Communication device, master node, and communication control method
The UE's control unit detects beam failure in a deactivated SCG and transmits recovery information to the master node, addressing the inability to recover from beam failures in deactivated SCGs by switching to a candidate beam, ensuring successful recovery.
Patent Information
- Application Number
- JP2021107737
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-06-29
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2041-06-29
AI Technical Summary
When a secondary cell group (SCG) is deactivated, user equipment (UE) cannot perform signaling for beam failure recovery due to the inability to provide necessary information to the network, leading to failed beam recovery.
The UE is equipped with a control unit that detects beam failure in a deactivated SCG and determines a candidate beam for recovery, transmitting a failure notification with beam identification information to the master node, enabling the network to switch to the candidate beam for successful recovery.
Enables beam failure recovery in deactivated SCGs by providing the network with necessary information, allowing the UE to recover from beam failures even when the SCG is deactivated.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a user equipment and a communication control method used in a mobile communication system. [Background technology]
[0002] In a fifth-generation (5G) mobile communication system (5G system), a dual connectivity method (so-called Dual Connectivity) is defined in which a user device can use radio resources provided by a master node that manages a master cell group (MCG) and a secondary node that manages a secondary cell group (SCG) (see, for example, Non-Patent Document 1).
[0003] When a user equipment detects a beam failure in a cell belonging to an SCG, the user equipment provides the secondary node with information required for beam failure recovery via signaling with the secondary node, thereby enabling the user equipment to recover from the beam failure (see, for example, Non-Patent Document 2).
[0004] In recent years, 3GPP, a standardization project for mobile communication systems, has been studying deactivation of SCGs in order to reduce power consumption of user equipment (see, for example, Non-Patent Document 3). In addition, detection of beam obstructions in deactivated SCGs has been studied (see, for example, Non-Patent Document 4). [Prior art documents] [Non-patent literature]
[0005] [Non-Patent Document 1] 3GPP Technical Specification: TS37.340 V16.5.0 [Non-patent document 2] 3GPP Technical Specification: TS38.321 V16.5.0 [Non-patent document 3] 3GPP contribution: RP-201040 [Non-patent document 4] 3GPP contribution: R2-2103808 Summary of the Invention [Problem to be solved by the invention]
[0006] If an SCG is deactivated, when the user equipment detects a beam failure in that SCG, it will not be able to perform signaling between the user equipment and the secondary node, and will therefore not be able to provide the network with the information necessary to recover from the beam failure, and will not be able to recover from the beam failure.
[0007] Therefore, an object of the present invention is to provide a user equipment and a communication control method that can provide the network side with information necessary to perform beam failure recovery even when the SCG is deactivated. [Means for solving the problem]
[0008] The user equipment according to the first aspect is a user equipment (100) that can use radio resources provided by a master node that manages a master cell group and a secondary node that manages a secondary cell group in a dual connectivity method, and is equipped with a control unit (130) that detects beam failure in a cell belonging to a deactivated secondary cell group and determines a candidate beam to be used to recover from the beam failure, and a communication unit (120) that transmits a failure notification including beam identification information that identifies the determined candidate beam to a base station (200-1) operating as the master node.
[0009] A communication control method according to a second aspect is a communication control method executed by a user device (100) that can use radio resources provided by a master node that manages a master cell group and a secondary node that manages a secondary cell group in a dual connectivity method, and includes the steps of detecting a beam failure in a cell belonging to a deactivated secondary cell group, determining a candidate beam to be used to recover from the beam failure, and transmitting a failure notification including beam identification information that identifies the determined candidate beam to a base station (200-1) operating as the master node. [Effects of the Invention]
[0010] According to one aspect of the present invention, a user equipment and a communication control method can be provided that can provide the network side with information necessary to perform beam failure recovery even when the SCG is deactivated. [Brief explanation of the drawings]
[0011] [Figure 1] 1 is a diagram illustrating a configuration of a mobile communication system according to an embodiment. [Figure 2] FIG. 2 is a diagram illustrating an example of the configuration of a protocol stack in a mobile communication system according to an embodiment. [Figure 3] FIG. 10 is a diagram illustrating an example of operation when a beam failure is detected in a secondary cell (SCell) in an SCG. [Figure 4] FIG. 10 is a diagram illustrating an example of operation when a beam failure is detected in a PSCell (primary cell secondary cell group cell) in an SCG. [Figure 5] FIG. 1 is a diagram illustrating a configuration of a UE according to an embodiment. [Figure 6] FIG. 2 is a diagram illustrating a configuration of a base station according to an embodiment. [Figure 7] FIG. 1 is a diagram illustrating an example of operation of a mobile communication system according to an embodiment. [Figure 8] FIG. 10 is a diagram illustrating an example of information included in an SCGFailureInformation message according to one embodiment. [Figure 9] FIG. 10 is a diagram illustrating an example of information included in an SCGFailureInformation message according to one embodiment. [Figure 10] FIG. 10 is a diagram illustrating an example of information included in a CG-ConfigInfo message according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0012] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. In this specification and drawings, elements that can be similarly described will be denoted by the same or similar reference numerals, and redundant description may be omitted.
[0013] (Mobile communication system) An example of the configuration of a mobile communication system 1 according to an embodiment of the present disclosure will be described with reference to Fig. 1. The mobile communication system 1 is, for example, a mobile communication system that complies with the Technical Specification (TS) of 3GPP, a standardization project for mobile communication systems. In the following, the mobile communication system 1 will be described using as an example a 5th Generation System (5GS) of the 3GPP standard, i.e., a mobile communication system based on NR (New Radio).
[0014] As shown in FIG. 1, the mobile communication system 1 includes a 5G radio access network (so-called Next Generation Radio Access Network: NG-RAN) 20, a 5G core network (5G Core Network: 5GC) 30, and a user equipment (UE) 100.
[0015] The NG-RAN 20 includes a base station 200, which is a node of a radio access network. The base station 200 is a wireless communication device that performs wireless communication with the UE 100. The base station 200 manages one or more cells. The base station 200 performs wireless communication with the UE 100 that has established a connection with its own cell in the radio resource control (RRC) layer. The base station 200 has a radio resource management (RRM) function, a user data (hereinafter simply referred to as "data") routing function, and a measurement control function for mobility control and scheduling. The term "cell" is used to indicate the smallest unit of a wireless communication area. The term "cell" is also used to indicate a function or resource for performing wireless communication with the UE 100. One cell belongs to one carrier frequency. FIG. 1 shows an example in which the base station 200-1 manages the cell 260 and the base station 200-2 manages the cell 250. The UE 100 is located in an overlapping area between the cell 260 and the cell 250.
[0016] The base station 200 is, for example, a gNB that provides NR user plane and control plane protocol termination for the UE 100 and is connected to the 5GC 30 via an NG interface. Note that the base station 200 may be, for example, an eNB that provides E-UTRA user plane and control plane protocol termination for the UE 100 in LTE.
[0017] The 5GC 30 includes a core network device 300. The core network device 300 is a device corresponding to the control plane and may be a device that performs various mobility management for the UE 100. The core network device 300 communicates with the UE 100 using NAS (Non-Access Stratum) signaling and manages information on the tracking area in which the UE 100 is located. The core network device 300 performs paging through the base station 200 to notify the UE 100 of an incoming call. The core network device 300 may be an AMF (Access and Mobility Management Function) of 5G / NR or an MME (Mobility Management Entity) of 4G / LTE.
[0018] The 5GC 30 includes a core network device 300. The core network device 300 includes, for example, an Access and Mobility Management Function (AMF) and / or a User Plane Function (UPF). The AMF performs mobility management for the UE 100. The UPF provides functions specialized for user plane processing. The AMF and the UPF are connected to the base station 200 via an NG interface.
[0019] The UE 100 may be any device used by a user. The UE 100 may be, for example, a mobile wireless communication device such as a mobile phone terminal such as a smartphone, a tablet terminal, a laptop PC, a communication module, or a communication card. The UE 100 may also be a vehicle (e.g., a car, a train, etc.) or a device installed in a vehicle. The UE 100 may also be a transport body other than a vehicle (e.g., a ship, an airplane, etc.) or a device installed in a transport body other than a vehicle. The UE 100 may also be a sensor or a device installed in a sensor. The UE 100 may also be called by other names such as a mobile station, a mobile terminal, a mobile device, a mobile unit, a subscriber station, a subscriber terminal, a subscriber device, a subscriber unit, a wireless station, a wireless terminal, a wireless device, a wireless unit, a remote station, a remote terminal, a remote device, or a remote unit.
[0020] (Example of protocol stack configuration) Next, with reference to FIG. 2, an example of the configuration of a protocol stack in the mobile communication system 1 according to the embodiment will be described.
[0021] The protocol for the wireless section between UE 100 and base station 200 includes a physical (PHY) layer, a medium access control (MAC) layer, a radio link control (RLC) layer, a packet data convergence protocol (PDCP) layer, and a radio resource control (RRC) layer.
[0022] The PHY layer performs encoding / decoding, modulation / demodulation, antenna mapping / demapping, and resource mapping / demapping. Data and control information are transmitted between the PHY layer of the UE 100 and the PHY layer of the base station 200 via a physical channel.
[0023] A physical channel consists of multiple OFDM symbols in the time domain and multiple subcarriers in the frequency domain. One subframe consists of multiple OFDM symbols in the time domain. A resource block is a resource allocation unit and consists of multiple OFDM symbols and multiple subcarriers. A frame can be configured for 10 ms and can include 10 subframes, each of which is 1 ms long. A subframe can include the number of slots corresponding to the subcarrier spacing.
[0024] Among the physical channels, the Physical Downlink Control Channel (PDCCH) plays a central role for purposes such as downlink scheduling assignment, uplink scheduling grant, and transmit power control.
[0025] In NR, the UE 100 can use a bandwidth narrower than the system bandwidth (i.e., the cell bandwidth). The base station 200 configures the UE 100 with a bandwidth portion (BWP) consisting of consecutive PRBs. The UE 100 transmits and receives data and control signals in the active BWP. For example, up to four BWPs can be configured for the UE 100 per cell. Each BWP may have a different subcarrier spacing or may overlap in frequency. When multiple BWPs are configured for the UE 100, the base station 200 can specify which BWP to activate by controlling the downlink. This allows the base station 200 to dynamically adjust the UE bandwidth according to the amount of data traffic of the UE 100, thereby reducing UE power consumption.
[0026] The MAC layer performs data priority control, retransmission processing using Hybrid ARQ (HARQ), random access procedures, etc. Data and control information are transmitted between the MAC layer of UE 100 and the MAC layer of base station 200 via a transport channel. The MAC layer of base station 200 includes a scheduler. The scheduler determines the uplink and downlink transport format (transport block size, modulation and coding scheme (MCS)) and the resources allocated to UE 100. The control information transmitted between the MAC layer of UE 100 and the MAC layer of base station 200 is sometimes referred to as MAC CE (Control Element).
[0027] The RLC layer transmits data to the RLC layer on the receiving side using the functions of the MAC layer and PHY layer. Data and control information are transmitted between the RLC layer of the UE 100 and the RLC layer of the base station 200 via logical channels.
[0028] The PDCP layer performs header compression / decompression and encryption / decryption.
[0029] An SDAP (Service Data Adaptation Protocol) layer may be provided above the PDCP layer, which maps IP flows, which are units for QoS control by the core network, to radio bearers, which are units for QoS control by the AS (Access Stratum).
[0030] The RRC layer controls logical channels, transport channels, and physical channels according to the establishment, re-establishment, and release of radio bearers. RRC signaling for various settings is transmitted between the RRC layer of the UE 100 and the RRC layer of the base station 200. When an RRC connection exists between the RRC of the UE 100 and the RRC of the base station 200 (i.e., the RRC connection is established), the UE 100 is in an RRC connected state. When an RRC connection does not exist between the RRC of the UE 100 and the RRC of the base station 200 (i.e., the RRC connection is not established), the UE 100 is in an RRC idle state. When the RRC connection between the RRC of the UE 100 and the RRC of the base station 200 is suspended, the UE 100 is in an RRC inactive state.
[0031] The NAS layer located above the RRC layer performs session management and mobility management for the UE 100. NAS signaling is transmitted between the NAS layer of the UE 100 and the NAS layer of the core network device 300.
[0032] The UE 100 has an application layer and the like in addition to the radio interface protocol.
[0033] (Dual connection method) In the dual connectivity scheme (so-called Dual Connectivity), a UE 100 in an RRC connected state is configured to use radio resources provided by two different base stations 200. These base stations 200 are connected via a non-ideal backhaul and have different schedulers for allocating the radio resources to the UE 100. One base station 200 operates as a master node that manages a master cell group (hereinafter referred to as MCG), and the other base station 200 operates as a secondary node that manages an SCG (hereinafter referred to as SCG). Therefore, the UE 100 can use radio resources provided by the master node and the secondary node.
[0034] The master node is a radio access node that provides a control plane connection to the core network 30. The master node may be referred to as a master eNB, a master ng-eNB, or a master gNB. The secondary node does not have a control plane connection to the core network 30 and provides additional radio resources to the UE 100. The secondary node may be referred to as an en-gNB, a secondary ng-eNB, or a secondary gNB. Here, the master node and / or the secondary node are logical entities. In this embodiment, the base station 200 may correspond to the master node and / or the secondary node. That is, the base station 200 may be replaced with the master node and / or the secondary node.
[0035] An MCG is a group of serving cells associated with a master node. The MCG consists of a primary cell (PCell) and optionally one or more secondary cells (SCells). An SCG is a group of serving cells associated with a secondary node. The SCG consists of a primary cell (PSCell) of the SCG and optionally one or more secondary cells (SCells). Note that one MAC entity for the MCG and one MAC entity for the SCG are configured in the UE 100.
[0036] (Beam Fault Detection and Recovery Overview) Next, an overview of beam fault detection and recovery will be described with reference to FIGS.
[0037] Compared to LTE, NR is capable of wideband transmission using high frequency bands such as the millimeter wave band or terahertz wave band. To compensate for radio wave attenuation in such high frequency bands, NR utilizes highly directional beamforming using multiple antennas between the base station 200 and the UE 100 to obtain high beam gain. NR introduces beam control technology to establish and maintain beam pairs between the base station 200 and the UE 100. Beam failure detection and recovery technology is one such beam control technology.
[0038] Regarding beam failure detection (BFD), the base station 200 configures the UE 100 with a downlink reference signal resource for detecting a beam failure. Such a reference signal resource is either an SSB (SS / PBCH Block) or a CSI-RS (Channel State Information Reference Signal). The SSB includes a Primary Synchronization Signal (PSS), a Secondary Synchronization Signal (SSS), a PBCH (Physical Broadcast Channel), and a Demodulation Reference Signal (DMRS). For example, the SSB may be composed of four consecutive OFDM symbols in the time domain. Alternatively, the SSB may be composed of 240 consecutive subcarriers (i.e., 20 resource blocks) in the frequency domain. The PBCH is a physical channel that carries a Master Information Block (MIB). The CSI-RS is a reference signal transmitted so that the UE 100 can measure the state of the wireless channel.
[0039] Note that SSB-based BFD is based on the SSB associated with the initial downlink BWP and can only be configured for the initial downlink BWP and the downlink BWPs containing the associated SSB. For other downlink BWPs, BFD is performed based only on the CSI-RS.
[0040] In UE 100, the MAC layer counts beam failure events (beam failure instance indicators (BFIs)) notified from the physical layer using a counter, and detects (declares) beam failure if the count value reaches a specified number of times before the timer expires.
[0041] FIG. 3 shows an example of the operation when a beam failure is detected in an SCell in an SCG.
[0042] 3 shows an example in which base station 200-2 operates as a secondary node and manages cell 250 (SCell 250B), which is an SCell. Base station 200-2 forms a total of three beams, beam #0 to beam #2, in SCell 250B. UE 100 detects beam failure in SCell 250B during communication using beam #0.
[0043] In this case, UE 100 triggers beam failure recovery (BFR) by starting transmission of a beam failure recovery MAC control element (BFR MAC CE). Here, UE 100 selects a beam (e.g., beam #1) suitable for SCell 250B and indicates the selected beam information along with information about the beam failure by the BFR MAC CE. When UE 100 receives a PDCCH indicating an uplink grant for a new transmission of the HARQ process used to transmit the BFR MAC CE, recovery from beam failure of SCell 250B is completed.
[0044] Figure 4 shows an example of the operation when a beam failure is detected in a PSCell in an SCG.
[0045] 4 shows an example in which base station 200-2 manages cell 250 (PSCell 250A), which is a PSCell. Base station 200-2 forms a total of three beams, beam #0 to beam #2, in PSCell 250A. UE 100 detects beam failure during communication using beam #0 in PSCell 250A.
[0046] In this case, UE 100 triggers BFR by initiating a random access procedure to PSCell 250A. Here, UE 100 selects an appropriate beam (e.g., beam #1) to perform BFR. When the random access procedure is completed, BFR is completed.
[0047] (SCG deactivation) Next, we will explain the deactivation of the SCG.
[0048] In 3GPP, deactivation of an SCG is being considered in order to reduce power consumption of a UE 100. When the UE 100 deactivates an SCG, the UE 100 deactivates all cells 250 (PSCells and SCells) belonging to the SCG. The UE 100 stops transmission and reception operations in the deactivated cells 250, thereby reducing power consumption of the UE 100. Examples of such transmission and reception operations include reporting CSI (Channel Status Information), monitoring a PDCCH, transmitting a RACH (Random Access CHannel), transmitting an SRS (Sounding Reference Signal), and transmitting a UL-SCH (UL-Shared CHannel).
[0049] The UE 100 deactivates the SCG, for example, by any one of the following methods.
[0050] Method 1: The UE 100 deactivates the SCG in response to receiving an instruction to deactivate the SCG from the master node (base station 200-1). The instruction is transmitted by RRC layer signaling (RRC message), MAC layer signaling (MAC CE), or PHY layer signaling (PDCCH).
[0051] Method 2: The UE 100 deactivates the SCG in response to the expiration of a timer for deactivating the SCG.
[0052] The UE 100 performs the above-described beam failure detection for each cell 250 belonging to the deactivated SCG. However, when the SCG is deactivated, the UE 100 does not perform transmission / reception operations in each cell 250, and therefore cannot perform the above-described operations for triggering BFR (executing a random access procedure, transmitting a BFR MAC CE). Therefore, when the SCG is deactivated, the UE 100 cannot recover from a beam failure of a cell 250 (PSCell and / or SCell) belonging to the SCG. In one embodiment, the UE 100 is capable of recovering from a beam failure of a cell 250 (PSCell and / or SCell) belonging to the SCG even when the SCG is deactivated.
[0053] (Configuration of user device) Next, a configuration example of the UE 100 according to an embodiment will be described with reference to Fig. 5. As shown in Fig. 5, the UE 100 includes an antenna 110, a communication unit 120, and a control unit .
[0054] The communication unit 120 communicates with other communication devices by transmitting and receiving signals via the antenna 110 under the control of the control unit 130. The communication unit 120, for example, receives a radio signal from the base station 200 and transmits the radio signal to the base station 200. The communication unit 120 may also receive a radio signal from another UE and transmit the radio signal to the other UE. The antenna 110 may be provided outside the UE 100.
[0055] The communication unit 120 has a receiving unit 121 and a transmitting unit 122. The receiving unit 121 converts a radio signal received by the antenna 110 into a received signal, which is a baseband signal, performs signal processing on the received signal, and outputs the received signal to the control unit 130. The transmitting unit 122 performs signal processing on a transmission signal, which is a baseband signal, output by the control unit 130, converts the transmission signal into a radio signal, and transmits the radio signal from the antenna 110.
[0056] The receiving unit 121 may include one or more receivers. The transmitting unit 122 may include one or more transmitters. The receiver and transmitter may be configured as a single transceiver. Furthermore, the antenna 110 may be used for both reception and transmission.
[0057] The control unit 130 performs various controls in the UE 100. For example, the control unit 130 controls communication with the base station 200 or other UEs 100 via the communication unit 120. The operation of the UE 100 described below may be an operation under the control of the control unit 130.
[0058] The control unit 130 may include one or more processors capable of executing a program and a memory for storing the program. The one or more processors may execute the program to perform the operations of the control unit 130. The program may be a program for causing the processor to perform the operations of the control unit 130.
[0059] The processor performs digital processing of signals transmitted and received via the antenna 110 and the RF circuitry. The digital processing includes processing of the RAN protocol stack. The processor may be a single processor. The processor may include multiple processors. The multiple processors may include a baseband processor for digital processing and one or more processors for other processing. The memory stores programs executed by the processor, parameters related to the programs, and data related to the programs. The memory may include at least one of a read-only memory (ROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), a random access memory (RAM), and a flash memory. All or a part of the memory may be included within the processor.
[0060] In a UE 100 according to one embodiment, the control unit 130 detects a beam failure in a cell 250 belonging to a deactivated SCG and determines a candidate beam to be used to recover from the beam failure. The communication unit 120 transmits a failure notification including beam identification information identifying the determined candidate beam to the base station 200-1 operating as the master node. This allows the network side (base station 200-1 and base station 200-2) to grasp the candidate beam determined by the UE 100 and switch the transmission beam to the candidate beam in the SCG. This enables the UE 100 to recover from the beam failure in the cell 250 (PS Cell and / or SCell) belonging to the SCG even when the SCG is deactivated.
[0061] In the following, the operation of the functional units (specifically, communication unit 120 and control unit 130) included in UE 100 may be described as the operation of UE 100.
[0062] (Base station configuration) An example of the configuration of the base station 200 will be described with reference to Fig. 6. As shown in Fig. 4, the base station 200 includes an antenna 210, a wireless communication unit 220, a control unit 230, and a network communication unit 240.
[0063] The wireless communication unit 220 communicates with the UE 100 via the antenna 210 under the control of the control unit 230. The wireless communication unit 220 has a receiving unit 221 and a transmitting unit 222. The receiving unit 221 converts a wireless signal received by the antenna 210 into a received signal, which is a baseband signal, performs signal processing on the received signal, and outputs the received signal to the control unit 230. The transmitting unit 222 performs signal processing on a transmission signal, which is a baseband signal, output by the control unit 230, converts the transmission signal into a wireless signal, and transmits the wireless signal from the antenna 210.
[0064] The network communication unit 240 is connected to the core network device 300. The network communication unit 240 performs network communication with the core network device 300 under the control of the control unit 230.
[0065] The control unit 230 controls the wireless communication unit 220 and performs various controls in the base station 200. The control unit 230 includes at least one processor and at least one memory. The memory stores programs executed by the processor and information used in processing by the processor. The memory may include at least one of ROM, EPROM, EEPROM, RAM, and flash memory. The processor may include a digital signal processor (DSP) that performs digital processing of digital signals, and a central processing unit (CPU) that executes programs. Note that part of the memory may be provided in the wireless communication unit 220. Also, the DSP may be provided in the wireless communication unit 220.
[0066] In base station 200-1 according to one embodiment, radio communication unit 220 receives from UE 100 a failure notification including beam identification information that identifies a candidate beam to be used for recovering from a beam failure in cell 250 belonging to a deactivated secondary cell group. Network communication unit 240 transmits the failure notification to base station 200-2 operating as a secondary node. This allows base station 200-2 to grasp the beam identification information that identifies the candidate beam determined by UE 100, and to switch the transmission beam for UE 100 to the candidate beam determined by UE 100. This enables UE 100 to recover from beam failure in cell 250 (PSCell and / or SCell) that belongs to the SCG, even when the SCG is deactivated.
[0067] In the following, the operations of the functional units (specifically, the wireless communication unit 220, the control unit 230, and the network communication unit 240) included in the base station 200 may be described as the operations of the base station 200.
[0068] (Example of operation) Next, with reference to FIGS. 7 to 10, an example of the operation of the UE 100 and the base station 200 (base station 200-1, base station 200-2) according to the embodiment of the present disclosure will be described.
[0069] In this operation example, the base station 200-1 operates as a master node, and the base station 200-2 operates as a secondary node. Hereinafter, the master node (base station 200-1) and the secondary node (base station 200-2) may be referred to as a "network" as appropriate.
[0070] 7, in step S101, base station 200-1 (radio communication unit 220) transmits an RRC reconfiguration message including SCG configuration information to UE 100. UE 100 (communication unit 120) receives the RRC reconfiguration message including SCG configuration information from base station 200-1.
[0071] The SCG configuration information is information for setting radio resources of the SCG in the UE 100 or updating radio resources of the SCG that have already been set in the UE 100. The SCG configuration information includes various parameters for setting radio resources of each cell 250 belonging to the SCG. The UE 100 (control unit 130) uses the radio resources of the SCG based on the received various parameters. The contents of the SCG configuration information are set by the base station 200-2 operating as a secondary node.
[0072] The SCG configuration information includes, for each cell 250 belonging to the SCG, configuration information for implementing BFR in the cell 250 (hereinafter referred to as BFR configuration information). The BFR configuration information includes a BFR-RS list, which is a list for configuring a plurality of beam failure recovery reference signals (hereinafter referred to as BFR-RS), and information indicating a threshold (hereinafter referred to as BFR threshold) for determining a candidate beam to be used for implementing BFR. One BFR-RS is associated with one beam for BFR. Each BFR-RS may be an SSB or a CSI-RS. The BFR-RS list includes an identifier of each BFR-RS. A BFR-RS list is provided for each downlink BWP belonging to the cell 250.
[0073] If cell 250 is a PSCell, the corresponding BFR-RS list may be referred to as "candidateBeamRSList" and the corresponding BFR threshold may be referred to as "rsrp-ThresholdSSB". If cell 250 is a SCell, the corresponding BFR-RS list may be referred to as "candidateBeamRSSCellList" and the corresponding BFR threshold may be referred to as "rsrp-ThresholdBFR".
[0074] The SCG configuration information includes, for each cell 250 belonging to the SCG, configuration information (hereinafter referred to as BFD configuration information) for detecting beam faults in the cell 250. The BFD configuration information includes information for setting reference signal resources for beam fault detection (hereinafter referred to as BFD resources), information for setting a timer value of a timer for beam fault detection (hereinafter referred to as BFD timer), and information for setting a count value for beam fault detection (hereinafter referred to as BFD count value). The BFD resources include one or more reference signals for BFD. The reference signals for BFD are SSB or CSI-RS.
[0075] The SCG setting information may further include SCG state information that sets the initial state (activated state or deactivated state) of the SCG.
[0076] The SCG configuration information may further include information indicating a timer value of an SCG deactivation timer for deactivating the SCG.
[0077] In step S102, the UE 100 (control unit 130) deactivates the SCG. Specifically, the UE 100 (control unit 130) deactivates the SCG by any one of the following methods.
[0078] Method 1: The UE 100 (controller 130) deactivates the SCG in response to receiving an instruction to deactivate the SCG from the base station 200-1. The instruction is transmitted by any one of RRC layer signaling (RRC message), MAC layer signaling (MAC CE), and PHY layer signaling (PDCCH).
[0079] Method 2: UE100 (control unit 130) deactivates the SCG in response to expiration of the SCG deactivation timer. Specifically, first, in S101, UE100 (control unit 130) sets the initial state of the SCG to activation and starts the SCG deactivation timer in response to receiving SCG state information that sets the initial state of the SCG to activation and SCG configuration information that includes information indicating the timer value of the SCG deactivation timer. Second, in S102, UE100 (control unit 130) deactivates the SCG in response to expiration of the SCG deactivation timer.
[0080] In S103, the UE 100 (control unit 130) detects beam interference of the SCG. The beam interference is detected by the following method.
[0081] First, the physical layer of the UE 100 evaluates the radio link quality of the BFD resource set in the target BWP for each cell 250 belonging to the SCG. The radio link quality may be a block error rate (BLER) of the PDCCH or may be RSRP (Reference Signal Received Power). Note that RSRP in the present disclosure may be replaced with Reference Signal Received Quality (RSRQ), Signal to Interference plus Noise Ratio (SINR), or other information related to power or quality.
[0082] Here, the target BWP is a BWP that the UE 100 should use to detect beam interference when the SCG is deactivated. The UE 100 may autonomously select one of a plurality of configured downlink BWPs as the target BWP. For example, the UE 100 selects the BWP with the widest bandwidth as the target BWP. The UE 100 may select the active BWP immediately before the SCG is deactivated as the target BWP. The UE 100 may select the initial BWP as the target BWP. Alternatively, the base station 200-2 may specify the target BWP to the UE 100 by SCG configuration information.
[0083] Second, when the radio link quality of all reference signal resources in the BFD resources configured for the target BWP is worse than a threshold, the physical layer of the UE 100 periodically outputs a beam failure instance indicator to the MAC layer of the UE 100. This period is set to, for example, the minimum reference signal period in the BFD resources or 2 ms, whichever is larger. The physical layer may output the beam failure instance indicator together with the identifier of the BWP corresponding to the BFD resource and the identifier of the cell 250.
[0084] Third, the MAC layer of UE 100 detects a beam failure based on a beam failure instance indicator received from the physical layer. Specifically, the MAC layer manages a BFD timer and a BFD counter for each cell 250 belonging to the SCG, and when receiving a beam failure instance indicator corresponding to a cell 250 from the physical layer, starts the BFD timer corresponding to the cell 250 and increments (i.e., adds 1) the BFD counter corresponding to the cell 250. If the count value of the BFD counter becomes equal to or greater than the set BFD count value before the BFD timer expires, the MAC layer detects a beam failure for the corresponding cell 250.
[0085] When the MAC layer detects a beam failure, it outputs an indication to the RRC layer indicating that a beam failure has been detected.
[0086] Note that the RRC layer may detect beam failure instead of the MAC layer. In this case, the BFD timer and BFD counter described above may be managed by the RRC layer instead of the MAC layer.
[0087] In step S104, UE100 (control unit 130) determines a candidate beam to be used to recover from the beam failure. Specifically, first, the physical layer measures the RSRP of each BFR-RS in the BFR-RS list corresponding to the BWP where BFD was detected. Second, the physical layer determines the beam corresponding to the BFR-RS that measured the RSRP equal to or greater than the BFR threshold as the candidate beam to be used to recover from the beam failure.
[0088] The physical layer outputs the identifier of the determined candidate beam to the MAC layer. The physical layer may determine multiple candidate beams. In this case, the physical layer outputs the identifiers of the determined multiple candidate beams to the MAC layer. Note that when the RRC layer performs beam failure detection instead of the MAC layer, the physical layer outputs the identifier of the determined candidate beam to the RRC layer.
[0089] In step S105, UE 100 (communication unit 120) transmits a beam failure notification to base station 200-1. Base station 200-1 (wireless communication unit 220) receives the beam failure notification from UE 100. The beam failure notification is a message for UE 100 to notify the network of information regarding beam failure detected in each cell 250 belonging to the deactivated SCG.
[0090] The beam failure notification includes, for each cell 250 in which beam failure is detected, the cell identifier of the cell 250, the BWP identifier of the target BWP of the cell, and beam identification information that identifies the candidate beam determined to recover from the beam failure. Note that if the SCG includes only a PSCell, the beam failure notification does not need to include a cell identifier. If only one downlink BWP is configured for the cell 250 in which beam failure is detected, the beam failure notification does not need to include a BWP identifier. The beam identification information is the identifier of the BFR-RS corresponding to the determined candidate beam.
[0091] The beam failure notification transmitted from the UE 100 to the base station 200-1 may be transmitted by an RRC message or may be transmitted by a MAC CE. The RRC message is, for example, an SCGFailureInformation message.
[0092] A determination condition for the UE 100 to determine whether or not to transmit a beam failure notification may be set from the network to the UE 100. The determination condition is, for example, the following 1) or 2).
[0093] 1) A beam failure is detected in any one of the cells 250 (PS Cell or SCell) belonging to the SCG, and a candidate beam for recovering from the beam failure is determined.
[0094] 2) The cell 250 in which the beam failure is detected is a PSCell, and a candidate beam has been determined to recover from the beam failure in the cell 250. In this case, even if a beam failure is detected in a cell 250 that is not a PSCell, the UE 100 does not transmit a beam failure notification. If there is no beam failure in the PSCell, even if there is a beam failure only in the SCell, the UE 100 can communicate with the secondary node (base station 200-2) via the PSCell when activating the SCG, and therefore there is less need to notify the network of the beam failure of the SCell than in the PSCell.
[0095] The judgment condition is not limited to 1) or 2) above. For example, UE 100 may detect beam failure in the SCG within a certain period of time, and when the certain period ends, if beam failure is detected in at least one cell 250, transmit a beam failure notification. The judgment condition may not be set in UE 100 by the network, but may be specified in advance by technical specifications. Note that if the judgment condition is not set in UE 100, UE 100 may transmit a beam failure notification at any timing after beam failure is detected.
[0096] Next, a specific example of an SCGFailureInformation message for transmitting a beam failure notification will be described with reference to FIGS.
[0097] As shown in Figures 8 and 9, the SCGFailureInformation message includes a beam failure information element list (beamFailureDeactivatedSCG-InfoList-r17) 410 as a beam failure notification.
[0098] The beam failure information element list (beamFailureDeactivatedSCG-InfoList-r17) 410 includes up to maxNrofServingCells beam failure information elements (BeamFailureDeactivatedSCG-Info-r17) 411.
[0099] Each beam failure information element (BeamFailureDeactivatedSCG-Info-r17) 411 includes a cell identifier (servCellIndex-r17) that identifies the cell 250 in which the beam failure corresponding to the beam failure information element 411 was detected, a BWP identifier (bwp-Id) that identifies the BWP in which the beam failure was detected, and beam identification information (candidateBeamRS-Id) that identifies the candidate beam to be used to recover from the beam failure.
[0100] 7, in S106, the base station 200-1 (network communication unit 240) transmits to the base station 200-2 the beam failure notification received from the UE 100. The base station 200-2 (network communication unit 240) receives the beam failure notification from the base station 200-1.
[0101] The beam failure notification transmitted from the base station 200-1 to the base station 200-2 may be transmitted by a cell group configuration information (CG-ConfigInfo) message, for example, as shown in FIG.
[0102] In S107, base station 200-2 (control unit 230) switches the transmission beam to UE 100 to the candidate beam indicated in the beam failure notification. The "transmission beam to UE 100" is a beam used for downlink transmission to UE 100 in cell 250 indicated in the failure notification when the SCG is activated. Such downlink transmission is, for example, transmission of a PDCCH.
[0103] When the beam failure notification indicates multiple candidate beams for one cell 250, the base station 200-2 (control unit 230) selects one candidate beam from the multiple candidate beams and switches the transmission beam to the UE 100 to the selected candidate beam. For example, the base station 200-2 (control unit 230) may select, from the multiple candidate beams, a candidate beam that serves a smaller number of UEs 100.
[0104] In step S108, base station 200-2 (network communication unit 240) transmits a beam recovery notification to base station 200-1, indicating that the transmission beam for UE 100 has been switched to a candidate beam. Base station 200-1 (network communication unit 240) receives the beam recovery notification from base station 200-2. When base station 200-2 selects one candidate beam from multiple candidate beams, it transmits the beam recovery notification together with information identifying the selected candidate beam.
[0105] In step S109, base station 200-1 transmits the beam recovery notification received from base station 200-1 to UE 100. UE 100 receives the beam recovery notification from base station 200-1. The beam recovery notification to be transmitted to UE 100 is transmitted by an RRC message or MAC CE. As a result, UE 100 knows the transmission beam to UE 100 in cell 250 in which beam failure is detected.
[0106] In step S110, UE 100 activates the SCG. UE 100 activates the SCG in response to, for example, an instruction from base station 200-1. Such an instruction is transmitted in any one of an RRC message, a MAC CE, and a PDCCH. UE 100 then receives downlink transmission (e.g., PDCCH) from base station 200-1 using the transmission beam determined in step 109.
[0107] (Other embodiments) The operational sequences (and operational flows) in the above-described embodiments do not necessarily have to be executed in chronological order according to the order depicted in the flow diagrams or sequence diagrams. For example, the steps in the operations may be executed in an order different from that depicted in the flow diagrams or sequence diagrams, or may be executed in parallel. Some of the steps in the operations may be deleted, or additional steps may be added to the processing. The operational sequences (and operational flows) in the above-described embodiments may be executed independently, or two or more operational sequences (and operational flows) may be executed in combination. For example, some steps in one operational flow may be added to another operational flow, or some steps in one operational flow may be replaced with some steps in another operational flow.
[0108] In the above-described embodiment, the base station 200 may include multiple units. The multiple units may include a first unit hosting a higher layer included in a protocol stack and a second unit hosting a lower layer included in the protocol stack. The higher layer may include an RRC layer, an SDAP layer, and a PDCP layer, and the lower layer may include an RLC layer, a MAC layer, and a PHY layer. The first unit may be a central unit (CU), and the second unit may be a distributed unit (DU). The multiple units may include a third unit performing processing below the PHY layer. The second unit may perform processing above the PHY layer. The third unit may be a radio unit (RU). The base station 200 may be one of the multiple units or may be connected to other units of the multiple units. Furthermore, the base station 200 may be an integrated access and backhaul (IAB) donor or an IAB node.
[0109] In the above-described embodiment, an NR-based mobile communication system has been described as an example of the mobile communication system 1. However, the mobile communication system 1 is not limited to this example. The mobile communication system 1 may be a system compliant with a TS of either LTE or another generation system (e.g., 6th generation) of the 3GPP standard. The base station 200 may be an eNB that provides E-UTRA user plane and control plane protocol termination for the UE 100 in LTE. The mobile communication system 1 may be a system compliant with a TS of a standard other than the 3GPP standard.
[0110] A program may be provided that causes a computer to execute each process performed by the UE 100 or the base station 200. The program may be recorded on a computer-readable medium. Using the computer-readable medium, the program can be installed on a computer. Here, the computer-readable medium on which the program is recorded may be a non-transitory recording medium. The non-transitory recording medium is not particularly limited, and may be, for example, a recording medium such as a CD-ROM or a DVD-ROM. Furthermore, circuits that execute each process performed by the UE 100 or the base station 200 may be integrated, and at least a part of the UE 100 or the base station 200 may be configured as a semiconductor integrated circuit (chip set, SoC).
[0111] In the above embodiments, "transmit" may mean performing processing at least one layer in a protocol stack used for transmission, or may mean physically transmitting a signal wirelessly or via a wired connection. Alternatively, "transmit" may mean a combination of performing processing at least one layer and physically transmitting a signal wirelessly or via a wired connection. Similarly, "receive" may mean performing processing at least one layer in a protocol stack used for reception, or may mean physically receiving a signal wirelessly or via a wired connection. Alternatively, "receive" may mean a combination of performing processing at least one layer and physically receiving a signal wirelessly or via a wired connection. Similarly, "obtain / acquire" may mean obtaining information from stored information, obtaining information from information received from another node, or obtaining information by generating the information. Similarly, "include" and "comprise" do not mean including only the enumerated items, but may mean including only the enumerated items or including additional items in addition to the enumerated items. Similarly, in this disclosure, "or" does not mean an exclusive or, but rather a logical or.
[0112] The above describes the embodiments in detail with reference to the drawings, but the specific configuration is not limited to that described above, and various design changes can be made within the scope that does not deviate from the gist of the invention. [Explanation of symbols]
[0113] 1: Mobile communication system 30: Core network 100: UE (user equipment) 110: Antenna 120: Communications Department 121: Receiving unit 122: Transmitter 130: Control unit 200:Base station 210: Antenna 220: Radio Communication Department 221: Receiving unit 222: Transmission unit 230: Control unit 240: Network Communication Department 250: Cell 260: Cell 300: Core network equipment 410: Beam obstruction information element list 411: Beam obstruction information element
Claims
1. A communication device (100) for communicating with a network having a master node (200-1) associated with a master cell group and a secondary node (200-2) associated with a secondary cell group, A receiver (121) receives an RRC (Radio Resource Control) message from the network, the RRC message including: first information indicating deactivation of the secondary cell group; second information indicating a downlink BWP (Bandwidth Part) for detecting a beam failure when deactivation of the secondary cell group is indicated; and third information for setting a resource of a reference signal for detecting the beam failure for the downlink BWP; deactivating the secondary cell group based on the first information; A control unit (110) that, when deactivation of the secondary cell group is indicated, performs the detection of the beam failure according to evaluation of the resource of the reference signal indicated based on the third information using the downlink BWP indicated based on the second information; a transmitting unit (122) that transmits an SCGFailureInformation message regarding the beam failure of the primary secondary cell to the master node when the cell that detected the beam failure is a primary secondary cell belonging to the deactivated secondary cell group. A communication device (100).
2. The receiving unit (121) receives information for determining whether to send the SCGFailureInformation message from the network, The transmitting unit (122) transmits the SCGFailureInformation message based on information for determining whether to transmit the SCGFailureInformation message. The communication device according to claim 1 .
3. The control unit (110) includes a physical layer, a MAC (Medium Access Control) layer, and an RRC layer; The physical layer notifies the MAC layer of a beam failure instance indicator based on an evaluation of the reference signal resource; The MAC layer notifies the RRC layer of the beam failure based on the beam failure instance indicator and the value of the counter. The communication device according to claim 1 or 2.
4. A secondary node (200-2) associated with a secondary cell group and a master node (200-1) connected to a communication device (100), a transmitter (222) that transmits to the communication device (100) an RRC (Radio Resource Control) message including first information indicating deactivation of the secondary cell group, second information indicating a downlink BWP (Bandwidth Part) for detecting a beam failure when deactivation of the secondary cell group is instructed, and third information for setting a resource of a reference signal for detecting the beam failure for the downlink BWP; deactivating the secondary cell group based on the first information; A control unit (230) that controls the communication device (100) to perform the beam failure detection according to evaluation of the resources of the reference signal indicated based on the third information and using the downlink BWP indicated based on the second information when deactivation of the secondary cell group is indicated; a receiving unit (221) that receives, from the communication device (100), an SCGFailureInformation message regarding the beam failure of the primary secondary cell when the cell in which the beam failure is detected is a primary secondary cell belonging to the deactivated secondary cell group. Master node (200-1).
5. The transmitting unit (222) transmits information for determining whether to transmit the SCGFailureInformation message to the communication device (100), The receiving unit (221) receives the SCGFailureInformation message based on information for determining whether to send the SCGFailureInformation message. The master node of claim 4 .
6. A communication control method executed in a communication device (100) that communicates with a network having a master node (200-1) associated with a master cell group and a secondary node (200-2) associated with a secondary cell group, comprising: receiving, from the network, a Radio Resource Control (RRC) message including: first information indicating deactivation of the secondary cell group; second information indicating a downlink BWP (Bandwidth Part) for detecting a beam failure when deactivation of the secondary cell group is indicated; and third information for configuring a resource of a reference signal for detecting the beam failure for the downlink BWP; deactivating the secondary cell group based on the first information; When deactivation of the secondary cell group is indicated, performing the beam failure detection according to evaluation of the reference signal resource indicated based on the third information using a downlink BWP indicated based on the second information; If the cell that detects the beam failure is a primary secondary cell that belongs to the deactivated secondary cell group, sending an SCGFailureInformation message regarding the beam failure of the primary secondary cell to the master node. Communication control method.
7. receiving information from the network for determining whether to send the SCGFailureInformation message; transmitting the SCGFailureInformation message based on information for determining whether to transmit the SCGFailureInformation message. The communication control method according to claim 6.
8. The communication device (100) has a physical layer, a MAC (Medium Access Control) layer, and an RRC layer, The communication control method includes: the physical layer notifying the MAC layer of a beam failure instance indicator based on evaluation of the reference signal resource; the MAC layer notifying the RRC layer of the beam failure based on the beam failure instance indicator and a value of a counter.
8. The communication control method according to claim 6 or 7.
Citation Information
Patent Citations
Beam failure detection method and device
WO2020088565A1