Parallel beam management in new band combinations.

By calculating extended evaluation period factors for beam management operations in dual connectivity scenarios, the method optimizes searcher resource allocation, addressing inaccuracies in existing techniques and enhancing communication quality in mixed frequency range dual connectivity.

JP7738725B2Active Publication Date: 2025-09-12APPLE INC
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
JP2024180268
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-09-12
Estimated Expiration
2040-10-22

AI Technical Summary

Technical Problem

Existing beam failure detection and candidate beam detection techniques in 3GPP networks are inadequate for dual connectivity scenarios involving mixed frequency ranges and inter-band carrier aggregation, leading to inaccurate allocation of searcher resources.

Method used

A method for calculating extended evaluation period factors for beam management operations, including beam failure detection (BFD) and candidate beam detection (CBD), based on specific configurations of primary and secondary cells in dual connectivity scenarios, to optimize searcher resource allocation.

Benefits of technology

Improves the accuracy of searcher resource allocation in dual connectivity cases, particularly in FR1+FR2 NR-DC with inter-band CA, ensuring efficient beam management and communication quality.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007738725000036
    Figure 0007738725000036
  • Figure 0007738725000037
    Figure 0007738725000037
  • Figure 0007738725000038
    Figure 0007738725000038
Patent Text Reader

Abstract

To provide devices and components, including apparatuses, systems, and methods, for beam management operations in wireless communication systems.SOLUTION: A method includes receiving a first configuration for a first beam management operation for a primary serving cell (PCell) including beam failure detection (BFD) or candidate beam detection (CBD), receiving a second configuration for a second beam management operation for a primary secondary cell (PSCell) including BFD or CBD, receiving a third configuration for a third beam management operation for a secondary serving cell (SCell) including BFD or CBD, and calculating a first evaluation period extension factor based on the first configuration, the second configuration, and the third configuration.SELECTED DRAWING: Figure 3
Need to check novelty before this filing date? Find Prior Art

Description

[Background technology]

[0001] Beam failure detection techniques and candidate beam detection techniques are described in existing 3rd Generation Partnership Project (3GPP®) networks. [Brief explanation of the drawings]

[0002] [Figure 1] 1 illustrates a network environment according to some embodiments.

[0003] [Figure 2] 1 illustrates a network environment according to some embodiments.

[0004] [Figure 3] 1 illustrates an operational flow / algorithm structure according to some embodiments.

[0005] [Figure 4] 10 illustrates a table of extension factor PBFD options, according to some embodiments.

[0006] [Figure 5] FIG. 10 illustrates a table of searcher allocation options according to some embodiments.

[0007] [Figure 6] 10 illustrates a table of extension factor PCBD options, according to some embodiments.

[0008] [Figure 7] 10 illustrates another table of extension factor PBFD options, according to some embodiments.

[0009] [Figure 8] 10 illustrates another table of extension factor PCBD options, according to some embodiments.

[0010] [Figure 9]1 illustrates a beamforming component of a device according to some embodiments.

[0011] [Figure 10] 1 illustrates a user equipment according to some embodiments.

[0012] [Figure 11] 1 illustrates another operational flow / algorithm structure according to some embodiments.

[0013] [Figure 12] 10 illustrates a further operational flow / algorithm structure according to some embodiments. DETAILED DESCRIPTION OF THE INVENTION

[0014] The following detailed description refers to the accompanying drawings. The same reference numbers may be used in different drawings to identify the same or similar elements. In the following description, for purposes of explanation and not limitation, specific details are set forth, such as particular structures, architectures, interfaces, techniques, etc., in order to provide a thorough understanding of various aspects of various embodiments. However, it will be apparent to one skilled in the art having the benefit of this disclosure that various aspects of the various embodiments may be practiced in other examples that depart from these specific details. In some instances, descriptions of well-known devices, circuits, and methods are omitted so as not to obscure the description of the various embodiments with unnecessary detail. For purposes of this disclosure, "A or B" means (A), (B), or (A and B).

[0015] The following is a glossary of terms that may be used in this disclosure.

[0016] As used herein, the term “circuitry” refers to, is a part of, or includes a hardware component configured to provide a described functionality, such as an electronic circuit, a logic circuit, a processor (shared, dedicated, or group) or memory (shared, dedicated, or group), an application-specific integrated circuit (ASIC), a field programmable device (FPD) (e.g., a field programmable gate array (FPGA), a programmable logic device (PLD), a complex PLD (CPLD), a high-volume PLD (HCPLD), a structured ASIC, a programmable system-on-chip (SoC)), a digital signal processor (DSP), or the like. In some embodiments, a circuitry can execute one or more software or firmware programs to provide at least a portion of the described functionality. The term “circuitry” can also refer to the combination of one or more hardware elements (or a combination of circuits used in an electrical or electronic system) with program code used to perform the functions of the program code. In these embodiments, the combination of hardware elements and program code may be referred to as a particular type of circuit.

[0017] As used herein, the term "processor circuitry" refers to, is a part of, or includes circuitry capable of sequentially and automatically performing a series of arithmetic or logical operations or recording, storing, or transferring digital data. The term "processor circuitry" may refer to an application processor, a baseband processor, a central processing unit (CPU), a graphics processing unit, a single-core processor, a dual-core processor, a triple-core processor, a quad-core processor, or any other device that can execute or otherwise operate computer-executable instructions such as program code, software modules, or functional processes.

[0018] As used herein, the term "interface circuitry" refers to, is a part of, or includes circuitry that enables the exchange of information between two or more components or devices. The term "interface circuitry" may refer to one or more hardware interfaces, such as a bus, an I / O interface, a peripheral component interface, a network interface card, or the like.

[0019] As used herein, the term "user equipment" or "UE" refers to a device having wireless communication capabilities and may represent a remote user of network resources in a communication network. The term "user equipment" or "UE" may be considered synonymous with and may be referred to as client, mobile, mobile device, mobile terminal, user terminal, mobile unit, mobile station, mobile user, subscriber, user, remote station, access agent, user agent, receiver, radio equipment, reconfigurable radio equipment, reconfigurable mobile device, etc. Furthermore, the term "user equipment" or "UE" may include any type of wireless / wired device or any computing device that includes a wireless communication interface.

[0020] As used herein, the term "computer system" refers to any type of interconnected electronic device, computing device, or component thereof. Additionally, the term "computer system" or "system" can refer to various components of a computer that are communicatively coupled to each other. Furthermore, the term "computer system" or "system" can refer to multiple computing devices or multiple computing systems that are communicatively coupled to each other and configured to share computing or networking resources.

[0021] As used herein, the term "resource" refers to a physical or virtual device, a physical or virtual component in a computing environment, or a physical or virtual component in a particular device, such as a computer device, a mechanical device, memory space, processor / CPU time, processor / CPU usage, processor and accelerator load, hardware time or usage, power, input / output operations, ports or network sockets, channel / link allocation, throughput, memory usage, storage, network, database and application, workload unit, etc. "Hardware resources" may refer to computational, storage, or network resources provided by physical hardware element(s). "Virtualized resources" may refer to computational, storage, or network resources provided by a virtualization infrastructure to applications, devices, systems, etc. The terms "network resources" or "communication resources" may refer to resources accessible by a computer device / system via a communication network. The term "system resources" may refer to any kind of shared entity for providing services and may include computing resources or network resources. A system resource can be thought of as a set of coherent functions, network data objects, or services that reside on a single host or multiple hosts and are accessible through a clearly identifiable server.

[0022] As used herein, the term "channel" refers to any tangible or intangible transmission medium used to communicate data or data streams. The term "channel" may be synonymous with or equivalent to "communication channel," "data communication channel," "transmission channel," "data transmission channel," "access channel," "data access channel," "link," "data link," "carrier," "radio frequency carrier," or any other similar term indicating a path or medium over which data is communicated. Additionally, as used herein, the term "link" refers to a connection between two devices for the purpose of transmitting and receiving information.

[0023] As used herein, the terms "instantiate," "instantiation," and the like refer to the creation of an instance. An "instance" also refers to a specific occurrence of an object that may occur, for example, during the execution of program code.

[0024] The term "connected" may mean that two or more elements at a common communication protocol layer have an established signaling relationship with each other via a communication channel, link, interface, or reference point.

[0025] As used herein, the term "network element" refers to a physical or virtualized device or infrastructure used to provide wired or wireless communication network services. The term "network element" may be considered or referred to as synonymous with networked computer, network hardware, network equipment, network node, virtualized network function, etc.

[0026] The term "information element" refers to a structural element that contains one or more fields. The term "field" refers to an information element or an individual piece of content in a data element that contains content. An information element may contain one or more further information elements.

[0027] 1 illustrates a network environment 100 according to some embodiments. The network environment 100 may include a UE 104 and an access node (or "base station 108"). The access node 108 may provide one or more wireless serving cells 112 and 114, e.g., 3GPP New Radio "NR" cells, through which the UE 104 may communicate with the access node 108 (e.g., via an NR-Uu interface).

[0028] The UE 104 may include enhanced multiple-input multiple-output (eMIMO) capabilities to support simultaneous communication via beams from several (or many) different serving cells. Figure 1 shows an example of carrier aggregation (CA), in which the UE 104 receives data from the access node 108 simultaneously from serving cell 112 via component carrier (CC) 122 and from serving cell 114 via component carrier (CC) 124.

[0029] CC 122 may be in a band within Frequency Range 1 (FR1) or Frequency Range 2 (FR2). Similarly, CC 124 may be in a band within Frequency Range 1 (FR1) or Frequency Range 2 (FR2). CCs 112 and 124 may be in the same band (intra-band, either contiguous or non-contiguous) or may be in different bands (inter-band) and possibly different frequency ranges. For FR1 (e.g., below 7.225 GHz), the transmit antenna of UE 104 is typically implemented as an omnidirectional antenna. For FR2 (e.g., above 24.250 GHz, also known as millimeter wave), the transmit antenna of UE 104 may be implemented as a panel with multiple antenna elements. For example, the multiple antenna elements of the panel may be driven as a phased array (e.g., to direct a beam in a desired direction).

[0030] For efficient beam management, the UE 104 may apply radio link monitoring to the serving cell, which may include beam failure detection (BFD) and / or candidate beam detection (CBD). The UE 104 may be configured to monitor the quality of each beam by comparing its signal quality to a threshold corresponding to a 10 percent physical downlink control channel (PDCCH) block error rate (BLER). If BFD indicates beam failure for all of the configured beams (e.g., signal quality is below the threshold for all of the beams), the UE 104 may perform CBD. During CBD, the UE 104 identifies one or more candidate beams whose signal strength exceeds a configurable threshold and reports the result (e.g., beam identification) to the serving cell. Requirements for BFD and CBD are found, for example, in the 3rd Generation Partnership Project (3GPP) Technical Specification (TS) 38.133 (3GPP TS 38.133 V16.5.0(2020-09)) entitled "3rd Generation Partnership Project; Technical Specification Group Radio Access Network; NR; Requirements for support of radio resource management (Release 16)" (3GPP, Valbonne, FR) ("TS 38.133"). For example, the evaluation period for BFD and CBD may be extended for FR2 beams. Multiple CCs in a single band may be expected to experience the same channel conditions (e.g., common beams), and therefore, for intra-band CA, the UE 104 may be configured to perform BFD or CBD for only one of the CCs in the band.

[0031] In some embodiments, the UE 104 may include multiple searchers capable of independently and simultaneously measuring corresponding component carriers. The searchers may comprise baseband processing resources that may be used for beam measurement operations. Such measurement resources may include one or more of memory (e.g., buffer space), demodulation processing, and correlation processing. In some embodiments, the UE 104 may include two searchers.

[0032] Some agreement has been reached regarding the shared coefficients in specific multi-band CA use cases.

[0033] 1) In the case of FR1 inter-band CA, the sharing factor is proportional to the number of bands on which the UE is performing BFD / CBD for SCell only, and no scaling factor is introduced for BFD / CBD measurements on PCell / PSCell.

[0034] 2) For FR2 inter-band CA, the sharing factor is proportional to the number of bands on which the UE is performing BFD / CBD for SCells only, and the UE needs to perform BFD / CBD in only one band out of the set of bands that it can receive in the common beam.

[0035] 3) In the case of FR1+FR2 CA, the sharing coefficient is the sum of the sharing coefficient of FR1 and the sharing coefficient of FR2.

[0036] These agreements are P as defined in Section 8.5 of TS 38.133. BFD and P CBD is incorporated into expressions about.

[0037] 2 illustrates a network environment 200 according to some embodiments. The network environment 100 may include a UE 104 and two or more access nodes (or “base stations”) 208 and 210. Each of the access nodes 208 and 210 may provide one or more wireless serving cells, such as 3GPP New Radio “NR” cells, through which the UE 104 may communicate with the access nodes 208 and 210. In this example, the access node 208 provides two serving cells 212 and 214 that communicate with the UE 104 via CCs 222 and 224, respectively, and the access node 210 provides two serving cells 216 and 218 that communicate with the UE 104 via CCs 226 and 228, respectively.

[0038] The UE 104 can communicate with the access nodes 208 and 210 over an air interface that conforms to 3GPP technical specifications, such as those defining the Fifth Generation (5G) NR system standard. Each of the access nodes 208 and 210 may be a Next Generation Radio Access Network (NG-RAN) node coupled with a 5G core network. The NG-RAN node may be either a gNB, which provides NR user plane and control plane protocol terminations toward the UE 104, or an ng-eNB, which provides Evolved Universal Terrestrial Radio Access (E-UTRA) user plane and control plane protocol terminations toward the UE 104.

[0039] FIG. 2 illustrates an example of dual connectivity (DC) in which a UE 104 may simultaneously transmit and receive data on multiple component carriers (CCs) from two different cell groups. In this example, access node 208 is a master node that provides a control plane connection to a core network, and access node 210 is a secondary node. The master node may be coupled to a 5G core (5GC) network via a backhaul connection that may support an NG-C interface. The serving cells provided by the master node (access node 208 in this example) comprise a master cell group (MCG) 220, and the serving cells provided by the secondary node (access node 210 in this example) comprise a secondary cell group (SCG) 221. Each of MCG 220 and SCG 221 has a primary serving cell and, optionally, one or more secondary serving cells. The primary serving cell (also referred to as a special cell or spCell) of MCG 220 may be referred to as a PCell, and the secondary serving cells of MCG 221 may be referred to as an SCell. A primary serving cell (spCell) of SCG 220 may be referred to as a PSCell, and a secondary serving cell of SCG 221 may be referred to as an SCell or an SSCell. In Figure 2, serving cell 212 is a PCell, serving cell 216 is a PSCell, and serving cells 214 and 218 are SCells. The term "primary serving cell" may refer to any one of a PCell and a PSCell unless otherwise specified, the term "secondary serving cell" may refer to any one of a secondary serving cell of an MCG and a secondary serving cell of an SCG unless otherwise specified, and the term "SCell" may also refer to any one of a secondary serving cell of an MCG and a secondary serving cell of an SCG unless otherwise specified.

[0040] As mentioned above, the evaluation period for BFD and CBD can be extended for FR2 beams. Such extension is determined by the evaluation period extension factor P , which can be used by the UE to allocate measurement resources for the searcher, as described in TS 38.133. BFD and P CBD It can be shown by:

[0041] Dual connectivity of a UE with two NR cell groups (e.g., as provided by a master gNB and a secondary gNB) is referred to as NR-DC. NR-DC may be desirable, for example, in situations where the backhaul connection between the master access node 208 and the secondary access node 210 is not optimal (e.g., the master access node 208 and the secondary access node 210 are manufactured by different entities and do not share a dedicated interface that can be optimized). For NR-DC, the UE 104 may apply radio link monitoring to the serving cell, which may include beam failure detection (BFD) and / or candidate beam detection (CBD). Unfortunately, the factor P as described in TS 38.133 is not sufficient. BFD and P CBD The value of ξ gives inaccurate results in some NR-DC cases, such as FR1+FR2 NR-DC, where the UE 104 is also configured for inter-band CA (e.g., in an SCG) in FR2. Examples of such new band combinations are specified, for example, in Parts 1, 2, and 3 of 3GPP Technical Specification (TS) 38.101 (3GPP TS 38.101-1 / 2 / 3 V16.5.0(2020-09)) (“TS 38.101”). For example, Table 5.5B.7.2 in Part 3 of TS 38.101 specifies several new band combinations, each including two bands from FR1 and a third band from FR2. In such cases, the UE 104 may be configured to perform CBD or BFD on the PCell, PSCell, and one or more SCells on different bands. The coefficient P as described in TS 38.133 BFD and P CBDThe value of P is inappropriate for a situation where both the PCell and the PSCell are competing for searcher resources, and therefore cannot be used for searcher resource allocation in such a case. BFD and P CBD The value of may also be inappropriate for mixed cases where the BFD is configured on one or more bands and the CBD is configured on one or more other bands.

[0042] 3 illustrates an example of an operational flow / algorithm structure 300 according to some embodiments. The operational flow / algorithm structure 300 may be performed or implemented by a UE, such as, for example, the UE 104 or the UE 1000, or by a component thereof, for example, the baseband processor 1004A.

[0043] The operational flow / algorithm structure 300 may include receiving, at 304, a first configuration for a first beam management operation for a primary serving cell (PCell) including beam failure detection (BFD) or candidate beam detection (CBD). The operational flow / algorithm structure 300 may include receiving, at 308, a second configuration for a second beam management operation for a primary secondary cell (PSCell) including BFD or CBD. The operational flow / algorithm structure 300 may include receiving, at 312, a third configuration for a third beam management operation for a secondary serving cell (SCell) including BFD or CBD. The first, second, and third configurations may configure one or more reference signals used as beam management reference signals. The reference signals may include SSB or CSI-RS resources, which may be indicated in terms of resource elements (resource elements are subcomponents consisting of subcarriers in the frequency domain and symbol intervals in the time domain). The CSI-RS resources may be a set of beams configured for a serving cell.

number

number

[0044] The configuration may include UE-specific or cell-specific configuration information.

[0045] The operational flow / algorithm structure 300 may include calculating (e.g., setting) a first evaluation period extension factor based on the first configuration, the second configuration, and the third configuration, at 316. In an example of SSB-based CBD evaluation period extension enhancement, the first evaluation period extension factor P CBD The value of the second evaluation period extension coefficient P of the PSCell can be calculated. CBD , and the value of the third evaluation period extension factor of any SCell can also be calculated according to the number of bands for which BFD is configured. In one such example (described as option 2 in the third example below),

[0046] 1) Configured set for PCell

number

number

[0047] 2) Set configured for SCell

number

[0048] 11 illustrates an example of an operational flow / algorithm structure 1100 according to some embodiments. The operational flow / algorithm structure 1100 may be performed or implemented by a UE, such as, for example, the UE 104 or the UE 1000, or by a component thereof, for example, the baseband processor 1004A.

[0049] The operational flow / algorithm structure 1100 may include operations 304, 308, 312, and 316 described herein. The operational flow / algorithm structure 1100 may further include indicating an allocation of searcher measurement resources between the PCell and the PSCell based on the calculated first evaluation period extension factor, at 1112. The allocation of searcher measurement resources includes allocating a portion (possibly all) of the first searcher to the PCell.

[0050] The operational flow / algorithm structure 1100 may further include, at 1116, performing a first beam management operation in accordance with the assignment. The first beam management operation may be BFD or CBD as described herein. In some embodiments, the UE 104 may measure CBD RSs transmitted by multiple candidate beams. In these or other embodiments, the UE 104 may measure BFD RSs transmitted by multiple candidate beams. The UE 104 may select one candidate beam from the multiple candidate beams based on the measurements.

[0051] In a first example, the application of the operational flow / algorithm structures 300 and 1100 to an extended enhancement of the CSI-RS-based BFD evaluation period is described. In this example, the network and / or UE 104 may be configured with a minimal assumption that when there are multiple CCs in a single band, BFD is performed for only one of the CCs in the band.

[0052] If only one of the PCell and the PSCell is configured with BFD, then in 316, BFD The value of is the set configured for the PCell or PSCell.

number

number

[0053] However, if both the PCell and the PSCell are configured with BFD, then in 316, the set configured for the PCell or the PSCell

number

[0054] In the first option (Option 1), P BFD The value of may be set equal to 1 for the PCell and P BFD The value of may be set equal to one more than the number of band(s) for which the UE 104 is performing BFD for the SCell (e.g., the number of band(s) for which the UE 104 is performing BFD for the SCell + 1).

number

[0055] If Option 1 is adopted, the allocation of a dedicated measurement resource or searcher to the PCell is indicated at 1112, as well as the allocation of another measurement resource or searcher shared between the PSCell and SCell on which the UE 104 is performing BFD. This allocation scheme, applied to two searchers (Searcher A and Searcher B), is shown in the first row ("Option 1") of the table in Figure 5.

[0056] In the second option (Option 2), P BFD The value of may be set equal to 2 for the PCell, and P BFD The value of may be set equal to 2 for a PSCell.

number

[0057] In the third option (Option 3), P BFD The value of may be set equal to 1 for the PCell, BFD The value of may be set equal to 2 for a PSCell.

number

[0058] In a second example, the application of the operational flow / algorithm structures 300 and 1100 to an extended enhancement of the CSI-RS based CBD evaluation period is described. In this example, the network and / or UE 104 may be configured with a minimal assumption that when there are multiple CCs in a single band, CBD is performed for only one of the CCs in the band.

[0059] If only one of the PCell and the PSCell is configured in the CBD, then in 316, CBD The value of is the set configured for the PCell or PSCell.

number

number

[0060] However, if both the PCell and the PSCell are configured in the CBD, then in 316, the set configured for the PCell or the PSCell

number

[0061] In the first option (Option 1), P CBD The value of may be set equal to 1 for the PCell and P CBD The value of may be set equal to one more than the number of band(s) in which the UE 104 is performing CBD for the SCell (e.g., the number of band(s) in which the UE 104 is performing BFD for the SCell + 1).

number

[0062] If Option 1 is adopted, the allocation of a dedicated measurement resource or searcher to the PCell is shown at 1112, as well as the allocation of another measurement resource or searcher shared between the PSCell and the SCell on which the UE 104 is performing CBD. This allocation scheme, applied to two searchers (Searcher A and Searcher B), is shown in the first row ("Option 1") of the table in Figure 5.

[0063] In the second option (Option 2), P CBD The value of may be set equal to 2 for the PCell, and P CBD The value of may be set equal to 2 for a PSCell.

number

[0064] In the third option (Option 3), P CBD The value of may be set equal to 1 for the PCell, CBD The value of may be set equal to 2 for a PSCell.

number

[0065] In a third example, the application of the operational flow / algorithm structures 300 and 1100 to an extended enhancement of the SSB-based CBD evaluation period is described. In this example, the network and / or UE 104 may be configured with a minimal assumption that when there are multiple CCs in a single band, CBD is performed for only one of the CCs in the band.

[0066] If only one of the PCell and the PSCell is configured in the CBD, then in 316, CBD The value of is the set configured for the PCell or PSCell.

number

number

[0067] However, if both the PCell and the PSCell are configured in the CBD, then in 316, the set configured for the PCell or the PSCell

number

[0068] In the first option (Option 1), P CBD The value of may be set equal to 1 for the PCell and P CBD The value of may be set equal to one more than the number of band(s) in which the UE 104 is performing CBD for the SCell (e.g., the number of band(s) in which the UE 104 is performing BFD for the SCell + 1).

number

[0069] If Option 1 is adopted, the allocation of a dedicated measurement resource or searcher to the PCell is shown at 1112, as well as the allocation of another measurement resource or searcher shared between the PSCell and the SCell on which the UE 104 is performing CBD. This allocation scheme, applied to two searchers (Searcher A and Searcher B), is shown in the first row ("Option 1") of the table in Figure 5.

[0070] In the second option (Option 2), P CBD The value of may be set equal to 2 for the PCell, and P CBD The value of may be set equal to 2 for a PSCell.

number

[0071] In the third option (Option 3), P CBD The value of may be set equal to 1 for the PCell, CBD The value of may be set equal to 2 for a PSCell.

number

[0072] In a fourth example, another application of the operational flow / algorithm structures 300 and 1100 to an extended enhancement of the CSI-RS-based BFD evaluation period is described. In this example, the network and / or UE 104 may be configured with a minimal assumption that when there are multiple CCs in a single band, only one of BFD and CBD is performed for the band, and BFD or CBD is performed for only one of the CCs in the band. In this example, the network and / or UE 104 may be configured not to assume that BFD and CBD are operating together in the same band in any particular period. In other words, the network and / or UE 104 may be configured to assume that either BFD or CBD (but not both) is operating in the band configured for BFD or CBD.

[0073] If only one of the PCell and the PSCell is configured with BFD or CBD (i.e., one is configured with BFD or CBD and the other is not configured with BFD and not configured with CBD), then in 316, BFD The value of is the set configured for the PCell or PSCell.

number

number

[0074] However, if the PCell is configured using BFD or CBD and the PSCell is configured using BFD or CBD (i.e., both are configured using BFD, both are configured using CBD, or one is configured using BFD and the other is configured using CBD), then in 316, the configured set for the PCell or PSCell is

number

[0075] In the first option (Option 1), P BFD The value of may be set equal to 1 for the PCell and P BFD The value of may be set to a number greater than the number of band(s) in which the UE 104 is performing BFD or CBD for the SCell (e.g., the number of band(s) in which the UE 104 is performing BFD for the SCell + the number of band(s) in which the UE 104 is performing CBD for the SCell + 1).

number

[0076] If option 1 is adopted, the allocation of a dedicated measurement resource or searcher to the PCell is indicated at 1112, as well as the allocation of another measurement resource or searcher shared between the PSCell and the SCell on which the UE 104 is performing BFD or CBD. This allocation scheme, applied to two searchers (searcher A and searcher B), is shown in the first row ("option 1") of the table in Figure 5.

[0077] In the second option (Option 2), P BFD The value of may be set equal to 2 for the PCell, and P BFD The value of may be set equal to 2 for a PSCell.

number

[0078] In the third option (Option 3), P BFD The value of may be set equal to 1 for the PCell, BFD The value of may be set equal to 2 for a PSCell.

number

[0079] In a fifth example, another application of the operational flow / algorithm structures 300 and 1100 to an extended enhancement of a CSI-RS-based or SSB-based CBD evaluation period is described. In this example, the network and / or UE 104 may be configured with a minimal assumption that when there are multiple CCs in a single band, only one of BFD and CBD is performed for the band, and BFD or CBD is performed for only one of the CCs in the band. In this example, the network and / or UE 104 may be configured not to assume that BFD and CBD are operating together in the same band in any particular period. In other words, the network and / or UE 104 may be configured to assume that either BFD or CBD (but not both) is operating in the band configured for BFD or CBD.

[0080] If only one of the PCell and the PSCell is configured with BFD or CBD (i.e., one is configured with BFD or CBD and the other is not configured with BFD and not configured with CBD), then in 316, CBD The value of is the set configured for the PCell or PSCell.

number

number

[0081] However, if the PCell is configured using BFD or CBD and the PSCell is configured using BFD or CBD (i.e., both are configured using BFD, both are configured using CBD, or one is configured using BFD and the other is configured using CBD), then in 316, the configured set for the PCell or PSCell is

number

[0082] In the first option (Option 1), P CBD The value of may be set equal to 1 for the PCell and P CBD The value of may be set to a number greater than the number of band(s) in which the UE 104 is performing BFD or CBD for the SCell (e.g., the number of band(s) in which the UE 104 is performing BFD for the SCell + the number of band(s) in which the UE 104 is performing CBD for the SCell + 1).

number

[0083] If option 1 is adopted, the allocation of a dedicated measurement resource or searcher to the PCell is indicated at 1112, as well as the allocation of another measurement resource or searcher shared between the PSCell and the SCell on which the UE 104 is performing BFD or CBD. This allocation scheme, applied to two searchers (searcher A and searcher B), is shown in the first row ("option 1") of the table in Figure 5.

[0084] In the second option (Option 2), P CBD The value of may be set equal to 2 for the PCell, and P CBD The value of may be set equal to 2 for a PSCell.

number

[0085] In the third option (Option 3), P CBD The value of may be set equal to 1 for the PCell, CBD The value of may be set equal to 2 for a PSCell.

number

[0086] 12 illustrates an example operational flow / algorithm structure 1200 according to some embodiments. The operational flow / algorithm structure 1200 may be performed or implemented by a UE, such as, for example, the UE 104 or the UE 1000, or by a component thereof, for example, the baseband processor 1004A.

[0087] Operational flow / algorithm structure 1200 may include operations 304, 308, 312, 316, 1112, and 1116 described herein. Operational flow / algorithm structure 1200 may further include determining an evaluation period for the first beam management operation based on the calculated first evaluation period extension factor, at 1208. If the first beam management operation is CSI-RS based BFD, for example, UE 104 may determine the evaluation period according to formulas defined in Table 8.5.3.2-1 (for FR1) and Table 8.5.3.2-2 (for FR2) of TS 38.133 corresponding to the configured frequency range and DRX cycle for the first beam management operation. If the first beam management operation is CSI-RS-based CBD, for example, the UE 104 may determine the evaluation period according to the formulas defined in Tables 8.5.6.2-1 (for FR1) and 8.5.6.2-2 (for FR2) of TS 38.133 corresponding to the configured frequency range and DRX cycle for the first beam management operation. If the first beam management operation is SSB-based CBD, for example, the UE 104 may determine the evaluation period according to the formulas defined in Tables 8.5.5.2-1 (for FR1) and 8.5.5.2-2 (for FR2) of TS 38.133 corresponding to the configured frequency range and DRX cycle for the first beam management operation. The UE 104 may use this evaluation period determination to configure its measurement behavior. By determining this evaluation period, for example, the UE 104 can know how many samples (e.g., of a resource such as CSI-RS or SSB) it can use for evaluation and how many beams it can sweep within this evaluation period.

[0088] For example, in the case of SSB-based candidate beam detection, the operational flow / algorithm structure 300 may include, at 308, an evaluation period T Evaluate_CBD_SSB (milliseconds (ms)) can be calculated as follows (T SSB is the period of the SSB in the set, and T DRXis the discontinuous reception (DRX) cycle length).

[0089] 1) In the case of non-DRX configuration and configuration where the DRX cycle is 320 ms or less, T Evaluate_CBD_SSB =max(25,ceil(3×P×P CBD )×T SSB )

[0090] 2) In the case of a configuration where the DRX cycle is greater than 320 ms, T Evaluate_CBD_SSB =ceil(3×P×P CBD ×T DRX )

[0091] where the value of parameter P is as described in section 8.5.5.2 of TS 38.133 (e.g., has a value of 1 when the measurement gap does not overlap with any SSB opportunities in the monitored cell, and is otherwise based on the measurement gap repetition period).

[0092] 9 illustrates a receiving component 900 of a device, according to some embodiments. The device may be a UE 104 or a serving cell 112, 114, 212, 214, 216, or 218. The receiving component 900 may include a first antenna panel, Panel 1 904, and a second antenna panel, Panel 2 908. Each antenna panel may include several antenna elements.

[0093] The antenna panels may be coupled to respective analog beamforming (BF) components. For example, panel 1 904 may be coupled to analog BF component 912, and panel 2 908 may be coupled to analog BF component 916.

[0094] The analog BF component may be coupled to one or more radio frequency (RF) chains. For example, the analog BF component 912 may be coupled to one or more RF chains 920, and the analog BF component 916 may be coupled to one or more RF chains 924. The RF chains may amplify the received analog RF signals, downconvert the RF signals to baseband, and convert the analog baseband signals to digital baseband signals that may be provided to a digital BF component 928. The digital BF component 928 may provide the baseband (BB signal) for further BB processing.

[0095] In various embodiments, control circuitry, which may be present in the baseband processor, may provide BF weights to the analog / digital BF components to provide receive beams at each antenna panel. These BF weights may be determined by the control circuitry based on received reference signals and corresponding QCL / TCI information, as described herein. In some embodiments, the BF weights may be phase shift values ​​provided to phase shifters in the analog BF component 912 or complex weights provided to the digital BF component 928. In some embodiments, the BF components and the antenna panels may operate together to provide a dynamic phased array capable of steering beams in desired directions.

[0096] In various embodiments, the beamforming may include analog beamforming, digital beamforming only, or hybrid analog-digital beamforming. Digital beamforming may utilize separate RF chains each corresponding to an antenna element.

[0097] Although beamforming component 900 illustrates receive beamforming, other embodiments may include beamforming components that perform transmit beamforming in a similar manner.

[0098] 10 illustrates a UE 1000 according to some embodiments. The UE 1000 may be similar to and substantially interchangeable with the UE 104 of FIGS.

[0099] The UE1000 may be any mobile or non-mobile computing device such as a mobile phone, computer, tablet, industrial wireless sensor (e.g., microphone, carbon dioxide sensor, pressure sensor, humidity sensor, thermometer, motion sensor, accelerometer, laser scanner, fluid level sensor, inventory sensor, voltage / current meter, actuator, etc.), video surveillance / monitoring device (e.g., camera, video camera, etc.), wearable device (e.g., smart watch), relaxed-IoT device, etc.

[0100] The UE 1000 may include a processor 1004, an RF interface circuit 1008, memory / storage 1012, a user interface 1016, sensors 1020, driver circuitry 1022, a power management integrated circuit (PMIC) 1024, an antenna structure 1026, and a battery 1028. The components of the UE 1000 may be implemented as an integrated circuit (IC), portions thereof, separate electronic devices or other modules, logic, hardware, software, firmware, or a combination thereof. The block diagram of FIG. 10 is intended to illustrate a high-level view of some of the components of the UE 1000. However, some of the components shown may be omitted, additional components may be present, and different arrangements of the components shown may occur in other embodiments.

[0101] The components of the UE 1000 may be coupled to various other components via one or more interconnects 1032, which may represent any type of interface, input / output, bus (local, system or expansion), transmission line, trace, optical connection, etc. that may allow various circuit components (on a common or different chips or chipsets) to interact with one another.

[0102] The processor 1004 may include processor circuitry such as, for example, a baseband processor circuit (BB) 1004A, a central processing unit circuit (CPU) 1004B, and a graphics processing unit circuit (GPU) 1004C. The processor 1004 may include any type of circuitry or processor circuitry that executes or otherwise operates computer-executable instructions, such as program code, software modules, or functional processes from memory / storage 1012 to cause the UE 1000 to perform the operations described herein.

[0103] In some embodiments, the baseband processor circuit 1004A may access a communications protocol stack 1036 in memory / storage 1012 to communicate over a 3GPP-compliant network. Generally, the baseband processor circuit 1004A may access the communications protocol stack to perform user plane functions at the PHY, MAC, RLC, PDCP, SDAP, and PDU layers, and control plane functions at the PHY, MAC, RLC, PDCP, RRC, and non-access layers. In some embodiments, PHY layer operations may additionally / alternatively be performed by components of the RF interface circuit 1008.

[0104] The baseband processor circuit 1004A may generate or process baseband signals or waveforms that carry information in a 3GPP-compliant network. In some embodiments, waveforms for NR may be based on cyclic prefix OFDM "CP-OFDM" in the uplink or downlink and discrete Fourier transform spread OFDM "DFT-S-OFDM" in the uplink.

[0105] The memory / storage 1012 may include one or more non-transitory computer-readable media (e.g., communication protocol stack 1036) that include instructions that may be executed by one or more of the processors 1004 to cause the UE 1000 to perform various operations described herein. The memory / storage 1012 includes any type of volatile or non-volatile memory that may be distributed throughout the UE 1000. In some embodiments, some of the memory / storage 1012 may be located within the processor 1004 itself (e.g., L1 and L2 caches), while other memory / storage 1012 is external to the processor 1004 but accessible via a memory interface. The memory / storage 1012 may include any suitable volatile or non-volatile memory, such as, without limitation, dynamic random access memory (DRAM), static random access memory (SRAM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), flash memory, solid-state memory, or any other type of memory device technology.

[0106] The RF interface circuitry 1008 may include transceiver circuitry and a radio frequency front end module (RFEM) that enable the UE 1000 to communicate with other devices over a radio access network. The RF interface circuitry 1008 may include various elements disposed in the transmit or receive paths. These elements may include, for example, switches, mixers, amplifiers, filters, combiner circuits, control circuits, etc.

[0107] In the receive path, the RFEM may receive radiated signals from the air interface via the antenna structure 1026, filter and amplify the signals (using a low noise amplifier), and provide the signals to a transceiver receiver that downconverts the RF signals to baseband signals that are provided to a baseband processor in the processor 1004.

[0108] On the transmit path, the transmitter of the transceiver upconverts the baseband signal received from the baseband processor and provides an RF signal to the RFEM, which may amplify the RF signal with a power amplifier before radiating the signal across the air interface via the antenna 1026.

[0109] In various embodiments, the RF interface circuitry 1008 may be configured to transmit / receive signals in a manner compliant with an NR access technology.

[0110] The antenna 1026 may include antenna elements that convert electrical signals into radio waves for transmission through the air and convert received radio waves into electrical signals. The antenna elements may be arranged in one or more antenna panels. The antenna 1026 may have antenna panels that are omnidirectional, directional, or a combination thereof to enable beamforming and multiple-input, multiple-output communications. The antenna 1026 may include microstrip antennas, printed antennas fabricated on the surface of one or more printed circuit boards, patch antennas, phased array antennas, etc. The antenna 1026 may have one or more panels designed for a specific frequency band, including the FR1 or FR2 bands.

[0111] The user interface circuitry 1016 includes various input / output (I / O) devices designed to enable user interaction with the UE 1000. The user interface 1016 includes input device circuitry and output device circuitry. The input device circuitry includes any physical or virtual means for accepting input, including, among others, one or more physical or virtual buttons (e.g., a reset button), a physical keyboard, a keypad, a mouse, a touchpad, a touchscreen, a microphone, a scanner, a headset, etc. The output device circuitry includes any physical or virtual means for displaying or otherwise communicating information, such as sensor readings, actuator position(s), or other similar information. The output device circuitry may include any number or combination of audio or visual displays, including, among other things, one or more simple visual outputs / indicators (e.g., binary status indicators such as light emitting diodes "LEDs" and multi-character visual outputs), or more complex outputs such as display devices or touch screens (e.g., liquid crystal displays "LCDs," LED displays, quantum dot displays, projectors, etc.), and output such as characters, graphics, multimedia objects, etc. generated or created from operation of the UE1000.

[0112] Sensors 1020 may include devices, modules, or subsystems intended to detect events or changes in the environment and transmit information about the detected events (sensor data) to some other device, module, subsystem, etc. Examples of such sensors include, among others, inertial measurement units including accelerometers, gyroscopes, or magnetometers; microelectromechanical systems or nanoelectromechanical systems including 3-axis accelerometers, 3-axis gyroscopes, or magnetometers; level sensors; flow sensors; temperature sensors (e.g., thermistors); pressure sensors; barometric pressure sensors; gravimeters; altimeters; image capture devices (e.g., cameras or lensless apertures); light detection and ranging sensors; proximity sensors (e.g., infrared detectors, etc.); depth sensors; ambient light sensors; ultrasonic transceivers, microphones, or other similar audio capture devices, etc.

[0113] The driver circuit 1022 may include software and hardware elements that operate to control particular devices embedded in, attached to, or otherwise communicatively coupled to the UE 1000. The driver circuit 1022 may include individual drivers that enable other components to interact with or control various input / output (I / O) devices that may be present in or connected to the UE 1000. For example, the driver circuit 1022 may include a display driver for controlling and allowing access to a display device, a touchscreen driver for controlling and allowing access to a touchscreen interface, a sensor driver for obtaining sensor readings of the sensor circuit 1020 and controlling and allowing access to the sensor circuit 1020, a driver for obtaining actuator positions of electromechanical components or controlling and allowing access to electromechanical components, a camera driver for controlling and allowing access to an embedded image capture device, and an audio driver for controlling and allowing access to one or more audio devices.

[0114] The PMIC 1024 may manage the power provided to various components of the UE 1000. In particular, with respect to the processor 1004, the PMIC 1024 may control power source selection, voltage scaling, battery charging, or DC-DC conversion.

[0115] In some embodiments, the PMIC 1024 may control or otherwise be part of various power saving mechanisms of the UE 1000, including DRX as discussed herein.

[0116] The battery 1028 may provide power to the UE 1000, although in some examples, the UE 1000 may be mounted and deployed in a fixed location or may have a power source coupled to a power grid. The battery 1028 may be a lithium-ion battery, a metal-air battery such as a zinc-air battery, an aluminum-air battery, a lithium-air battery, etc. In some implementations, such as in vehicle-based applications, the battery 1028 may be a typical automotive lead-acid battery.

[0117] It is understood that use of personally identifiable information should comply with generally recognized privacy policies and practices that meet or exceed industry or government requirements for maintaining user privacy. In particular, personally identifiable information data should be managed and handled in a manner that minimizes the risk of unintended or unauthorized access or use, and the nature of authorized uses should be clearly indicated to users.

[0118] For one or more embodiments, at least one of the components depicted in one or more of the foregoing figures may be configured to perform one or more of the operations, techniques, processes, or methods as described in the example section below. For example, the baseband circuitry described above in connection with one or more of the foregoing figures may be configured to operate according to one or more of the examples described below. As another example, circuitry associated with a UE, a base station, a network element, etc., as described above in connection with one or more of the foregoing figures, may be configured to operate according to one or more of the examples described below in the example section. Example

[0119] Further exemplary embodiments are presented in the following sections.

[0120] Example 1 includes a method, the method including: receiving a first configuration for a first beam management operation for a primary serving cell (PCell) and a second configuration for a second beam management operation for a primary secondary cell (PSCell); calculating an extension factor based on the first and second configurations; determining an evaluation period for the first beam management operation based on the calculated extension factor; indicating an allocation of searcher measurement resources between the PCell and the PSCell based on the calculated extension factor; and performing a first beam management operation according to the allocation, wherein the first beam management operation includes beam failure detection (BFD) or candidate beam detection (CBD), the second beam management operation includes BFD or CBD, and the allocation of searcher measurement resources includes allocation of a portion of the first searcher to the PCell.

[0121] Example 2 includes the method according to example 1 or any other example herein, wherein the extension factor is further based on a configuration for BFD or CBD for a secondary serving cell (SCell) of a cell group of the PCell.

[0122] Example 3 includes the method of example 1 or any other example herein, wherein allocating a portion of the first searcher to the PCell includes allocating the first searcher to the PCell.

[0123] Example 4 includes the method described in Example 3 or any other example herein, wherein allocating the searcher measurement resource includes allocating a second searcher between the PSCell and another serving cell that is not the PCell.

[0124] Example 5 includes the method of example 3 or any other example herein, wherein allocating the searcher measurement resources includes allocating at least half of the second searcher to the PSCell.

[0125] Example 6 includes the method of example 1 or any other example herein, wherein allocating searcher measurement resources includes allocating the first searcher to a PCell and a PSCell.

[0126] Example 7 includes the method of Example 6 or any other example herein, wherein allocating the first searcher to the PCell and the PSCell includes allocating the first searcher equally between the PCell and the PSCell.

[0127] Example 8 includes the method of any one of Examples 1-7 or any other example herein, wherein the calculated extension factor is based on a frequency range of the configuration for the first beam management operation.

[0128] Example 9 may include one or more non-transitory computer-readable media including instructions, which, when executed by one or more processors of the electronic device, cause the electronic device (e.g., UE) to calculate an extension factor based on a configuration for a first beam management operation for a primary serving cell (PCell) and a configuration for a second beam management operation for a primary secondary cell (PSCell), determine an evaluation period for the first beam management operation based on the calculated extension factor, indicate an allocation of searcher measurement resources between the PCell and the PSCell based on the calculated extension factor, and perform a first beam management operation according to the allocation, wherein the first beam management operation includes beam failure detection (BFD) or candidate beam detection (CBD), the second beam management operation includes BFD or CBD, and the allocation of searcher measurement resources includes allocating a portion of the first searcher to the PCell.

[0129] Example 10 includes one or more computer-readable media as described in Example 9 or any other example herein, wherein the extension factor is further based on a configuration for BFD or CBD for a secondary serving cell (SCell) of the cell group of the PCell.

[0130] Example 11 includes one or more computer-readable media described in Example 9 or any other example herein, wherein allocating a portion of the first searcher to a PCell includes allocating the first searcher to a PCell.

[0131] Example 12 includes one or more computer-readable media described in Example 11 or any other example herein, wherein the allocation of searcher measurement resources includes allocation of a second searcher between the PSCell and another serving cell that is not the PCell.

[0132] Example 13 includes one or more computer-readable media described in Example 11 or any other example herein, wherein the allocation of searcher measurement resources includes allocating at least half of the second searcher to the PSCell.

[0133] Example 14 includes one or more computer-readable media as described in Example 9 or any other example herein, wherein allocating searcher measurement resources includes allocating the first searcher to a PCell and a PSCell.

[0134] Example 15 includes one or more computer-readable media described in Example 14 or any other example herein, wherein allocating the first searcher to the PCell and the PSCell includes allocating the first searcher equally between the PCell and the PSCell.

[0135] Example 16 includes one or more computer-readable media as described in any one of Examples 9-15 or some other example herein, wherein the calculated extension factor is based on a frequency range of the configuration for the first beam management operation.

[0136] Example 17 may include a user equipment, the user equipment comprising: a memory that stores a first configuration for a first beam management operation for a primary serving cell (PCell) and a second configuration for a second beam management operation for a primary secondary cell (PSCell); and a processing circuit coupled to the memory, the processing circuit calculating an extension factor based on the first and second configurations, indicating an allocation of searcher measurement resources between the PCell and the PSCell based on the calculated extension factor, and performing a first beam management operation according to the allocation, wherein the first beam management operation includes beam failure detection (BFD) or candidate beam detection (CBD), the second beam management operation includes BFD or CBD, and the allocation of searcher measurement resources includes allocation of a portion of the first searcher to the PCell.

[0137] Example 18 includes the user equipment of Example 17 or any other example herein, wherein the extension factor is further based on a configuration for BFD or CBD for a secondary serving cell (SCell) of the cell group of the PCell.

[0138] Example 19 includes the user equipment of Example 17 or any other example herein, wherein allocating a portion of the first searcher to the PCell includes allocating the first searcher to the PCell.

[0139] Example 20 includes the user equipment of Example 19 or any other example herein, wherein the allocation of searcher measurement resources includes allocation of a second searcher between the PSCell and another serving cell that is not the PCell.

[0140] Example 21 can include an apparatus including means for performing one or more elements of the method described in or related to any of Examples 1-8, or any other method or process described herein.

[0141] Example 22 can include one or more non-transitory computer-readable media containing instructions that, when executed by one or more processors of an electronic device, cause the electronic device to perform one or more elements of a method described or a related method in any of Examples 1-8, or any other method or process described herein.

[0142] Example 23 may include an apparatus comprising logic, modules, or circuitry for performing one or more elements of the method described in or related to any of Examples 1-8, or any other method or process described herein.

[0143] Example 24 includes a method of beam management, the method including: receiving a first configuration for a first beam management operation for a primary serving cell (PCell) including beam failure detection (BFD) or candidate beam detection (CBD); receiving a second configuration for a second beam management operation for a primary secondary cell (PSCell) including BFD or CBD; receiving a third configuration for a third beam management operation for a secondary serving cell (SCell) including BFD or CBD; and calculating a first evaluation period extension factor for the first beam management operation based on the first configuration, the second configuration, and the third configuration, wherein the third beam management operation is on a different frequency band from the first beam management operation, and the third beam management operation is on a different frequency band from the second beam management operation.

[0144] Example 25 may include a method described in Example 24 or any other example herein, wherein the calculated first evaluation period extension factor has a value equal to 1, and the method further includes indicating an allocation of the first searcher to the PCell based on the calculated first evaluation period extension factor.

[0145] Example 26 can include any method, technique, or process described in or related to any of Examples 1-25, or portions or parts thereof.

[0146] Example 27 may include an apparatus comprising one or more processors and one or more computer-readable media comprising instructions that, when executed by the one or more processors, cause the one or more processors to perform a method, technique, or process described in any of Examples 1-8, 24, or 25 or a related method, technique, or process, or portions thereof.

[0147] Example 28 can include a signal described in or related to any of Examples 1-20, 24, or 25, or a portion or part thereof.

[0148] Example 29 may include a datagram, information element, packet, frame, segment, PDU, or message described in or relating to, or being a part or portion of, any of Examples 1-20, 24, or 25, or described in this disclosure.

[0149] Example 30 can include a signal encoded with data described in or relating to, or being a part or portion of, any of Examples 1-20, 24, or 25, or described in this disclosure.

[0150] Example 31 may include a signal encoded by a datagram, IE, packet, frame, segment, PDU, or message described in or relating to any of Examples 1 to 20, 24, or 25, or a portion or part thereof, or described in this disclosure.

[0151] Example 32 can include an electromagnetic signal carrying computer-readable instructions, where execution of the computer-readable instructions by one or more processors causes the one or more processors to perform a method, technique, or process described in, related to, or a portion of any of Examples 1-20, 24, or 25.

[0152] Example 33 may include a computer program including instructions, where execution of the program by a processing element causes the processing element to perform a method, technique, or process described in, related to, or a portion of any of Examples 1-20, 24, or 25.

[0153] Example 34 can include signals in a wireless network as shown and described herein.

[0154] Example 35 may include a method of communicating in a wireless network as shown and described herein.

[0155] Example 36 may include a system for providing wireless communication as shown and described herein.

[0156] Example 37 may include a device for providing wireless communication as shown and described herein.

[0157] Any of the above examples can be combined with any other example (or combination of examples) unless otherwise stated. The foregoing description of one or more implementations provides illustration and description, but is not intended to be exhaustive or to limit the scope of the embodiments to the precise form disclosed. Modifications and variations are possible in light of the above teachings or may be acquired from practice of various embodiments.

[0158] Although the above embodiments have been described in considerable detail, numerous variations and modifications will become apparent to those skilled in the art once the above disclosure is fully appreciated, and it is intended that the following claims be interpreted to embrace all such variations and modifications.

Claims

1. Identifying a set of channel state information (CSI) reference signal (RS) resources reserved for a first secondary serving cell (SCell); Identifying a number of bands on which beam failure detection (BFD) is performed for one or more SCells, the one or more SCells including the first SCell; and and calculating, for BFD of the first SCell, an evaluation period extension factor for CSI-RS resources of the set of CSI-RS resources as twice the number of bands. method.

2. Identifying the number of bands on which beam failure detection is performed for an SCell may include: Identifying a first band including a first component carrier (CC) and a second CC for performing BFD of a primary cell (PCell); and identifying a second band including a third CC for performing BFD for the first SCell, wherein the number of bands is based on the second band. The method of claim 1.

3. The method further comprises: Identifying a band of the number of bands including a plurality of component carriers; and determining that BFD is only performed on one component carrier of the plurality of component carriers. The method of claim 1.

4. the evaluation period extension factor is for each CSI-RS resource of the set of CSI-RS resources; The method of claim 1.

5. a first searcher of a UE performs BFD on a primary serving cell (PCell), and a second searcher of the UE performs BFD on the one or more SCells; The method of claim 1.

6. The method further includes processing the CSI-RS resource based on the evaluation period extension factor. The method of claim 1.

7. The method further includes configuring a BFD measurement behavior based on the evaluation period extension factor. The method of claim 1.

8. Identifying a set of channel state information (CSI) reference signal (RS) resources reserved for a first secondary serving cell (SCell); performing beam failure detection (BFD) for the first SCell within an evaluation period based on an evaluation period extension factor for CSI-RS resources of the set of CSI-RS resources that is twice the number of bands on which BFD is performed for one or more SCells, wherein the one or more SCells include the first SCell; a processor circuit; an interface circuit communicatively coupled to the processor circuit; Device.

9. The processor circuit further comprises: Identifying a first band including a first component carrier (CC) and a second CC for performing BFD of a primary cell (PCell); identifying a second band including a third CC for performing BFD for the first SCell, wherein the number of bands is based on the second band; 9. The apparatus of claim 8.

10. The processor circuit further comprises: Identifying a band of the number of bands including a plurality of component carriers; determining that BFD is only performed on one component carrier of the plurality of component carriers; 9. The apparatus of claim 8.

11. the evaluation period extension factor is for each CSI-RS resource of the set of CSI-RS resources; 9. The apparatus of claim 8.

12. a first searcher of a UE performs BFD on a primary serving cell (PCell), and a second searcher of the UE performs BFD on the one or more SCells; 9. The apparatus of claim 8.

13. The processor circuitry further processes the CSI-RS resource based on the evaluation period extension factor.

9. The apparatus of claim 8.

14. The processor circuitry further configures a BFD measurement behavior based on the evaluation period extension factor.

9. The apparatus of claim 8.

15. One or more programs including instructions that, when executed, cause a processor circuit to: receiving a first configuration for a first beam management operation for a primary serving cell (PCell) including beam failure detection (BFD) or candidate beam detection (CBD); receiving a second configuration for a second beam management operation for a primary secondary cell (PSCell) including BFD or CBD; receiving a third configuration for a third beam management operation for a secondary serving cell (SCell) including BFD or CBD; performing the second beam management operation within an evaluation period based on an evaluation period extension factor, the evaluation period extension factor being calculated based on the third configuration; program.

16. The third beam management operation is on a different frequency band than the first beam management operation. The program according to claim 15.

17. The method of claim 1, wherein the first beam management operation includes a beam deflection (BFD), and at least one of the second beam management operation and the third beam management operation includes a counterbalance (CBD). The program according to claim 15.