reference signals configured for the UE) exceed a configured threshold (Q out_BFD ) is less than the configured threshold. The beam failure indication may be provided by the UE's physical layer to the UE's medium access control (MAC) layer based at least in part on the BFD reference signal being less than the configured threshold. The UE's MAC layer may determine beam failure based at least in part on the configured maximum number of beam failure indications being met. In other words, the UE may determine BFD based at least in part on the configured maximum number of beam failure indications being met. The UE may initiate BFR based at least in part on the BFD. The UE may initiate BFR based at least in part on performing a random access channel (RACH) procedure on a new beam from a list of candidate beams configured by the base station. The new beam may be selected based at least in part on the configured threshold (Q out_BFD ) may not be associated with a BFD reference signal.

[0055] When the UE is in an SCG deactivated state, the UE may detect an RLF (e.g., a PSCell RLF due to the PSCell being out of coverage for the UE) based at least in part on RLM measurements and / or BFD. In some cases, detecting an RLF based at least in part on RLM measurements may be more robust compared to using BFD to detect an RLF. For example, RLM measurements may be associated with using an in-sync indication that may indicate when radio conditions have improved, so that temporary degradation may not trigger an RLF. In the case of an SCG RLF, SCG failure information may be communicated by the UE via the MCG to initiate radio link recovery, and may not be communicated via the SCG. Furthermore, BFR may be associated with the UE performing a RACH procedure, which may consume an excessive amount of power when the UE is in an SCG deactivated state. As a result, the RLM mechanism may be more advantageous than BFD / BFR when detecting an RLF.

[0056] When operating in the SCG deactivated state, BFD in the UE may cause BFR in the UE, which may require the UE to perform a RACH procedure while still operating in the SCG deactivated state. Because the SCG deactivated state is a power saving state for the UE, performing a RACH procedure may be undesirable and may drain power in the UE due to the various communications involved during the RACH procedure.

[0057] In various aspects of the techniques and apparatus described herein, while the UE is operating in an SCG deactivated state, the UE may perform RLM reference signal measurements on a PSCell. The UE may perform BFD reference signal measurements while the UE is operating in an SCG deactivated state. The UE may transmit an SCG failure information message to a master node associated with an MCG based at least in part on PSCell RLF detection based at least in part on the RLM reference signal measurements and / or BFD based at least in part on the BFD reference signal measurements. The SCG failure information message may indicate RLM reference signal measurements, BFD reference signal measurements, and / or other reference signal measurements to be reported by the UE based at least in part on configurations received from the master node or from a secondary node via the master node. The UE may receive an RRC reconfiguration from the master node based at least in part on the SCG failure information message transmitted to the master node. The RRC reconfiguration may include a RACH parameter configuration to be used by the UE after transitioning from the SCG deactivated state to the SCG activated state. The RACH parameter configuration may define one or more beams or preamble indices, e.g., updated contention-free random access (CFRA) preambles, to be used to perform the RACH and associated physical random access channel (PRACH) opportunities. The UE may transition from an SCG deactivated state to an SCG activated state. The UE may perform a RACH procedure to access the PSCell based at least in part on the RACH parameter configuration and after transitioning to the SCG activated state.

[0058] 3 is a diagram illustrating example 300 of UE communication while operating in an SCG deactivated state in accordance with the present disclosure. As shown in FIG. 3, example 300 includes communication between a UE (e.g., UE 120d), a master node (e.g., base station 110a), and a secondary node (e.g., base station 110d). In some aspects, the UE, the master node, and the secondary node may be included within a wireless network such as wireless network 100. In some aspects, the UE, the master node, and the secondary node may operate within a multi-RAT dual connectivity (MR-DC) system.

[0059] As indicated by reference numeral 302, the UE may receive an RLM reference signal. The UE may receive the RLM reference signal from a secondary node. The secondary node may be associated with an SCG that may include a PSCell. The RLM reference signal may be received on a PSCell while the UE is operating in an SCG deactivated state. The RLM reference signal may be a downlink RLM reference signal. The RLM reference signal may be an SSB signal or a PBCH signal, or the RLM reference signal may be a periodic CSI-RS. The RLM reference signal may be received at the UE on a beam or a set of beams.

[0060] As indicated by reference numeral 304, the UE may receive a BFD reference signal. The UE may receive a BFD reference signal from a secondary node. The BFD reference signal may be received on a PSCell while the UE is operating in an SCG deactivated state. The BFD reference signal may be a periodic CSI-RS. The RLM reference signal may be received at the UE on a beam or a set of beams.

[0061] As indicated by reference numeral 306, the UE may perform RLM reference signal measurements on the PSCell while the UE is operating in an SCG deactivated state. The UE may measure received RLM reference signals to obtain RLM reference signal measurement values. In other words, the UE may perform RLM on the PSCell while in an SCG deactivated state. In addition to or as an alternative to performing RLM reference signal measurements, the UE may perform BFD reference signal measurements on the PSCell while the UE is operating in an SCG deactivated state. The UE may measure received BFD reference signals to obtain BFD reference signal measurement values.

[0062] As indicated by reference numeral 308, the UE may detect a PSCell RLF based at least in part on the RLM reference signal measurements. For example, the UE may detect a PSCell RLF based at least in part on the RLM reference signal measurements not meeting a threshold. Alternatively or additionally, the UE may perform BFD based at least in part on the BFD reference signal measurements. For example, the UE may determine BFD based at least in part on the BFD reference signal measurements not meeting a threshold.

[0063] As indicated by reference numeral 310, the UE may transmit an SCG failure information message to a master node associated with the MCG. The UE may transmit the SCG failure information message based at least in part on PSCell RLF detection, which may be based at least in part on RLM reference signal measurements. Alternatively, the UE may transmit the SCG failure information message based at least in part on BFD, which may be based at least in part on BFD reference signal measurements. The UE may transmit the SCG failure information message based at least in part on an SCG failure recovery procedure initiated at the UE. In other words, the UE may initiate an SCG failure recovery procedure, which may require transmitting an SCG failure information message via the MCG based in part on the UE detecting a PSCell RLF or the UE detecting a beam failure.

[0064] In some aspects, the master node may forward the SCG failure information message to the secondary node. Alternatively, the master node may transmit the information indicated in the SCG failure information message to the secondary node.

[0065] In some aspects, the SCG failure information message may indicate RLM reference signal measurements or BFD reference signal measurements. In other words, the UE may report beam measurement results in the SCG failure information message.

[0066] In some aspects, a UE may receive a configuration from a master node that enables the UE to initiate an SCG failure recovery procedure based at least in part on BFD. In other words, it may be configurable by the network for the UE to initiate an SCG failure recovery procedure via an MCG based at least in part on BFD. In some aspects, the UE may receive a configuration from a secondary node via the master node. In other words, the secondary node may send the configuration to the master node, and the master node may forward the configuration to the UE.

[0067] As indicated by reference numeral 312, the UE may receive an RRC reconfiguration from the master node based at least in part on the SCG failure information message transmitted to the master node. The RRC reconfiguration may indicate an updated RLM configuration including an updated set of beams that the UE should measure and / or an updated set of RLM reference signals that the UE should measure. In other words, the RRC reconfiguration may indicate a new RLM configuration with a new set of beams that the UE should measure and / or a new set of RLM reference signals that the UE should measure. The RRC reconfiguration may enable the UE to perform updated RLM reference signal measurements.

[0068] In some aspects, the UE may receive the RRC configuration from the secondary node via the master node. In other words, the secondary node may transmit the RRC configuration to the master node, and the master node may forward the RRC configuration to the UE.

[0069] In some aspects, the RRC reconfiguration may include information elements (IEs) associated with performing RLM measurements, performing BFD measurements, and / or reporting measurement results including beam measurements based at least in part on PSCell RLF detection or BFD while the UE is operating in an SCG deactivated state. In other words, the RRC reconfiguration may include IEs associated with RLM measurements and beam measurements, as well as measurement reporting in an SCG deactivated state.

[0070] In some aspects, the RRC reconfiguration may indicate a set of RLM reference signals that the UE should measure, a set of BFD reference signals that the UE should measure, and / or a set of reference signals that the UE should measure that are separate from the set of RLM and BFD reference signals. The RLM reference signals, BFD reference signals, and reference signals that are separate from the set of RLM and BFD reference signals may be configured to be transmitted by the secondary node using a beam associated with the PSCell. In other words, an IE in the RRC reconfiguration may indicate a set of RLM measurements that the UE should measure, a set of BFD reference signals that the UE should measure, and a set of reference signals that the UE should measure in addition to the RLM and BFD reference signals, where such reference signals may be transmitted within a beam in the PSCell.

[0071] In some aspects, the RRC reconfiguration may indicate that the UE should transmit an SCG failure information message based at least in part on BFD and that the SCG failure information message should include a beam measurement report. The beam measurement report may include a BFD reference signal measurement. In other words, the RRC reconfiguration may include an indication as to whether the UE should transmit SCG failure information after determining a beam failure and include a beam measurement report within the SCG failure information.

[0072] In some aspects, the RRC reconfiguration may indicate that the SCG failure information message should include a beam measurement report, which may include BFD reference signal measurements, when the UE is operating in an SCG deactivated state. In other words, the RRC reconfiguration may include an indication as to whether the UE should include a beam measurement report in the SCG failure information transmitted when the UE is in an SCG deactivated state.

[0073] In some aspects, the RRC reconfiguration may indicate that the SCG failure information message should include RLM reference signal measurements, BFD reference signal measurements, and / or reference signal measurements separate from the RLM and BFD reference signal measurements. In other words, the RRC reconfiguration may indicate a set of beam measurements to report in the SCG failure information, which may be associated with reference signals, in addition to the RLM reference signal.

[0074] In some aspects, the RRC reconfiguration may indicate a RACH parameter configuration that the UE should use after transitioning from an SCG deactivated state to an SCG activated state. The RACH parameter configuration may define one or more beams to use to perform the RACH and associated RACH opportunities, and / or a preamble index to be associated with the RACH procedure. In other words, the RRC reconfiguration including the updated RLM configuration may also provide the RACH parameter configuration to use after SCG activation. The RRC reconfiguration may define an association between an SSB / PBCH block index (or beam) and a physical random access channel (PRACH) opportunity, and / or a preamble index.

[0075] In some aspects, the UE may receive an SCG activation command from the master node to transition the UE from an SCG deactivated state to an SCG activated state. The SCG activation command may indicate the RACH parameter configuration. In other words, in this example, the UE may receive the RACH parameter configuration via the SCG activation command as opposed to an RRC reconfiguration.

[0076] The UE may transition from the SCG deactivated state to the SCG activated state, as indicated by reference numeral 314. The UE may transition to the SCG activated state based at least in part on an SCG activation command received from the master node.

[0077] As indicated by reference numeral 316, the UE may perform a RACH procedure with the secondary node after the UE transitions to the SCG activated state. For example, the UE may determine that a timing advance (TA) timer has expired. The UE may perform the RACH procedure to access a PSCell associated with the SCG based at least in part on the TA timer having expired. The UE may perform the RACH procedure based at least in part on a RACH parameter configuration that may be received at the UE via RRC reconfiguration or via an SCG activation command. In other words, after SCG activation, if the TA timer has expired, the UE may perform a RACH using the configured beam and associated RACH parameters. A beam may be selected based at least in part on a measured quality (e.g., a measured RSRP) and / or whether a contention-free RACH is configured for that beam.

[0078] In some aspects, the UE may determine that the TA timer has not expired, and the UE may not perform a RACH procedure to access a PSCell associated with the secondary node based at least in part on the TA timer not having expired. In other words, when the TA timer has not expired, the UE may not perform a RACH to access a PSCell. An example scenario in which the UE does not perform a RACH to access a PSCell is when the TA timer has not expired and there is at least one configured beam with a measured signal quality, e.g., an RSRP, that meets a threshold, that the UE may use.

[0079] As indicated above, Figure 3 is given as an example. Other examples may differ from the example described with respect to Figure 3.

[0080] 4 illustrates an example process 400, performed by, for example, a UE, in accordance with the present disclosure. The example process 400 is an example of performing operations associated with user equipment communications while a UE (e.g., UE 120) is operating in an SCG deactivated state.

[0081] 4, in some aspects, process 400 may include performing RLM reference signal measurements on a PSCell while the UE is operating in an SCG deactivated state (block 410). For example, the UE may (e.g., using measurement component 608 shown in FIG. 6) perform RLM reference signal measurements on a PSCell while the UE is operating in an SCG deactivated state, as described above.

[0082] 4, in some aspects, the process 400 may include performing BFD reference signal measurements while the UE is operating in an SCG deactivated state (block 420). For example, the UE (e.g., using the measurement component 608) may perform BFD reference signal measurements while the UE is operating in an SCG deactivated state, as described above.

[0083] 4, in some aspects, process 400 may include transmitting an SCG fault information message to a master node associated with an MCG based at least in part on one of a PSCell RLF detection based at least in part on RLM reference signal measurements, or a BFD based at least in part on BFD reference signal measurements (block 430). For example, the UE may (e.g., using the transmitting component 604 shown in FIG. 6) transmit an SCG fault information message to a master node associated with an MCG based at least in part on one of a PSCell RLF detection based at least in part on RLM reference signal measurements, or a BFD based at least in part on BFD reference signal measurements, as described above.

[0084] Process 400 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 herein.

[0085] In a first aspect, the SCG failure information message is transmitted based at least in part on an SCG failure recovery procedure initiated at the UE.

[0086] In a second aspect, alone or in combination with the first aspect, the process 400 includes receiving a configuration from a master node associated with the MCG or from a secondary node via the master node that enables the UE to initiate an SCG failure recovery procedure based at least in part on BFD.

[0087] In a third aspect, alone or in combination with one or more of the first and second aspects, the SCG failure information message indicates one or more of RLM reference signal measurements, BFD reference signal measurements, or other reference signal measurements to be reported by the UE based at least in part on configuration received from the master node or from a secondary node via the master node.

[0088] In a fourth aspect, alone or in combination with one or more of the first through third aspects, the process 400 includes receiving an RRC reconfiguration from a master node associated with the MCG or from a secondary node via the master node, the RRC reconfiguration being based at least in part on an SCG failure information message sent to the master node and forwarded by the master node to the secondary node, the RRC reconfiguration indicating an updated RLM configuration including an updated set of beams that the UE should measure and an updated set of RLM reference signals that the UE should measure.

[0089] In a fifth aspect, alone or in combination with one or more of the first through fourth aspects, the process 400 includes performing updated RLM reference signal measurements based at least in part on an RRC reconfiguration received from the master node or from the secondary node via the master node.

[0090] In a sixth aspect, alone or in combination with one or more of the first to fifth aspects, the RRC reconfiguration includes information elements associated with performing RLM measurements, performing BFD measurements, and reporting measurement results including beam measurements based at least in part on PSCell RLF detection or BFD while the UE is operating in an SCG deactivated state.

[0091] In a seventh aspect, alone or in combination with one or more of the first to sixth aspects, the RRC reconfiguration indicates a set of RLM reference signals to be measured by the UE, a set of reference signals to be measured by the UE that are separate from the set of RLM reference signals and the set of BFD reference signals, and a set of BFD reference signals to be measured by the UE, and the RLM reference signals, the reference signals that are separate from the set of RLM reference signals and the BFD reference signals, and the BFD reference signals are configured to be transmitted by the secondary node using a beam associated with the PSCell.

[0092] In an eighth aspect, alone or in combination with one or more of the first to seventh aspects, the RRC reconfiguration indicates that the UE should send an SCG failure information message based at least in part on BFD, and that the SCG failure information message should include a beam measurement report.

[0093] In a ninth aspect, alone or in combination with one or more of the first to eighth aspects, the RRC reconfiguration indicates that the SCG failure information message should include a beam measurement report when the UE is operating in an SCG deactivated state.

[0094] In a tenth aspect, alone or in combination with one or more of the first to ninth aspects, the RRC reconfiguration indicates that the SCG failure information message should include one or more of an RLM reference signal measurement, a BFD reference signal measurement, or a reference signal measurement separate from the RLM reference signal measurement and the BFD reference signal measurement.

[0095] In an eleventh aspect, alone or in combination with one or more of the first to tenth aspects, the RRC reconfiguration indicates a RACH parameter configuration that the UE should use after transitioning from an SCG deactivated state to an SCG activated state, and the RACH parameter configuration defines one or more of a beam or preamble index that should be used to perform the RACH and associated RACH opportunity.

[0096] In a twelfth aspect, alone or in combination with one or more of the first to eleventh aspects, the process 400 includes receiving an SCG activation command from the master node to transition the UE from an SCG deactivated state to an SCG activated state, the SCG activation command indicating a RACH parameter configuration, the RACH parameter configuration defining one or more of a beam or a preamble index to be used to perform the RACH and associated RACH opportunity.

[0097] In a thirteenth aspect, alone or in combination with one or more of the first to twelfth aspects, the process 400 includes transitioning from an SCG deactivation state to an SCG activation state, determining that a timing advance timer has expired, and determining, based at least in part on the timing advance timer having expired, to perform a RACH procedure to access the PSCell, the RACH procedure being based at least in part on a RACH parameter configuration.

[0098] In a fourteenth aspect, alone or in combination with one or more of the first to thirteenth aspects, the process 400 includes transitioning from an SCG deactivated state to an SCG activated state, determining that a timing advance timer has not expired, and determining, based at least in part on the timing advance timer not having expired, not to perform a RACH procedure to access the PSCell.

[0099] 4 illustrates example blocks of process 400, in some aspects process 400 may include additional, fewer, different, or differently arranged blocks compared to the blocks illustrated in FIG 4. Additionally or alternatively, two or more of the blocks of process 400 may be performed in parallel.

[0100] 5 illustrates an example process 500 performed, for example, by a master node, in accordance with the present disclosure. The example process 500 is an example in which a master node (e.g., a base station 110) performs operations associated with UE communications while running in an SCG deactivated state.

[0101] 5, in some aspects, process 500 may include receiving an SCG failure information message from a UE operating in an SCG deactivated state based at least in part on one of a PSCell RLF detection based at least in part on RLM reference signal measurements, or a BFD based at least in part on BFD reference signal measurements (block 510). For example, the master node may receive (e.g., using the receiving component 702 shown in FIG. 7) an SCG failure information message from a UE operating in an SCG deactivated state based at least in part on one of a PSCell RLF detection based at least in part on RLM reference signal measurements, or a BFD based at least in part on BFD reference signal measurements, as described above.

[0102] 5, in some aspects, process 500 may include transmitting an SCG fault information message to the secondary node (block 520). For example, the master node may transmit the SCG fault information message to the secondary node (e.g., using the transmitting component 704 shown in FIG. 7), as described above.

[0103] 5, in some aspects, process 500 may include receiving an RRC reconfiguration from the secondary node based at least in part on the SCG failure information BFR message (block 530). For example, the master node may receive (e.g., using the receiving component 702 shown in FIG. 7) an RRC reconfiguration from the secondary node based at least in part on the SCG failure information message, as described above.

[0104] 5, in some aspects, process 500 may include transmitting the RRC reconfiguration received from the secondary node to the UE (block 540). For example, the master node may transmit the RRC reconfiguration received from the secondary node to the UE (e.g., using the transmitting component 704 shown in FIG. 7), as described above.

[0105] Process 500 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 herein.

[0106] In a first aspect, the process 500 includes receiving a configuration from a secondary node that enables the UE to initiate an SCG failure recovery procedure based at least in part on BFD, and transmitting the configuration received from the secondary node to the UE.

[0107] In a second aspect, alone or in combination with the first aspect, the SCG failure information message indicates one or more of an RLM reference signal measurement, a BFD reference signal measurement, or other reference signal measurement to be reported by the UE based at least in part on a configuration received from a secondary node from or via the master node.

[0108] In a third aspect, alone or in combination with one or more of the first and second aspects, the RRC reconfiguration indicates an updated RLM configuration including an updated set of beams that the UE should measure and an updated set of RLM reference signals that the UE should measure.

[0109] In a fourth aspect, alone or in combination with one or more of the first to third aspects, the RRC reconfiguration includes information elements associated with performing RLM measurements, performing BFD measurements, and reporting measurement results including beam measurements based at least in part on PSCell RLF detection or BFD while the UE is operating in an SCG deactivated state.

[0110] In a fifth aspect, alone or in combination with one or more of the first to fourth aspects, the RRC reconfiguration indicates a set of RLM reference signals that the UE should measure, a set of reference signals that the UE should measure that are different from the set of RLM reference signals and the set of BFD reference signals, and a set of BFD reference signals that the UE should measure, and the RLM reference signals, the reference signals that are different from the set of RLM reference signals and the set of BFD reference signals, and the BFD reference signals are configured to be transmitted by the secondary node using a beam associated with the PSCell.

[0111] In a sixth aspect, alone or in combination with one or more of the first to fifth aspects, the RRC reconfiguration indicates that the UE should send an SCG failure information message based at least in part on BFD, and that the SCG failure information message should include a beam measurement report.

[0112] In a seventh aspect, alone or in combination with one or more of the first to sixth aspects, the RRC reconfiguration indicates that the SCG failure information message should include a beam measurement report when the UE is operating in an SCG deactivated state.

[0113] In an eighth aspect, alone or in combination with one or more of the first to seventh aspects, the RRC reconfiguration indicates that the SCG failure information message should include an RLM reference signal measurement, a BFD reference signal measurement, or a reference signal measurement separate from the RLM reference signal measurement and the BFD reference signal measurement.

[0114] In a ninth aspect, alone or in combination with one or more of the first to eighth aspects, the RRC reconfiguration indicates a RACH parameter configuration that the UE should use after transitioning from an SCG deactivated state to an SCG activated state, the RACH parameter configuration defining one or more of a beam or preamble index that should be used to perform the RACH and associated RACH opportunity.

[0115] In a tenth aspect, alone or in combination with one or more of the first to ninth aspects, the process 500 includes transmitting an SCG activation command to the UE to transition the UE from an SCG deactivated state to an SCG activated state, the SCG activation command indicating a RACH parameter configuration, the RACH parameter configuration defining one or more beams or preamble indices to be used to execute the RACH and associated RACH opportunities.

[0116] 5 illustrates example blocks of process 500, in some aspects process 500 may include additional, fewer, different, or differently arranged blocks compared to the blocks illustrated in FIG 5. Additionally or alternatively, two or more of the blocks of process 500 may be performed in parallel.

[0117] 6 is a block diagram of an example apparatus 600 for wireless communication. The apparatus 600 may be a UE, or a UE may include the apparatus 600. In some aspects, the apparatus 600 includes a receiving component 602 and a transmitting component 604, which may be in communication with each other (e.g., via one or more buses and / or one or more other components). As shown, the apparatus 600 may communicate with another apparatus 606 (such as a UE, a base station, or another wireless communication device) using the receiving component 602 and the transmitting component 604. As further shown, the apparatus 600 may include one or more of a measuring component 608, a transitioning component 610, or a determining component 612, among other examples.

[0118] In some aspects, apparatus 600 may be configured to perform one or more operations described herein with respect to FIG. 3. Additionally or alternatively, apparatus 600 may be configured to perform one or more processes described herein, such as process 400 of FIG. 4. In some aspects, apparatus 600 and / or one or more components shown in FIG. 6 may include one or more components of a UE described above with respect to FIG. 2. Additionally or alternatively, one or more components shown in FIG. 6 may be implemented within one or more components described above 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.

[0119] The receiving component 602 may receive communications such as reference signals, control information, data communications, or combinations thereof from the device 606. The receiving component 602 may provide the received communications to one or more other components of the device 600. In some aspects, the receiving component 602 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 may provide the processed signals to one or more other components of the device 606. In some aspects, the receiving component 602 may include one or more antennas, a demodulator, a MIMO detector, a receive processor, a controller / processor, a memory, or a combination thereof of a UE as described above with respect to FIG.

[0120] The transmitting component 604 may transmit a communication to the device 606, 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 606 may generate a communication and provide the generated communication to the transmitting component 604 for transmission to the device 606. In some aspects, the transmitting component 604 may 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 may transmit the processed signal to the device 606. In some aspects, the transmitting component 604 may include one or more antennas, a modulator, a transmit MIMO processor, a transmit processor, a controller / processor, a memory, or a combination thereof, of a UE as described above in connection with FIG. 2. In some aspects, the transmitting component 604 may be co-located with the receiving component 602 in a transceiver.

[0121] The measurement component 608 may perform RLM reference signal measurements on the PSCell while the UE is operating in an SCG deactivated state. The measurement component 608 may perform BFD reference signal measurements while the UE is operating in an SCG deactivated state. The transmission component 604 may transmit an SCG failure information message to a master node associated with the MCG based at least in part on one of the PSCell RLF detection based at least in part on the RLM reference signal measurements or the BFD detection based at least in part on the BFD reference signal measurements.

[0122] The receiving component 602 may receive a configuration from a master node associated with the MCG or from a secondary node via the master node that enables the UE to initiate an SCG failure recovery procedure based at least in part on BFD.

[0123] The receiving component 602 may receive an RRC reconfiguration from a master node associated with the MCG or from a secondary node via the master node, the RRC reconfiguration being based at least in part on an SCG failure information message sent to the master node and forwarded by the master node to the secondary node, the RRC reconfiguration indicating an updated RLM configuration including an updated set of beams that the UE should measure and an updated set of RLM reference signals that the UE should measure.

[0124] The measurement component 608 may perform updated RLM reference signal measurements based at least in part on an RRC reconfiguration received from the master node or from the secondary node via the master node.

[0125] The receiving component 602 may receive an SCG activation command from the master node to transition the UE from an SCG deactivated state to an SCG activated state, where the SCG activation command indicates a RACH parameter configuration, and the RACH parameter configuration defines one or more of a beam or preamble index to be used to perform the RACH and associated RACH opportunity.

[0126] The transition component 610 may transition from an SCG deactivated state to an SCG activated state. The determining component 612 may determine that a timing advance timer has expired. The determining component 612 may determine to perform a RACH procedure to access the PSCell based at least in part on the timing advance timer having expired, the RACH procedure being based at least in part on a RACH parameter configuration.

[0127] The transition component 610 may transition from an SCG deactivated state to an SCG activated state. The determining component 612 may determine that a timing advance timer has not expired. The determining component 612 may determine not to perform a RACH procedure to access the PSCell based at least in part on the timing advance timer not having expired.

[0128] The number and arrangement of components shown in Figure 6 are given as an example. In practice, there may be additional, fewer, different, or differently arranged components compared to those shown in Figure 6. Furthermore, two or more components shown in Figure 6 may be implemented within a single component, or a single component shown in Figure 6 may be implemented as multiple distributed components. Additionally or alternatively, a set of components shown in Figure 6 may perform one or more functions described as being performed by another set of components shown in Figure 6.

[0129] 7 is a block diagram of an example apparatus 700 for wireless communication. The apparatus 700 may be a master node, or a master node may include the apparatus 700. In some aspects, the apparatus 700 includes a receiving component 702 and a transmitting component 704, which may be in communication with each other (e.g., via one or more buses and / or one or more other components). As shown, the apparatus 700 may communicate with another apparatus 706 (such as a UE, a base station, or another wireless communication device) using the receiving component 702 and the transmitting component 704.

[0130] In some aspects, apparatus 700 may be configured to perform one or more operations described herein with respect to FIG. 3. Additionally or alternatively, apparatus 700 may be configured to perform one or more processes described herein, such as process 500 of FIG. 5. In some aspects, apparatus 700 and / or one or more components shown in FIG. 7 may include one or more components of the master node described above with respect to FIG. 2. Additionally or alternatively, one or more components shown in FIG. 7 may be implemented within one or more components described above 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.

[0131] The receiving component 702 may receive communications such as reference signals, control information, data communications, or combinations thereof from the device 706. The receiving component 702 may provide the received communications to one or more other components of the device 700. In some aspects, the receiving component 702 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 may provide the processed signals to one or more other components of the device 706. In some aspects, the receiving component 702 may include one or more antennas, a demodulator, a MIMO detector, a receive processor, a controller / processor, a memory, or a combination thereof of the master node described above with respect to FIG.

[0132] The transmitting component 704 may transmit communications to the device 706, such as reference signals, control information, data communications, or combinations thereof. In some aspects, one or more other components of the device 706 may generate communications and provide the generated communications to the transmitting component 704 for transmission to the device 706. In some aspects, the transmitting component 704 may perform signal processing (such as filtering, amplification, modulation, digital-to-analog conversion, multiplexing, interleaving, mapping, or encoding, among other examples) on the generated communications and may transmit the processed signals to the device 706. In some aspects, the transmitting component 704 may include one or more antennas, a modulator, a transmit MIMO processor, a transmit processor, a controller / processor, a memory, or a combination thereof, of the master node described above with respect to FIG. 2. In some aspects, the transmitting component 704 may be co-located with the receiving component 702 in a transceiver.

[0133] The receiving component 702 may receive an SCG failure information message from a UE operating in an SCG deactivated state based at least in part on one of PSCell RLF detection based at least in part on RLM reference signal measurements or BFD based at least in part on BFD reference signal measurements. The transmitting component 704 may transmit the SCG failure information message to a secondary node. The receiving component 702 may receive an RRC reconfiguration from the secondary node based at least in part on the SCG failure information message. The transmitting component 704 may transmit the RRC reconfiguration received from the secondary node to the UE.

[0134] The receiving component 702 may receive a configuration from a secondary node that enables the UE to initiate an SCG failure recovery procedure based at least in part on BFD. The transmitting component 704 may transmit the configuration received from the secondary node to the UE. The transmitting component 704 may transmit an SCG activate command to the UE to transition the UE from an SCG deactivated state to an SCG activated state, the SCG activate command indicating a RACH parameter configuration, the RACH parameter configuration defining one or more beams or preamble indices to be used to perform the RACH and associated RACH opportunity.

[0135] The number and arrangement of components shown in Figure 7 are given as an example. In practice, there may be additional, fewer, different, or differently arranged components compared to those shown in Figure 7. Furthermore, two or more components shown in Figure 7 may be implemented within a single component, or a single component shown in Figure 7 may be implemented as multiple distributed components. Additionally or alternatively, a set of components shown in Figure 7 may perform one or more functions described as being performed by another set of components shown in Figure 7.

[0136] The following provides a summary of some aspects of the disclosure.

[0137] Aspect 1: A method of wireless communications performed by a user equipment (UE), the method including: performing radio link monitoring (RLM) reference signal measurements on a primary-secondary cell (PSCell) while the UE is operating in a secondary cell group (SCG) deactivated state; performing beam fault detection (BFD) reference signal measurements while the UE is operating in the SCG deactivated state; and transmitting an SCG failure information message to a master node associated with a master cell group (MCG) based at least in part on one of PSCell radio link failure (RLF) detection based at least in part on the RLM reference signal measurements or BFD based at least in part on the BFD reference signal measurements.

[0138] Aspect 2: The method of aspect 1, wherein the SCG failure information message is transmitted based at least in part on an SCG failure recovery procedure initiated at the UE.

[0139] Aspect 3: The method of any of aspects 1 to 2, further comprising receiving, from a master node associated with the MCG or from a secondary node via the master node, a configuration that enables the UE to initiate an SCG failure recovery procedure based at least in part on BFD.

[0140] Aspect 4: The method of any of aspects 1 to 3, wherein the SCG failure information message indicates one or more of an RLM reference signal measurement, a BFD reference signal measurement, or other reference signal measurement to be reported by the UE based at least in part on a configuration received from a secondary node from or via the master node.

[0141] Aspect 5: The method of any of aspects 1 to 4, further comprising receiving a radio resource control (RRC) reconfiguration from a master node associated with the MCG or from a secondary node via the master node based at least in part on an SCG failure information message sent to the master node and forwarded by the master node to the secondary node, the RRC reconfiguration indicating an updated RLM configuration including an updated set of beams that the UE should measure and an updated set of RLM reference signals that the UE should measure.

[0142] Aspect 6: The method of any of aspects 1 to 5, further comprising: performing updated RLM reference signal measurements based at least in part on an RRC reconfiguration received from the master node or a secondary node via the master node.

[0143] Aspect 7: The method of any of aspects 1 to 6, wherein the RRC reconfiguration includes information elements associated with performing RLM measurements, performing BFD measurements, and reporting measurement results including beam measurements based at least in part on PSCell RLF detection or BFD while the UE is operating in an SCG deactivated state.

[0144] Aspect 8: The method of any of aspects 1 to 7, wherein the RRC reconfiguration indicates a set of RLM reference signals that the UE should measure, a set of reference signals that the UE should measure that are separate from the set of RLM reference signals and the set of BFD reference signals, and a set of BFD reference signals that the UE should measure, and wherein the RLM reference signals, the reference signals that are separate from the set of RLM reference signals and the set of BFD reference signals, and the BFD reference signals are configured to be transmitted by the secondary node using a beam associated with the PSCell.

[0145] Aspect 9: The method of any of aspects 1 to 8, wherein the RRC reconfiguration indicates that the UE should transmit an SCG failure information message based at least in part on BFD, and that the SCG failure information message should include a beam measurement report.

[0146] Aspect 10: The method of any of aspects 1 to 9, wherein the RRC reconfiguration indicates that the SCG failure information message should include a beam measurement report when the UE is operating in an SCG deactivated state.

[0147] Aspect 11: The method of any of aspects 1 to 10, wherein the RRC reconfiguration indicates that the SCG failure information message should include one or more of an RLM reference signal measurement, a BFD reference signal measurement, or a reference signal measurement separate from the RLM reference signal measurement and the BFD reference signal measurement.

[0148] Aspect 12: The method of any of aspects 1 to 11, wherein the RRC reconfiguration indicates a random access channel (RACH) parameter configuration to use after the UE transitions from an SCG deactivated state to an SCG activated state, and the RACH parameter configuration defines one or more of a beam or a preamble index to use to perform the RACH and associated RACH opportunity.

[0149] Aspect 13: The method of any of aspects 1 to 12, further comprising receiving an SCG activation command from the master node to transition the UE from an SCG deactivated state to an SCG activated state, the SCG activation command indicating a random access channel (RACH) parameter configuration, the RACH parameter configuration defining one or more of a beam or a preamble index to be used to perform the RACH and associated RACH opportunity.

[0150] Aspect 14: Transitioning from an SCG deactivated state to an SCG activated state; determining that a timing advance timer has expired; and determining to perform a random access channel (RACH) procedure to access the PSCell based at least in part on the timing advance timer having expired, the RACH procedure being based at least in part on a RACH parameter configuration. 14. The method of any of embodiments 1 to 13, further comprising:

[0151] Aspect 15: The method of any of aspects 1 to 14, further comprising: transitioning from an SCG deactivated state to an SCG activated state; determining that a timing advance timer has not expired; and determining, based at least in part on the timing advance timer not having expired, not to perform a random access channel (RACH) procedure to access the PSCell.

[0152] Aspect 16: A method of wireless communication performed by a node, the method including: receiving a Primary Secondary Cell (PSCell) Radio Link Failure (RLF) message from a user equipment (UE) operating in a secondary cell group (SCG) deactivated state based at least in part on one of a Primary Secondary Cell (PSCell) Radio Link Failure (RLF) based at least in part on Radio Link Monitoring (RLM) reference signal measurements, or a Beam Failure Detection (BFD) based at least in part on BFD reference signal measurements; transmitting the SCG failure information message to the secondary node; receiving a Radio Resource Control (RRC) reconfiguration from the secondary node based at least in part on the SCG failure information message; and transmitting the RRC reconfiguration received from the secondary node to the UE.

[0153] Aspect 17: The method of aspect 16, further comprising: receiving a configuration from a secondary node that enables the UE to initiate an SCG failure recovery procedure based at least in part on BFD; and transmitting the configuration received from the secondary node to the UE.

[0154] Aspect 18: The method of any of aspects 16 or 17, wherein the SCG failure information message indicates one or more of an RLM reference signal measurement, a BFD reference signal measurement, or other reference signal measurement to be reported by the UE based at least in part on a configuration received from a secondary node from or via the master node.

[0155] Aspect 19: The method of any of aspects 16 to 18, wherein the RRC reconfiguration indicates an updated RLM configuration including an updated set of beams that the UE should measure and an updated set of RLM reference signals that the UE should measure.

[0156] Aspect 20: The method of any of aspects 16 to 19, wherein the RRC reconfiguration includes information associated with performing RLM measurements, performing BFD measurements, and reporting measurement results including beam measurements based at least in part on PSCell RLF detection or BFD while the UE is operating in an SCG deactivated state.

[0157] Aspect 21: The method of any of aspects 16 to 20, wherein the RRC reconfiguration indicates a set of RLM reference signals that the UE should measure, a set of reference signals that the UE should measure that are separate from the set of RLM reference signals and the set of BFD reference signals, and a set of BFD reference signals that the UE should measure, and wherein the RLM reference signals, the reference signals that are separate from the set of RLM reference signals and the set of BFD reference signals, and the BFD reference signals are configured to be transmitted by the secondary node using a beam associated with the PSCell.

[0158] Aspect 22: The method of any of aspects 16 to 21, wherein the RRC reconfiguration indicates that the UE should transmit an SCG failure information message based at least in part on BFD, and that the SCG failure information message should include a beam measurement report.

[0159] Aspect 23: The method of any of aspects 16 to 22, wherein the RRC reconfiguration indicates that the SCG failure information message should include a beam measurement report when the UE is operating in an SCG deactivated state.

[0160] Aspect 24: The method of any of aspects 16 to 23, wherein the RRC reconfiguration indicates that the SCG failure information message should include one or more of an RLM reference signal measurement, a BFD reference signal measurement, or a reference signal measurement separate from the RLM reference signal measurement and the BFD reference signal measurement.

[0161] Aspect 25: The method of any of aspects 16 to 24, wherein the RRC reconfiguration indicates a random access channel (RACH) parameter configuration for use after the UE transitions from an SCG deactivated state to an SCG activated state, and the RACH parameter configuration defines one or more of a beam or a preamble index to be used to perform the RACH and associated RACH opportunity.

[0162] Aspect 26: The method of any of aspects 16 to 25, further including: transmitting an SCG activation command to the UE to transition the UE from an SCG deactivated state to an SCG activated state, the SCG activation command indicating a random access channel (RACH) parameter configuration, the RACH parameter configuration defining one or more beams or preamble indices to be used to perform the RACH and associated RACH opportunities.

[0163] Aspect 27: An apparatus for wireless communication in a device, the apparatus including: a processor; a memory coupled to the processor; and instructions stored in the memory and executable by the processor to cause the apparatus to perform one or more methods of aspects 1 to 15.

[0164] Aspect 28: A device for wireless communication including a memory and one or more processors coupled to the memory, wherein the memory and the one or more processors are configured to perform the method of one or more of aspects 1 to 15.

[0165] Aspect 29: An apparatus for wireless communication, comprising at least one means for performing the method of one or more of aspects 1 to 15.

[0166] Aspect 30: A non-transitory computer-readable medium storing code for wireless communication, the code comprising instructions executable by a processor to perform a method of one or more of aspects 1 to 15.

[0167] Aspect 31: 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 a device, cause the device to perform one or more methods of aspects 1 to 15.

[0168] Aspect 32: An apparatus for wireless communication in a device, the apparatus including: a processor; a memory coupled to the processor; and instructions stored in the memory and executable by the processor to cause the apparatus to perform one or more methods of aspects 16 to 26.

[0169] Aspect 33: A device for wireless communication including a memory and one or more processors coupled to the memory, wherein the memory and the one or more processors are configured to perform the method of one or more of aspects 16 to 26.

[0170] Aspect 34: An apparatus for wireless communication, comprising at least one means for performing the method of one or more of aspects 16 to 26.

[0171] Aspect 35: A non-transitory computer-readable medium storing code for wireless communication, the code comprising instructions executable by a processor to perform the method of one or more of aspects 16 to 26.

[0172] Aspect 36: 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 a device, cause the device to perform a method of one or more of aspects 16 to 26.

[0173] 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.

[0174] As used herein, the term "component" shall be broadly construed as hardware and / or a combination 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 dedicated control hardware or software code used to implement these systems and / or methods is not limiting. Thus, the operation and behavior of the systems and / or methods are described herein without reference to specific software code. It should be understood that software and hardware may be designed to implement the systems and / or methods based at least in part on the description herein.

[0175] As used herein, "meeting a threshold" can 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.

[0176] Although particular combinations of features are recited in the claims and / or disclosed herein, these combinations do not limit the disclosure of various aspects. In fact, many of these features may be combined in ways not specifically recited in the claims and / or disclosed herein. While each dependent claim listed below may depend directly on only one claim, 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 list of items refers to any combination of those items, including single members. As an example, "at least one of a, b, or c" is intended to cover a, b, c, ab, ac, bc, and abc, as well as any combination having multiple identical elements (e.g., aa, aaa, aab, aac, abb, acc, bb, bbb, bbc, cc, and ccc, or any other order of a, b, and c). No element, act, or instruction used herein 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." Furthermore, as used herein, the article "the" is intended to include one or more items referred to with the article "the" and may be used interchangeably with "one or more." Furthermore, as used herein, the terms "set" and "group" are intended to include one or more items (e.g., related items, unrelated items, or a combination of related and unrelated 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. Furthermore, the phrase "based on" is intended to mean "based at least in part on," unless expressly specified 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 otherwise specified (e.g., when used in combination with "either" or "only one of"). [Explanation of symbols]

[0177] 100 Wireless Networks 102a Macrocell 102b Picocell 102c Femtocell 110 base station 110a BS, base station, macro base station 110b BS, base station 110c BS, base station 110d BS, relay base station, base station 120 UE 120a UE 120b UE 120c UE 120d UE 130 Network Controller 200 examples 212 Data Sources 220 Transmit Processor 230 Transmit (TX) Multiple Input Multiple Output (MIMO) Processor 232 Modulator, Demodulator, MOD / DEMOD 232a~232t Modulator (MOD) 234 Antenna 234a~234t antenna 236 MIMO detector 238 Receive Processor 239 Data Sink 240 Controllers / Processors 242 memory 244 communication unit 246 Scheduler 252 Antenna 252a~252r Antenna 254 Demodulator, Modulator, MOD / DEMOD 254a~254r Demodulator (DEMOD), Modulator, MOD 256 MIMO detector 258 Receive Processor 260 Data Sink 262 Data Sources 264 Transmit Processor 266 TX MIMO Processor 280 Controller / Processor 282 memory 284 Housing 290 Controller / Processor 292 memory 294 Communication Unit 300 examples 400 processes 500 processes 600 equipment 602 Receiving Component 604 Transmission Components 606 Equipment 608 Measurement Components 610 Transition Component 612 Decision Components 700 equipment 702 Receiving Component 704 Transmission Components

Claims

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: performing radio link monitoring (RLM) reference signal measurements on a primary secondary cell (PSCell) while the UE is operating in a secondary cell group (SCG) deactivated state; performing beam failure detection (BFD) reference signal measurements while the UE is operating in the SCG deactivated state; transmitting a PSCell Radio Link Failure (RLF) detection based at least in part on the RLM reference signal measurements, or a BFD based at least in part on the BFD reference signal measurements, to a master node associated with a master cell group (MCG); and A user equipment (UE) configured to perform the following:

2. The UE of claim 1 , wherein the SCG failure information message is transmitted based at least in part on an SCG failure recovery procedure initiated at the UE.

3. the one or more processors: receiving a configuration from the master node associated with the MCG or from a secondary node via the master node that enables the UE to initiate an SCG failure recovery procedure based at least in part on the BFD, wherein the SCG failure information message indicates one or more of the RLM reference signal measurements, the BFD reference signal measurements, or other reference signal measurements to be reported by the UE based at least in part on the configuration received from the master node or from the secondary node via the master node; The UE of claim 2 , further configured to:

4. the one or more processors: receiving a radio resource control (RRC) reconfiguration from the master node associated with the MCG or from a secondary node via the master node based at least in part on the SCG failure information message sent to the master node and forwarded by the master node to the secondary node, the RRC reconfiguration indicating an updated RLM configuration including an updated set of beams that the UE should measure and an updated set of RLM reference signals that the UE should measure; The UE of claim 1 , further configured to:

5. the one or more processors: performing updated RLM reference signal measurements based at least in part on the RRC reconfiguration received from the master node or from the secondary node via the master node. The UE of claim 4 , further configured to:

6. 5. The UE of claim 4, wherein the RRC reconfiguration includes information elements associated with performing RLM measurements, performing BFD measurements, and reporting measurement results including beam measurements based at least in part on detection of the PSCell RLF or the BFD while the UE is operating in the SCG deactivated state.

7. the RRC reconfiguration a set of RLM reference signals that the UE should measure; a set of reference signals that the UE should measure, separate from the set of RLM reference signals and the set of BFD reference signals; and the set of BFD reference signals that the UE should measure indicates, The RLM reference signal, the reference signal other than the set of RLM reference signals and BFD reference signals, and the BFD reference signal are configured to be transmitted by the secondary node using a beam associated with the PSCell. The UE of claim 4.

8. 5. The UE of claim 4, wherein the RRC reconfiguration indicates that the UE should transmit the SCG failure information message based at least in part on the BFD, and that the SCG failure information message should include a beam measurement report.

9. The UE of claim 4, wherein the RRC reconfiguration indicates that the SCG failure information message should include a beam measurement report when the UE is operating in the SCG deactivated state.

10. 5. The UE of claim 4, wherein the RRC reconfiguration indicates that the SCG failure information message should include one or more of the RLM reference signal measurement, the BFD reference signal measurement, or a reference signal measurement separate from the RLM reference signal measurement and the BFD reference signal measurement.

11. 5. The UE of claim 4, wherein the RRC reconfiguration indicates a random access channel (RACH) parameter configuration to be used after the UE transitions from the SCG deactivated state to the SCG activated state, and the RACH parameter configuration defines one or more of a beam or a preamble index to be used to perform a RACH and associated RACH opportunities.

12. the one or more processors: receiving an SCG activation command from the master node to transition the UE from the SCG deactivated state to an SCG activated state, the SCG activation command indicating a random access channel (RACH) parameter configuration, the RACH parameter configuration defining one or more of a beam or a preamble index to be used to perform a RACH and associated RACH opportunities; The UE of claim 1 , further configured to:

13. the one or more processors: transitioning from the SCG deactivated state to an SCG activated state; determining that a timing advance timer has expired; determining, based at least in part on the timing advance timer having expired, to perform a random access channel (RACH) procedure to access the PSCell, the RACH procedure being based at least in part on a RACH parameter configuration; The UE of claim 1 , further configured to:

14. the one or more processors: transitioning from the SCG deactivated state to an SCG activated state; determining that a timing advance timer has not expired; determining not to perform a random access channel (RACH) procedure to access the PSCell based at least in part on the timing advance timer not having expired; The UE of claim 1 , further configured to:

15. 1. A master node for wireless communication, comprising: Memory and one or more processors coupled to the memory; wherein the one or more processors: receiving a primary secondary cell (PSCell) radio link failure (RLF) detection based at least in part on radio link monitoring (RLM) reference signal measurements, or beam failure detection (BFD) based at least in part on BFD reference signal measurements, from a user equipment (UE) operating in a secondary cell group (SCG) deactivated state; sending the SCG fault information message to a secondary node; receiving a radio resource control (RRC) reconfiguration from the secondary node based at least in part on the SCG failure information message; transmitting the RRC reconfiguration received from the secondary node to the UE; A master node configured to:

16. the one or more processors: receiving a configuration from the secondary node that enables the UE to initiate an SCG failure recovery procedure based at least in part on the BFD; transmitting the configuration received from the secondary node to the UE, wherein the SCG failure information message indicates one or more of RLM reference signal measurements, the BFD reference signal measurements, or other reference signal measurements to be reported by the UE based at least in part on the configuration received from the secondary node from or via the master node; 16. The master node of claim 15, further configured to:

17. 16. The master node of claim 15, wherein the RRC reconfiguration indicates an updated RLM configuration including an updated set of beams that the UE should measure and an updated set of RLM reference signals that the UE should measure.

18. 16. The master node of claim 15, wherein the RRC reconfiguration includes information elements associated with performing RLM measurements, performing BFD measurements, and reporting measurement results including beam measurements based at least on detection of the PSCell RLF or the BFD while the UE is operating in the SCG deactivated state.

19. the RRC reconfiguration a set of RLM reference signals that the UE should measure; a set of reference signals that the UE should measure, separate from the set of RLM reference signals and the set of BFD reference signals; and the set of BFD reference signals that the UE should measure indicates, 16. The master node of claim 15, wherein the RLM reference signal, the reference signal other than the set of RLM reference signals and BFD reference signals, and the BFD reference signal are configured to be transmitted by the secondary node using a beam associated with the PSCell.

20. the RRC reconfiguration the UE should send the SCG failure information message based at least in part on the BFD, and the SCG failure information message should include a beam measurement report; the SCG failure information message should include the beam measurement report when the UE is operating in the SCG deactivated state; the SCG fault information message should include one or more of an RLM reference signal measurement, the BFD reference signal measurement, or a reference signal measurement separate from the RLM reference signal measurement and the BFD reference signal measurement; or a random access channel (RACH) parameter configuration for use by the UE after it transitions from the SCG deactivated state to an SCG activated state, the RACH parameter configuration defining one or more of a beam or a preamble index to be used to perform a RACH and associated RACH opportunities.

16. The master node of claim 15,

21. the one or more processors: Transmitting an SCG activation command to the UE to transition the UE from the SCG deactivated state to an SCG activated state, the SCG activation command indicating a random access channel (RACH) parameter configuration, the RACH parameter configuration defining one or more beams or preamble indexes to be used to perform a RACH and associated RACH opportunities.

16. The master node of claim 15, further configured to:

22. 1. A method of wireless communication performed by a user equipment (UE), comprising: performing radio link monitoring (RLM) reference signal measurements on a primary secondary cell (PSCell) while the UE is operating in a secondary cell group (SCG) deactivated state; performing beam failure detection (BFD) reference signal measurements while the UE is operating in the SCG deactivated state; transmitting an SCG failure information message to a master node associated with a master cell group (MCG) based at least in part on one of a PSCell radio link failure (RLF) based at least in part on RLM reference signal measurements, or a BFD based at least in part on BFD reference signal measurements; A method comprising:

23. receiving a configuration from the master node associated with the MCG or from a secondary node via the master node that enables the UE to initiate an SCG failure recovery procedure based at least in part on the BFD, wherein the SCG failure information message indicates one or more of the RLM reference signal measurements, the BFD reference signal measurements, or other reference signal measurements to be reported by the UE based at least in part on the configuration received from the master node or from the secondary node via the master node.

23. The method of claim 22, further comprising:

24. receiving a radio resource control (RRC) reconfiguration from the master node associated with the MCG or from the secondary node via the master node based at least in part on the SCG failure information message sent to the master node and forwarded by the master node to a secondary node, the RRC reconfiguration indicating an updated RLM configuration including an updated set of beams that the UE should measure and an updated set of RLM reference signals that the UE should measure; 23. The method of claim 22, further comprising:

25. the RRC reconfiguration The UE should send the SCG failure information message based at least in part on the BFD, and the SCG failure information message should include a beam measurement report; the SCG failure information message should include the beam measurement report when the UE is operating in the SCG deactivated state; the SCG fault information message should include one or more of the RLM reference signal measurements, the BFD reference signal measurements, or a reference signal measurement separate from the RLM reference signal measurements and the BFD reference signal measurements; or a random access channel (RACH) parameter configuration for use by the UE after it transitions from the SCG deactivated state to an SCG activated state, the RACH parameter configuration defining one or more of a beam or a preamble index to be used to perform a RACH and associated RACH opportunities. The method of claim 24, wherein:

26. receiving, from the master node, an SCG activation command for transitioning the UE from the SCG deactivated state to an SCG activated state, the SCG activation command indicating a random access channel (RACH) parameter configuration, the RACH parameter configuration defining one or more of a beam or a preamble index to be used to perform a RACH and associated RACH opportunities; 23. The method of claim 22, further comprising:

27. 1. A method of wireless communication performed by a master node, comprising: receiving a Primary Secondary Cell (PSCell) Radio Link Failure (RLF) detection based at least in part on Radio Link Monitoring (RLM) reference signal measurements, or a Beam Failure Detection (BFD) based at least in part on BFD reference signal measurements, from a User Equipment (UE) operating in a Secondary Cell Group (SCG) deactivated state; sending the SCG failure information to a secondary node; receiving a radio resource control (RRC) reconfiguration from the secondary node based at least in part on the SCG failure information message; sending the RRC reconfiguration received from the secondary node to the UE; A method comprising:

28. the RRC reconfiguration an updated RLM configuration, including an updated set of beams that the UE should measure and an updated set of RLM reference signals that the UE should measure; or information elements associated with performing RLM measurements, performing BFD measurements, and reporting measurement results including beam measurements based at least in part on the detection of the PSCell RLF or the BFD while the UE is operating in the SCG deactivated state; The method of claim 27, wherein:

29. the RRC reconfiguration a set of RLM reference signals that the UE should measure; a set of reference signals that the UE should measure, separate from the set of RLM reference signals and the set of BFD reference signals; and the set of BFD reference signals that the UE should measure indicates, The RLM reference signal, the reference signal other than the set of RLM reference signals and BFD reference signals, and the BFD reference signal are configured to be transmitted by the secondary node using a beam associated with the PSCell.

28. The method of claim 27.

30. sending, to the UE, an SCG activation command to transition the UE from the SCG deactivated state to an SCG activated state, the SCG activation command indicating a random access channel (RACH) parameter configuration, the RACH parameter configuration defining one or more beams or preamble indices to be used to perform a RACH and associated RACH opportunities.

28. The method of claim 27, further comprising:

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