Multi-connectivity with quality of experience measurements

The method for multi-connectivity in 5G networks addresses the lack of QoE-based resource allocation by utilizing application layer messages and QoE-related signaling radio bearers, enhancing the quality of experience for various applications and services.

JP7761066B2Active Publication Date: 2025-10-28TOYOTA JIDOSHA KK
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Patent Information

Application Number
JP2023578826
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-07-07
Filing Date
2022-07-01
Publication Date
2025-10-28
Estimated Expiration
2042-07-01

AI Technical Summary

Technical Problem

Existing 5G networks lack effective methods for allocating resources based on Quality of Experience (QoE) measurements, which are crucial for optimizing multi-connectivity in diverse applications with varying requirements.

Method used

A method for multi-connectivity in 5G networks that involves receiving application layer messages containing QoE information elements, determining secondary base stations for resource allocation, and configuring cells with QoE measurement capabilities, including the use of Xn messages and QoE-related signaling radio bearers.

Benefits of technology

Enhances resource allocation in 5G networks by enabling QoE measurement and reporting, thereby improving the quality of experience for diverse applications and services.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A method for multi-connectivity using quality of experience (QoE) measurements in 5G includes: receiving, by a first base station (BS) from a second BS, at least one application layer message including at least one information element (IE) associated with the QoE measurement; determining, by the first BS based on the at least one IE, to add the second BS as a secondary BS to allocate resources of the second BS for dual connectivity operation of a user equipment (UE); sending, by the first BS to the second BS, an add request message indicating a request for radio resources of the second BS; receiving, by the first BS from the second BS, an add request acknowledgement message; and sending, by the first BS to the UE, a reconfiguration message including configuration parameters of one or more cells of the second BS.
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Description

[Background technology]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Patent Application No. 63 / 218,962, filed July 7, 2021 (the "Provisional Application"), the contents of which are incorporated herein by reference.

[0002] This invention is directed to 5G, the fifth generation mobile network. It is the new global wireless standard following 1G, 2G, 3G, and 4G networks. 5G enables networks designed to connect machines, objects, and devices.

[0003] The present invention more specifically relates to multi-connectivity in 5G networks with Quality of Experience (QoE) measurement capabilities that rely on and allocate resources based on application layer messages containing information elements (IEs) associated with QoE measurements. Summary of the Invention

[0004] In one embodiment, the present invention provides a method for multi-connectivity with Quality of Experience (QoE) measurement, the method including: receiving, by a first base station (BS) from a second BS, at least one application layer message including at least one information element (IE) associated with the QoE measurement; determining, by the first BS based on the at least one IE, to add the second BS as a secondary BS to allocate resources of the second BS for dual connectivity operation of a user equipment (UE); sending, by the first BS to the second BS, an addition request message indicating a request for radio resources of the second BS; receiving, by the first BS from the second BS, an addition request acknowledgement message; and sending, by the first BS to the UE, a reconfiguration message including configuration parameters of one or more cells of the second BS.

[0005] The application layer message may be an Xn message, and the application layer message may be an Xn setup message, a resource status message, and / or a user equipment (UE) search context message. In that regard, the add request message and the add request acknowledge message may be an Xn message. The at least one information element (IE) may indicate that the second base station (BS) supports quality of experience (QoE) measurement configuration. The at least one information element (IE) may indicate that the second base station (BS) provides at least one cell in which quality of experience (QoE) measurement or reporting is supported, or may indicate that the second base station (BS) provides one or more parameters associated with quality of experience (QoE) measurement or reporting by the second base station (BS).

[0006] The method may further include receiving a reconfiguration complete message by the first base station (BS) from the user equipment (UE). In this case, the reconfiguration complete message may be a radio resource control (RRC) message. The method may further include sending a reconfiguration complete message by the first base station (BS) to the second BS. In this case, the additional request acknowledgement message includes the reconfiguration message. The determining step may be based on at least one information element (IE) indicating that the second base station (BS) supports quality of experience measurement or reporting for at least one cell. The one or more second cells of the second base station may be grouped into a secondary cell group (SCG). The method may also include transmitting, by the first base station (BS) to a user equipment (UE), configuration parameters of one or more first cells of the first BS grouped in a master cell group (MCG).

[0007] The configuration parameters of the one or more cells of the second base station may include quality of experience (QoE) configuration parameters associated with the one or more cells. Preferably, the quality of experience (QoE) configuration parameters are associated with one or more QoE configurations. The method may further include receiving, by the first base station (BS) from the user equipment (UE), a quality of experience (QoE) measurement report based on the QoE configuration parameters. The quality of experience (QoE) measurement report may include one or more radio-related measurements. The quality of experience (QoE) measurement report may be associated with a QoE-related signaling radio bearer (SRB). The quality of experience (QoE)-related signaling radio bearer (SRB) may be an SRB4. The quality of experience (QoE)-related signaling radio bearer (SRB) may have a lower priority than a second SRB associated with an uplink control logical channel.

[0008] In that regard, the quality of experience (QoE) measurement report may be transmitted via one or more radio resource control (RRC) messages, and the one or more radio resource control (RRC) messages may include a measurement report application layer information element (MeasReportappLayer IE) containing the quality of experience (QoE) measurement report. The quality of experience (QoE) measurement report in the one or more QoE measurement reports may also include an identifier indicating a QoE configuration associated with the QoE measurement report. The quality of experience (QoE) configuration parameters are preferably associated with one or more service types or application types. Transmission of one or more quality of experience (QoE) configurations among the configuration parameters may indicate activation of QoE measurement or reporting for the one or more QoE configurations. The method may also include receiving, by the first base station, one or more quality of experience (QoE) configuration parameters encapsulated in a transparent container from one of an operator's core network (CN) and an operation and maintenance (OAM) entity.

[0009] In one embodiment, the present invention provides a method for multi-connectivity with Quality of Experience (QoE) measurement, the method including: transmitting, by a user equipment (UE) to a first base station (BS), at least one message associated with QoE measurement or reporting; receiving configuration parameters of a plurality of cells including a first cell group of the first BS and a second cell group of a second BS, the second BS determined by the first BS for addition based on an indication by the second BS to the first BS that the second BS supports QoE measurement or reporting and at least one message indicating that the UE supports at least one service type or at least one application having QoE measurement or reporting requirements; and transmitting, by the UE to the first BS, a reconfiguration complete message.

[0010] The at least one message may include a capability message including one or more capability information elements associated with Quality of Experience (QoE) measurement or reporting. The indication may be based on at least one information element (IE) in an application layer message. The application layer message may be an Xn message, an Xn Setup message, a Resource Status message, and / or a User Equipment (UE) Search Context message. The at least one information element (IE) may indicate that the second base station (BS) supports Quality of Experience (QoE) measurement configuration. The at least one information element (IE) may indicate that the second base station (BS) provides at least one cell in which Quality of Experience (QoE) measurement or reporting is supported. The at least one information element (IE) may indicate that Quality of Experience (QoE) measurement or reporting by the second base station (BS) is supported. It may also indicate one or more parameters associated with the notification.

[0011] In the method, the first cell group may be a master cell group (MCG), and the second cell group may be a secondary cell group (SCG). Preferably, the configuration parameters of the second cell group include quality of experience (QoE) configuration parameters associated with one or more cells. In that regard, the quality of experience (QoE) configuration parameters may be associated with one or more QoE configurations. The method may further include transmitting, by a user equipment (UE), to the first base station (BS), a quality of experience (QoE) measurement report based on the QoE configuration parameters.

[0012] In another embodiment, the present invention provides a method for multi-connectivity with quality of experience (QoE) measurement, the method including: transmitting an add request message by a first base station (BS) to a second BS, the add request message indicating a request for radio resources of the second BS for dual connectivity operation and including one or more information elements (IEs) indicating that the request is for a user equipment (UE) requiring QoE measurement and reporting; receiving, by the first BS from the second BS, one of an add request acknowledgement message or an add request rejection message based on the first base station supporting or not supporting QoE-related features; and, in response to receiving the add request acknowledgement message, transmitting, by the first BS to the UE, a reconfiguration message including configuration parameters of one or more cells of the second BS. [Brief explanation of the drawings]

[0013] [Figure 1] FIG. 1 illustrates an example of a mobile communication system in accordance with certain aspects of various exemplary embodiments of the present disclosure. [Figure 2] 2A and 2B illustrate example radio protocol stacks for the user plane and control plane in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 3]3A, 3B, and 3C illustrate example mappings between logical channels and transport channels in the downlink, uplink, and sidelink in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 4] 4A, 4B, and 4C illustrate example mappings between transport channels and physical channels in the downlink, uplink, and sidelink in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 5] 5A, 5B, 5C, and 5D illustrate example radio protocol stacks for NR sidelink communications in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 6] FIG. 1 illustrates exemplary physical signals in the downlink, uplink, and sidelink in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 7] 1 illustrates an example of radio resource control (RRC) states and transitions between different RRC states in accordance with certain aspects of various exemplary embodiments of the present disclosure. [Figure 8] FIG. 1 illustrates an example frame structure and physical resources in accordance with certain aspects of various exemplary embodiments of the present disclosure. [Figure 9] 1A-1C illustrate example component carrier configurations in different carrier aggregation scenarios in accordance with certain aspects of various exemplary embodiments of the present disclosure. [Figure 10] 1 illustrates exemplary bandwidth portion configurations and switching in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 11] FIG. 1 illustrates an exemplary four-step contention-based and contention-free random access process, in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 12]FIG. 1 illustrates an exemplary two-step contention-based and contention-free random access process, in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 13] FIG. 1 illustrates an example time and frequency structure of a synchronization signal and a physical broadcast channel (PBCH) block (SSB), in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 14] FIG. 1 illustrates an exemplary SSB burst transmission in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 15] FIG. 1 illustrates exemplary components of a user equipment and a base station for transmission and / or reception in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 16] FIG. 1 illustrates an exemplary secondary node addition preparation procedure in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 17] FIG. 10 illustrates an example secondary node addition preparation procedure in which an operation has failed, in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 18] FIG. 1 illustrates an example secondary node addition preparation procedure that has been successfully operated, in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 19] FIG. 1 illustrates an exemplary secondary node addition procedure in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 20] FIG. 1 illustrates an exemplary secondary node addition procedure in accordance with some aspects of various exemplary embodiments of the present disclosure. [Figure 21] FIG. 1 illustrates an example process according to some aspects of some of various exemplary embodiments of the present disclosure. [Figure 22] FIG. 1 illustrates an example process according to some aspects of some of various exemplary embodiments of the present disclosure. [Figure 23] FIG. 1 illustrates an example process according to some aspects of some of various exemplary embodiments of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0014] 1 illustrates an example of a mobile communication system 100 according to some aspects of some of various exemplary embodiments of the present disclosure. The mobile communication system 100 may be operated by a wireless communication system operator, such as a mobile network operator (MNO), a private network operator, a multi-system operator (MSO), an Internet of Things (IoT) network operator, etc., and may provide services such as voice, data (e.g., wireless Internet access), messaging, vehicular communication services such as vehicle-to-everything (V2X) communication services, safety services, mission-critical services, and services in residential, commercial, or industrial environments, such as IoT and Industrial IoT (IIOT).

[0015] The mobile communication system 100 can enable various types of applications with different requirements regarding latency, reliability, throughput, etc. Examples of supported applications include enhanced mobile broadband (eMBB), ultra-reliable low-latency communications (URLLC), and massive machine-type communications (mMTC). eMBB can support stable connections with high peak data rates and moderate rates for cell-edge users. URLLC can support applications with stringent requirements regarding latency and reliability, as well as moderate requirements regarding data rates. An exemplary mMTC application includes a network of many IoT devices that are only sporadically active and transmit small data payloads.

[0016] The mobile communication system 100 may include a radio access network (RAN) portion and a core network portion. In the example shown in FIG. 1, a Next Generation RAN (NG-RAN) 105 and a 5G Core Network (5GC) 110 are shown as examples of a RAN and a core network, respectively. Other examples of a RAN and a core network may be implemented without departing from the scope of this disclosure. Other examples of a RAN include an Evolved Universal Terrestrial Radio Access Network (EUTRAN), a Universal Terrestrial Radio Access Network (UTRAN), etc. Other examples of a core network include an Evolved Packet Core (EPC), a UMTS Core Network (UCN), etc. The RAN implements a radio access technology (RAT) and resides between a user equipment (UE) 125 and the core network. Examples of such RATs include New Radio (NR), Long Term Evolution (LTE), also known as Evolved Universal Terrestrial Radio Access (EUTRA), Universal Mobile Telecommunications System (UMTS), etc. The RAT of the example mobile communication system 100 may be NR. The core network exists between the RAN and one or more external networks (e.g., data networks) and is responsible for functions such as mobility management, authentication, session management, bearer setup, and application of different Quality of Service (QoS). The functional layer between the UE 125 and the RAN (e.g., NG-RAN 105) may be referred to as the Access Stratum (AS), and the functional layer between the UE 125 and the core network (e.g., 5GC 110) may be referred to as the Non-access Stratum (NAS).

[0017] The UE 125 may include wireless transmission and reception means for communicating with one or more nodes in a RAN, one or more relay nodes, one or more other UEs, etc. Examples of UEs include, but are not limited to, smartphones, tablets, laptops, computers, wireless transmitting and / or receiving units in vehicles, V2X or vehicle-to-vehicle (V2V) devices, wireless sensors, IoT devices, IIOT devices, etc. Other names may be used for the UE, such as mobile station (MS), terminal equipment, terminal node, client device, mobile device, etc.

[0018] The RAN may include nodes (e.g., base stations) for communicating with UEs. For example, the NG-RAN 105 of the mobile communication system 100 may include nodes for communicating with the UE 125. For example, different names may be used for the RAN nodes depending on the RAT used for the RAN. A RAN node may be referred to as a Node B (NB) in a RAN using the UMTS RAT. A RAN node may be referred to as an evolved Node B (eNB) in a RAN using the LTE / EUTRA RAT. In the exemplary example of the mobile communication system 100 of FIG. 1, the node of the NG-RAN 105 may be either a Next Generation Node B (gNB) 115 or a Next Generation Evolved Node B (ng-eNB) 120. In this specification, the terms base station, RAN node, gNB, and ng-eNB may be used interchangeably. The gNB 115 may provide NR user plane and control plane protocol terminations for the UE 125. The ng-eNB 120 may provide E-UTRA user plane and control plane protocol terminations for the UE 125. The interface between the gNB 115 and the UE 125 or between the ng-eNB 120 and the UE 125 may be referred to as a Uu interface. The Uu interface may be established using a user plane protocol stack and a control plane protocol stack. For the Uu interface, the direction from the base station (e.g., the gNB 115 or the ng-eNB 120) to the UE 125 may be referred to as the downlink, and the direction from the UE 125 to the base station (e.g., the gNB 115 or the ng-eNB 120) may be referred to as the uplink.

[0019] The gNB115 and ng-eNB120 are interconnected using the Xn interface. The Xn interface may include an Xn user plane (Xn-U) interface and an Xn control plane (Xn-C) interface. The transport network layer of the Xn-U interface may be built on Internet Protocol (IP) transport, and GPRS Tunneling Protocol (GTP) may be used on User Datagram Protocol (UDP) / IP to carry user plane protocol data units (PDUs). Xn-U may provide non-guaranteed delivery of user plane PDUs and may support data forwarding and flow control. The transport network layer of the Xn-C interface may be built on Stream Control Transport Protocol (SCTP) over IP. The application layer signaling protocol may be referred to as Xn Application Protocol (XnAP). The SCTP layer may provide guaranteed delivery of application layer messages. At the transport IP layer, point-to-point transmission may be used to deliver signaling PDUs. The Xn-C interface may support Xn interface management, UE mobility management including context transfer and RAN paging, and dual connectivity.

[0020] The gNB 115 and ng-eNB 120 may also be connected to the 5GC 110 via an NG interface, more specifically to the Access and Mobility Management Function (AMF) 130 of the 5GC 110 via an NG-C interface, and to the User Plane Function (UPF) 135 of the 5GC 110 via an NG-U interface. The transport network layer of the NG-U interface may be built on IP transport and may carry user plane PDUs between the NG-RAN node (e.g., the gNB 115 or ng-eNB 120) and the UPF 135 using the GTP protocol over UDP / IP. The NG-U may provide non-guaranteed delivery of user plane PDUs between the NG-RAN node and the UPF. The transport network layer of the NG-C interface may be built on IP transport. SCTP may be added on top of IP for reliable transmission of signaling messages. The application layer signaling protocol may be referred to as the NG Application Protocol (NGAP). The SCTP layer may provide guaranteed delivery of application layer messages. For transport, IP layer point-to-point transmission may be used to deliver signaling PDUs. The NG-C interface may provide the following functions: NG interface management, UE context management, UE mobility management, NAS message transfer, paging, PDU session management, configuration transfer, and alert message transfer.

[0021] The gNB 115 or ng-eNB 120 performs the following functions: radio bearer control, radio admission control, connection mobility control, radio resource management functions such as dynamic allocation of resources to UEs in both uplink and downlink (e.g., scheduling), IP and Ethernet header compression of data, encryption and integrity protection, selection of AMF at UE attachment when routing to AMF cannot be determined from information provided by the UE, routing of user plane data to UPF, routing of control plane information to AMF, connection setup and release, scheduling and transmission of paging messages, system block routing, and so on. Hosts one or more of the following: scheduling and transmission of broadcast information (e.g., derived from AMF), measurement and measurement reporting configuration for mobility and scheduling, transport level packet marking in the uplink, session management, support for network slicing, QoS flow management and mapping to data radio bearers, support for UEs in RRC inactive state, NAS message delivery functionality, radio access network sharing, dual connectivity, close interaction between NR and E-UTRA, and maintaining security and radio configuration for user plane 5G System (5GS) Cellular IoT (CIoT) optimization. It can be done.

[0022] The AMF 130 may host one or more of the following functions: NAS signaling termination, NAS signaling security, AS security control, CN inter-node signaling for mobility between 3GPP access networks, idle mode UE reachability (including control and execution of paging retransmissions), registration area management, support for intra-system and inter-system mobility, access authentication, access authorization including verification of roaming rights, mobility management control (subscription and policy), support for network slicing, Session Management Function (SMF) selection, 5GS CIoT optimization selection.

[0023] The UPF 135 may host one or more of the following functions: anchor point for intra / inter-RAT mobility (if applicable); external PDU session point for interconnection to the data network; packet routing and forwarding; packet inspection and user plane portion of policy rule enforcement; traffic usage reporting; uplink classifier supporting routing of traffic flows to the data network; branching point to support multi-homed PDU sessions; QoS processing for the user plane, e.g., packet filtering, gating, UL / DL rate enforcement, uplink traffic validation (Service Data Flow (SDF) to QoS flow mapping); and downlink packet buffering and downlink data notification triggering.

[0024] As shown in FIG. 1, the NG-RAN 105 can support a PC5 interface between two UEs 125 (e.g., UE 125A and UE 125B). In the PC5 interface, the direction of communication between the two UEs (e.g., from UE 125A to UE 125B or vice versa) may be referred to as a sidelink. Sidelink transmission and reception over the PC5 interface may be supported when the UE 125 is within NG-RAN 105 coverage and when the UE is out of NG-RAN 105 coverage, regardless of which RRC state the UE 125 is in. Support for V2X services over the PC5 interface may be provided by NR sidelink communication and / or V2X sidelink communication.

[0025] PC5-S signaling can be used for unicast link establishment with direct communication request / accept messages. A UE can self-assign a source Layer-2 ID for a PC5 unicast link, for example, based on the V2X service type. During the unicast link establishment procedure, a UE can send its source Layer-2 ID for the PC5 unicast link to a peer UE, e.g., the UE from which the destination ID was received from a higher layer. The pair of source Layer-2 ID and destination Layer-2 ID can uniquely identify the unicast link. The receiving UE can verify that the destination ID belongs to it and accept the unicast link establishment request from the source UE. During the PC5 unicast link establishment procedure, a PC5-RRC procedure on the access stratum can be invoked for UE sidelink context establishment purposes, as well as for AS layer configuration, capability exchange, etc. PC5-RRC signaling can enable the exchange of UE capabilities and AS layer configurations, such as sidelink radio bearer configuration, between a pair of UEs with established PC5 unicast links.

[0026] NR sidelink communication can support one of three types of transmission modes (e.g., unicast transmission, groupcast transmission, and broadcast transmission) for a pair of source Layer 2 ID and destination Layer 2 ID in an AS. The unicast transmission mode supports one PC5-RRC connection between peer UEs for the pair. The sidelink transmission may be characterized by transmission and reception of control information and user traffic between peer UEs, support for sidelink HARQ feedback, support for sidelink transmit power control, support for RLC acknowledged mode (AM), and detection of radio link failure for PC5-RRC connections. Groupcast transmission may be characterized by transmission and reception of user traffic between UEs belonging to a group on the sidelink and support for sidelink HARQ feedback. Broadcast transmission may be characterized by transmission and reception of user traffic between UEs on the sidelink.

[0027] NR sidelink communications may use a source Layer-2 ID, a destination Layer-2 ID, and a PC5 link identifier. The source Layer-2 ID may be a link layer identifier that identifies the device or group of devices that is the recipient of the sidelink communication frame. The destination Layer-2 ID may be a link layer identifier that identifies the device that originates the sidelink communication frame. In some examples, the source Layer-2 ID and the destination Layer-2 ID may be assigned by a management function in the core network. The source Layer-2 ID may identify the source of data in NR sidelink communications. The source Layer-2 ID may be 24 bits long and may be split into two bit strings at the MAC layer. One bit string may be the least significant 8-bit portion of the source Layer-2 ID and may be forwarded to the sender's physical layer. This may identify the source of the intended data in the sidelink control information and may be used for packet filtering at the receiver's physical layer. The second bit string may be the most significant 16-bit portion of the source Layer-2 ID and may be carried in the medium access control (MAC) header. This can be used for packet filtering at the receiver's MAC layer. The destination Layer 2 ID can identify the target of data in NR sidelink communication. For NR sidelink communication, the destination Layer 2 ID may be 24 bits long and may be split into two bit strings at the MAC layer. One bit string may be the LSB portion (16 bits) of the destination Layer 2 ID and may be forwarded to the sender's physical layer. This can identify the intended target of data in the sidelink control information and can be used for packet filtering at the receiver's physical layer. The second bit string may be the MSB portion (8 bits) of the destination Layer 2 ID and may be carried in the MAC header. This can be used for packet filtering at the receiver's MAC layer. The PC5 link identifier can uniquely identify a PC5 unicast link within a UE for the lifetime of the PC5 unicast link.The PC5 link identifier may be used to indicate the PC5 unicast link for which the sidelink radio link failure (RLF) declaration was made and the PC5-RRC connection was released.

[0028] 2A and 2B illustrate example radio protocol stacks for the user plane and control plane, respectively, in accordance with some aspects of some of the various exemplary embodiments of the present disclosure. As shown in FIG. 2A, the protocol stack for the user plane of the Uu interface (between the UE 125 and the gNB 115) includes Service Data Adaptation Protocol (SDAP) 201 and SDAP 211, Packet Data Convergence Protocol (PDCP) 202 and PDCP 212, Radio Link Control (RLC) 203 and RLC 213, MAC 204 and MAC 214, and sublayers of Layer 2 and Physical (PHY) 205 and PHY 215 layers (Layer 1 is also referred to as L1).

[0029] The PHY 205 and PHY 215 provide transport channels 244 to the MAC 204 and MAC 214 sublayers. The MAC 204 and MAC 214 sublayers provide logical channels 243 to the RLC 203 and RLC 213 sublayers. The RLC 203 and RLC 213 sublayers provide RLC channels 242 to the PDCP 202 and PCP 212 sublayers. The PDCP 202 and PDCP 212 sublayers The SDAP 201 and SDAP 211 sublayers provide radio bearers 241 to the SDAP 201 and SDAP 211 sublayers. Radio bearers may be classified into two groups: Data Radio Bearers (DRBs) for user plane data and Signaling Radio Bearers (SRBs) for control plane data. The SDAP 201 and SDAP 211 sublayers provide QoS flows 240 to the 5GC.

[0030] The main services and functions of the MAC204 or MAC214 sublayer include mapping between logical channels and transport channels, multiplexing / demultiplexing MAC service data units (SDUs) belonging to one or different logical channels into / from transport blocks (TBs) passed to / from the physical layer on transport channels, scheduling information reporting, error correction using Hybrid Automatic Repeat Request (HARQ) (one HARQ entity per cell in the case of carrier aggregation (CA)), priority handling between UEs using dynamic scheduling, priority handling between logical channels of one UE using Logical Channel Prioritization (LCP), priority handling between overlapping resources of one UE, and padding. A single MAC entity can support multiple numerologies, transmission timings, and cells. Mapping restrictions in logical channel prioritization control the numerologies, cells, and transmission timings that a logical channel can use.

[0031] The HARQ function can guarantee delivery between peer entities at Layer 1. If the physical layer is not configured for downlink / uplink spatial multiplexing, a single HARQ process can support one TB, and if the physical layer is configured for downlink / uplink spatial multiplexing, a single HARQ process can support one or more TBs.

[0032] The RLC203 or RLC213 sublayer can support three transmission modes: transparent mode (TM), unacknowledged mode (UM), and acknowledged mode (AM). The RLC configuration may be per logical channel independent of the numerology and / or transmission time, and automatic repeat request (ARQ) may operate with any of the numerologies and / or transmission times for which the logical channel is configured.

[0033] The main services and functions of the RLC203 or RLC213 sublayer depend on the transmission mode (e.g., TM, UM, or AM) and may include transport of upper layer PDUs, sequence numbers independent of PDCP sequence numbers (UM and AM), error correction via ARQ (AM only), segmentation (AM and UM) and resegmentation (AM only) of RLC SDUs, reassembly of SDUs (AM and UM), duplicate detection (AM only), RLC SDU discard (AM and UM), RLC re-establishment, and protocol error detection (AM only).

[0034] An automatic repeat request in the RLC203 or RLC213 sublayer may have the following characteristics: ARQ retransmits an RLC SDU or an RLC SDU segment based on an RLC status report, polling for RLC status notification may be used if required by RLC, and the RLC receiver may also trigger an RLC status notification after detecting a missing RLC SDU or an RLC SDU segment.

[0035] The main services and functions of the PDCP202 or PDCP212 sublayer include forwarding of data (user plane or control plane), maintaining the PDCP sequence number (SN), header compression and decompression using the Robust Header Compression (ROHC) protocol, header compression and decompression using the EHC protocol, encryption and decryption, integrity protection and integrity verification, timer-based SDU discard, split bearer routing, duplication, reordering and in-order delivery, out-of-order delivery, and duplicate discard. This can be done.

[0036] The main services and functions of the SDAP 201 or SDAP 211 include mapping between QoS flows and data radio bearers, and marking QoS Flow IDs (QFIs) in both downlink and uplink packets. A single protocol entity of the SDAP may be configured for each individual PDU session.

[0037] As shown in FIG. 2B, the control plane protocol stack of the Uu interface (between UE 125 and gNB 115) includes the PHY layer (Layer 1), the MAC, RLC and PDCP sublayers of Layer 2, and further the RRC206 and RRC216 sublayers, as described above. The main services and functions of the RRC206 and RRC216 sublayers on the Uu interface include broadcasting of system information related to the AS and NAS, paging initiated by 5GC or NG-RAN, establishment, maintenance, and release of RRC connections between the UE and NG-RAN (including adding, modifying, and releasing carrier aggregation, and adding, modifying, and releasing dual connectivity between NR or E-UTRA and NR), security functions including key management, establishment, configuration, maintenance, and release of SRBs and DRBs, mobility functions (including handover and context transfer, UE cell selection and reselection and cell selection and reselection control, and inter-RAT mobility), QoS management functions, UE measurement reporting and reporting control, radio link failure detection and recovery, and forwarding of NAS messages between the NAS and the UE. The NAS207 and NAS227 layers are control protocols (terminated in the AMF on the network side) that perform functions such as authentication, mobility management, and security control.

[0038] Sidelink specific services and functions of the RRC sublayer over the Uu interface include configuration of sidelink resource allocation via system information or dedicated signaling, reporting of UE sidelink information, sidelink related measurement configuration and reporting, and reporting of UE assistance information for SL traffic patterns.

[0039] 3A, 3B, and 3C illustrate example mappings between logical channels and transport channels in the downlink, uplink, and sidelink, respectively, according to some aspects of some of various exemplary embodiments of the present disclosure. Different types of data transfer services may be provided by the MAC. Each logical channel type may be defined by what type of information is transferred. Logical channels may be classified into two groups: control channels and traffic channels. Control channels may be used only for the transfer of control plane information. The Broadcast Control Channel (BCCH) is a downlink channel for broadcasting system control information. The Paging Control Channel (PCCH) is a downlink channel that carries paging messages. The Common Control Channel (CCCH) is a channel for transmitting control information between a UE and a network. This channel may be used for UEs that do not have an RRC connection with the network. The Dedicated Control Channel (DCCH) is a point-to-point bidirectional channel that transmits dedicated control information between a UE and a network and may be used by UEs that have an RRC connection. The Traffic Channel may be used only for the transfer of user plane information. A Dedicated Traffic Channel (DTCH) is a point-to-point channel dedicated to one UE for transferring user information. A DTCH can exist in both the uplink and downlink. A Sidelink Control Channel (SCCH) is a sidelink channel for transmitting control information (e.g., PC5-RRC and PC5-S messages) from one UE to other UEs. A Sidelink Traffic Channel (STCH) is a sidelink channel for transmitting user information from one UE to other UEs. Sidelink Broadcast The control channel (SBCCH) is a sidelink channel for broadcasting sidelink system information from one UE to other UEs.

[0040] Downlink transport channel types include the Broadcast Channel (BCH), Downlink Shared Channel (DL-SCH), and Paging Channel (PCH). The BCH can feature a fixed, predefined transport format and must be broadcast throughout the cell's coverage area either as a single message or by beamforming different BCH instances. The DL-SCH can be characterized by support for HARQ, support for dynamic link adaptation by varying modulation, coding, and transmit power, the possibility of being broadcast throughout the cell, the possibility of using beamforming, support for both dynamic and semi-static resource allocation, and support for UE discontinuous reception (DRX) to enable UE power savings. The DL-SCH can be characterized by support for HARQ, support for dynamic link adaptation by varying modulation, coding, and transmit power, the possibility of being broadcast throughout the cell, the possibility of using beamforming, support for both dynamic and semi-static resource allocation, and support for UE discontinuous reception (DRX) to enable UE power savings. The PCH may be characterized by support for UE discontinuous reception (DRX) to enable UE power saving (DRX cycle indicated by the network to the UE), a requirement to be broadcast throughout the coverage area of ​​a cell either as a single message or by beamforming different PCH instances, as well as being mapped to physical resources that can also be dynamically used for traffic / other control channels.

[0041] In the downlink, the following connections may exist between logical channels and transport channels: BCCH may be mapped to BCH, BCCH may be mapped to DL-SCH, PCCH may be mapped to PCH, CCCH may be mapped to DL-SCH, DCCH may be mapped to DL-SCH, and DTCH may be mapped to DL-SCH.

[0042] Uplink transport channel types include the Uplink Shared Channel (UL-SCH) and the Random Access Channel (RACH). The UL-SCH may be characterized by the possibility of using beamforming, support for dynamic link adaptation by varying transmit power and potentially modulation and coding, support for HARQ, and support for both dynamic and quasi-static resource allocation. The RACH may be characterized by limited control information and collision risk.

[0043] In the uplink, the following connections may exist between logical channels and transport channels: CCCH may be mapped to UL-SCH, DCCH may be mapped to UL-SCH, and DTCH may be mapped to UL-SCH.

[0044] Sidelink transport channel types include the Sidelink Broadcast Channel (SL-BCH) and the Sidelink Shared Channel (SL-SCH). The SL-BCH may be characterized by a predefined transport format. The SL-SCH may be characterized by support for unicast, groupcast, and broadcast transmissions; support for both UE autonomous resource selection and scheduled resource allocation by the NG-RAN; support for both dynamic and quasi-static resource allocation when the UE is assigned resources by the NG-RAN; support for HARQ; and support for dynamic link adaptation by varying transmit power, modulation, and coding.

[0045] In the sidelink, the following connections may exist between logical channels and transport channels: SCCH may be mapped to SL-SCH, STCH may be mapped to SL-SCH, and SBCCH may be mapped to SL-BCH.

[0046] 4A, 4B, and 4C illustrate example mappings between transport channels and physical channels in the downlink, uplink, and sidelink, respectively, in accordance with some aspects of some of various exemplary embodiments of the present disclosure. Physical channels in the downlink include a physical downlink shared channel (PDSCH), a physical downlink control channel (PDCCH), and a physical broadcast channel (PBCH). The PCH and DL-SCH transport channels are mapped to the PDSCH. The BCH transport channel is mapped to the PBCH. No transport channels are mapped to the PDCCH, and downlink control information (DCI) is transmitted via the PDCCH.

[0047] Physical channels in the uplink include the Physical Uplink Shared Channel (PUSCH), the Physical Uplink Control Channel (PUCCH), and the Physical Random Access Channel (PRACH). The UL-SCH transport channel may be mapped to the PUSCH, and the RACH transport channel may be mapped to the PRACH. No transport channel is mapped to the PUCCH, and uplink control information (UCI) is transmitted via the PUCCH.

[0048] The sidelink physical channels include the Physical Sidelink Shared Channel (PSSCH), the Physical Sidelink Control Channel (PSCCH), the Physical Sidelink Feedback Channel (PSFCH), and the Physical Sidelink Broadcast Channel (PSBCH). The Physical Sidelink Control Channel (PSCCH) indicates the resources and other transmission parameters used by the UE for the PSSCH. The Physical Sidelink Shared Channel (PSSCH) transmits the TBs of the data itself as well as control information such as HARQ procedures and CSI feedback triggers. At least six OFDM symbols within a slot may be used for PSSCH transmission. The Physical Sidelink Feedback Channel (PSFCH) may carry HARQ feedback over the sidelink from the UE that is the intended recipient of the PSSCH transmission to the UE that performed the transmission. The PSFCH sequence may be transmitted in one PRB repeated across two OFDM symbols near the end of the sidelink resources within the slot. The SL-SCH transport channel may be mapped to the PSSCH. The SL-BCH may be mapped to the PSBCH. Transport channels are not mapped to the PSFCH, but sidelink feedback control information (SFCI) may be mapped to the PSFCH. Transport channels are not mapped to the PSCCH, but sidelink control information (SCI) may be mapped to the PSCCH.

[0049] 5A, 5B, 5C, and 5D illustrate example radio protocol stacks for NR sidelink communications, respectively, in accordance with some aspects of various exemplary embodiments of the present disclosure. The AS protocol stack for the user plane in the PC5 interface (i.e., for STCH) may consist of SDAP, PDCP, RLC and MAC sublayers, and a physical layer. The user plane protocol stack is shown in FIG. 5A. The AS protocol stack for the SBCCH in the PC5 interface may consist of RRC, RLC, MAC sublayers, and a physical layer, as shown below in FIG. 5B. To support the PC5-S protocol, PC5-S provides a control plane stack for the SCCH for PC5-S, as shown in FIG. 5C. The AS protocol stack for the control plane for SCCH for RRC on the PC5 interface is located above the PDCP, RLC, and MAC sublayers and the physical layer. The AS protocol stack for the control plane for SCCH for RRC on the PC5 interface consists of the RRC, PDCP, RLC, and MAC sublayers and the physical layer. The control plane protocol stack for SCCH for RRC is shown in Figure 5D.

[0050] Sidelink Radio Bearers (SLRBs) can be categorized into two groups: Sidelink Data Radio Bearers (SL DRBs) for user plane data and Sidelink Signaling Radio Bearers (SL SRBs) for control plane data. Separate SL SRBs using different SCCHs can be configured for PC5-RRC and PC5-S signaling, respectively.

[0051] The MAC sublayer can provide the following services and functions over the PC5 interface: radio resource selection, packet filtering, priority handling between uplink and sidelink transmissions for a given UE, and sidelink CSI reporting. Due to the restriction of logical channel prioritization in the MAC, only sidelink logical channels belonging to the same destination can be multiplexed into a MAC PDU for each unicast, groupcast, and broadcast transmission that may be associated with the destination. For packet filtering, an SL-SCH MAC header containing both the source and destination Layer 2 ID portions can be added to the MAC PDU. The logical channel identifier (LCID) included in the MAC subheader can uniquely identify a logical channel within the combination of the source and destination Layer 2 IDs.

[0052] The services and functions of the RLC sublayer may be supported for the sidelink. Both RLC unacknowledged mode (UM) and acknowledged mode (AM) may be used for unicast transmission, while only UM may be used for groupcast or broadcast transmission. In the case of UM, only one-way transmission may be supported for groupcast and broadcast.

[0053] The services and functions of the PDCP sublayer for the Uu interface may be supported for the sidelink with some restrictions: out-of-order delivery may only be supported for unicast transmission and may not support duplication over the PC5 interface.

[0054] The SDAP sublayer can provide the following services and functions over the PC5 interface: mapping between QoS flows and sidelink data radio bearers: There can be one SDAP entity per destination for one of unicast, groupcast, and broadcast associated with the destination.

[0055] The RRC sublayer can provide the following services and functions over the PC5 interface: transfer of PC5-RRC messages between peer UEs, maintenance and release of PC5-RRC connections between two UEs, and detection of sidelink radio link failures for PC5-RRC connections based on instructions from MAC or RLC. A PC5-RRC connection may be a logical connection between two UEs for a pair of source Layer-2 ID and destination Layer-2 ID that can be considered established after a corresponding PC5 unicast link is established. There may be a one-to-one correspondence between PC5-RRC connections and PC5 unicast links. A UE can have multiple PC5-RRC connections with one or more UEs for different pairs of source Layer-2 ID and destination Layer-2 ID. Separate PC5-RRC procedures and messages may be used by the UE to transfer UE capabilities and sidelink configurations, including SL-DRB configurations, to the peer UE. Both peer UEs , separate bidirectional procedures can be used in both sidelink directions to exchange their UE capabilities and sidelink configuration.

[0056] FIG. 6 illustrates exemplary physical signals in the downlink, uplink, and sidelink in accordance with some aspects of various exemplary embodiments of the present disclosure. Demodulation reference signals (DM-RSs) may be used in the downlink, uplink, and sidelink and may be used for channel estimation. DM-RSs are UE-specific reference signals that may be transmitted along with downlink, uplink, or sidelink physical channels and may be used for channel estimation and coherent detection of the physical channels. Phase tracking reference signals (PT-RSs) may be used in the downlink, uplink, and sidelink and may be used to track phase and mitigate performance loss due to phase noise. PT-RSs may be primarily used to estimate and minimize the impact of common phase error (CPE) on system performance. Due to phase noise characteristics, PT-RS signals may have low density in the frequency domain and high density in the time domain. PT-RSs may occur when configured with DM-RSs in a network configuration. Positioning reference signals (PRSs) may be used in the downlink for positioning using different positioning techniques. The PRS may be used to measure downlink transmission delays by correlating the received signal from the base station with a local replica in the receiver. The channel state information reference signal (CSI-RS) may be used in the downlink and sidelink. The CSI-RS may be used for, among other things, channel state estimation, reference signal received power (RSRP) measurement for mobility and beam management, and time / frequency tracking for demodulation. The CSI-RS may be configured UE-specific, but multiple users may share the same CSI-RS resource. The UE can determine CSI reports and transmit them to the base station in the uplink using the PUCCH or PUSCH. The CSI reports may be carried in the sidelink MAC CE. The primary synchronization signal (PSS) and secondary synchronization signal (SSS) may be used for radio frame synchronization. The PSS and SSS may be used for cell search procedures during initial attach or for mobility purposes.A sounding reference signal (SRS) may be used in the uplink for uplink channel estimation. Similar to CSI-RS, the SRS can serve as a QCL reference for other physical channels, such that it may be configured to be transmitted quasi-colocated with the SRS. Sidelink PSS (S-PSS) and Sidelink SSS (S-SSS) may be used in the sidelink for sidelink synchronization.

[0057] 7 illustrates example radio resource control (RRC) states and transitions between different RRC states in accordance with some aspects of various exemplary embodiments of the present disclosure. A UE may be in one of three RRC states: an RRC connected state 710, an RRC idle state 720, and an RRC inactive state 730. After power-on, the UE may be in the RRC idle state 720, and the UE may use initial access to establish a connection with the network via an RRC connection establishment procedure to perform data transfer and / or conduct a voice call. Once the RRC connection is established, the UE may be in the RRC connected state 710. The UE can transition from the RRC idle state 720 to the RRC connected state 710 or from the RRC connected state 710 to the RRC idle state 720 using an RRC connection establishment / release procedure 740.

[0058] The RRC inactive state 730 may be used to reduce the signaling load and latency resulting from frequent transitions from the RRC connected state 710 to the RRC idle state 720 when the UE transmits frequent small data. In the RRC inactive state 730, the AS context may be stored by both the UE and the gNB. This may result in a faster state transition from the RRC inactive state 730 to the RRC connected state 710. A UE may transition from the RRC inactive state 730 to the RRC connected state 710 or from the RRC connected state 710 to the RRC inactive state 730 using an RRC connection resumption / deactivation procedure 760. A UE may transition from the RRC inactive state 730 to the RRC idle state 720 using an RRC connection release procedure 750.

[0059] FIG. 8 illustrates an example frame structure and physical resources according to some aspects of various exemplary embodiments of the present disclosure. Downlink, uplink, or sidelink transmissions may be organized into frames with a 10 ms duration consisting of ten 1 ms subframes. Each subframe may consist of 1, 2, 4, ... slots, and the number of slots per subframe may depend on the subcarrier spacing of the carrier on which the transmission occurs. The slot duration may be 14 symbols with a normal cyclic prefix (CP) or 12 symbols with an extended CP, and may be scaled in time depending on the subcarrier spacing used so that there are an integer number of slots in a subframe. FIG. 8 illustrates a resource grid in the time and frequency domains. Each element of the resource grid, containing one symbol in time and one subcarrier in frequency, is called a resource element (RE). A resource block (RB) may be defined as 12 consecutive subcarriers in the frequency domain.

[0060] In some examples, with non-slot-based scheduling, transmission of a packet may occur over a portion of a slot, e.g., 2, 4, or 7 OFDM symbols, which may be referred to as a minislot. Minislots may be used for low-latency applications such as URLLC and operation in unlicensed bands. In some embodiments, minislots may also be used for fast flexible scheduling of services (e.g., preemption of URLLC for eMBB).

[0061] FIG. 9 illustrates example component carrier configurations in different carrier aggregation scenarios according to some aspects of various exemplary embodiments of the present disclosure. In carrier aggregation (CA), two or more component carriers (CCs) may be aggregated. A UE can simultaneously receive or transmit on one or more CCs depending on its capabilities. CA may be supported for both contiguous and non-contiguous CCs in the same band or different bands, as illustrated in FIG. 9. The gNB and UE can communicate using a serving cell. The serving cell may be associated with at least one downlink CC (e.g., may be associated with only one downlink CC or may be associated with a downlink CC and an uplink CC). The serving cell may be a primary cell (PCell) or a secondary cell (SCell).

[0062] The UE can adjust the timing of its uplink transmission using an uplink timing control procedure. It can use a timing advance (TA) to adjust the uplink frame timing relative to the downlink frame timing. The gNB can determine the desired timing advance setting and provide it to the UE. The UE can use the provided TA to determine its uplink transmit timing relative to the UE's observed downlink receive timing.

[0063] In the RRC connected state, the gNB may be responsible for maintaining the timing advance to keep L1 synchronized. Serving cells with uplinks to which the same timing advance is applied and using the same timing reference cell are grouped into a Timing Advance Group (TAG). A TAG may contain at least one serving cell with a configured uplink. The mapping of serving cells to TAGs may be configured by RRC. For the primary TAG, the UE may use the SCell, possibly The PCell can be used as the timing reference cell, except for shared spectrum channel access, where it can also be used as the timing reference cell. In a secondary TAG, the UE can use any of the activated SCells of this TAG as the timing reference cell and does not have to change this unless necessary.

[0064] The timing advance update may be signaled by the gNB to the UE via a MAC CE command. Such a command may restart a TAG-specific timer that may indicate whether L1 can be synchronized; when the timer is running, L1 may be considered synchronized; otherwise, L1 may be considered unsynchronized (in which case uplink transmissions may only occur on the PRACH).

[0065] A UE with single timing advance capability for CA can simultaneously receive and / or transmit multiple CCs corresponding to multiple serving cells (multiple serving cells grouped into one TAG) that share the same timing advance. A UE with multiple timing advance capability for CA can simultaneously receive and / or transmit multiple CCs corresponding to multiple serving cells (multiple serving cells grouped into multiple TAGs) with different timing advances. NG-RAN may ensure that each TAG contains at least one serving cell. A non-CA-capable UE may receive on a single CC and transmit on a single CC corresponding to only one serving cell (one serving cell in one TAG).

[0066] The multi-carrier characteristics of the physical layer in case of CA may be exposed to the MAC layer, and one HARQ entity may be required per serving cell. When CA is configured, the UE may have one RRC connection with the network. In RRC connection establishment / re-establishment / handover, one serving cell (e.g., PCell) may provide NAS mobility information. Depending on the UE capabilities, the SCell may be configured to form a set of serving cells together with the PCell. The set of serving cells configured for the UE may consist of one PCell and one or more SCells. Reconfiguration, addition, and deletion of SCells may be performed by RRC.

[0067] In a dual connectivity scenario, a UE may be configured with multiple cells including a Master Cell Group (MCG) for communicating with a master base station, a Secondary Cell Group (SCG) for communicating with a secondary base station, and two MAC entities, one for the MCG for communicating with the master base station and one for the SCG for communicating with the secondary base station.

[0068] FIG. 10 illustrates exemplary bandwidth portion configuration and switching in accordance with some aspects of some of various exemplary embodiments of the present disclosure. A UE may be configured with one or more bandwidth portions (BWPs) 1010 in a given component carrier. In some examples, one of the one or more bandwidth portions may be active at a time. The active bandwidth portion may define the UE's operating bandwidth within the cell's operating bandwidth. For initial access, an initial bandwidth portion 1020 determined from system information may be used until the UE's configuration within the cell is received. For example, in bandwidth adaptation (BA) via BWP switching 1040, the UE's reception and transmission bandwidths may not be as large as the cell's bandwidth and may be adjusted. For example, the widths may be sequenced to change (e.g., shrink during periods of low activity to save power), the positions may move in the frequency domain (e.g., to increase scheduling flexibility), and the subcarrier spacing may be sequenced to change (e.g., to enable different services). The first active BWP 1020 may be the active BWP upon RRC (re)configuration of the PCell or activation of the SCell.

[0069] For a downlink BWP or an uplink BWP in a set of downlink or uplink BWPs, respectively, the UE may be provided with the following configuration parameters: subcarrier spacing (SCS), cyclic prefix, common RBs and a number of consecutive RBs, an index within the set of downlink or uplink BWPs by the respective BWP-Id, a set of BWP common parameters, and a set of BWP-specific parameters. A BWP may be associated with an OFDM numerology according to the subcarrier spacing and cyclic prefix configured for the BWP. For the serving cell, the UE may be provided with a default downlink BWP among the configured downlink BWPs. If the UE is not provided with a default downlink BWP, the default downlink BWP may be the initial downlink BWP.

[0070] A downlink BWP may be associated with a BWP inactivity timer. If the BWP inactivity timer associated with an active downlink BWP expires and a default downlink BWP is configured, the UE may perform a BWP switch to the default BWP. If the BWP inactivity timer associated with an active downlink BWP expires and a default downlink BWP is not configured, the UE may perform a BWP switch to the initial downlink BWP.

[0071] 11 illustrates an exemplary four-step contention-based and contention-free random access process according to some aspects of various exemplary embodiments of the present disclosure. FIG. 12 illustrates an exemplary two-step contention-based and contention-free random access process according to some aspects of various exemplary embodiments of the present disclosure. The random access procedure can be triggered by several events, such as initial access from an RRC idle state, an RRC connection re-establishment procedure, downlink or uplink data arrival during an RRC connected state when the uplink synchronization state is "unsynchronized," uplink data arrival during an RRC connected state when no PUCCH resources are available for a scheduling request (SR), an SR failure, a request by RRC upon synchronization reconfiguration (e.g., handover), a transition from an RRC inactive state, establishing time alignment of a secondary TAG, a request for other system information (SI), beam failure recovery (BFR), and a consistent uplink listen-before-talk (LBT) failure on the PCell.

[0072] Two types of random access (RA) procedures can be supported: a four-step RA type with MSG1 and a two-step RA type with MSGA. Both types of RA procedures can support contention-based random access (CBRA) and contention-free random access (CFRA), as shown in Figures 11 and 12.

[0073] The UE can select the type of random access at the start of the random access procedure based on the network configuration. If CFRA resources are not configured, the RSRP threshold can be used by the UE to select between the 2-step RA type and the 4-step RA type. If CFRA resources for the 4-step RA type are configured, the UE can perform random access using the 4-step RA type. If CFRA resources for the 2-step RA type are configured, the UE can perform random access using the 2-step RA type.

[0074] MSG1 for the 4-step RA type may consist of a preamble on the PRACH. After MSG1 transmission, the UE may monitor for a response from the network within a configured window. In the case of CFRA, a dedicated preamble for MSG1 transmission is Upon receiving a random access response (RAR) from the network, the UE may terminate the random access procedure, as shown in Figure 11. In the case of CBRA, upon receiving the random access response, the UE may transmit MSG3 using the uplink grant scheduled in the random access response and may monitor contention resolution as shown in Figure 11. If contention resolution is not successful after MSG3 (re)transmission, the UE may revert to transmitting MSG1.

[0075] The MSGA for the two-step RA type may include a preamble in the PRACH and a payload in the PUSCH. After the MSGA transmission, the UE can monitor for a response from the network within a configured window. For CFRA, a dedicated preamble and PUSCH resources may be configured for MSGA transmission, and upon receiving a network response, the UE can terminate the random access procedure as shown in FIG. 12. For CBRA, if contention resolution is successful upon receiving a network response, the UE can terminate the random access procedure as shown in FIG. 12. On the other hand, if a fallback indication is received in MSGB, the UE can perform MSG3 transmission using the uplink grant scheduled with the fallback indication and monitor contention resolution. If contention resolution is not successful after MSG3 (re)transmission, the UE can return to MSGA transmission.

[0076] FIG. 13 illustrates an exemplary time and frequency structure of a synchronization signal and physical broadcast channel (PBCH) block (SSB) according to some aspects of various exemplary embodiments of the present disclosure. An SS / PBCH block (SSB) may consist of a primary synchronization signal (PSS) and a secondary synchronization signal (SSS), each occupying one symbol and 127 subcarriers (e.g., subcarrier numbers 56 through 182 in FIG. 13), and a PBCH spanning three OFDM symbols and 240 subcarriers, but leaving an unused portion in the center of one symbol for the SSS, as shown in FIG. 13. The possible time locations of the SSBs within a half-frame may be determined by the subcarrier spacing, and the periodicity of the half-frames in which the SSBs are transmitted may be configured by the network. During a half-frame, different SSBs may be transmitted in different spatial directions (i.e., using different beams spanning the cell's coverage area).

[0077] The PBCH may be used to carry the Master Information Block (MIB), which is used by the UE during cell search and initial access procedures. The UE may first decode the PBCH / MIB to receive other system information. The MIB may provide the UE with the parameters necessary to acquire System Information Block 1 (SIB1), more specifically, the information necessary to monitor the PDCCH for scheduling the PDSCH carrying SIB1. Additionally, the MIB may indicate cell barring status information. The MIB and SIB1 may be collectively referred to as Minimum System Information (SI), and SIB1 may be referred to as Remaining Minimum System Information (RMSI). The other System Information Blocks (SIBs) (e.g., SIB2, SIB3, ..., SIB10, and SIBpos) may be referred to as Other SI. Other SI may be broadcast periodically on the DL-SCH, may be broadcast on demand on the DL-SCH (e.g., upon request from a UE in RRC idle, RRC inactive, or RRC connected state), or may be sent in a dedicated manner to UEs in RRC connected state on the DL-SCH (e.g., upon request, if configured by the network, from a UE in RRC connected state, or if the UE has an active BWP for which a common search space is not configured).

[0078] 14 illustrates an exemplary SSB burst transmission according to some aspects of various exemplary embodiments of the present disclosure. The SSB burst may include N SSBs, Each SSB of the N SSBs may correspond to a beam. The SSB bursts may be transmitted according to a periodicity (e.g., an SSB burst duration). During a contention-based random access process, the UE may perform a random access resource selection process, in which the UE first selects an SSB before selecting an RA preamble. The UE may select an SSB with an RSRP above a configured threshold. In some embodiments, the UE may select any SSB if no SSB with an RSRP above a configured threshold is available. A set of random access preambles may be associated with the SSB. After selecting an SSB, the UE may select a random access preamble from the set of random access preambles associated with the SSB and transmit the selected random access preamble to initiate the random access process.

[0079] In some embodiments, a beam among the N beams may be associated with a CSI-RS resource. The UE may measure the CSI-RS resource and select a CSI-RS with an RSRP above a configured threshold. The UE may select a random access preamble corresponding to the selected CSI-RS and transmit the selected random access process to initiate the random access process. If there is no random access preamble associated with the selected CSI-RS, the UE may select a random access preamble corresponding to an SSB quasi-colocated with the selected CSI-RS.

[0080] In some embodiments, based on UE measurements of CSI-RS resources and UE CSI reports, the base station can determine a transmission configuration indication (TCI) state and indicate the TCI state to the UE, which can use the indicated TCI state for reception of downlink control information (e.g., via a PDCCH) or data (e.g., via a PDSCH). The UE can use the indicated TCI state to use an appropriate beam for reception of data or control information. The indication of the TCI state may be using an RRC configuration or a combination of RRC signaling and dynamic signaling (e.g., via a MAC Control Element (MAC CE) and / or based on the value of a field in the downlink control information that schedules downlink transmissions). The TCI state can indicate a quasi-co-location (QCL) relationship between a downlink reference signal, such as a CSI-RS, and a DM-RS associated with a downlink control or data channel (e.g., a PDCCH or PDSCH, respectively).

[0081] In some embodiments, a UE may be configured with a list of up to M TCI-state configurations using physical downlink shared channel (PDSCH) configuration parameters to decode a PDSCH according to a detected PDCCH with DCI for the UE and a given serving cell, where M may depend on the UE capabilities. Each TCI-State may include parameters for configuring a QCL relationship between one or two downlink reference signals and a DM-RS port of a PDSCH, a DM-RS port of a PDCCH, or a CSI-RS port of a CSI-RS resource. The quasi-co-location relationship may be configured by one or more RRC parameters. The quasi-co-location type corresponding to each DL RS can take one of the following values: "QCL-TypeA": {Doppler shift, Doppler spread, mean delay, delay spread}, "QCL-TypeB": {Doppler shift, Doppler spread}, "QCL-TypeC": {Doppler shift, mean delay}, and "QCL-TypeD": {Spatial Rx parameters}. The UE may receive an activation command (eg, MAC CE) used to map the TCI state to a codepoint in the DCI field.

[0082] FIG. 15 is a block diagram of a system according to some aspects of various exemplary embodiments of the present disclosure. 15 illustrates exemplary components of a user equipment and a base station for transmission and / or reception. All or a subset of the blocks and functions in FIG. 15 may reside in or be performed by the base station 1505 and the user equipment 1500. The antenna 1510 may be used to transmit or receive electromagnetic signals. The antenna 1510 may include one or more antenna elements and may enable different input / output antenna configurations, including a multiple-input multiple-output (MIMO) configuration, a multiple-input single-output (MISO) configuration, and a single-input multiple-output (SIMO) configuration. In some embodiments, the antenna 1510 may enable a massive MIMO configuration with tens or hundreds of antenna elements. The antenna 1510 may enable other multi-antenna techniques, such as beamforming. In some examples, depending on the capabilities of the UE 1500 or the type of the UE 1500 (e.g., a low-complexity UE), the UE 1500 may support only a single antenna.

[0083] The transceiver 1520 can communicate bidirectionally over the wireless links described herein via the antenna 1510. For example, the transceiver 1520 may represent a wireless transceiver in a UE and may communicate bidirectionally with a wireless transceiver in a base station, or vice versa. The transceiver 1520 can include a modem for modulating packets, providing the modulated packets to the antenna 1510 for transmission, and demodulating packets received from the antenna 1510.

[0084] The memory 1530 may include RAM and ROM. The memory 1530 may store computer-readable computer-executable code 1535 including instructions that, when executed, cause the processor to perform various functions described herein. In some examples, the memory 1530 may include a basic input / output system (BIOS) that may control basic hardware or software operations, such as interaction with peripheral components or devices, among other things.

[0085] The processor 1540 may include a hardware device having processing capabilities (e.g., a general-purpose processor, a DSP, a CPU, a microcontroller, an ASIC, an FPGA, a programmable logic device, a discrete gate or transistor logic component, a discrete hardware component, or any combination thereof). In some examples, the processor 1540 may be configured to operate a memory using a memory controller. In other examples, the memory controller may be integrated into the processor 1540. The processor 1540 may be configured to execute computer-readable instructions stored in a memory (e.g., the memory 1530) to cause the UE 1500 or the base station 1505 to perform various functions.

[0086] The central processing unit (CPU) 1550 may perform basic arithmetic, logic, control, and input / output (I / O) operations specified by computer instructions in the memory 1530. The user equipment 1500 and / or base station 1505 may include additional peripheral components such as a graphics processing unit (GPU) 1560 and a global positioning system (GPS) 1570. The GPU 1560 is dedicated circuitry for rapid manipulation and modification of the memory 1530 to accelerate the processing performance of the user equipment 1500 and / or base station 1505. The GPS 1570 may be used to enable location-based services or other services, for example, based on the geographic location of the user equipment 1500.

[0087] Exemplary embodiments can enable Quality of Experience (QoE) measurement collection for different services, including streaming services. Exemplary QoE management can collect experience parameters for streaming services as well as augmented reality / virtual reality (AR / VR) and URLLC.

[0088] In some exemplary embodiments, the QoE measurements may enable collecting user KPI information, such as end-to-end (E2E) reliability statistical indicators.

[0089] In some examples, different types of UEs may have different QoE requirements. In some examples, QoE parameters may be defined as UE-specific and service-related. In some examples, QoE may be used as a criterion for evaluating network quality. Traditionally, metrics such as throughput, capacity, and coverage have typically been used to evaluate the performance of network solutions. Exemplary embodiments may enable triggering, configuration, and reporting mechanisms for QoE measurement collection, including by relevant entities (e.g., UEs, network entities).

[0090] In some examples, signaling-based and management-based mechanisms may be used for QoE-related signaling. In some examples, application layer measurement configurations received from the OAM or CN may be encapsulated in transparent containers that can be forwarded to the UE in downlink RRC messages. Application layer measurements received from higher layers in the UE may be encapsulated in transparent containers and sent to the network in uplink RRC messages.

[0091] In some instances, the RAN may release an ongoing QoE measurement / reporting configuration, for example, when handing over to a network that does not support this.

[0092] In some examples, regions may be defined and / or configured for QoE measurement and / or reporting. In some examples, for region handling, the network may track whether the UE is inside or outside the region and configure / release the configuration accordingly. In some examples, the network may track whether the UE is inside or outside the region and the UE may manage QoE start / stop accordingly. In some examples, the UE may perform a region check (the UE may have a region configuration) and manage QoE start / stop accordingly.

[0093] In some examples, QoE measurement in an RRC inactive state may be supported for an MBS. In some examples, QoE measurement in an RRC idle state may be supported for an MBS.

[0094] In some examples, management-based QoE configuration may not override signaling-based QoE configuration.

[0095] In some examples, the QoE report may be transmitted over another SRB (separate from the current SRB) in NR, since this report may have a lower priority than other SRB transmissions.

[0096] In some examples, configuration and reporting for multiple simultaneous QoE measurements for a UE may be supported.

[0097] In some examples, RRC signaling may be used by the gNB to instruct the UE to pause or resume QoE reporting.

[0098] In some examples, the pause / resume may be for all QoE reports or may be per QoE configuration.

[0099] In some examples, the QoE measurements may be configured in an RRC reconfiguration message.

[0100] In some examples, the configuration of the QoE measurements may be within other configuration information elements in the RRC reconfiguration message.

[0101] In some examples, the configuration of QoE measurements may be by list (eg, RRC list parameter) to allow the configuration of multiple simultaneous measurements.

[0102] In some examples, in the case of RRC, an ID may be used to identify the measurement, which in some examples may be a QoE Reference ID.

[0103] In some examples, SRB4 may be used for transmitting QoE reports in NR.

[0104] In some examples, the measurement report application layer of an RRC message may be used to transmit QoE reports in NR.

[0105] In some examples, QoE support in NR may include RRC procedures supporting activation through trace functions, both signaling and management-based configuration, and application layer configuration and reporting.

[0106] In some examples, the UE may follow gNB commands and the NG-RAN may release the application layer measurement configuration towards the UE via RRC at any time, as needed, for example, due to loading or other reasons.

[0107] In some examples, the UE inactive access stratum (AS) context may include UE AS configuration for QoE (e.g., may not be released when the UE becomes inactive).

[0108] In some examples, a "QoE pause" indication from the network may be used to temporarily stop QoE reports from being sent from the UE to the network.

[0109] In some examples, for handling QoE reporting during RAN overload via a "QoE Report Pause Indication", the application layer may be responsible for storing the QoE report when the UE receives the QoE Pause Indication.

[0110] In some examples, for handling QoE reporting during RAN overload via a "QoE Report Pause Indication", the AS layer may be responsible for storing the QoE report when the UE receives the QoE Pause Indication.

[0111] In some examples, in case of QoE reporting processing during RAN overload via "QoE Reporting Pause Indication", the QoE container received from the application layer may be discarded during the pause.

[0112] In some examples, the application layer measurement collection function may enable collection of application layer measurements from the UE. An example of a supported service type may be QoE measurement collection for a service such as a streaming service. Both signaling-based and management-based initiation cases may be used. In the signaling-based case, application layer measurement collection may be initiated from the CN node towards a specific UE, and in the management-based case, application layer measurement collection may be initiated from the CN node towards a specific UE. , may start with OAM targeted to a region (e.g., not targeted to a specific UE).

[0113] Application layer measurement configurations received from the OAM or CN may be encapsulated in transparent containers that can be forwarded to the UE in downlink RRC messages. Application layer measurements received from higher layers in the UE may be encapsulated in transparent containers and sent to the network in uplink RRC messages. The network can release application layer measurement configurations towards the UE at any time.

[0114] In some instances, for URLLC services, E2E latency is important and operators can monitor and guarantee latency measurements.

[0115] In some examples, the QoE management framework may exist in two flavors: signaling-based QoE and management-based QoE. In signaling-based QoE, a QoE measurement configuration (QMC) can be distributed to RAN nodes. The QMC can specify the area scope for measurements, which can be defined via a list or cell / TA / TAI / PLMN. In management-based QoE, the OAM can distribute the QMC to RAN nodes.

[0116] In some examples, a threshold-based mechanism may be used to trigger the start and stop of QoE measurement collection. In some examples, time-based events may be used for activation of QoE measurements, allowing flexibility in activation of QoE measurements within predefined time periods.

[0117] In some examples, upon receiving a "pause" instruction from the network, the UE may stop QoE reporting but may continue QoE measurements.

[0118] In some examples, a "QoE pause" indication from the network may be used to temporarily stop QoE reports from being sent to the network, but may not affect QoE measurement collection at the UE. For example, the UE may continue with ongoing QoE measurements and may trigger new QoE measurements at the application layer (e.g., according to a QoE configuration stored in the UE).

[0119] In some examples, if there is an overload in the RAN, the base station can temporarily stop reporting from the UE by sending an RRC message (e.g., an RRC Connection Reconfiguration message) to the associated UE. The RRC Connection Reconfiguration message may include a measurement configuration application layer configured to temporarily stop application layer measurement reporting in other configurations. In some examples, the access layer can send a command to the application with a pause request. The application can stop reporting and stop recording further information once the data in the reporting container is used. The recorded data may then be retained until it is reported or when the UE request session ends.

[0120] In some examples, when the overload situation in the RAN ends, the base station can resume reporting from the UE by sending an RRC message (e.g., an RRC Connection Reconfiguration message) to the associated UE. The RRC Connection Reconfiguration message may include a measurement configuration application layer configured to resume application layer measurement reporting in another configuration. The access layer can send a command to the application with a restart request. The application can resume reporting and recording if it was stopped.

[0121] In some examples, the RAN may release an existing QoE measurement configuration when the session for which QoE measurements were reported is completed or when the UE is handing over to a network that does not support QoE measurements. The NG-RAN node may issue a release of the UE's QoE measurement configuration that was previously configured for QoE measurement reporting if the session for which QoE measurements were reported is completed. In some examples, for example, when handing over to a network that does not support this, the RAN may need to release an ongoing QoE measurement configuration or QoE reporting configuration.

[0122] In some examples, the RAN may release existing QoE measurement configurations in case of RAN overload. In some examples, in case of RAN overload in a standalone connection, the RAN may stop new QoE measurement configurations, release existing QoE measurement configurations, and suspend QoE measurement reporting. In some examples, RRC signaling may be used by the gNB to instruct the UE to suspend or resume QoE reporting. In some examples, the suspend / resume may be for all QoE reports, or the suspend / resume may be per QoE configuration. In some examples, the UE may store the reports (e.g., for a predetermined or configurable period). In some examples, there may be a limit on the stored report size.

[0123] In some examples, the RAN may release a QoE configuration from the UE at any time, including when an associated QoE measurement session is ongoing. In some examples, when the RAN commands the UE to release a QoE configuration, the UE may release the QoE configuration and may stop reporting (including available reports and unsent reports) for this QoE configuration.

[0124] In some examples, the RAN may stop new QoE measurement configurations, release existing QoE measurement configurations, and suspend QoE measurement reporting in the event of RAN overload. In some examples, if a UE is configured with multiple QoE configurations, the network may suspend reporting for only some of the configurations. In some examples, to temporarily suspend QoE reporting from the UE, for example during RAN overload, the RAN may send a QoE reporting suspend command to the UE (e.g., using MAC CE or in a DL RRC message), which may indicate the QoE configuration(s) for which reporting is suspended. In some examples, when the UE suspends QoE reporting, the UE may continue measurement collection. The UE may continue generating QoE measurement results.

[0125] In some examples, pause and resume commands for QoE configuration may be forwarded by the UE to the application layer. After receiving a pause instruction from the UE, the application layer may stop sending reports to the RRC layer and may continue to do so after receiving a resume instruction from the UE.

[0126] In some examples, the base station may use an S-NG-RAN node addition preparation procedure. The purpose of the S-NG-RAN node addition preparation procedure may be to request the S-NG-RAN node to allocate resources for dual connectivity operation for a particular UE. This procedure may use UE-related signaling. An exemplary S-NG-RAN node addition preparation procedure is shown in Figure 16. The M-NG-RAN node may initiate the procedure by sending an S-Node Addition Request message to the S-NG-RAN node. When the M-NG-RAN node sends the S-Node Addition Request message, the M-NG-RAN node shall start timer TXn. DCprep can be started.

[0127] In some examples, if the S-NG-RAN node has granted at least one PDU session resource, the S-NG-RAN node may send an S-Node Addition Request Acknowledgement message to the M - Timer TXn when transmitting to an NG-RAN node DCoverall Reception of the S-node reconfiguration complete message starts timer TXn DCoverall can be stopped.

[0128] In some examples, upon receiving an S-Node Addition Request message containing a desired activity notification level IE, the S-NG-RAN node may use this information, if supported, to decide whether to trigger a subsequent activation notification procedure according to the requested notification level.

[0129] In some examples, if the S-NG-RAN node cannot accept any of the bearers or a failure occurs during the S-NG-RAN node addition preparation, the S-NG-RAN node may send an S-Node Addition Request Reject message with an appropriate cause value to the M-NG-RAN node. An example is shown in Figure 17.

[0130] In some examples, if the M-NG-RAN node receives an S-Node Addition Request Acknowledgement message that includes a PDU Session Resource Addition Acknowledgement Item IE that is neither a PDU Session Resource Configuration Response Information - SN Terminated IE nor a PDU Session Resource Configuration Response Information - MN Terminated IE, the M-NG-RAN node may trigger an M-NG-RAN Node Initiated S-NG-RAN Node Release procedure indicating an appropriate cause.

[0131] In some examples, the M-NG-RAN node may set a timer TXn before receiving an S-Node Addition Request Acknowledgement message. DCprep expires, the M-NG-RAN node may consider the S-NG-RAN node addition preparation procedure to have failed and may trigger the S-NG-RAN node release procedure initiated by the M-NG-RAN node.

[0132] In some examples, the S-NG-RAN node may set timer TXn before receiving an S-Node Reconfiguration Complete or S-Node Release Request message. DCoverall expires, the S-NG-RAN node may consider that the requested RRC connection reconfiguration has not been applied by the UE and may trigger an S-NG-RAN node release procedure initiated by the S-NG-RAN node.

[0133] In some examples, the purpose of the S-NG-RAN node reconfiguration complete procedure may be to provide the S-NG-RAN node with information about whether the requested configuration was successfully applied by the UE. This procedure may use UE-related signaling. An example is shown in Figure 18. The M-NG-RAN node may initiate the procedure by sending an S-Node Reconfiguration Complete message to the S-NG-RAN node.

[0134] In some examples, the S-Node Reconfiguration Complete message may include information that one of the UEs has successfully applied the configuration requested by the S-NG-RAN node, and the M-NG-RAN node may also provide the configuration information in the M-NG-RAN node in an S-NG-RAN Node Container IE, or the configuration requested by the S-NG-RAN node has been rejected and the M-NG-RAN node may provide information with sufficient precision in the included Cause IE to allow the S-NG-RAN node to know why the reconfiguration failed, and the M-NG-RAN node may also provide the configuration information in the M-NG-RAN node in an S-NG-RAN Node Container IE. Upon receiving the S-Node Reconfiguration Complete message, the S-NG-RAN node starts timer TXn DCoverall can be stopped.

[0135] In some examples, the secondary node addition procedure may be initiated by the MN to establish a UE context in the SN to provide resources from the SN to the UE. For bearers requiring SCG radio resources, this procedure may be used to add at least the first cell of the SCG. This procedure may also be used to configure SN terminated MCG bearers (no SCG configuration is required). An example is shown in Figure 19.

[0136] In some examples, the MN may decide to request the SN to allocate resources for a specific E-RAB indicating E-RAB characteristics (E-RAB parameters, TNL address information corresponding to the bearer type). Furthermore, for bearers requiring SCG radio resources, the MN may indicate the requested SCG configuration information, including overall UE capabilities and UE capability adjustment results. In this case, the MN may also provide the latest measurement results for the SN to select and configure an SCG cell. The MN may request the SN to allocate radio resources for split SRB operation. The MN may provide the SN with the necessary security information (even if no SN-terminated bearer is configured) to enable SRB3 to be configured based on the SN decision. For bearer options requiring X2-U resources between the MN and SN, the MN may provide the X2-U TNL address information for each E-RAB, the X2-U DL TNL address information for the SN-terminated bearer, and the X2-U UL TNL address information for the MN-terminated bearer. For SN-terminated split bearers, the MN may provide the maximum QoS level it can support. The SN may reject the request.

[0137] In some examples, if the RRM entity in the SN can grant the resource request, it can allocate the respective radio resources and, depending on the bearer options, the respective transport network resources. For bearers requiring SCG radio resources, the SN may trigger random access so that synchronization of the SN radio resource configuration can be performed. The SN can determine the PSCell and other SCG SCells and provide the new SCG radio resource configuration to the MN in an NR RRC configuration message included in the SgNB Addition Request Acknowledge message. For bearer options requiring X2-U resources between the MN and SN, the SN can provide the X2-U TNL address information for the respective E-RABs, the X2-U UL TNL address information for the SN-terminated bearer, and the X2-U DL TNL address information for the MN-terminated bearer. For SN-terminated bearers, the SN can provide the S1-U DL TNL address information for the respective E-RABs and security algorithms. If SCG radio resources are requested, the SCG radio resource configuration may be provided.

[0138] In some examples, the MN may send an RRC connection reconfiguration message, including an NR RRC configuration message, to the UE unchanged.

[0139] In some examples, the UE can apply the new configuration and respond to the MN with an RRC Connection Reconfiguration Complete message, including an NR RRC Response message if necessary. If the UE cannot comply with (part of) the configuration included in the RRC Connection Reconfiguration message, the UE can perform a Reconfiguration Failure procedure.

[0140] In some examples, the MN may notify the SN that the UE has successfully completed the reconfiguration procedure via an SgNB Reconfiguration Complete message that includes an encoded NR RRC Response message, when received from the UE.

[0141] In some examples, the UE may perform synchronization towards a PSCell in the SN if configured with bearers requiring SCG radio resources. The order in which the UE sends an RRC Connection Reconfiguration Complete message and performs a random access procedure towards the SCG may not be defined. A successful RA procedure towards the SCG shall be considered as the success of the RRC Connection Reconfiguration procedure. may not be required for successful completion.

[0142] In some examples, if the PDCP termination point of a bearer is changed to an SN using RLC AM and RRC Full Configuration is not used, the MN may send an SN Status Transfer.

[0143] In some examples, depending on the bearer characteristics of the respective E-RAB, in the case of SN terminated bearers moved from the MN, the MN may take action to minimize service interruptions due to activation of EN-DC (data transfer).

[0144] In some examples, the secondary node (SN) addition procedure may be initiated by the MN and may be used to establish a UE context in the SN to provide resources from the SN to the UE. For bearers that require SCG radio resources, this procedure may be used to add at least the initial SCG serving cell of the SCG. This procedure may also be used to configure SN-terminated MCG bearers (SCG configuration is not required). Figure 20 shows the SN addition procedure.

[0145] In some examples, the MN may decide to request the target SN to allocate resources for one or more specific PDU sessions / QoS flows indicating QoS flow characteristics (QoS flow-level QoS parameters, PDU session-level TNL address information, and PDU session-level network slice information). Furthermore, for bearers requiring SCG radio resources, the MN may indicate requested SCG configuration information, including overall UE capabilities and UE capability adjustment results. In this case, the MN may also provide the latest measurement results for the SN to select and configure SCG cells. The MN may request the SN to allocate radio resources for split SRB operation. In NGEN-DC and NR-DC, the MN may provide the SN with the necessary security information (even if no SN-terminated bearers are configured) to enable SRB3 to be configured based on the SN decision.

[0146] In some examples, for MN terminated bearer options that require Xn-U resources between the MN and SN, the MN can provide Xn-U UL TNL address information. For SN terminated bearers, the MN can provide a list of available DRB IDs. The S-NG-RAN node may store this information and may use it when establishing SN terminated bearers. The SN may reject the request.

[0147] In some examples, for SN terminated bearer options requiring Xn-U resources between the MN and the SN, the MN may provide a list of QoS flows per PDU session for which SCG resources are requested to be set up, and the SN may then decide / determine how to map the QoS flows to the DRBs.

[0148] In some examples, if the RRM entity in the SN can grant the resource request, it can allocate the respective radio resources and, depending on the bearer type option, allocate the respective transport network resources. For bearers requiring SCG radio resources, the SN triggers UE random access so that synchronization of the SN radio resource configuration can be performed. The SN can determine / determine the PSCell and other SCG SCells and provide the MN with the new SCG radio resource configuration in the SN RRC configuration message included in the SN addition request acknowledgement message. For bearer options requiring Xn-U resources between the MN and SN, the SN can provide the Xn-U TNL address information of the respective DRBs, the Xn-U UL TNL address information of the SN-terminated bearer, and the Xn-U DL TNL address information of the MN-terminated bearer. For SN terminated bearers, the SN may provide NG-U DL TNL address information for the respective PDU session and security algorithm. If SCG radio resources are required, SCG radio resource configuration may be provided.

[0149] In some examples, for SN terminated bearers using MCG resources, the MN may provide Xn-U DL TNL address information in the Xn-U Address Indication message.

[0150] In some examples, the MN may send the MN RRC reconfiguration message, which includes the SN RRC configuration message, to the UE without modification.

[0151] In some examples, the UE may apply the new configuration and, if necessary, respond to the MN with an MN RRC Reconfiguration Complete message that includes the SN's SN RRC Response message. If the UE cannot comply with (part of) the configuration included in the MN RRC Reconfiguration message, the UE may perform a Reconfiguration Failure procedure.

[0152] In some examples, the MN may notify the SN that the UE has successfully completed the reconfiguration procedure via an SN Reconfiguration Complete message that includes an SN RRC Response message, if received from the UE.

[0153] In some examples, the UE may perform synchronization to a PSCell configured by the SN if it is configured with bearers requiring SCG radio resources. The order in which the UE sends the MN RRC Reconfiguration Complete message and performs the random access procedure towards the SCG may not be defined. A successful RA procedure towards the SCG may not be required for successful completion of the RRC connection reconfiguration procedure.

[0154] In some examples, if the PDCP termination point of a bearer is changed to an SN using RLC AM and RRC Full Configuration is not used, the MN may send an SN Status Transfer.

[0155] In some examples, for SN terminated bearers or QoS flows moved from the MN, depending on the characteristics of the respective bearers or QoS flows, the MN may take action to minimize service interruptions due to activation of MR-DC (data forwarding).

[0156] In some examples, if applicable, the update of the UP path towards 5GC may be performed via a PDU Session Path Update procedure.

[0157] Quality of Experience (QoE) measurement and reporting is an important feature for various services and applications, including streaming, virtual / augmented reality (VR / AR), and URLLC applications. In some examples, a UE may operate in a multi-connectivity scenario (e.g., dual connectivity), where multiple base stations may supply and provide resources to the UE. Existing signaling mechanisms for multi-connectivity may be insufficient if candidate secondary base stations support or do not support QoE-related features. Exemplary embodiments enhance messages and procedures for multi-connectivity when a UE is configured with applications / services that require QoE measurement and reporting.

[0158] In the exemplary embodiment shown in FIG. 21, a first gNB may receive an application message (e.g., an Xn message) from a second gNB. The application layer message may be an Xn setup message (e.g., a setup request message or a setup response message). In one example, the application layer message may be a resource status message (e.g., a resource status update message). In one example, the application layer message may be a UE context search message (e.g., a UE context search request message or a UE context search request response message). The application layer message may include one or more information elements (IEs) associated with QoE measurement and / or reporting. In some examples, the one or more IEs may indicate, for example, for one or more cells served by the second gNB, whether the second gNB supports QoE measurement and / or QoE reporting (e.g., supports QoE report processing and / or forwarding). In some examples, the one or more IEs may indicate that the second gNB provides at least one cell that supports QoE measurement and / or QoE reporting. In some examples, the one or more IEs may indicate one or more parameters associated with QoE measurement and / or reporting associated with the second gNB.

[0159] The first gNB may determine to add the second gNB as a secondary node (e.g., SN) to allocate resources of the second gNB to a UE in a multi-connectivity scenario (e.g., dual connectivity). The determination by the first gNB may be based on the value of one or more IEs in the application layer, e.g., based on the value of one or more IEs indicating that the second gNB and / or one or more cells served by the second gNB support QoE measurement / reporting and / or forwarding / processing of QoE reports and / or other QoE-related signaling support. In some examples, the determination by the first gNB may be based on the value of a parameter associated with QoE measurement / reporting transmitted by the second gNB to the first gNB via one or more IEs.

[0160] The first gNB may send a secondary node addition request message to the second gNB, for example, in response to a decision to add the second gNB as a secondary node for allocating resources of the second gNB to the UE. The secondary node addition request message may be an Xn message. The secondary node addition request message may request resources for one or more bearers via one or more cells of the second gNB.

[0161] In response to the transmission of the secondary node addition request message by the first gNB to the second gNB, the second gNB may transmit a secondary node addition request acknowledgement message. The secondary node addition request acknowledgement message may be an Xn message. In some examples, the secondary node addition request acknowledgement message may include at least one message (e.g., a reconfiguration message) including configuration parameters of one or more cells of the second gNB. In some examples, the one or more cells of the second gNB may be grouped into a secondary cell group (SCG). In some examples, the one or more cells of the SCG may be provided to the UE in addition to one or more first cells of the first gNB grouped into a master cell group (MCG).

[0162] The first gNB may send a message to the UE (e.g., a Reconfiguration message received from the secondary gNB via a Secondary Node Addition Request Acknowledgement message) including configuration parameters for one or more cells of the second gNB. In some examples, the configuration parameters for one or more cells of the second gNB may include QoE configuration parameters, e.g., QoE configuration parameters associated with one or more cells. The QoE configuration parameters may be transmitted to the operator's core network and / or OAM (Operation and Maintenance) engine. In some examples, the QoE configuration parameters may be associated with one QoE configuration or multiple QoE configurations. In some examples, the configuration parameters of the QoE configuration may indicate a service type or an application type associated with the QoE configuration. In some examples, receiving the QoE configuration parameters may indicate activation of QoE measurement / reporting, and the UE may initiate generation of measurement reports and / or transmission of measurement reports in response to

[0163] In some examples, in response to receiving by the UE from the first gNB the message including the configuration parameters, the UE may transmit a reconfiguration complete message. The reconfiguration complete message may be an RRC message. In some examples, the first gNB may transmit the reconfiguration complete message to the second gNB. The UE may use the QoE configuration parameters to create and / or report a QoE report to the first gNB.

[0164] In some examples, the transmission of the QoE report may be via one or more RRC messages. The one or more RRC messages may be associated with a QoE-related signaling radio bearer (SRB), e.g., SRB4. SRB4 may be associated with a first priority that is lower than the priority of one or more other SRBs associated with an uplink control channel logical channel, e.g., a common control channel. In some examples, the one or more RRC messages may include at least one information element (e.g., a measurement report application layer information element (MeasReportAppLayer IE)) that includes a QoE measurement report. In some examples, the QoE measurement report may include an identifier of a QoE configuration to which the QoE report corresponds.

[0165] In the exemplary embodiment shown in FIG. 22, the UE may send at least one message associated with QoE measurement and / or reporting to the first gNB. In some examples, the at least one message may include one or more IEs associated with support and / or interest and / or application / service type requiring QoE measurement / reporting. In some examples, the at least one message may include a capability message, and the one or more IEs may include one or more capability IEs. The UE may receive configuration parameters of multiple cells. The multiple cells may be grouped into one or more first cells (e.g., MCG) provided by the first gNB and one or more second cells (e.g., SCG) provided by the second gNB. The first gNB may determine the addition of a second gNB to provide dual connectivity to the UE. The configuration parameters of the SCG (e.g., at least one cell of the SCG) may indicate QoE configuration parameters of the at least one cell. The decision to add the second gNB as a secondary node may be based on an indication by the second gNB to the first gNB (e.g., an application layer message such as an Xn Setup message, a UE Context Search message, or a Resource Status message) that the second gNB supports QoE measurement / reporting / processing or that the second gNB provides at least one cell with QoE measurement / reporting support, and at least one message sent by the UE to the first gNB indicating that the UE supports at least one service type or at least one application with QoE measurement or reporting requirements. In response to receiving the SCG configuration parameters, the UE may send a Reconfiguration Complete message to the first gNB.

[0166] In the exemplary embodiment shown in FIG. 2 The base station (BS) 1The first BS may receive an addition request message (e.g., a secondary addition request message) from the second BS. The addition request message may indicate a request for radio resources of the second BS for dual connectivity operation. The secondary addition request message may include one or more information elements (IEs) indicating that the request is for a user equipment (UE) that requires QoE measurement and reporting (e.g., based on the application and / or service type). In response to transmitting the addition request message, the first BS may receive one of an addition request acknowledgement message or an addition request rejection message from the second BS based on the first base station supporting or not supporting QoE-related functionality. In some examples, the second base station may support QoE-related functionality (e.g., QoE measurement and / or reporting) and may send a secondary addition request acknowledgement message to the first base station. In response to receiving the addition request acknowledgement message, the first BS may send a reconfiguration message to the UE. The reconfiguration message may include configuration parameters of one or more cells of the second BS.

[0167] In an exemplary embodiment, a first base station (BS) may receive at least one application layer message from a second BS, the application layer message including at least one information element (IE) associated with QoE measurements. The first BS may determine, based on the at least one IE, to add the second BS as a secondary BS to allocate resources of the second BS for dual connectivity operation of the user equipment (UE). The first BS may send an add request message to the second BS indicating a request for radio resources of the second BS. The first BS may receive an add request acknowledgement message from the second BS. The first BS may send a reconfiguration message to the UE, the reconfiguration message including configuration parameters of one or more cells of the second BS.

[0168] In some examples, the application layer message may be an Xn message. In some examples, the application layer message may be an Xn setup message. In some examples, the application layer message may be a resource status message. In some examples, the application layer message may be a user equipment (UE) context message.

[0169] In some examples, the add request message and the add request acknowledge message may be Xn messages.

[0170] In some examples, the at least one information element (IE) may indicate that the second base station (BS) supports a quality of experience (QoE) measurement configuration. In some examples, the at least one information element (IE) may indicate that the second base station (BS) provides at least one cell in which quality of experience (QoE) measurement or reporting is supported. In some examples, the at least one information element (IE) may indicate one or more parameters associated with quality of experience (QoE) measurement or reporting by the second base station (BS).

[0171] In some examples, a first base station (BS) can receive a reconfiguration complete message from a user equipment (UE). In some examples, the reconfiguration complete message can be a radio resource control (RRC) message. In some examples, the first base station (BS) can send a reconfiguration complete message to a second BS.

[0172] In some examples, the add request acknowledgement message may include a reconfigure message.

[0173] In some examples, the determining may be based on at least one information element (IE) indicating that the second base station (BS) supports quality of experience measurement or reporting for at least one cell.

[0174] In some examples, one or more second cells of the second base station may be grouped into a secondary cell group (SCG).

[0175] In some examples, a first base station (BS) may transmit to a user equipment (UE) configuration parameters of one or more first cells of the first BS grouped in a master cell group (MCG).

[0176] In some examples, the configuration parameters of one or more cells of the second base station may include quality of experience (QoE) configuration parameters associated with one or more cells. In some examples, the quality of experience (QoE) configuration parameters may be associated with one or more QoE configurations. In some examples, the first base station (BS) may receive a quality of experience (QoE) measurement report from a user equipment (UE) based on the QoE configuration parameters. In some examples, the quality of experience (QoE) measurement report may include one or more radio-related measurements. In some examples, the quality of experience (QoE) measurement report may be associated with a QoE-related signaling radio bearer (SRB). In some examples, the QoE-related signaling radio bearer (SRB) may be an SRB4. In some examples, the quality of experience (QoE)-related signaling radio bearer (SRB) may have a lower priority than a second SRB associated with an uplink control channel logical channel. In some examples, transmission of the Quality of Experience (QoE) measurement report may be performed via one or more Radio Resource Control (RRC) messages. In some examples, the one or more Radio Resource Control (RRC) messages may include a Measurement Report Application Layer Information Element (MeasReportappLayer IE) containing the Quality of Experience (QoE) measurement report. In some examples, the Quality of Experience (QoE) measurement report in the one or more QoE measurement reports may include an identifier indicating a QoE configuration associated with the QoE measurement report. In some examples, the Quality of Experience (QoE) configuration parameters may be associated with one or more service types or application types. In some examples, transmission of one or more Quality of Experience (QoE) configurations in the configuration parameters may indicate activating QoE measurements or reports for one or more QoE configurations.

[0177] In some examples, the first base station may receive one or more quality of experience (QoE) configuration parameters encapsulated in a transparent container from one of a core network (CN) and an operator operations and maintenance (OAM) entity.

[0178] In an exemplary embodiment, a user equipment (UE) may transmit at least one message associated with QoE measurement or reporting to a first base station (BS). The UE may receive configuration parameters of multiple cells, including a first cell group of the first BS and a second cell group of the second BS. The second BS may be determined by the first BS for addition based on an indication by the second BS to the first BS that the second BS supports QoE measurement or reporting, and at least one message indicating that the UE supports at least one service type or at least one application having QoE measurement or reporting requirements. The UE may transmit a reconfiguration complete message to the first BS.

[0179] In some examples, the at least one message may include a capabilities message. In some examples, the indication may be based on at least one information element (IE) in the application layer message. The application layer message may be an Xn message. In some examples, the application layer message may be an Xn setup message. In some examples, the application layer message may be a resource status message. In some examples, the application layer message may retrieve a user equipment (UE) context message. In some examples, the at least one information element (IE) may indicate that the second base station (BS) supports quality of experience (QoE) measurement configuration. In some examples, the at least one information element (IE) may indicate that the second base station (BS) provides at least one cell in which quality of experience (QoE) measurement or reporting is supported. In some examples, the at least one information element (IE) may indicate one or more parameters associated with quality of experience (QoE) measurement or reporting by the second base station (BS). In some examples, the first cell group may be a master cell group (MCG) and the second cell group may be a secondary cell group (SCG). In some examples, the configuration parameters of the second cell group may include quality of experience (QoE) configuration parameters associated with one or more cells. In some examples, the quality of experience (QoE) configuration parameters may be associated with one or more QoE configurations.

[0180] In an exemplary embodiment, a first base station (BS) may receive from a second BS an add request message indicating a request for radio resources of the second BS for dual connectivity operation and including one or more information elements (IEs) indicating a request for user equipment (UE) requiring QoE measurement and reporting. The first BS may receive from the second BS one of an add request acknowledgement message or an add request rejection message based on the first base station supporting or not supporting QoE-related features. In response to receiving the add request acknowledgement message, transmitting, by the first BS to the UE, a reconfiguration message including configuration parameters of one or more cells of the second BS.

[0181] The exemplary blocks and modules described in this disclosure with respect to various exemplary embodiments may be implemented or performed using a general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA) or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein. Examples of general-purpose processors include, but are not limited to, a microprocessor, any conventional processor, controller, microcontroller, or state machine. In some examples, a processor may be implemented using a combination of devices (e.g., a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors in combination with a DSP core, or any other such configuration).

[0182] The functions described in this disclosure may be implemented in hardware, software executed by a processor, firmware, or any combination thereof. Instructions or code may be stored on or transmitted to a computer-readable medium to implement the functions. Other examples for implementing the functions disclosed herein are also within the scope of this disclosure. Implementation of the functions may be via physically co-located or distributed elements (e.g., in various locations), including being distributed such that some of the functions are implemented in different physical locations.

[0183] Computer-readable media include, but are not limited to, non-transitory computer storage media. Non-transitory storage media may be accessed by a general-purpose or special-purpose computer. Examples of non-transitory storage media include, but are not limited to, random access memory (RAM), read-only memory (ROM), electrically erasable programmable ROM (EEPROM), flash memory, compact disc (CD) ROM or other optical disk storage, magnetic disk storage or other magnetic storage, etc. Non-transitory media may carry or store desired program code means (e.g., instructions and / or data structures). The software / program code may be used to store information and may be accessed by a general-purpose or special-purpose computer or a general-purpose or special-purpose processor. In some examples, the software / program code may be transmitted from a remote source (e.g., a website, a server, etc.) using coaxial cable, fiber optic cable, twisted pair, digital subscriber line (DSL), or wireless technologies such as infrared, radio, and microwave. In such examples, coaxial cable, fiber optic cable, twisted pair, DSL, or wireless technologies such as infrared, radio, and microwave are within the definition of medium. Combinations of the above examples are also within the scope of computer-readable media.

[0184] As used in this disclosure, the use of the term "or" in a list of items indicates an inclusive list. A list of items can begin with a phrase such as "at least one" or "one or more." For example, a list of at least one of A, B, or C includes A or B or C or AB (i.e., A and B) or AC or BC or ABC (i.e., A and B and C). Also, as used in this disclosure, the phrase "based on" preceding a list of conditions should not be interpreted as "based only on" the set of conditions, but rather as "based at least in part on" the set of conditions. For example, a result described as "based on condition A" can be based on both condition A and condition B without departing from the scope of this disclosure.

[0185] As used herein, the terms "comprise," "include," or "contain" may be used interchangeably, have the same meaning, and should be construed as inclusive and open-ended. The terms "comprise," "include," or "contain" may be used before a list of elements to indicate that at least all of the listed elements in the list are present, but that other elements not in the list may also be present. For example, if A contains B and C, then both {B, C} and {B, C, D} are within the scope of A.

[0186] The present disclosure, in connection with the accompanying drawings, describes exemplary configurations that do not represent every example that may be implemented or every configuration within the scope of the present disclosure. The term "exemplary" should not be interpreted as "preferred" or "advantageous compared to other examples," but rather as "an example, instance, or example." By reading this disclosure, including the description of the embodiments and drawings, those skilled in the art will understand that the technology disclosed herein may be implemented using alternative embodiments. Those skilled in the art will understand that embodiments, or specific features of the embodiments described herein, can be combined to arrive at yet other embodiments for implementing the technology described in this disclosure. Thus, the present disclosure is not limited to the examples and designs described herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. 1. A method of multi-connectivity with Quality of Experience (QoE) measurement, comprising: sending a secondary node addition request message by a first base station (BS) to a second BS, the secondary node addition request message indicating a request for radio resources of the second BS for dual connectivity operation and including one or more information elements (IEs) related to QoE measurement and reporting; receiving, by the first BS from the second BS, one of a Secondary Node Addition Request Acknowledgement message or a Secondary Node Addition Request Rejection message in response to the Secondary Node Addition Request message, wherein the Secondary Node Addition Request Acknowledgement message includes QoE configuration parameters for the QoE measurement and reporting; and in response to receiving the secondary node addition request acknowledgement message, transmitting, by the first BS to a user equipment (UE), a reconfiguration message including configuration parameters of one or more cells of the second BS.

2. The method of claim 1 , wherein the secondary node addition request message and the secondary node addition request acknowledgment message are Xn messages.

3. The method of claim 1 , wherein the secondary node addition request acknowledgement message comprises a reconfiguration message including configuration parameters of one or more cells of the second BS.

4. The method of claim 1 , wherein the one or more cells of the second BS are grouped into a secondary cell group (SCG).

5. The method of claim 1 , wherein the configuration parameters of one or more cells of the second BS include QoE configuration parameters associated with the one or more cells.

6. The method of claim 5 , wherein the QoE configuration parameter is associated with one or more QoE configurations.

7. receiving a QoE measurement report from the UE by the first BS based on the QoE configuration parameters; The method of claim 5 further comprising receiving a notification.

8. A first base station (BS) in communication with a user equipment (UE), means for transmitting a secondary node addition request message to a second BS, the secondary node addition request message indicating a request for radio resources of the second BS for dual connectivity operation and including one or more information elements (IEs) related to quality of experience (QoE) measurement and reporting; means for receiving one of a secondary node addition request acknowledgement message or a secondary node addition request rejection message from the second BS, wherein the secondary node addition request acknowledgement message includes QoE configuration parameters for the QoE measurement and reporting; means for transmitting to the UE a reconfiguration message including configuration parameters of one or more cells of the second BS.

9. a second base station (BS) in communication with a user equipment (UE), means for receiving a secondary node addition request message from a first BS, the secondary node addition request message indicating a request for radio resources of the second BS for dual connectivity operation and including one or more information elements (IEs) related to quality of experience (QoE) measurement and reporting; means for transmitting, to the first BS, one of a Secondary Node Addition Request Acknowledgement message or a Secondary Node Addition Request Rejection message in response to the Secondary Node Addition Request message, wherein the Secondary Node Addition Request Acknowledgement message includes QoE configuration parameters for the QoE measurement and reporting; and and a second BS comprising:

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