UE and UE methods
L1/L2-based mobility methods optimize cell change processes in telecommunications by using lower layer signaling for efficient random access and handover management, reducing latency and overhead in cell transition events.
Patent Information
- Application Number
- JP2024561875
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-04-18
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2042-04-18
AI Technical Summary
Current cell change procedures in telecommunications, triggered by Layer 3 (L3) measurements and Radio Resource Control (RRC) signaling, result in longer latency, higher overhead, and longer disruption due to full Layer 2 (L2) and Layer 1 (L1) resets during mobility events.
Implementing methods and apparatus for L1/L2-based mobility that involve receiving lower layer signaling to perform cell changes or additions, utilizing a reference signal associated with a transmission configuration indicator state for random access procedures, and optimizing handover processes through dedicated RA configurations and RLF reports.
Reduces latency and overhead by enabling efficient L1/L2-based mobility procedures, ensuring reduced communication delays and improved handover parameter adjustments.
Smart Images

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Abstract
Description
[Technical Field]
[0001] FIELD Embodiments of the present disclosure relate generally to the field of telecommunications, and more particularly to a method, apparatus, and computer storage medium for communications based on lower layer signaling. [Background technology]
[0002] When a user equipment (UE) moves from the coverage area of one cell to the coverage area of another, it must change, add, or release its serving cell. Currently, this is triggered by Layer 3 (L3) measurements and performed by Radio Resource Control (RRC) signaling, which triggers a reconfiguration with synchronization for the change of the primary cell (PCell) and primary secondary cell (PSCell). In all cases, Layer 2 (L2) and Layer 1 (L1) are fully reset, resulting in longer latency, higher overhead, and longer disruption compared to beam-switched mobility.
[0003] To address the above challenges, several solutions based on lower layer signaling, such as Layer 1 (L1) and Layer 2 (L2) signaling, have been proposed. In one solution, data transmission is initiated by changing the serving cell upon receiving lower layer signaling, also known as L1 / L2-based mobility. This reduces latency, overhead, and downtime. However, the implementation details of L1 / L2-based mobility procedures are still lacking in development. Summary of the Invention [Problem to be solved by the invention]
[0004] Generally, embodiments of the present disclosure relate to methods, apparatus, and computer storage media for communication based on lower layer signaling. [Means for solving the problem]
[0005] A first aspect provides a method of communication, the method including: receiving, in a terminal device, lower layer signaling from a first network device, indicating a change or addition of a cell to a cell of a second network device and indicating a transmission configuration indicator state of the cell, determining a reference signal associated with the transmission configuration indicator state, and performing a random access procedure for the change or addition of the cell based on the reference signal.
[0006] A second aspect provides a method of communication, the method including: receiving, in a terminal device, lower layer signaling from a first network device, indicating a cell change or addition to a cell of a second network device and indicating a transmission configuration indicator status of the cell; performing a random access procedure for the cell change or addition; and determining, after the random access procedure is completed, that a demodulation reference signal antenna port for receiving a physical downlink control channel is quasi-colocated with a reference signal associated with the transmission configuration indicator status.
[0007] A third aspect provides a method of communication, the method including: receiving, in a terminal device, a random access configuration from a network device, the random access configuration being dedicated to changing or adding a cell based on lower layer signaling; and performing the change or addition of the cell based on the random access configuration in response to receiving the lower layer signaling.
[0008] A fourth aspect provides a method of communication, the method including: determining, in a terminal device, whether a radio link failure report is triggered by a failure of a handover based on lower layer signaling; and, according to a determination that the radio link failure report is triggered by the failure of a handover based on lower layer signaling, sending, to a network device, a radio link failure report including an indication that a final handover is a handover based on lower layer signaling.
[0009] A fifth aspect provides a method of communication, the method including: transmitting, in a first network device, lower layer signaling to a terminal device, indicating a change or addition of a cell to or from a cell of a second network device and indicating a transmission configuration indicator state of the cell; determining a reference signal associated with the transmission configuration indicator state; and performing a random access procedure for the change or addition of the cell based on the reference signal.
[0010] A sixth aspect provides a method of communication, the method including: transmitting, in a first network device, lower layer signaling to a terminal device, indicating a change or addition of a cell to or from a cell of a second network device and indicating a transmission configuration indicator status of the cell; performing a random access procedure for the cell change or addition; and determining, after the random access procedure is completed, that a demodulation reference signal antenna port for a physical downlink control channel transmission is quasi-co-located with a reference signal associated with the transmission configuration indicator status.
[0011] A seventh aspect provides a method of communication, the method including: generating, in a first network device, a random access configuration dedicated to changing or adding a cell based on lower layer signaling; and transmitting the random access configuration to a terminal device.
[0012] An eighth aspect provides a method of communication, the method including: receiving, at a network device, a radio link failure report from a terminal device, the radio link failure report including an indication that a final handover is a handover based on lower layer signaling; and adjusting parameters of the handover based on lower layer signaling.
[0013] A ninth aspect provides a terminal device, the terminal device including a processor configured to execute the method according to any one of the first to fourth aspects of the present disclosure.
[0014] A tenth aspect provides a network device, the network device comprising a processor configured to execute the method according to any one of the fifth to eighth aspects of the present disclosure.
[0015] An eleventh aspect provides a computer-readable medium having stored thereon instructions that, when executed by at least one processor, cause the at least one processor to perform a method according to any of the first to fourth aspects of the present disclosure.
[0016] A twelfth aspect provides a computer-readable medium having stored thereon instructions that, when executed by at least one processor, cause the at least one processor to perform a method according to any one of the fifth to eighth aspects of the present disclosure.
[0017] Other features of the present disclosure will be more readily understood through the following detailed description. [Brief explanation of the drawings]
[0018] The above and other objects, features and advantages of the present disclosure will become more apparent through the detailed description of several embodiments with reference to the accompanying drawings.
[0019] [Figure 1A] FIG. 1 illustrates an example of a communications network in which some embodiments of the present disclosure may be implemented.
[0020] [Figure 1B] FIG. 2 is a schematic diagram illustrating network protocol layer entities that may be established for a user plane (UP) protocol stack in an apparatus, according to some embodiments of the present disclosure.
[0021] [Figure 1C] FIG. 2 is a schematic diagram illustrating network protocol layer entities that may be established for a control plane (CP) protocol stack in an apparatus, according to some embodiments of the present disclosure.
[0022] [Figure 1D] FIG. 1 is a schematic diagram illustrating a central unit (CU) / distributed unit (DU) architecture in which some embodiments of the present disclosure may be implemented.
[0023] [Figure 1E] FIG. 2 is a schematic diagram illustrating a process of L1 / L2-based mobility in which some embodiments of the present disclosure may be implemented.
[0024] [Figure 2] FIG. 1 is a schematic diagram illustrating a process for performing an RA procedure in L1 / L2-based mobility according to an embodiment of the present disclosure.
[0025] [Figure 3] FIG. 10 is a schematic diagram illustrating another process for performing an RA procedure in L1 / L2-based mobility according to an embodiment of the present disclosure.
[0026] [Figure 4] FIG. 1 is a schematic diagram illustrating a process for performing an L1 / L2 based mobility procedure according to an embodiment of the present disclosure.
[0027] [Figure 5] FIG. 1 is a schematic diagram illustrating a process of radio link failure (RLF) reporting for L1 / L2-based handover according to an embodiment of the present disclosure.
[0028] [Figure 6] FIG. 1 illustrates an example of a communication method performed in a terminal device, according to some embodiments of the present disclosure.
[0029] [Figure 7] FIG. 10 illustrates another example of a communication method performed in a terminal device, according to some embodiments of the present disclosure.
[0030] [Figure 8] FIG. 10 illustrates yet another example of a communication method performed in a terminal device, according to some embodiments of the present disclosure.
[0031] [Figure 9] FIG. 10 illustrates yet another example of a communication method performed in a terminal device, according to some embodiments of the present disclosure.
[0032] [Figure 10] FIG. 1 illustrates an example of a communication method performed in a network device, according to some embodiments of the present disclosure.
[0033] [Figure 11] FIG. 10 illustrates another example of a communication method performed in a network device, according to some embodiments of the present disclosure.
[0034] [Figure 12] FIG. 10 illustrates yet another example of a communication method performed in a network device, according to some embodiments of the present disclosure.
[0035] [Figure 13] FIG. 10 illustrates yet another example of a communication method performed in a network device, according to some embodiments of the present disclosure.
[0036] [Figure 14] FIG. 1 is a simplified block diagram of an apparatus suitable for practicing embodiments of the present disclosure.
[0037] In the figures, the same or similar reference numbers represent the same or similar elements. DETAILED DESCRIPTION OF THE INVENTION
[0038] The present disclosure will be described below with reference to several embodiments. These embodiments are for illustrative purposes only and are intended to assist those skilled in the art in understanding and practicing the invention, but are not intended to limit the scope of the present disclosure. The present disclosure can be implemented in various ways other than those described below.
[0039] In the following description and claims, unless otherwise defined, all technical and scientific terms used in this disclosure have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs.
[0040] As used herein, the term "terminal device" refers to any device with wireless or wired communication capabilities. Examples of terminal devices include User Equipment (UE), personal computers, desktops, mobile phones, mobile phones, smartphones, personal digital assistants (PDAs), portable computers, tablets, wearable devices, Internet of Things (IoT) devices, Ultra-reliable and Low Latency Communications (URLLC) devices, Internet of Everything (IoE) devices, machine type communication (MTC) devices, vehicle-mounted devices for V2X communications (where X represents pedestrians, vehicles, or infrastructure / networks), High Altitude Platforms (HAPs) including Unmanned Aircraft Systems (UASs) and spacecraft or aircraft in Non-terrestrial networks (NTNs) including satellites, and Extended Reality (XR) including different types of reality such as Augmented Reality (AR), Mixed Reality (MR), and Virtual Reality (VR). These include, but are not limited to, Reality devices, unmanned aerial vehicles (UAVs), commonly known as drones, which are aircraft that do not require a human pilot, devices on high speed trains (HSTs), imaging devices such as digital cameras, sensors, gaming devices, music storage and playback devices, or internet devices that enable wireless or wired internet access and browsing.A "terminal device" may also have multicast / broadcast capabilities to support public safety, mission-critical, V2X applications, transparent IPv4 / IPv6 multicast distribution, IPTV, smart TV, wireless services, wireless software distribution, group communication, and IoT applications. It may also incorporate one or more Subscriber Identity Modules (SIMs), known as multi-SIMs. The term "terminal device" can be used interchangeably with UE, mobile station, subscriber equipment, mobile terminal, user terminal, or wireless device.
[0041] As used herein, the term "network device" refers to a device capable of providing or hosting a cell or coverage area over which terminal devices can communicate. Examples of network devices include, but are not limited to, a Node B (NodeB or NB), an Evolved Node B (eNodeB or eNB), a next-generation Node B (gNB), a transmission reception point (TRP), a remote radio unit (RRU), a radio head (RH), a remote radio head (RRH), an IAB node, a low-power node such as a femto node or a pico node, a Reconfigurable Intelligent Surface (RIS), etc.
[0042] A terminal device or network device may have artificial intelligence (AI) or machine learning capabilities, which generally include models that can be used to learn from a large amount of data collected for a specific function and predict some information.
[0043] A terminal device or a network device may operate in multiple frequency ranges, such as FR1 (410 MHz to 7125 MHz), FR2 (24.25 GHz to 71 GHz), frequency bands above 100 GHz, and terahertz (THz). Furthermore, it can operate in licensed / unlicensed / shared spectrum. A terminal device may have multiple connections with a network device in a Multi-Radio Dual Connectivity (MR-DC) application scenario. A terminal device or a network device can operate in full duplex, flexible duplex, and cross-division duplex modes.
[0044] Embodiments of the present disclosure may be implemented in test equipment, such as, for example, a signal generator, a signal analyzer, a spectrum analyzer, a network analyzer, a test terminal equipment, a test network equipment, a channel emulator, and the like.
[0045] In one embodiment, a terminal device may be connected to a first network device and a second network device. One of the first network device and the second network device may be a master node, and the other may be a secondary node. The first network device and the second network device may use different radio access technologies (RATs). In one embodiment, the first network device may be a first RAT device, and the second network device may be a second RAT device. In one embodiment, the first RAT device is an eNB, and the second RAT device is a gNB. Information related to the different RATs may be transmitted to the terminal device from at least one of the first network device and the second network device. In one embodiment, the first information may be transmitted to the terminal device from the first network device, and the second information may be transmitted to the terminal device from the second network device directly or via the first network device. In one embodiment, information related to the terminal device's configuration configured by the second network device may be transmitted from the second network device via the first network device. Information relating to the reconfiguration of the terminal device set by the second network device may be transmitted to the terminal device directly from the second network device or via the first network device.
[0046] As used herein, the singular forms "a," "an," and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. The term "comprises" and variations thereof are intended to be open-ended, meaning "including, but not limited to." The term "based on" is intended to mean "based at least in part on." The terms "one embodiment" and "embodiment" are intended to mean "at least one embodiment." The term "another embodiment" is intended to mean "at least one other embodiment." Terms such as "first," "second," etc. may refer to different objects or the same object. The following content may include other definitions, both explicit and implicit.
[0047] In some instances, values, processes, or devices are referred to as "optimum," "lowest," "highest," "minimum," "maximum," etc. It will be understood that such descriptions are intended to indicate choices among multiple functional alternatives used, and that such choices are not necessarily better, smaller, higher, or more preferred than other choices.
[0048] In the context of this disclosure, the term "cell change or addition" may be used interchangeably with "reconfiguration involving synchronization of a Secondary Cell Group (SCG) or a Master Cell Group (MCG)." The term "PSCell" refers to an SpCell of an SCG, the term "PCell" refers to an SpCell of an MCG, and the term "SpCell" refers to a primary cell of an SCG or an MCG. The term "SCell" refers to a secondary cell. The term "L1 / L2-based mobility" may be used interchangeably with "L1 / L2-based mobility procedure," "lower layer signaling-based cell change or addition," or "L1 / L2-based handover." The term "lower layer signaling" may be used interchangeably with "L1 / L2 signaling." The term "RRC reconfiguration" may be used interchangeably with "RRC reconfiguration message." The term "data transmission" refers to the transmission and reception of data.
[0049] Currently, it is proposed to specify mechanisms and procedures for L1 / L2 based mobility to reduce mobility delays in the following aspects: Configuration and maintenance of multiple candidate cells, enabling rapid application of configuration to candidate cells Dynamic switching mechanism between candidate serving cells (including SpCell and SCell) for potential applicable scenarios based on L1 / L2 signaling - L1 extensions for inter-cell beam management, including L1 measurement and reporting, and beam indication -Timing Advance (TA) management -CU-DU interface signaling to support L1 / L2 mobility if required.
[0050] The L1 / L2 based mobility procedures are applicable to the following scenarios: Standalone, carrier aggregation (CA), and New Radio (NR) dual connectivity (DC) cases with serving cell change within one cell group (CG) -Intra-DU case and intra-CU inter-DU case (applicable to standalone and CA: no new RAN interfaces expected) - Both intra- and inter-frequency -Both Frequency Range 1 (FR1) and Frequency Range 2 (FR2) The source and target cells may or may not be synchronized.
[0051] Embodiments of the present disclosure provide a solution for improving communications for L1 / L2 based mobility to achieve reduced latency and other potential benefits of mobility.
[0052] In one aspect, the RA procedure is performed for the beam associated with the transmission configuration indicator (TCI) state indicated in the L1 / L2 signaling, which can reduce communication latency since the network does not need to send separate L1 / L2 signaling to activate the TCI state.
[0053] In another aspect, the TCI state indicated in the L1 / L2 signaling is used for receiving the physical downlink control channel (PDCCH) after the RA procedure is completed. In this way, the network does not need to send separate L1 / L2 signaling to activate the TCI state, and communication delays can be reduced accordingly.
[0054] In yet another aspect, a dedicated RA configuration is used for L1 / L2 based mobility, thus improving the performance of the RA procedure for L1 / L2 based mobility.
[0055] In yet another aspect, if the RLF report is triggered by an L1 / L2-based handover, an indication regarding L1 / L2-based mobility is added to the RLF report. In this way, the network can recognize failures due to premature or late L1 / L2-based handover and further adjust parameters of the L1 / L2-based handover.
[0056] The principles and implementations of the present disclosure will be described in detail below with reference to the drawings. Communication network example
[0057] 1A is a diagram illustrating an example communication network 100A in which some embodiments of the present disclosure may be implemented. As shown in FIG. 1A, communication network 100A includes a terminal device 110 and a plurality of network devices 120 and 130 (also simply referred to as network device 120 and network device 130 in this disclosure). Network devices 120 and 130 provide respective cells 121 and 131 that serve the terminal device.
[0058] 1A is for illustrative purposes only and is not intended to limit the present disclosure. Communications network 100A may include any suitable number of network devices and / or terminal devices adapted to perform implementations of the present disclosure. Network devices 120 and 130 may also each provide more cells for terminal device 110.
[0059] 1A, terminal device 110 may communicate with network device 120 or 130 via a channel, such as a wireless communication channel. Communications in communication network 100A may conform to any suitable standard, including, but not limited to, Global System for Mobile Communications (GSM), Long Term Evolution (LTE), LTE-Evolution, LTE-Advanced (LTE-A), New Radio (NR), Wideband Code Division Multiple Access (WCDMA), Code Division Multiple Access (CDMA), GSM EDGE Radio Access Network (GERAN), Machine Type Communication (MTC), etc. Embodiments of the present disclosure may be performed in accordance with any generation of communication protocols now known or developed in the future. Examples of communication protocols include, but are not limited to, first generation (1G), second generation (2G), 2.5G, 2.75G, third generation (3G), fourth generation (4G), 4.5G, fifth generation (5G) communication protocols, 5.5G, 5G-Advanced networks, or sixth generation (6G) networks.
[0060] Communication in the direction from terminal device 110 to network device 120 or 130 is referred to as uplink (UL) communication, and communication in the opposite direction from network device 120 or 130 to terminal device 110 is referred to as downlink (DL) communication. Terminal device 110 may travel between cells of network devices 120, 130, and possibly other network devices. In UL communication, terminal device 110 may transmit UL data and control information to network device 120 or 130 over a UL channel. In DL communication, network device 120 or 130 may transmit DL data and control information to terminal device 110 over a DL channel.
[0061] Communications in the communication network 100A may be performed according to UP and CP protocol stacks. Generally speaking, for a communication device (e.g., a terminal device or a network device), there may be multiple entities at multiple network protocol layers in the protocol stack, and these entities may be configured to perform corresponding processes on data or signaling transmitted from and received by the communication device. FIG. 1B is a schematic diagram 100B illustrating network protocol layer entities that may be established for a UP protocol stack in a device according to some embodiments of the present disclosure. For convenience, the following description will be given taking communication between a terminal device 110 and a network device 120 as an example. It should be understood that the following description is also applicable to communication between a terminal device 110 and a network device 130.
[0062] In some embodiments, network devices 120 and 130 may be different network devices. In some embodiments, network devices 120 and 130 may be the same network device.
[0063] 1B , in the UP, each of the terminal device 110 and the network device 120 may include an L1 layer entity, i.e., a physical (PHY) layer entity (also referred to as a PHY entity), and one or more entities of higher layers (L2 layer and Layer 3 (L3) layer, or higher layers), including a media access control (MAC) layer entity (also referred to as a MAC entity), a radio link control (RLC) layer entity (also referred to as an RLC entity), a packet data convergence protocol (PDCP) layer entity (also referred to as a PDCP entity), and a service data application protocol (SDAP) layer entity (also referred to as an SDAP entity, which will be established in 5G and subsequent generation networks). In some cases, the PHY, MAC, RLC, PDCP, and SDAP entities have a stack structure.
[0064] FIG. 1C is a schematic diagram 100C illustrating network protocol layer entities that may be established for a CP protocol stack in an apparatus according to some embodiments of the present disclosure. As shown in FIG. 1C, in a CP, each of the terminal device 110 and the network device 120 may include an L1 layer entity, i.e., a PHY layer entity (also referred to as a PHY entity), and one or more entities of higher layers (L2 layer and L3 layer), including a MAC layer entity (also referred to as a MAC entity), an RLC layer entity (also referred to as an RLC entity), a PDCP layer entity (also referred to as a PDCP entity), and a radio resource control (RRC) layer entity (also referred to as an RRC entity). The RRC layer may also be referred to as an access stratum (AS) layer, and therefore, the RRC entity may further be referred to as an AS entity. As shown in FIG. 1C, the terminal device 110 may also include a non-access stratum (NAS) layer entity (also referred to as a NAS entity). The NAS layer on the network side is located in a core network (CN, not shown), not in a network device. In some cases, these entities are organized into stacks.
[0065] In the context of this disclosure, L1 refers to the PHY layer, L2 refers to the MAC or RLC or PDCP or SDAP layer, and L3 refers to the RRC layer. In the context of this disclosure, L1 or L2 may collectively be referred to as a lower layer, and L3 may be referred to as an upper layer. Thus, L1 or L2 signaling may be referred to as lower layer signaling, and L3 signaling may be referred to as upper layer signaling.
[0066] Generally, communication channels are divided into logical channels, transmission channels, and physical channels. Physical channels are channels through which the PHY layer actually transmits information. For example, physical channels may include a physical uplink control channel (PUCCH), a physical uplink shared channel (PUSCH), a physical random-access channel (PRACH), a PDCCH, a physical downlink shared channel (PDSCH), and a physical broadcast channel (PBCH).
[0067] The transmission channels are channels between the PHY layer and the MAC layer, and may include, for example, a broadcast channel (BCH), a downlink shared channel (DL-SCH), a paging channel (PCH), an uplink shared channel (UL-SCH), and a random access channel (RACH).
[0068] Logical channels are channels between the MAC layer and the RLC layer, and may include, for example, a dedicated control channel (DCCH), a common control channel (CCCH), a paging control channel (PCCH), a broadcast control channel (BCCH), and a dedicated traffic channel (DTCH).
[0069] Generally, a channel between the RRC layer and the PDCP layer is referred to as a radio bearer. The terminal device 110 may be configured with at least one data radio bearer (DRB) for carrying data plane data and at least one signaling radio bearer (SRB) for carrying control plane data. Four types of SRBs, namely, SRB0, SRB1, SRB2, and SRB3, may be defined in the RRC layer. SRB0 uses the CCCH for establishing or re-establishing an RRC connection. SRB1 uses the DCCH and is established when an RRC connection is established. SRB2 uses the DCCH and is established during RRC re-configuration and after initial security activation. SRB3 uses the DCCH and is established between the terminal device 110 and the SN when a dual connection is established.
[0070] 1D is a schematic diagram 100D illustrating a CU / DU architecture in which some embodiments of the present disclosure may be implemented. The CU / DU architecture may be established in a network device.
[0071] As shown in FIG. 1D, CU 141 is shown. It should be understood that more CUs may be included in a UP. CU 141 may communicate with multiple DUs. Here, for illustration purposes, two DUs 151 and 152 are shown. More DUs may be provided for implementing embodiments of the present disclosure. Although not shown, CU 141 may be responsible for performing the functions of an SDAP entity and a PDCP entity, and DU 151 or 152 may be responsible for performing the functions of an RLC entity, a MAC entity, and a PHY entity.
[0072] DU 151 may communicate with transmission / reception points (TRPs) 161, 162, and 163. DU 152 may communicate with TRPs 164, 165, and 166. Within each TRP, one or more cells may be supported. It should be understood that this is just one example, and any more or fewer TRPs are possible. Terminal device 110 may communicate with any of these TRPs.
[0073] In some embodiments, the terminal device 110 may switch from one TRP to another TRP under the control of the same CU and the same DU. For example, the terminal device 110 may be handed over from one cell of TRP 161 to another cell of TRP 162. This is referred to as an intra-CU, intra-DU serving cell change. In some embodiments, the terminal device 110 may switch from one TRP to another TRP under the control of the same CU and a different DU. For example, the terminal device 110 may be handed over from one cell of TRP 162 to another cell of TRP 164. In this case, a cell change occurs from one cell of DU 151 to another cell of DU 152. This is referred to as an intra-CU, inter-DU serving cell change. In another example, the terminal device 110 may be handed over from a cell of one TRP to a cell of another TRP under the control of a different CU. In this case, a handover occurs from a CU to another CU. This is referred to as an inter-CU handover.
[0074] Network device 120 and network device 130 may correspond to one or two devices in the same CU. In some embodiments, network device 120 and network device 130 may correspond to different TRPs in the same DU. In some embodiments, network device 120 and network device 130 may correspond to different TRPs in different DUs.
[0075] 1A , in some embodiments, terminal device 110 may be located within the coverage of cell 121 of network device 120, and terminal device 110 may communicate with network device 120 based on a network configuration. In this case, cell 121 may be referred to as a serving cell of terminal device 110.
[0076] In some embodiments, terminal device 110 may establish a dual connection (i.e., a simultaneous connection) with network device 120 and another network device (not shown). In some embodiments, network device 120 may serve as a master node (MN). In these embodiments, terminal device 110 may communicate with network device 120 via a set of serving cells. The set of serving cells constitutes an MCG, and a primary cell within the MCG is referred to as a PCell. In some scenarios, the PCell may change from cell 121 to cell 131, which is referred to as a handover. In some embodiments, network device 120 may function as a secondary node (SN). In these embodiments, the set of serving cells provided by network device 120 forms an SCG, and a primary cell within the SCG is referred to as a PSCell. In some scenarios, the PSCell may change from cell 121 to cell 131, which is referred to as a PScell change.
[0077] In some scenarios, terminal device 110 may receive L1 or L2 signaling indicating the addition, modification, or release of a serving cell from network device 120. Upon the addition, modification, or release of the serving cell, terminal device 110 may perform data transmission involving the addition, modification, or change of the serving cell. This procedure is referred to as L1 / L2-based mobility.
[0078] FIG. 1E is a schematic diagram illustrating a process 100E of L1 / L2-based mobility in which some embodiments of the present disclosure can be implemented. For illustrative purposes, process 100E will be described with reference to FIG. 1A. Process 100E may involve terminal device 110 and network device 120 shown in FIG. 1A. Network device 120 may be an MN or SN serving terminal device 110. In this example, network device 120 provides a serving cell for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0079] 1E, network device 120 may transmit an RRC reconfiguration including a set of RRC configurations corresponding to a set of candidate cells that enable L1 / L2-based mobility to terminal device 110 (170). Network device 120 may also transmit beam configurations (e.g., synchronization signal physical broadcast channel blocks (SSBs) or channel state information-reference signals (CSI-RSs)) of the candidate cells for L1 measurements to terminal device 110 (171).
[0080] The terminal device 110 may perform L1 measurements based on the configuration (172). If a condition is met by the beam, for example, if the quality of the beam is above a threshold quality, the terminal device 110 may report an indication of the beam (e.g., an identity (ID) associated with the beam) to the network device 120 (173).
[0081] The network device 120 may send 174 L1 / L2 signaling (e.g., downlink control information (DCI) or medium access control (MAC) control element (CE)) to the terminal device 110 indicating that the TCI state for a cell among the candidate cells has been activated due to the cell change or addition.
[0082] Upon receiving the L1 / L2 signaling, the terminal device 110 may perform a cell change or addition (175). For example, a lower layer (e.g., a PHY or MAC layer) of the terminal device 110 indicates cell change or addition information, such as an ID associated with the target cell, to the RRC layer of the terminal device 110. Upon receiving the indication, the RRC layer applies an RRC configuration corresponding to the target cell to perform the cell change or addition. The target cell may be the PCell, PSCell, or SCell of the terminal device 110. The terminal device 110 may start data transmission with the target cell using a preconfigured UE-dedicated channel and an activated TCI state.
[0083] Embodiments of the present disclosure provide improved solutions for L1 / L2 based mobility procedures, the details of which are described with reference to FIGS. Example of fixed beam implementation in RA procedure
[0084] In a conventional synchronized reconfiguration (handover or PSCell change), if the UE is provided with multiple TCI state configurations via RRC signaling, before the network sends a MAC CE to activate one TCI state in the control resource set (CORESET) after the RA procedure, the UE assumes that the Demodulation-Reference Signal (DM-RS) antenna port associated with PDCCH reception is quasi-co-located with the beam (SSB or CSI-RS) identified by the UE during the RA procedure.
[0085] In the case of L1 / L2-based mobility, L1 / L2 signaling (e.g., MAC CE) may indicate the TCI state and cell change / addition. However, during the RA procedure, the UE may select a beam different from the beam associated with the indicated TCI state. Therefore, if the UE uses the beam selected during the RA procedure according to its current behavior, the TCI state activated by the L1 / L2 signaling triggering mobility may not be available after the RA procedure, and the network needs to send a MAC CE if it wants to continue using the TCI state.
[0086] In light of this, embodiments of the present disclosure provide a solution for performing an RA procedure using a fixed beam to address these and other potential challenges, which is described below with reference to FIG.
[0087] FIG. 2 is a schematic diagram illustrating a process 200 for performing an RA procedure in L1 / L2-based mobility according to an embodiment of the present disclosure. For illustrative purposes, process 200 will be described with reference to FIG. 1A. Process 200 may involve terminal device 110 and network device 120 shown in FIG. 1A. Network device 120 may be an MN or SN serving terminal device 110. In this example, network device 120 provides a serving cell for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0088] 2, the network device 120 transmits (210) to the terminal device 110 lower layer signaling (i.e., L1 / L2 signaling) indicating a cell modification or addition for the cell of the network device 130 (i.e., the target cell). The lower layer signaling may further indicate a TCI status for the cell. In some embodiments, the cell modification or addition may be a PCell modification or addition. In some embodiments, the cell modification or addition may be a PSCell modification or addition. In some embodiments, the cell modification or addition may be a SCell modification or addition.
[0089] For example, the lower layer signaling may indicate a cell change from the serving cell of network device 120 to the cell of network device 130. As another example, the lower layer signaling may indicate the addition of a cell of network device 130. This cell may be a PCell or PSCell of terminal device 110. In some embodiments, the lower layer signaling may be carried within a DCI. In some embodiments, the lower layer signaling may be carried within a MAC CE. Of course, any other suitable format is also possible.
[0090] Upon receiving the lower layer signaling, the terminal device 110 determines a reference signal (RS) indicated in the lower layer signaling (220). In some embodiments, the RS may be a synchronization signal and a physical broadcast channel block (SSB). In some embodiments, the RS may be a channel state information reference signal (CSI-RS). It goes without saying that the RS may adopt other suitable formats. The terminal device 110 performs an RA procedure based on the RS. In other words, the terminal device 110 selects an RS during RA resource selection.
[0091] In some embodiments, terminal device 110 receives L1 / L2-based signaling indicating a cell change or addition and indicating a TCI state (e.g., a TCI state ID) of the target cell, and terminal device 110 selects an RS associated with the TCI state indicated in the L1 / L2-based signaling during RA resource selection. For example, if an RA procedure is initiated due to L1 / L2-based mobility, terminal device 110 selects an SSB or CSI-RS associated with the TCI state indicated in the L1 / L2-based signaling (e.g., a MAC CE).
[0092] In some embodiments, multiple RSs may be associated with the TCI state. In these embodiments, the terminal device 110 selects an RS (also referred to as a first RS in the present disclosure) having a Quasi-Colocation (QCL) type of Type D from among the multiple RSs and determines the first RS as the RS associated with the TCI state. In other words, if the TCI state indicated in the lower layer signaling is associated with two RSs, the terminal device 110 may select an RS whose QCL type is Type D. Note that other suitable methods are also possible.
[0093] Upon determining the RS associated with the TCI state, the terminal device 110 performs 230 an RA procedure in the cell based on the RS.
[0094] In some embodiments, process 200 is applied only if a CORESET with an index of zero is set.
[0095] Process 200 performs an RA procedure for L1 / L2-based mobility in a fixed beam associated with the TCI state indicated by the L1 / L2 signaling, thus eliminating the need for the network to send separate L1 / L2 signaling to activate the TCI state, reducing communication delay and overhead. Example of implementation of beam use after RA procedure
[0096] In view of the above problems, an embodiment of the present invention provides another method for beam usage after an RA procedure, which will be described below with reference to FIG.
[0097] 3 is a schematic diagram illustrating another process 300 for performing an RA procedure in L1 / L2-based mobility according to an embodiment of the present disclosure. For illustrative purposes, process 300 will be described with reference to FIG. 1A. Process 300 may involve terminal device 110 and network device 120 shown in FIG. 1A. Network device 120 may be an MN or SN serving terminal device 110. In this example, network device 120 provides a serving cell for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0098] 3, the network device 120 transmits (310) to the terminal device 110 lower layer signaling (i.e., L1 / L2 signaling) indicating a cell modification or addition for the cell of the network device 130 (i.e., the target cell). The lower layer signaling further indicates the TCI status for the cell. In some embodiments, the cell modification or addition may be a PCell modification or addition. In some embodiments, the cell modification or addition may be a PSCell modification or addition. In some embodiments, the cell modification or addition may be a SCell modification or addition.
[0099] For example, the lower layer signaling may indicate a cell change from the serving cell of network device 120 to the cell of network device 130. As another example, the lower layer signaling may indicate the addition of a cell of network device 130. This cell may be a PCell or PSCell of terminal device 110. In some embodiments, the lower layer signaling may be carried within a DCI. In some embodiments, the lower layer signaling may be carried within a MAC CE. Of course, any other suitable format is also possible.
[0100] Upon receiving the lower layer signaling, terminal device 110 performs an RA procedure for cell change or addition 320. In other words, terminal device 110 follows conventional behavior for RS selection in RA resource selection.
[0101] After the RA procedure is completed, terminal device 110 determines (330) that the DM-RS antenna port for PDCCH reception is quasi-co-located with the RS associated with the TCI state. In other words, after the RA procedure, terminal device 110 uses the activated TCI state for PDCCH reception in L1 / L2 signaling. In some embodiments, the RS may be an SSB. In some embodiments, the RS may be a CSI-RS. Of course, the RS may take other suitable forms.
[0102] For example, after an RA procedure triggered by mobility based on L1 / L2 signaling, the UE assumes that the DM-RS antenna port for PDCCH reception is quasi-co-located with the SS / PBCH block or CSI-RS resource in the TCI state indicated in the L1 / L2 signaling (e.g., MAC CE or DCI) that triggers the mobility based on L1 / L2 signaling.
[0103] In some embodiments, process 300 is applied only if a CORESET with an index of zero is set.
[0104] In some embodiments, an RRC reconfiguration for a candidate cell does not configure a CORESET with a zero index for use in PDCCH reception, and in some embodiments, for a CORESET with a non-zero index, one TCI state is configured for the UE.
[0105] In the process 300, the TCI state indicated in the L1 / L2 signaling is used after the RA procedure is completed, so the network does not need to send another L1 / L2 signaling to activate the TCI state, reducing communication delay and overhead. Example of RA Partition Implementation for L1 / L2 Based Mobility
[0106] Since L1 / L2-based mobility targets low latency, shorter times are expected. For example, the failure detection timer (T304) for reconfiguration with synchronization may be set to a very small value. If the traditional RA resources and parameters for RRC-based mobility are reused for L1 / L2-based mobility, the performance of L1 / L2-based mobility may not be guaranteed.
[0107] In view of the above problems, an embodiment of the present invention provides a solution to support RA partition for L1 / L2 based mobility, which will be described below with reference to FIG.
[0108] FIG. 4 is a schematic diagram illustrating a process 400 for performing an L1 / L2-based mobility procedure according to an embodiment of the present disclosure. For illustrative purposes, process 400 will be described with reference to FIG. 1A. Process 400 may involve terminal device 110 and network device 120 shown in FIG. 1A. Network device 120 may be an MN or SN serving terminal device 110. In this example, network device 120 provides a serving cell for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0109] 4, the network device 120 transmits 410 to the terminal device 110 an RA configuration dedicated to the cell change or addition based on lower layer signaling (i.e., L1 / L2-based mobility). In some embodiments, the network device 120 may transmit the RA configuration in system information. For example, the network device 120 transmits the RA configuration in system information block 1 (SIB1). It should be understood that this is merely an example and that other suitable methods are possible.
[0110] In some embodiments, the RA configuration may include RA resources and parameters. For example, the RA configuration may include at least one of a preamble configuration, an RA occasion configuration, a PUSCH configuration for 2-step RA, a Reference Signal Receive Power (RSRP) threshold for RS selection, a transport block (TB) size threshold in bits that, when exceeded, causes the UE to use a contention-based RA preamble for Group A, or a maximum number of Message A transmissions when random access resources for both 4-step and 2-step RA types are configured. It should be understood that these are merely exemplary and other suitable methods are possible.
[0111] In some embodiments, the network device 120 may configure cell change or addition based on lower layer signaling as a feature associated with the RA partition. That is, the network device 120 may configure L1 / L2-based mobility as one auxiliary feature associated with the RA partition (i.e., an example of a feature combination preamble). For example, the feature combination may be configured as follows: TIFF0007772255000001.tif110168
[0112] Continuing with reference to FIG. 4, network device 120 transmits lower layer signaling (i.e., L1 / L2 signaling) to terminal device 110 indicating a cell change or addition to the cell of network device 130 (i.e., the target cell) (420). The lower layer signaling further indicates the TCI status of the cell. In some embodiments, the cell change or addition may be a PCell change or addition. In some embodiments, the cell change or addition may be a PSCell change or addition. In some embodiments, the cell change may be a SCell change or addition.
[0113] For example, the lower layer signaling may indicate a cell change from the serving cell of network device 120 to the cell of network device 130. In another example, the lower layer signaling may indicate the addition of a cell of network device 130, which may be a PCell or PSCell of terminal device 110. In some embodiments, the lower layer signaling may be carried within a DCI. In some embodiments, the lower layer signaling may be carried within a MAC CE. Of course, any other suitable format is also possible.
[0114] Upon receiving the lower layer signaling, the terminal device 110 performs an RA procedure based on the RA configuration dedicated to L1 / L2-based mobility received from the system information (430).
[0115] Process 400 may improve the performance of the RA procedure for L1 / L2 based mobility. Example implementation of RLF reporting for L1 / L2 based handover
[0116] In general, RLF reports can be used to record information about handover failures and radio link failures. When a failure occurs, the information is stored and reported to the network to help the network identify the cause of the failure and further adjust the handover configuration. The configuration of L1 / L2-based handover is different from other types of handover (e.g., normal handover (HO), conditional handover (CHO), and Dual Active Protocol Stack (DAPS) HO). Therefore, it is necessary to distinguish L1 / L2-based handover from other types of failures.
[0117] In view of the above problems, the embodiments of the present disclosure provide a solution for RLF reporting for L1 / L2 based mobility, which will be described below with reference to FIG.
[0118] FIG. 5 is a schematic diagram illustrating a process 500 for RLF reporting for L1 / L2-based handover, according to an embodiment of the present disclosure. For illustrative purposes, process 500 will be described with reference to FIG. 1A . Process 500 may involve terminal device 110 and network device 120 shown in FIG. 1A . Network device 120 may be an MN or SN serving terminal device 110. In this example, network device 120 provides a serving cell for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0119] 5, terminal device 110 determines whether the RLF report was triggered by a lower-layer signaling-based handover failure (510). If the RLF report was triggered by a lower-layer signaling-based handover failure, terminal device 110 transmits an RLF report to network device 120 including an indication that the last handover was a lower-layer signaling-based handover (520).
[0120] In some embodiments, if the RLF report is triggered by a radio link failure, terminal device 110 may determine whether the handover before the radio link failure was a lower-layer signaling-based handover. If the handover before the radio link failure was a lower-layer signaling-based handover, terminal device 110 may determine that the RLF report was triggered by a lower-layer signaling-based handover failure. Terminal device 110 may then send an RLF report to network device 120 that also includes an indication that the last handover was a lower-layer signaling-based handover. In this case, the failure may be due to a premature L1 / L2 signaling-based handover.
[0121] Through the process 500, the network receiving the RLF report can recognize that the failure is due to improper L1 / L2 signaling based handover and can further adjust the parameters of the L1 / L2 based handover. Example implementation of the method
[0122] Accordingly, embodiments of the present disclosure provide communication methods implemented in terminal devices and network devices, which will now be described with reference to Figures 6 to 13.
[0123] FIG. 6 illustrates an example communication method 600 performed in a terminal device, according to some embodiments of the present disclosure. For example, method 600 can be performed in terminal device 110 shown in FIG. 1A. Hereinafter, for illustrative purposes, method 600 will be described with reference to FIG. 1A. Method 600 may include additional blocks not shown and / or omit some illustrated blocks, but it should be understood that the scope of the present disclosure is not limited in this respect. Assume that network device 120 may be a mobile node or a service node (SN) serving terminal device 110. Network device 120 provides a serving cell (e.g., cell 121) for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0124] In block 610, the terminal device 110 receives lower layer signaling from a first network device (e.g., network device 120) indicating a cell change or addition to a cell (e.g., cell 131) of a second network device (e.g., network device 130) and indicating the TCI status of that cell.
[0125] In block 620, terminal device 110 determines an RS associated with the TCI state. In some embodiments, if a set of RSs is associated with the TCI state, terminal device 110 determines a first RS in the set of RSs that has a quasi-co-location type of type D as the RS. In some embodiments, the RS may be an SSB. In some embodiments, the RS may be a CSI-RS.
[0126] In block 630, terminal device 110 performs an RA procedure for cell change or addition based on the RS.
[0127] The method 600 performs an RA procedure for L1 / L2 based mobility in a fixed beam associated with a TCI state indicated by L1 / L2 signaling, thus eliminating the need for the network to send separate L1 / L2 signaling to activate the TCI state, reducing communication delay and overhead.
[0128] FIG. 7 illustrates another example communication method 700 performed in a terminal device, according to some embodiments of the present disclosure. For example, method 700 can be performed in terminal device 110 shown in FIG. 1A. Hereinafter, for illustrative purposes, method 700 will be described with reference to FIG. 1A. Method 700 may include additional blocks not shown and / or omit some illustrated blocks, but it should be understood that the scope of the present disclosure is not limited in this respect. Assume that network device 120 may be an MN or SN serving terminal device 110. Network device 120 provides a serving cell (e.g., cell 121) for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0129] In block 710, the terminal device 110 receives lower layer signaling from a first network device (e.g., network device 120) indicating a cell change or addition to a cell (e.g., cell 131) of a second network device (e.g., network device 130) and indicating the TCI status of that cell.
[0130] In block 720, terminal device 110 performs an RA procedure for cell change or addition.
[0131] In block 730, terminal device 110 determines that the DM-RS antenna port for PDCCH reception is quasi-co-located with the RS associated with the TCI state after the RA procedure is completed. In some embodiments, the RS may be an SSB. In some embodiments, the RS may be a CSI-RS.
[0132] In the method 700, the TCI state indicated in the L1 / L2 signaling is used after the RA procedure is completed, so the network does not need to send separate L1 / L2 signaling to activate the TCI state, reducing communication delay and overhead.
[0133] FIG. 8 illustrates another example communication method 800 performed in a terminal device, according to some embodiments of the present disclosure. For example, method 800 can be performed in terminal device 110 shown in FIG. 1A. Hereinafter, for illustrative purposes, method 800 will be described with reference to FIG. 1A. Method 800 may include additional blocks not shown and / or omit some illustrated blocks, but it should be understood that the scope of the present disclosure is not limited in this respect. Assume that network device 120 may be an MN or SN serving terminal device 110. Network device 120 provides a serving cell (e.g., cell 121) for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0134] In block 810, terminal device 110 receives an RA configuration dedicated to a cell change or addition based on lower layer signaling from a first network device (e.g., network device 120). In some embodiments, the cell change or addition based on lower layer signaling may be configured as a function associated with a random access partition.
[0135] At block 820, terminal device 110 determines whether it has received lower layer signaling from network device 120. The lower layer signaling may indicate a cell change or addition to a cell (e.g., cell 131) of a second network device (e.g., network device 130). If lower layer signaling is received, method 800 proceeds to block 830.
[0136] In block 830, the terminal device 110 performs a cell change or addition based on the RA configuration.
[0137] The method 800 may improve the performance of the RA procedure for L1 / L2 based mobility.
[0138] FIG. 9 illustrates yet another example communication method 900 performed in a terminal device, according to some embodiments of the present disclosure. For example, method 900 may be performed in terminal device 110 shown in FIG. 1A. For illustrative purposes, method 900 will be described below with reference to FIG. 1A. Method 900 may include additional blocks not shown and / or omit some illustrated blocks, but it should be understood that the scope of the present disclosure is not limited in this respect. Assume that network device 120 may be a mobile node or a service node (SN) serving terminal device 110. Network device 120 provides a serving cell (e.g., cell 121) for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0139] At block 910, terminal device 110 determines whether the RLF report was triggered by a lower layer signaling-based handover failure. If the RLF report was triggered by a lower layer signaling-based handover failure, method 900 proceeds to block 920.
[0140] In block 920, terminal device 110 sends an RLF report to network device 120 that includes an indication that the final handover was a lower layer signaling-based handover.
[0141] In some embodiments, if the RLF report is triggered by a radio link failure, terminal device 110 may determine whether the handover before the radio link failure was a lower layer signaling-based handover. If the handover before the radio link failure was a lower layer signaling-based handover, terminal device 110 may determine that the radio link failure report was triggered by a lower layer signaling-based handover failure.
[0142] Method 900 may report failures due to premature or late L1 / L2 signaling based handovers to the network.
[0143] FIG. 10 illustrates an example communication method 1000 performed in a network device according to some embodiments of the present disclosure. For example, method 1000 can be performed by network device 120 or 130 shown in FIG. 1A. Hereinafter, for illustrative purposes, method 1000 will be described with reference to FIG. 1A. Method 1000 may include additional blocks not shown and / or omit some illustrated blocks, but it should be understood that the scope of the present disclosure is not limited in this respect. Assume that network device 120 may be a mobile node or a simple network node serving terminal device 110. Network device 120 provides a serving cell (e.g., cell 121) for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0144] As shown in FIG. 10, in block 1010, a first network device (e.g., network device 120) transmits lower layer signaling to terminal device 110 indicating a cell change or addition to a cell of a second network device (e.g., network device 130) and indicating the TCI status of this cell.
[0145] In block 1020, the network device 120 determines an RS associated with the TCI state. In some embodiments, if a set of RSs is associated with the TCI state, the network device 120 determines a first RS in the set of RSs that has a quasi-co-location type of type D as the RS. In some embodiments, the RS may be an SSB. In some embodiments, the RS may be a CSI-RS.
[0146] In block 1030, the network device 120 performs an RA procedure for cell change or addition based on the RS.
[0147] The method 1000 performs an RA procedure for L1 / L2-based mobility in a fixed beam associated with a TCI state indicated by L1 / L2 signaling, thus eliminating the need for the network to send separate L1 / L2 signaling to activate the TCI state, reducing communication delay and overhead.
[0148] FIG. 11 illustrates another example communication method 1100 performed in a network device, according to some embodiments of the present disclosure. For example, method 1100 can be performed by network device 120 or 130 shown in FIG. 1A. Hereinafter, for illustrative purposes, method 1100 will be described with reference to FIG. 1A. Method 1100 may include additional blocks not shown and / or omit some illustrated blocks, but it should be understood that the scope of the present disclosure is not limited in this respect. Assume that network device 120 may be a mobile node or a simple network node serving terminal device 110. Network device 120 provides a serving cell (e.g., cell 121) for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0149] As shown in FIG. 11, in block 1110, a first network device (e.g., network device 120) transmits lower layer signaling to terminal device 110 indicating a cell change or addition to a cell of a second network device (e.g., network device 130) and indicating the TCI status of this cell.
[0150] In block 1120, the network device 120 performs an RA procedure for cell change or addition.
[0151] In block 1130, the network device 120 determines that after the RA procedure is completed, the DM-RS antenna port for PDCCH transmission is quasi-co-located with the RS associated with the TCI state. In some embodiments, the RS may be an SSB. In some embodiments, the RS may be a CSI-RS.
[0152] By the method 1100, the TCI state indicated in the L1 / L2 signaling is used after the RA procedure is completed, so the network does not need to send another L1 / L2 signaling to activate the TCI state, reducing communication delay and overhead.
[0153] FIG. 12 illustrates yet another example communication method 1200 performed in a network device, according to some embodiments of the present disclosure. For example, method 1200 can be performed by network device 120 or 130 shown in FIG. 1A. Hereinafter, for illustrative purposes, method 1200 will be described with reference to FIG. 1A. Method 1200 may include additional blocks not shown and / or omit some illustrated blocks, but it should be understood that the scope of the present disclosure is not limited in this respect. Assume that network device 120 may be a mobile node or a system node serving terminal device 110. Network device 120 provides a serving cell (e.g., cell 121) for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0154] 12, a first network device (e.g., network device 120) generates an RA configuration dedicated to a cell change or addition based on lower layer signaling, block 1210. In some embodiments, the cell change or addition based on lower layer signaling may be configured as a function associated with a random access partition.
[0155] In block 1220 , the network device 120 transmits the RA configuration to the terminal device 110 .
[0156] The method 1200 may configure a dedicated RA configuration to improve the performance of the RA procedure for L1 / L2 based mobility.
[0157] FIG. 13 illustrates yet another example communication method 1300 performed in a network device, according to some embodiments of the present disclosure. For example, method 1300 can be performed by network device 120 or 130 shown in FIG. 1A . Hereinafter, for illustrative purposes, method 1300 will be described with reference to FIG. 1A . Method 1300 may include additional blocks not shown and / or omit some illustrated blocks, but it should be understood that the scope of the present disclosure is not limited in this respect. Assume that network device 120 may be a mobile node or a simple network node serving terminal device 110. Network device 120 provides a serving cell (e.g., cell 121) for terminal device 110. Network device 130 does not provide a serving cell for terminal device 110.
[0158] As shown in FIG. 13, in block 1310, a first network device (e.g., network device 120) receives an RLF report from terminal device 110 that includes an indication that the final handover is a handover based on lower layer signaling.
[0159] At block 1320, the network device 120 adjusts the parameters of the handover based on the lower layer signaling.
[0160] The method 1300 allows the network to recognize failures due to L1 / L2 signaling based handovers that are too early or too late and to further adjust parameters of the L1 / L2 signaling based handovers.
[0161] It should be noted that the operation of methods 600-1300 is similar to that described with reference to FIGS. 2-5, and other details will not be repeated here for the sake of brevity. Device and equipment implementation examples
[0162] 14 is a simplified block diagram of an apparatus 1400 suitable for implementing embodiments of the present disclosure. Apparatus 1400 may be considered a further example of terminal device 110, network device 120, or network device 130 shown in FIG. 1A. Thus, apparatus 1400 may be implemented in, or as at least a part of, terminal device 110, network device 120, or network device 130.
[0163] As shown, the apparatus 1400 comprises a processor 1410, a memory 1420 coupled to the processor 1410, a suitable transmitter (TX) and receiver (RX) 1440 coupled to the processor 1410, and a communication interface coupled to the TX / RX 1440. The memory 1410 stores at least a portion of a program 1430. The TX / RX 1440 is used for bidirectional communication. The TX / RX 1440 has at least one antenna to facilitate communication, although the access nodes referred to herein may in practice have multiple antennas. The communication interface may represent any interface required for communication with other network elements, such as the X2 interface for bidirectional communication between eNBs / gNBs, the S1 / NG interface for communication between a Mobility Management Entity (MME) / Access and Mobility Management Function (AMF) / SGW / UPF and a gNB / eNB, the Un interface for communication between a gNB / eNB and a relay node (RN), and the Uu interface for communication between a gNB / eNB and a terminal device.
[0164] 1A-13, which, when executed by an associated processor 1410, enables the device 1400 to operate according to embodiments of the present disclosure. The embodiments herein may be implemented by computer software executable by the processor 1410 of the device 1400, by hardware, or by a combination of software and hardware. The processor 1410 may be configured to implement various embodiments of the present disclosure. Furthermore, the combination of the processor 1410 and the memory 1420 may form a processing means 1450 suitable for implementing various embodiments of the present disclosure.
[0165] Memory 1420 may be of any type suitable for a local technology network and may be implemented using any suitable data storage technology, including, by way of non-limiting example, non-transitory computer-readable storage media, semiconductor-based memory devices, magnetic memory devices and systems, optical memory devices and systems, fixed memory, and removable memory. While only one memory 1420 is shown in device 1400, several physically distinct memory modules may be present within device 1400. Processor 1410 may be of any type suitable for a local technology network and may include, by way of non-limiting example, one or more of a general-purpose computer, a special-purpose computer, a microprocessor, a digital signal processor (DSP), and a processor based on a multi-core processor architecture. Device 1400 may have multiple processors, for example, application-specific integrated circuit chips time-slaved to a clock that synchronizes the main processor.
[0166] In some embodiments, a terminal device comprises circuitry configured to receive lower layer signaling from a first network device indicating a change or addition of a cell to a cell of a second network device and indicating a transmission configuration indicator state of the cell, determine a reference signal associated with the transmission configuration indicator state, and perform a random access procedure for the change or addition of the cell based on the reference signal.
[0167] In some embodiments, the circuitry may be configured to determine the reference signal according to a determination that the set of reference signals is associated with a transmission configuration indicator state by determining as the reference signal a first reference signal in the set of reference signals that has a pseudo-colocation of type D.
[0168] In some embodiments, a terminal device comprises circuitry configured to receive, from a first network device, lower layer signaling indicating a cell change or addition to a cell of a second network device and indicating a transmission configuration indicator state of the cell, perform a random access procedure for the cell change or addition, and determine, after the random access procedure is completed, that a demodulation reference signal antenna port for receiving a physical downlink control channel is quasi-co-located with a reference signal associated with the transmission configuration indicator state. In some embodiments, the reference signal is SSB or CSI-RS.
[0169] In some embodiments, the terminal device includes circuitry configured to receive, from the network device, a random access configuration dedicated to changing or adding a cell based on lower layer signaling, and to change or add a cell based on the random access configuration in response to receiving the lower layer signaling.
[0170] In some embodiments, the modification or addition of cells based on lower layer signaling is configured as a function associated with a random access partition.
[0171] In some embodiments, the terminal device includes circuitry configured to determine whether a radio link failure report was triggered by a failure of a handover based on lower layer signaling, and, in accordance with a determination that the radio link failure report was triggered by a failure of a handover based on lower layer signaling, send a radio link failure report to a network device, the radio link failure report including an indication that the last handover was a handover based on lower layer signaling.
[0172] In some embodiments, the circuitry may be configured to determine whether the radio link failure report was triggered by a failure of a lower layer signaling based handover by: determining whether the handover before the radio link failure was a lower layer signaling based handover in accordance with a determination that the radio link failure report was triggered by a radio link failure; and determining that the radio link failure report was triggered by a failure of a lower layer signaling based handover in accordance with a determination that the handover before the radio link failure was a lower layer signaling based handover.
[0173] In some embodiments, the first network device comprises circuitry configured to: transmit lower layer signaling to a terminal device indicating a change or addition of a cell to a cell of a second network device and indicating a transmission configuration indicator state of the cell; determine a reference signal associated with the transmission configuration indicator state; and perform a random access procedure for the change or addition of the cell based on the reference signal.
[0174] In some embodiments, the circuitry may be configured to determine the reference signal according to a determination that the set of reference signals is associated with a transmission configuration indicator state by determining as the reference signal a first reference signal in the set of reference signals that has a pseudo-colocation of type D.
[0175] In some embodiments, the first network device comprises circuitry configured to: transmit lower layer signaling to a terminal device indicating a change or addition of a cell to a cell of a second network device and indicating a transmission configuration indicator state of the cell; perform a random access procedure for the cell change or addition; and determine, after the random access procedure is completed, that a demodulation reference signal antenna port for physical downlink control channel transmission is quasi-co-located with a reference signal associated with the transmission configuration indicator state.
[0176] In some embodiments, the reference signal is an SSB or a CSI-RS.
[0177] In some embodiments, the first network device comprises circuitry configured to generate a random access configuration dedicated to changing or adding a cell based on lower layer signaling and to transmit the random access configuration to the terminal device.
[0178] In some embodiments, the modification or addition of cells based on lower layer signaling is configured as a function associated with a random access partition.
[0179] In some embodiments, the network device comprises circuitry configured to receive a radio link failure report from the terminal device, the radio link failure report including an indication that the last handover was a handover based on lower layer signaling, and to adjust parameters of the handover based on lower layer signaling.
[0180] As used herein, the term "circuitry" may refer to a hardware circuit and / or a combination of a hardware circuit and software. For example, a circuit may be a combination of analog and / or digital hardware circuitry and software / firmware. As a further example, a circuit may be any portion of a hardware processor with software, such as a digital signal processor, software, and memory that cooperate to perform various functions in a device, such as a terminal device or network device. In yet another example, a circuit may be a hardware circuit and / or processor, such as a microprocessor or portion of a microprocessor, that requires software / firmware for operation but may be absent when not required for operation. As used herein, the term circuitry also encompasses a simple hardware circuit or processor, or portion of a hardware circuit or processor, and its (or their) accompanying software and / or firmware implementation.
[0181] Overall, various embodiments of the present disclosure may be implemented in hardware or special purpose circuits, software, logic, or any combination thereof. Some aspects may be implemented in hardware, while other aspects may be implemented in firmware or software executable by a controller, microprocessor, or other computing device. While various aspects of embodiments of the present disclosure have been illustrated and described using block diagrams, flowcharts, or other pictorial representations, it should be understood that the blocks, devices, systems, techniques, or methods described herein may be implemented, by way of non-limiting example, in hardware, software, firmware, special purpose circuits or logic, general purpose hardware or controller or other computing device, or any combination thereof.
[0182] The present disclosure also provides at least one computer program product tangibly stored on a non-transitory computer-readable storage medium. The computer program product includes computer-executable instructions, such as instructions included in program modules, that execute within a device on a target real or virtual processor to perform the processes or methods described above with reference to FIGS. 1A-13. Generally, program modules include routines, programs, libraries, objects, classes, components, data structures, etc. that perform particular tasks or implement particular abstract data types. In various embodiments, the functionality of the program modules may be combined or split between program modules as desired. The machine-executable instructions of the program modules may be executed within local or distributed devices. In a distributed device, program modules may be located in both local and remote storage media.
[0183] Program code for carrying out the methods of the present disclosure may be written in any combination of one or more programming languages. These program codes may be provided to a processor or controller of a general-purpose computer, a special-purpose computer, or other programmable data processing device, and when executed by the processor or controller, the program code causes the functions / acts specified in the flowcharts and / or block diagrams to be implemented. The program code may run entirely on the machine, partially on the machine, as a separate software package, partially on the machine and partially on a remote machine, or entirely on a remote machine or server.
[0184] The above-described program code may be embodied on a machine-readable medium, which may be any tangible medium that contains or stores a program used by or in connection with an instruction execution system, apparatus, or device. The machine-readable medium may be a machine-readable signal medium or a machine-readable storage medium. The machine-readable medium may include, but is not limited to, an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any suitable combination of the foregoing. More specific examples of machine-readable storage media include an electrical connection having one or more wires, a portable computer diskette, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber, a portable compact disc read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the foregoing.
[0185] Although operations have been described in a particular order, it should not be understood that performing these operations in the particular order or sequence shown, or performing all of the operations shown, is required to achieve desired results. In some situations, multitasking and parallel processing may be advantageous. Similarly, while the above discussion includes details of several specific embodiments, these should not be construed as limitations on the scope of the disclosure, but rather as descriptions of features that may be specific to particular embodiments. Some features that are described in the context of individual embodiments may also be implemented in combination in a single embodiment. Conversely, various features that are described in the context of a single embodiment may also be implemented in multiple embodiments separately or in any suitable subcombination.
[0186] Although the present disclosure has been described in language specific to structural features and / or methodological acts, it is to be understood that the present disclosure, as defined by the appended claims, is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims.
Claims
1. receiving a Medium Access Control (MAC) Control Element (CE) from a base station, the MAC CE including information indicating a Transmission Configuration Indicator (TCI) state, the MAC CE triggering a cell switch to the target cell; Perform a random access procedure to the target cell, applying the TCI state to reception after the random access procedure for Layer 1 / Layer 2 triggered mobility is completed; A User Equipment (UE) method.
2. Assume that a Demodulation-Reference Signal (DM-RS) antenna port for receiving a Physical Downlink Control Channel (PDCCH) is quasi-collocated with a Synchronization Signals and Physical Broadcast Channel (SS / PBCH) block in the TCI state. The method of claim 1.
3. The TCI state provided by the MAC CE is associated with a pseudo-collocation type of Type D. The method of claim 1.
4. means for receiving, from a base station, a Medium Access Control (MAC) Control Element (CE) for triggering a cell switch to a target cell, the MAC CE including information indicating a Transmission Configuration Indicator (TCI) state; means for performing a random access procedure to a target cell; means for applying the TCI state to reception after the random access procedure for Layer 1 / Layer 2 triggered mobility is completed. User Equipment (UE).
5. and means for assuming that a Demodulation-Reference Signal (DM-RS) antenna port for receiving a Physical Downlink Control Channel (PDCCH) is quasi-collocated with a Synchronization Signals And Physical Broadcast Channel (SS / PBCH) block in the TCI state. The UE of claim 4.
6. The TCI state provided by the MAC CE is associated with a pseudo-collocation type of Type D. The UE of claim 4.
Citation Information
Patent Citations
Cell handover method and apparatus
JP2024500480A