Configuration Selection Extension for Layer 1 / Layer 2 Triggered Mobility

The method allows the CU-CP to select optimal LTM configurations by receiving DU data, addressing the lack of configuration awareness in CU-CP, thereby enhancing handover success in non-aggregated gNB architectures.

JP7748599B2Active Publication Date: 2025-10-02RAKUTEN SYMPHONY INC
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Patent Information

Application Number
JP2025501606
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-10-21
Filing Date
2023-02-14
Publication Date
2025-10-02
Estimated Expiration
2043-02-14

AI Technical Summary

Technical Problem

In existing cellular networks, the centralized unit (CU-CP) lacks awareness of configuration details in the distributed unit (DU), making it impossible to select the required configuration for Layer 1/Layer 2 (L1/L2) triggered mobility (LTM) handovers in non-aggregated gNB architectures.

Method used

A computer-implemented method that enables the CU-CP to receive data from the DU, allowing it to recognize the DU's situation and select a successful configuration for LTM by considering timing advance information, resource availability, and UE-related data, using machine learning to construct an HO policy.

Benefits of technology

Enables the CU-CP to autonomously select optimal LTM configurations, improving the success of handovers in non-aggregated gNB architectures by enhancing configuration awareness and reducing network interference.

✦ Generated by Eureka AI based on patent content.

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Abstract

Generally, the present subject matter relates to a configuration selection extension for layer 1 / layer 2 (L1 / L2) trigger mobility (LTM). In some embodiments, the configuration selection extension for LTM can include receiving, at a central unit control plane (CU-CP) of a base station, data associated with preparing an LTM handover (HO) configuration for at least one service for a user equipment (UE) from a first distributed unit (DU) of the base station, and after receiving the data, the CU-CP can include requesting, from a second DU, to prepare at least one LTM target cell configuration for HO of at least one service for the UE, considering the data.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to Indian Patent Application No. 202221060195, entitled "Method and system for configuration selection enhancements for Lower Layer Mobility," filed on October 21, 2022, the entire contents of which are incorporated herein by reference.

[0002] In one embodiment, the present subject matter relates to telecommunications systems, and more particularly to configuration selection enhancements for Layer 1 / Layer 2 (L1 / L2) triggered mobility (LTM). [Background technology]

[0003] In today's world, cellular networks provide on-demand communication capabilities to individuals and businesses. Typically, cellular networks are wireless networks that can be distributed over a terrestrial area called a cell. Each such cell is served by at least one fixed-location transceiver called a cell site or base station. Each cell can use a different set of frequencies from its neighboring cells to avoid interference and provide improved service within each cell. When cells are combined together, they provide radio coverage over a wide geographic area, allowing numerous mobile phones and / or other wireless devices or portable transceivers to communicate with each other and with fixed transceivers and phones anywhere in the network. Such communication is performed through base stations and is achieved even when the mobile transceiver is traveling through two or more cells during transmission. Major wireless communication providers have deployed such cell sites worldwide, allowing communicating mobile phones and mobile computing devices to connect to the public switched telephone network and the public Internet.

[0004] A mobile phone is a portable telephone that can receive and / or make telephone and / or data communications through a cell site or transmission tower by using radio waves to transfer signals to and from the mobile phone. Given the large number of mobile phone users, current mobile phone networks offer limited shared resources. In that regard, cell sites and handsets may change frequencies and use low-power transmitters to allow simultaneous use of the network by many callers with less interference. Cell site coverage may depend on a particular geographic location and / or the number of users that can potentially use the network. For example, in urban areas, a cell site may have a range of up to about 1 / 2 mile, while in rural areas, the range may be as long as 5 miles, and in some areas, users may be able to receive signals from cell sites as far away as 25 miles.

[0005] The following are some examples of digital cellular technologies used by communication providers: Global System for Mobile Communications ("GSM"), General Packet Radio Service ("GPRS"), cdmaOne, CDMA2000, Evolved Data Optimized ("EV-DO"), Enhanced Data Rates for GSM Evolution ("EDGE"), Universal Mobile Telecommunications System ("UMTS"), Digital Enhanced Cordless Communications ("DECT"), Digital AMPS ("IS-136 / TDMA"), and Integrated Digital Enhanced Network ("iDEN"). 4G LTE, developed by the Long Term Evolution, or 3rd Generation Partnership Project ("3GPP®") standards organization, is a standard for high-speed data wireless communication for mobile phones and data terminals. 5G standards are currently being developed and deployed. 3GPP cellular technologies such as LTE and 5G NR are an evolution of earlier generations of 3GPP technologies such as GSM / EDGE and UMTS / HSPA digital cellular technologies, and allow for increased capacity and speeds by using different air interfaces along with improvements to the core network.

[0006] A cellular network may be divided into a radio access network and a core network. The radio access network (RAN) may include network functions capable of handling radio layer communication processing. The core network may include network functions capable of handling higher layer communication, e.g., Internet Protocol (IP), transport layer, and application layer. In some cases, the RAN function may be divided into baseband unit function and radio unit function; for example, a radio unit connected to a baseband unit via a fronthaul network may be responsible for lower layer processing of the radio physical layer, and the baseband unit may be responsible for higher layer radio protocols, e.g., MAC, RLC, etc.

[0007] A base station for a 5G cellular network may include a centralized unit (CU), one or more distributed units (DUs) communicatively connected to the CU, and one or more radio units (RUs), each communicatively connected to at least one of the one or more DUs and each configured to be communicatively connected to one or more mobile phones and / or other user equipment (UE). The CU may be logically divided into a control plane portion (CU-CP) and one or more user plane portions (CU-UP). During the course of a UE's communication connection with the base station, the DU supporting the UE may change. In Layer 1 / Layer 2 (L1 / L2) triggered mobility (LTM) and multi-transmit / receive point (mTRP) configuration preparation for handover from a serving cell to a target cell is always performed by the CU-CP, and its execution is performed by the DU. This means that the CU-CP needs to be able to determine which configuration to request from the DU at a given time. In existing methods, there is a lack of knowledge of the configuration details in the CU, which makes it impossible for the CU-CP to select the required configuration from the target cell in the DU. Summary of the Invention

[0008] In an embodiment, the subject matter relates to a computer-implemented method that may include receiving, from a first distributed unit (DU) of a base station, data related to preparing a Layer 1 / Layer 2 triggered mobility (LTM) handover (HO) configuration of at least one service for a user equipment (UE), at a centralized unit control plane (CU-CP) of the base station. After receiving the data, the method may also include, by the CU-CP, requesting a second DU of the base station to prepare, in consideration of the data, at least one LTM target cell configuration for the HO of the at least one service for the UE.

[0009] The method may enable configuration selection extension for LTM at the DU and the CU-CP to recognize the DU's situation and which configurations are likely to be successful at the DU.

[0010] In certain embodiments, the present subject matter may include one or more of the following optional features.

[0011] In an embodiment, the data may include timing advance information for each of a plurality of cells of the DU. Further, the CU-CP may receive the data in a procedure for setting up an F1 communication interface between the CU-CP and the first DU, and / or the CU-CP may receive the data in an F1 setup request message sent from the first DU to the CU-CP, or the timing advance information may include average timing advance information for a given reference signal received power (RSRP) value for each of a plurality of beams or beam groups of a plurality of cells of the second DU, and the CU-CP may receive the average timing advance information from the first DU before the CU-CP receives a message from the first DU that a service change is required for the UE, and / or the CU-CP may receive the data periodically in a non-UE-related procedure between the CU-CP and the second DU.

[0012] In an embodiment, receiving may include the CU-CP periodically receiving data from the first DU before the CU-CP receives a message from the first DU that a service change is required for the UE, and the method may also include, at the CU-CP, constructing an HO policy based at least in part on the received data using machine learning. Further, the data may include data related to at least one of a UE type, a UE speed, at least one service accessed by the UE at the first DU, and dynamic switching between the first cell and the second cell, and / or the method may further include receiving, at the CU-CP, performance data related to the first DU's service to the UE from the first DU currently serving the UE for the at least one service, and requesting may request the second DU to prepare at least one LTM target cell, also taking into account the data received from the first DU.

[0013] In an embodiment, the first DU may include at least one cell, the data may include resource availability for the at least one cell, and receiving may include the CU-CP periodically receiving resource availability from the first DU before the CU-CP receives a message from the first DU currently serving the UE for at least one service that a service change is required for the UE, and / or the resource availability may include availability in each of the at least one cell for inter-cell beam management (ICBM), dynamic switching, multi-transmit / receive point (mTRP), and LTM serving cell change (SCC).

[0014] In an embodiment, the requesting may include sending an indication of the target cell configuration, which is at least one of an ICBM, a dynamic switch, and an LTM SCC, from the CU-CP to the second DU.

[0015] In an embodiment, the CU-CP may receive data from the first DU currently serving the UE for at least one service before the CU-CP receives a message from the first DU that the UE requires a service change.

[0016] In an embodiment, the method may also include selecting, at the CU-CP, a target cell configuration based at least in part on the received data.

[0017] In some embodiments, the base station may have a non-aggregated architecture.

[0018] In an embodiment, the base station may comprise a Next Generation Radio Access Network (NG-RAN) node, including a gNodeB or an ng-eNodeB.

[0019] In an embodiment, the base station may include at least one processor and may also include at least one non-transitory storage medium storing instructions that, when executed by the at least one processor, cause the at least one processor to perform the method.

[0020] Non-transitory computer program products (i.e., physically embodied computer program products) that store instructions that, when executed by one or more data processors of one or more computing systems, cause at least one data processor to perform the operations described herein are also described. Similarly, computer systems that may include one or more data processors and memory coupled to the one or more data processors are also described. The memory may store, either temporarily or permanently, instructions that cause at least one processor to perform one or more of the operations described herein. Furthermore, methods may be implemented by one or more data processors within a single computing system or distributed across two or more computing systems. Such computing systems may be connected via one or more connections and may exchange data and / or commands or other instructions, etc., including, but not limited to, connections over a network (e.g., the Internet, a wireless wide area network, a local area network, a wide area network, a wired network, etc.), such as via a direct connection between one or more of the computing systems.

[0021] The details of one or more variations of the subject matter described herein are set forth in the accompanying drawings and the description below. Other features and advantages of the subject matter described herein will be apparent from the description and drawings, and from the claims.

[0022] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate certain aspects of the subject matter disclosed herein and, together with the description, serve to explain some of the principles associated with the disclosed embodiments. [Brief explanation of the drawings]

[0023] [Figure 1a] FIG. 1 illustrates an exemplary conventional Long Term Evolution (“LTE”) communication system.

[0024] [Figure 1b] FIG. 1b illustrates further details of the exemplary LTE system shown in FIG. 1a.

[0025] [Figure 1c] FIG. 1B illustrates further details of the evolved packet core of the exemplary LTE system shown in FIG. 1A.

[0026] [Figure 1d] FIG. 1B illustrates an exemplary evolved Node B of the exemplary LTE system shown in FIG. 1a.

[0027] [Figure 2] FIG. 2 shows further details of the evolved Node B shown in FIGS. 1a to 1d.

[0028] [Figure 3] FIG. 1 illustrates an exemplary virtual radio access network, in accordance with an embodiment of the present subject matter.

[0029] [Figure 4] FIG. 1 illustrates an exemplary 3GPP split architecture for providing use of higher frequency bands to its users.

[0030] [Figure 5a] FIG. 1 illustrates an exemplary 5G wireless communication system.

[0031] [Figure 5b] A diagram illustrating an example layer architecture of a split gNB and / or a split ng-eNB (e.g., a next-generation eNB that may be connected to 5GC).

[0032] [Figure 5c] A diagram illustrating an exemplary functional division in the gNB architecture shown in Figures 5a-5b.

[0033] [Figure 6a]FIG. 1 illustrates an exemplary system, according to an embodiment of the present subject matter.

[0034] [Figure 6b] 6b shows an exemplary alternative configuration of the system of FIG. 6a, according to an embodiment of the present subject matter.

[0035] [Figure 7a] 1 illustrates an exemplary method, according to an embodiment of the present subject matter.

[0036] [Figure 7b] FIG. 10 illustrates another exemplary method, according to an embodiment of the present subject matter.

[0037] [Figure 7c] FIG. 10 illustrates yet another exemplary method, according to an embodiment of the present subject matter.

[0038] [Figure 7d] FIG. 10 illustrates yet another exemplary method, according to an embodiment of the present subject matter.

[0039] [Figure 7e] FIG. 10 illustrates yet another exemplary method, according to an embodiment of the present subject matter.

[0040] [Figure 8a] FIG. 2 is an exemplary signaling diagram according to an embodiment of the present subject matter.

[0041] [Figure 8b] FIG. 10 is another exemplary signaling diagram according to an embodiment of the present subject matter.

[0042] [Figure 8c] FIG. 10 is yet another exemplary signaling diagram according to an embodiment of the present subject matter.

[0043] [Figure 8d]FIG. 10 is yet another exemplary signaling diagram according to an embodiment of the present subject matter.

[0044] [Figure 9] 8a-8d illustrate an exemplary architecture of a distributed unit (DU) in the signaling diagrams of FIGS. 8a-8d, according to an embodiment of the present subject matter.

[0045] [Figure 10] FIG. 1 illustrates an exemplary system, according to an embodiment of the present subject matter.

[0046] [Figure 11] 1 illustrates an exemplary method, according to an embodiment of the present subject matter. DETAILED DESCRIPTION OF THE INVENTION

[0047] The present subject matter may provide systems and methods that may be implemented in wireless communication systems, which may include various wireless communication systems, including new 5G wireless communication systems, long-term evolution communication systems, and the like.

[0048] Generally, the present subject matter relates to configuration selection extensions for Layer 1 / Layer 2 (L1 / L2) triggered mobility (LTM).

[0049] Conventionally, to support L1 / L2 inter-center cell changes (e.g., serving cell changes) in non-aggregated gNB architectures, configuration is performed at the gNB-CU-CP but cannot be performed autonomously by the gNB-DU without further interaction with higher layers. In LTM and multi-transmission / reception points (mTRPs), configuration preparation for handover from a serving cell to a target cell is always performed by the CU-CP, and its execution is performed by the DU. This means that the CU-CP needs to be able to determine which configuration to request from the DU at a given time. Existing methods lack awareness of configuration details in the CU, which makes it impossible for the CU-CP to select the required configuration from the target cell in the DU. The configuration selection extension for LTM described herein, as well as configuration selection extension for LTM in the DU, may enable the CU-CP to recognize the DU's situation and which configuration is likely to be successful in the DU.

[0050] 3GPP standards and / or O-RAN Alliance standards may be relevant to one or more aspects of the present subject matter.

[0051] One or more aspects of the present subject matter may be incorporated into transmitter and / or receiver components of base stations (e.g., gNodeB, eNodeB, etc.) within such communication systems. The following is a general discussion of Long Term Evolution and 5G emerging wireless communication systems.

[0052] I. Long Term Evolution Communication System 1a-1c and 2 illustrate an exemplary conventional Long Term Evolution ("LTE") communication system 100 along with its various components. The LTE system, or 4G LTE, as it is commercially known, is governed by a standard for high-speed data wireless communication for mobile phones and data terminals. The standard is an evolution of GSM / EDGE ("Global System for Mobile Communications" / "Enhanced Data Rates for GSM Evolution") and UMTS / HSPA ("Universal Mobile Telecommunications System" / "High-Speed ​​Packet Access") network technologies. The standard was developed by 3GPP ("3rd Generation Partnership Project").

[0053] As shown in FIG. 1a, system 100 may include an Evolved Universal Terrestrial Radio Access Network (“EUTRAN”) 102, an Evolved Packet Core (“EPC”) 108, and a Packet Data Network (“PDN”) 101, where EUTRAN 102 and EPC 108 provide communications between user equipment 104 and PDN 101. EUTRAN 102 may include multiple evolved Node Bs (“eNodeB” or “ENODEB” or “enodeb” or “eNB”) or base stations 106(a, b, c) (as shown in FIG. 1b) that provide communications capabilities to multiple user equipment 104(a, b, c). User equipment 104 may be a mobile phone, a smartphone, a tablet, a personal computer, a personal digital assistant (“PDA”), a server, a data terminal, and / or any other type of user equipment, and / or any combination thereof. A user equipment 104 can connect to the EPC 108 and ultimately to the PDN 101 via any eNodeB 106. Typically, the user equipment 104 can connect to the nearest eNodeB 106 in terms of distance. In the LTE system 100, the EUTRAN 102 and the EPC 108 cooperate to provide connectivity, mobility, and services for the user equipment 104.

[0054] Figure 1b shows further details of the network 100 shown in Figure 1a. As mentioned above, the EUTRAN 102 includes multiple eNodeBs 106, also known as cell sites. The eNodeBs 106 provide radio functionality and perform important control functions, including air link resource scheduling or radio resource management, active mode mobility or handover, and admission control for services. The eNodeBs 106 are responsible for selecting which mobility management entity (MME, as shown in Figure 1c) will serve the user equipment 104, as well as protocol features such as header compression and encryption. The eNodeBs 106 that make up the EUTRAN 102 cooperate with each other for radio resource management and handover.

[0055] Communication between the user devices 104 and the eNodeB 106 occurs over an air interface 122 (also known as the "LTE-Uu" interface). As shown in FIG. 1b, the air interface 122 provides communication between the user devices 104b and the eNodeB 106a. The air interface 122 uses orthogonal frequency division multiple access ("OFDMA") and single-carrier frequency division multiple access ("SC-FDMA"), an OFDMA variant, on the downlink and uplink, respectively. OFDMA allows the use of multiple known antenna technologies, such as multiple-input multiple-output ("MIMO").

[0056] The air interface 122 uses various protocols, including radio resource control ("RRC") for signaling between the user equipment 104 and the eNodeB 106 and non-access stratum ("NAS") for signaling between the user equipment 104 and the MME (as shown in FIG. 1c). In addition to signaling, user traffic is transferred between the user equipment 104 and the eNodeB 106. Both signaling and traffic in the system 100 are carried by physical layer ("PHY") channels.

[0057] Multiple eNodeBs 106 may be interconnected with each other using X2 interfaces 130(a, b, c). As shown in FIG. 1b, X2 interface 130a provides interconnection between eNodeB 106a and eNodeB 106b, X2 interface 130b provides interconnection between eNodeB 106a and eNodeB 106c, and X2 interface 130c provides interconnection between eNodeB 106b and eNodeB 106c. The X2 interfaces may be established between two eNodeBs to provide for the exchange of signals, which may include information related to loading or interference, as well as information related to handover. The eNodeBs 106 communicate with the evolved packet core 108 via S1 interfaces 124(a, b, c). The S1 interface 124 can be divided into two interfaces, one for the control plane (shown in FIG. 1c as control plane interface (S1-MME interface) 128) and the other for the user plane (shown in FIG. 1c as user plane interface (S1-U interface) 125).

[0058] The EPC 108 establishes and enforces quality of service ("QoS") for user services and allows the user equipment 104 to maintain a consistent Internet Protocol ("IP") address while moving. Note that each node in the network 100 has its own IP address. The EPC 108 is designed to interwork with legacy wireless networks. The EPC 108 is also designed to separate the control plane (i.e., signaling) and the user plane (i.e., traffic) in the core network architecture, which allows for more flexibility in implementation and independent scalability of control and user data functions.

[0059] The architecture of the EPC 108 is dedicated to packet data and is shown in more detail in Figure 1c. The EPC 108 includes a Serving Gateway (S-GW) 110, a PDN Gateway (P-GW) 112, a Mobility Management Entity ("MME") 114, a Home Subscriber Server ("HSS") 116 (a subscriber database for the EPC 108), and a Policy Control and Charging Rules Function ("PCRF") 118. Some of these (such as the S-GW, P-GW, MME, and HSS) are often combined into nodes according to manufacturer implementations.

[0060] The S-GW 110 functions as an IP packet data router and is the bearer path anchor for user equipment within the EPC 108. Thus, when a user equipment moves from one eNodeB 106 to another during mobility operation, the S-GW 110 remains the same, and the bearer path towards the EUTRAN 102 is switched to communicate with the new eNodeB 106 serving the user equipment 104. If the user equipment 104 moves to the domain of a different S-GW 110, the MME 114 will forward all of the user equipment's bearer path to the new S-GW. The S-GW 110 establishes a bearer path for the user equipment to one or more P-GWs 112. When downstream data is received for an idle user equipment, the S-GW 110 buffers the downstream packets and requests the MME 114 to identify and re-establish the bearer path to and through the EUTRAN 102.

[0061] The P-GW 112 is the gateway between the EPC 108 (and user equipment 104 and EUTRAN 102) and the PDN 101 (shown in FIG. 1a). The P-GW 112 acts as a router for user traffic and performs functions on behalf of the user equipment. These include IP address allocation for the user equipment, packet filtering of downstream user traffic to ensure that it is placed on the appropriate bearer path, and enforcement of downstream QoS, including data rate. Depending on the services a subscriber is using, there may be multiple user data bearer paths between the user equipment 104 and the P-GW 112. A subscriber may use services on PDNs served by different P-GWs, in which case the user equipment has at least one bearer path established to each P-GW 112. During a handover of a user equipment from one eNodeB to another, if the S-GW 110 is also changing, the bearer path from the P-GW 112 is switched to the new S-GW.

[0062] The MME 114 manages the user equipment 104 in the EPC 108, including managing subscriber authentication, maintaining context for authenticated user equipment 104, establishing a data bearer path within the network for user traffic, and tracking the location of idle mobiles that have not detached from the network. In the case of an idle user equipment 104 that needs to reconnect to the access network to receive downstream data, the MME 114 initiates paging to locate the user equipment and reestablishes a bearer path to and through the EUTRAN 102. The MME 114 for a particular user equipment 104 is selected by the eNodeB 106 from which the user equipment 104 initiates system access. The MME is typically part of a collection of MMEs in the EPC 108 for load sharing and redundancy purposes. In establishing a user's data bearer path, the MME 114 is responsible for selecting the P-GW 112 and S-GW 110, which constitute the termination of the data path through the EPC 108.

[0063] The PCRF 118 is responsible for controlling policy control decision-making and flow-based charging functionality within the Policy Control Enforcement Function ("PCEF") residing within the P-GW 110. The PCRF 118 provides QoS authorization (QoS Class Identifier ("QCI") and bit rate), which determines how a data flow is treated within the PCEF and ensures that this is in accordance with the user's subscription profile.

[0064] As mentioned above, IP services 119 are provided by PDN 101 (as shown in FIG. 1a).

[0065] 1d shows an example structure of an eNodeB 106. The eNodeB 106 may include at least one remote radio head (“RRH”) 132 (typically, there may be three RRHs 132) and a baseband unit (“BBU”) 134. The RRHs 132 may be connected to an antenna 136. The RRHs 132 and BBU 134 may be connected using an optical interface that conforms to the Common Public Radio Interface (“CPRI”) / enhanced CPRI (“eCPRI”) 142 standard specification, either using an RRH-specific custom control and user plane construction method or using an O-RAN Alliance compliant control and user plane construction method. The operation of the eNodeB 106 can be characterized using the following standard parameters (and specifications): radio frequency band (Band 4, Band 9, Band 17, etc.), bandwidth (5, 10, 15, 20 MHz), access method (downlink: OFDMA, uplink: SC-OFDMA), antenna technology (single-user and multi-user MIMO, uplink: single-user and multi-user MIMO), number of sectors (up to 6), maximum transmission speed (downlink: 150 Mb / s, uplink: 50 Mb / s), S1 / X2 interface (1000Base-SX, 1000Base-T), and mobile environment (up to 350 km / h). The BBU 134 can be responsible for digital baseband signal processing, S1 line termination, X2 line termination, call processing, and monitoring and control processing. IP packets received from the EPC 108 (not shown in FIG. 1d) can be modulated into digital baseband signals and transmitted to the RRH 132. Conversely, digital baseband signals received from the RRH 132 may be demodulated into IP packets for transmission to the EPC 108.

[0066] The RRH 132 can transmit and receive wireless signals using an antenna 136. The RRH 132 can convert (using a converter ("CONV") 140) digital baseband signals from the BBU 134 to radio frequency ("RF") signals and power amplify them (using an amplifier ("AMP") 138) for transmission to the user device 104 (not shown in FIG. 1d). Conversely, RF signals received from the user device 104 are amplified (using AMP 138) and converted (using CONV 140) to digital baseband signals for transmission to the BBU 134.

[0067] 2 shows additional details of an exemplary eNodeB 106. The eNodeB 106 includes multiple layers: LTE Layer 1 202, LTE Layer 2 204, and LTE Layer 3 206. LTE Layer 1 includes the physical layer ("PHY"). LTE Layer 2 includes medium access control ("MAC"), radio link control ("RLC"), and packet data convergence protocol ("PDCP"). LTE Layer 3 includes various functions and protocols, including radio resource control ("RRC"), dynamic resource allocation, eNodeB measurement configuration and provisioning, radio admission control, connection mobility control, and radio resource management ("RRM"). The RLC protocol is an automatic repeat request ("ARQ") fragmentation protocol used over the cellular air interface. The RRC protocol handles LTE Layer 3 control plane signaling between user equipment and the EUTRAN. The RRC includes functions for connection establishment and release, system information broadcast, radio bearer establishment / reconfiguration and release, RRC connection mobility procedures, paging notification and release, and outer loop power control. The PDCP performs IP header compression and decompression, user data transfer, and radio bearer sequence number maintenance. The BBU 134 shown in FIG. 1d may include LTE layers L1-L3.

[0068] One of the primary functions of the eNodeB 106 is radio resource management, including scheduling of both uplink and downlink air interface resources for the user equipment 104, control of bearer resources, and admission control. As an agent for the EPC 108, the eNodeB 106 is responsible for forwarding paging messages used to locate a mobile when it is idle. The eNodeB 106 also communicates common control channel information over the air, performs header compression, encryption and decryption of user data sent over the air, and establishes handover reporting and trigger criteria. As mentioned above, the eNodeB 106 can cooperate with other eNodeBs 106 via the X2 interface for handover and interference management purposes. The eNodeB 106 communicates with the MME of the EPC via the S1-MME interface and with the S-GW using the S1-U interface. Additionally, the eNodeB 106 exchanges user data with the S-GW via the S1-U interface. The eNodeBs 106 and the EPC 108 have a many-to-many relationship to support load sharing and redundancy between MMEs and S-GWs. The eNodeB 106 selects an MME from a group of MMEs so that the load can be shared by multiple MMEs to avoid congestion.

[0069] II. 5G NR Wireless Communication Network In one embodiment, the present subject matter relates to 5G New Radio ("NR") communication systems. 5G NR is the next communication standard beyond the 4G / IMT-Advanced standard. 5G networks offer higher capacity than current 4G, allowing for a larger number of mobile broadband users per unit area, and allowing for consumption of more and / or unlimited data amounts in gigabytes per month and per user. This may enable users to stream high-definition media for many hours per day using their mobile devices, even when Wi-Fi networks do not allow for this. 5G networks have improved support for device-to-device communications, lower costs, lower latency and lower battery consumption than 4G equipment, etc. Such a network would have data rates of tens of megabits per second for many users, data rates of 100 Mb / s for metropolitan areas, simultaneous 1 Gb / s to users within a limited area (e.g., an office floor), many simultaneous connections for wireless sensor networks, increased spectral efficiency, improved coverage, increased signaling efficiency, 1-10 ms latency, and reduced latency compared to existing systems.

[0070] 3 illustrates an exemplary virtual radio access network 300. The network 300 can provide communication between various components, including a base station (e.g., eNodeB, gNodeB) 301, radio equipment 303, a centralized unit 302, a digital unit 304, and wireless devices 306. The components in the system 300 can be communicatively connected to the core using backhaul links 305. The centralized unit ("CU") 302 can be communicatively connected to the distributed units ("DU") 304 using midhaul connections 308. The radio frequency ("RU") components 306 can be communicatively connected to the DUs 304 using fronthaul connections 310.

[0071] In one embodiment, the CU 302 can provide intelligent communication capabilities to one or more DU units 304. The units 302, 304 can include one or more base stations, macro base stations, micro base stations, remote radio heads, etc., and / or any combination thereof.

[0072] In a lower layer split architecture environment, the CPRI bandwidth requirement for the NR can be several hundred Gb / s. CPRI compression can be implemented in the DU and RU (as shown in Figure 3). In 5G communication systems, compressed CPRI over Ethernet frames is referred to as eCPRI and is the recommended fronthaul network. This architecture can enable standardization of fronthaul / midhaul, which can include upper layer splitting (e.g., Option 2 or Option 3-1 (upper / lower RLC split architecture)) and fronthaul using an L1 split architecture (Option 7).

[0073] In an embodiment, a lower layer split architecture (e.g., Option 7) may include receiver in the uplink and joint processing across multiple transmission points (TPs) for both DL / UL and transport bandwidth and latency requirements to facilitate deployment. Additionally, the subject lower layer split architecture may include splitting between cell-level processing and user-level processing, which may include cell-level processing in a remote unit ("RU") and user-level processing in a DU. Additionally, using the subject lower layer split architecture, frequency-domain samples may be transported over the Ethernet fronthaul, and the frequency-domain samples may be compressed for reduced fronthaul bandwidth.

[0074] 4 illustrates an example communication system 400 that can implement 5G technology and provide its users with access to higher frequency bands (e.g., greater than 10 GHz). The system 400 can include a macro cell 402 and small cells 404, 406.

[0075] The mobile device 408 may be configured to communicate with one or more of the small cells 404, 406. The system 400 may enable splitting of the control plane (C-plane) and user plane (U-plane) between the macrocell 402 and the small cells 404, 406, with the C-plane and U-plane utilizing different frequency bands. Specifically, the small cells 404, 406 may be configured to utilize higher frequency bands when communicating with the mobile device 408. The macrocell 402 may utilize existing cellular bands for C-plane communications. The mobile device 408 may be communicatively connected via the U-plane 412, where the small cell (e.g., the small cell 406) may provide higher data rates and more flexible / cost / energy-efficient operation. The macrocell 402 may maintain good connectivity and mobility via the C-plane 410. Furthermore, in some cases, LTE and NR may be transmitted on the same frequency.

[0076] 5a illustrates an exemplary 5G wireless communication system 500 in accordance with an embodiment of the present subject matter. The system 500 may be configured to have a lower-layer split architecture in accordance with Option 7-2. The system 500 may include a core network 502 (e.g., 5G Core) and one or more gNodeBs (or gNBs), where the gNBs may have a centralized unit gNB-CU. The gNB-CU may be logically divided into a control plane portion gNB-CU-CP 504 and one or more user plane portions gNB-CU-UP 506. The control plane portion 504 and the user plane portion 506 may be configured to be communicatively connected using an E1 communication interface 514 (as defined in the 3GPP standard). The control plane portion 504 may be configured to be responsible for executing the RRC and PDCP protocols of the radio stack.

[0077] The control plane portion 504 and user plane portion 506 of the centralized unit of the gNB may be configured to be communicatively connected to one or more distributed units (DUs) 508, 510 according to an upper layer split architecture. The distributed units 508, 510 may be configured to execute upper portions of the RLC, MAC, and PHY layer protocols of the radio stack. The control plane portion 504 may be configured to be communicatively connected to the distributed units 508, 510 using an F1-C communication interface 516, and the user plane portion 506 may be configured to be communicatively connected to the distributed units 508, 510 using an F1-U communication interface 518. The distributed units 508, 510 may connect to one or more remote radio units (RUs) 512 via a fronthaul network 520 (which may include one or more switches, links, etc.), which in turn communicate with one or more user equipment (not shown in FIG. 5a). The remote radio unit 512 may be configured to implement lower portions of the PHY layer protocol and provide antenna capabilities to the remote unit for communication with user equipment (similar to the description above in connection with Figures 1a-2).

[0078] Figure 5b shows an example layer architecture 530 for a split gNB. The architecture 530 can be implemented within the communication system 500 shown in Figure 5a, which can be configured as a virtualized disaggregated radio access network (RAN) architecture, whereby layers L1, L2, L3 and radio processing can be virtualized and disaggregated within centralized, distributed, and radio units. As shown in Figure 5b, the gNB-DU 508 can be communicatively connected to the gNB-CU-CP control plane portion 504 (also shown in Figure 5a) and the gNB-CU-UP user plane portion 506. Each of the components 504, 506, 508 can be configured to include one or more layers.

[0079] The gNB-DU 508 may include RLC, MAC, and PHY layers, as well as various communication sublayers. These may include an F1-Application Protocol (F1-AP) sublayer, a GPRS Tunneling Protocol (GTPU) sublayer, a Stream Control Transmission Protocol (SCTP) sublayer, a User Datagram Protocol (UDP) sublayer, and an Internet Protocol (IP) sublayer. As described above, the distributed unit 508 may be communicatively connected to the control plane portion 504 of the centralized unit, which may also include the F1-AP, SCTP, and IP sublayers, as well as the Radio Resource Control and PDCP Control (PDCP-C) sublayer. Furthermore, the distributed unit 508 may also be communicatively connected to the user plane portion 506 of the centralized unit of the gNB. The user plane portion 506 may include a Service Data Adaptation Protocol (SDAP), a PDCP User (PDCP-U), a GTPU, a UDP, and an IP sublayer.

[0080] Figure 5c shows an example functional division in the gNB architecture shown in Figures 5a-5b. As shown in Figure 5c, the gNB-DU 508 may be communicatively connected to the gNB-CU-CP 504 and the gNB-CU-UP 506 using an F1-C communication interface. The gNB-CU-CP 504 and the gNB-CU-UP 506 may be communicatively connected using an E1 communication interface. The upper portion of the PHY layer (or Layer 1) may be performed by the gNB-DU 508, and the lower portion of the PHY layer may be performed by the RU (not shown in Figure 5c). As shown in Figure 5c, the RRC and PDCP-C portions may be performed by the control plane portion 504, and the SDAP and PDCP-U portions may be performed by the user plane portion 506.

[0081] Some of the functions of the PHY layer in a 5G communication network may include error detection on transport channels and indication to higher layers, FEC encoding / decoding of transport channels, hybrid ARQ soft combining, rate matching of coded transport channels to physical channels, mapping of coded transport channels to physical channels, power weighting of physical channels, modulation and demodulation of physical channels, frequency and time synchronization, radio characteristic measurements and indication to higher layers, MIMO antenna processing, digital and analog beamforming, RF processing, and other functions.

[0082] The MAC sublayer of Layer 2 may perform beam management, random access procedures, mapping between logical channels and transport channels, concatenation of multiple MAC service data units (SDUs) belonging to one logical channel into transport blocks (TBs), multiplexing / demultiplexing of SDUs belonging to logical channels to / from TBs passed to / from the physical layer on transport channels, scheduling information reporting, error correction using HARQ, priority handling between logical channels for one UE, priority handling between UEs using dynamic scheduling, transport format selection, and other functions. The RLC sublayer's functions may include forwarding upper-layer packet data units (PDUs), error correction using ARQ, reordering of data PDUs, duplication and protocol error detection, reestablishment, etc. The PDCP sublayer may be responsible for forwarding user data, various functions during reestablishment procedures, retransmission of SDUs, discarding SDUs in the uplink, forwarding of control plane data, etc.

[0083] The RRC sublayer of Layer 3 may perform the broadcasting of system information to the NAS and AS, establishment, maintenance, and release of RRC connections, security, establishment, configuration, maintenance, and release of point-to-point radio bearers, mobility functions, reporting, and other functions.

[0084] III. Configuration Selection Extensions for LTM Generally, a non-aggregated architecture is defined in 3GPP, which breaks down the gNodeB (gNB) into multiple logical entities. Similarly, a single DU can host multiple cells. Currently, according to the 3GPP standard, a single DU can host up to 512 LTM target cells. As mentioned above, the gNB-CU-CP hosts the PDCP and RRC layers, while the gNB-DU hosts the RLC, MAC, and PHY layers. Scheduling operations are performed in the gNB-DU.

[0085] Conventionally, to support L1 / L2 inter-center cell changes (e.g., serving cell changes) in non-aggregated gNB architectures, configuration is performed at the gNB-CU-CP but cannot be performed autonomously by the gNB-DU without further interaction with higher layers. In LTM and multi-transmission / reception points (mTRPs), configuration preparation for handover from a serving cell to a target cell is always performed by the CU-CP, and its execution is performed by the DU. This means that the CU-CP needs to be able to determine which configuration to request from the DU at a given time. Existing methods lack awareness of configuration details in the CU, which makes it impossible for the CU-CP to select the required configuration from the target cell in the DU. The configuration selection extension for LTM described herein, as well as configuration selection extension for LTM in the DU, may enable the CU-CP to recognize the DU's situation and which configuration is likely to be successful in the DU.

[0086] Layer 1 / Layer 2 Triggered Mobility (LTM) is an updated term for Lower Layer Mobility (LLM). RAN2 has agreed on the definition of LTM. In general, LTM is a mobility procedure that allows the network to switch a UE from a source cell to a target cell without necessarily requiring a synchronized reconfiguration. In particular, based on received L1 measurements, the network can indicate in L2 signaling (e.g., messages such as MAC CE) the beams belonging to LTM candidate cells on which the UE should perform the LTM cell switch procedure. The UE is provided with at least one LTM candidate cell configuration by the network before performing the LTM cell switch procedure.

[0087] In an embodiment of the present subject matter, a base station (e.g., a Next Generation RAN (NG-RAN) node such as a gNodeB, eNodeB, or gNodeB in FIG. 5a) of a wireless communication system (e.g., a 5G wireless communication system, a 6G or later generation wireless communication system, etc.) can have a disaggregated architecture in which the base station includes one gNB-CU-CP (e.g., gNB-CU-CP 504 in FIGS. 5a-5c) and two or more CU-UPs (e.g., gNB-CU-UP 506 in FIGS. 5a-5c) and gNB-DUs (e.g., gNB-DUs 508, 510 in FIGS. 5a-5c). The base station can be configured to provide configuration selection enhancements for LTM.

[0088] FIG. 6a illustrates an exemplary system 600 configured to enable configuration selection enhancements for LTM. The base station 602 in this illustrated embodiment is a gNB configured to be in a 5G wireless communication system similar to the 5G wireless communication system 500 of FIG. 5a described above, although other base stations may be similarly configured and used in providing configuration selection enhancements for LTM. In the illustrated embodiment of FIG. 6a, the base station 602 includes multiple CU-UPs 606a, 606b, and 606c. The base station 602 includes three CU-UPs 606a, 606b, and 606c in this illustrated embodiment, but may include multiple other CU-UPs. The CUs of the base station 602, including the multiple CU-UPs 606a, 606b, and 606c, are configured to be communicatively coupled with a core network (not shown in FIG. 6a), such as the 5G GC 502 of FIG. 5a.

[0089] The CU of the base station 602 also includes a CU-CP 604 configured to be communicatively coupled to the user plane portions 606a, 606b, 606c of the CU using an E1 communication interface 614. The E1 interface 614 includes three communication links in this illustrated embodiment to reflect that there are three CU-UPs 606a, 606b, 606c with which the CU-CP 604 may be configured to communicate.

[0090] The base station 602 also includes multiple DUs 608, 610. The base station 602 includes two DUs 608, 610 in this illustrated embodiment, but may include multiple other DUs. The CU-CP 604 is configured to be communicatively coupled to the DUs 608, 610 using an F1-C communication interface 616. The CU-UPs 606a, 606b, 606c are configured to be communicatively coupled to the DUs 608, 610 using an F1-U communication interface 618. The F1-U interface 618 associated with each of the DUs 608, 610 includes three communication links in this illustrated embodiment to reflect the fact that there are three CU-UPs 606a, 606b, 606c with which each DU 608, 610 may be configured to communicate.

[0091] The base station 602 also includes multiple RUs 612. The base station 602 includes five RUs 612 in this illustrated embodiment, but may include a different number of RUs. The RUs 612 are configured to be communicatively connected to the DUs 608, 610 via a fronthaul network 620. Furthermore, each of the RUs 612 is configured to be communicatively connected to one or more UEs 622. In this illustrated embodiment, two of the RUs 612 are shown communicatively connected to one UE 622, two of the RUs 612 are shown communicatively connected to two UEs 622, and one of the RUs 612 is shown communicatively connected to three UEs 622, but each of the RUs 612 can be connected to a different number of UEs, the same as or different from any of the other RUs 612.

[0092] A secure L1 / L2-centric inter-cell mobility execution can be configured to occur when one of the UEs communicatively coupled with the base station 602 is handed off from one of the DUs 608, 610 of the base station 602 to another of the DUs 608, 610 also of the same base station 602. One of the DUs 608, 610 currently serving the UE 622 is referred to as the "serving DU" because it is currently serving the UE 622, e.g., currently serving the UE 622. One of the DUs 608, 610 to which the UE's service is being handed off is referred to as the "target DU" because it is targeted to serve the UE 622.

[0093] A system that can be configured to perform secure L1 / L2 centric inter-cell mobility is further described with respect to Figure 6b. Figure 6b illustrates the CU-CP 604 and CU-UPs 606a, 606b of Figure 6a. 606cAlthough shown, in the illustrated embodiment of Figure 6b, the base station 602 includes three or more DUs. In the illustrated embodiment of Figure 6b, the base station 602 includes 66 DUs. Three of the DUs 628a, 628b, and 628c are macro cells (labeled macro1, macro2, and macro3 in Figure 6b), and 63 of the DUs 626 are small cells (nine of which are labeled gNB-DU10, gNB-DU20, gNB-DU30, gNB-DU40, gNB-DU50, gNB-DU60, gNB-DU70, gNB-DU80, and gNB-DU90 in Figure 6b). The base station 602 may include other numbers of macro cells and / or other numbers of small cells. Twenty-one of the small cells DUs 626, including macro1 DU 628a, macro2 DU 628b, and gNB-DU10, gNB-DU20, and gNB-DU30, are configured to be served by a first CU-UP 606a (labeled CU-UP1 in FIG. 6b). Twenty-one of the small cells DUs 626, including macro1 DU 628a, macro2 DU 628b, macro3 DU 628c, and gNB-DU40, gNB-DU50, and gNB-DU60, are configured to be served by a second CU-UP 606b (labeled CU-UP2 in FIG. 6b). Twenty-one of the small cells DU626, including macro2 DU628b, macro3 DU628c, and gNB-DU70, gNB-DU80, and gNB-DU90, are configured to be served by a third CU-UP606c (labeled CU-UP3 in FIG. 6b).

[0094] In the embodiment shown in FIG. 6b, each CU-UP 606a, 606b, 606c receives a DU 626, 628a, 628b, 628c for all services. 628b, 628c. However, a CU-UP can serve all DUs of a base station for one service (e.g., enhanced mobile broadband (eMBB)) while serving a subset of DUs for another service (e.g., vehicle-to-everything (V2X) or ultra-reliable low-latency communications (URLLC)).

[0095] FIG. 7a illustrates an exemplary method 700 in accordance with an embodiment of the present subject matter. Although the method 700 of FIG. 7a is described with reference to the exemplary system 800 illustrated in FIGS. 8a-8d, it may similarly be implemented in other systems, such as the system 100 of FIGS. 1a-1c and 2, the system 400 of FIG. 4, the system 500 of FIG. 5a, the systems of FIGS. 6a-6b, etc. While the system 800 of FIGS. 8a-8d is a 5G system, as noted above, the configuration selection extensions for LTM described herein may be implemented in other types of wireless communication systems, such as an LTE wireless communication system or a 6G or later generation wireless communication system. While the various elements in FIGS. 8a-8d are numbered as consecutive steps, such numbering is not intended to indicate that only these numbered steps in this consecutive order may be performed within the system 800. One or more additional steps may be present before and / or after any one or more of the sequentially numbered steps illustrated in FIGS. 8a-8d.

[0096] In system 800, a UE (e.g., UE 104 of FIGS. 1a-1c, UE 622 of FIG. 6a, etc.) (not shown in FIGS. 8a-8d) is configured with an LTM with one or more target cells within one or more DUs 802, 804 (e.g., DU 508 of FIGS. 5a-5c, DU 510 of FIG. 5a, DU 608 of FIG. 6a, DU 610 of FIG. 6a, DU 626 of FIG. 6b, DUs 628a, 628b, 628c of FIG. 6b, etc.) of a base station, e.g., a gNB (e.g., gNodeB of FIG. 5a, gNodeB 624 of FIGS. 6a and 6b, etc.). More than one UE can be communicatively connected to the base station, and / or the base station can include more than two DUs. The base station of the system 800 also includes a CU including a CU-CP 806 (e.g., gNB-CU-CP 504 of FIGS. 5a-5c, CU-CP 604 of FIGS. 6a and 6b, etc.) and one or more CU-UPs (e.g., gNB-CU-UP 506 of FIGS. 5a-5c, CU-UPs 606a, 606b, 606c of FIGS. 6a and 6b, etc.) (not shown in FIGS. 8a-8d), and a plurality of RUs (e.g., RU 512 of FIG. 5a, RU 612 of FIG. 6a, etc.) (not shown in FIGS. 8a-8d). The UE is currently served by a first DU 802 of the base station. Furthermore, the base station of FIGS. 8a-8d is communicatively coupled to a core network (e.g., EPC 108 of FIGS. 1a-1c and 2, 5GC 502 of FIG. 5a, etc.) (not shown in FIGS. 8a-8d).

[0097] As shown in FIG. 7a, an F1 communication interface is set up (702) between a first DU (labeled “gNB-DU1” in FIGS. 8a-8d) 802 and a CU-CP 806, and a second DU (labeled “gNB-DU2” in FIGS. 8a-8d) 804An F1 communication interface is set up between the first DU 802 and the CU-CP 806 (704). The F1 communication interface can be set up in accordance with the 3GPP standard (702, 704). While FIG. 7a shows that the F1 communication interface is set up between the first DU 802 and the CU-CP 806 (702) before the F1 communication interface is set up between the second DU 804 and the CU-CP 806, the F1 communication interface may be set up between the first DU 802 and the CU-CP 806 before the F1 communication interface is set up between the first DU 802 and the CU-CP 806 (702). 804 and A communication channel may be set up between the CU-CP806 (704).

[0098] During use of the first DU 802, the first DU 802 can provide at least one service to the UE. Method 700 illustrates an embodiment of an inter-DU LTM serving cell change scenario that includes the first DU (also referred to herein as the “serving DU”) 802 determining (706) that a serving cell change is necessary for the UE. The serving DU determining (706) can include the serving DU 802 analyzing an intra-frequency L1 measurement report sent by the UE to the serving DU 802 in accordance with 3GPP standards. According to the 3GPP standards, the intra-frequency L1 measurement report can include Layer 1 (L1) measurements that can be analyzed by the first DU 802 when making resource control decisions, which can include a serving cell change where the UE will be served by a DU other than the first DU 802, e.g., the second DU 804, for at least one service.

[0099] In response to determining 706 that a serving cell change should occur, the serving DU 802 notifies the UE of the serving cell change 708. Notifying the UE may include the serving DU 802 sending a serving cell change command, e.g., a MAC CE, to the UE.

[0100] Also, in response to determining that a cell service change should occur, the serving DU 804 notifies the CU-CP 806 that a serving cell change for the UE has occurred (708). Thus, the notification (708) may identify the UE to the CU-CP 806 using an identifier known to the serving DU 802 that uniquely identifies the UE to the CU-CP 806, such as an identifier according to 3GPP standards. The notification to the CU-CP 806 (708) may include the serving DU 802 sending a serving cell change notification message to the CU-CP 806 using the F1 communication interface previously set up (702). The serving cell change notification message may include a cell identity (ID) that uniquely identifies the UE that has undergone the serving cell change.

[0101] In response to receiving the serving cell change command from the serving DU 802, the UE may send a radio resource control (RRC) reconfiguration acknowledgement message to the CU-CP 806. The CU-CP 806 will recognize from the RRC reconfiguration acknowledgement message that the UE, uniquely identified to the CU-CP 806 by the serving DU 802, acknowledges the completion of the successful serving cell change.

[0102] Also, in response to receiving the Layer 3 RRC measurement configuration, the UE may send an RRC measurement report to the CU-CP 806 in accordance with the 3GPP standard. According to the 3GPP standard, the RRC measurement report may include Layer 3 (L3) measurements that may be analyzed by the CU-CP 806 when making resource control decisions, which may include determining to prepare at least one target cell for LTM such that at least one target cell from the target DU 804 is ready to serve the UE on behalf of the serving DU 804 for at least one service.

[0103] In response to determining to prepare at least one target cell for LTM, the CU-CP 806 selects a configuration for the at least one target cell for LTM (710). The configuration may be selected using data previously received by the CU-CP 806, as discussed further below.

[0104] 8a-8d, in these illustrated embodiments, each of the at least one target cell is an inter-DU target cell, e.g., part of a DU different from the serving DU 802 in which the same CU (e.g., a CU including a CU-CP 806) serves each DU 802, 804. Also, in these illustrated embodiments, since there are only two gNB-DUs, the at least one target cell includes only the target DU 804, but as mentioned above, a base station can include three or more target cells. Currently, according to the 3GPP standard, up to eight LTM target cells can be prepared for a given UE.

[0105] Preparing at least one target cell for LTM may include the CU-CP 806 notifying at least one target DU 804 that the at least one target DU 804 may be later notified to start serving the UE for at least one service. Thus, the target DU 804 can reserve necessary resources for the UE. As shown in FIG. 7a, notifying the at least one target cell, which is only the target DU 804 in this illustrated embodiment, may include the CU-CP 806 requesting the target DU 804 to prepare the at least one target cell according to the prepared configuration. The request may include the CU-CP 806 sending a UE context setup request message to the target DU 804 according to the 3GPP standard using the previously set up (704) F1 communication interface.

[0106] In one embodiment, the CU-CP 806 can select at least one target cell configuration for LTM using data received from at least one DU 802, 804 during an F1 setup procedure in which an F1 communication interface is set up between the DU and the CU-CP 806. A handover (HO) from one cell of a DU of a base station to another cell of another DU of the base station occurs only after an F1 communication interface has been set up with each of the DUs. Thus, receiving data related to HO during the F1 setup procedure by the CU-CP 806 can ensure that the CU-CP 806 has data related to HO on hand before the need for HO arises.

[0107] In some embodiments, such as those illustrated in Figures 7b and 8a, the HO-related data received by the CU-CP 806 during F1 setup includes timing advance information for one or more cells of the DU. Timing advance (TA) refers to the time offset at the UE between the start of the received downlink subframe and the transmitted uplink subframe. This offset at the UE is necessary to ensure that the downlink and uplink subframes are synchronized at the base station serving the US. This is a MAC layer (Layer 2) control element (CE) from the base station to the UE used in controlling the uplink, e.g., signal transmission timing from the UE to the base station.

[0108] With the CU-CP 806 knowing the TA information for one or more cells of the first DU and one or more cells of the second DU, the CU-CP 806 can determine whether at least one target cell, for example, one or more cells of the second DU 804, is a candidate for random access channel layer-less (RACH-less) HO from the serving DU 802 based on whether the TA of the target cell is 0 or the TA of the serving cell is the same as the TA of the target cell. If the TA of the target cell is 0 or the TA of the serving cell is the same as the TA of the target cell, the target cell is a candidate for RACH-less HO. Thus, the CU-CP 806 can request 712 the at least one target cell of the second DU 804 to prepare itself for RACH-less HO if possible, or to prepare itself for RACH-based HO if not. Therefore, a HO from one cell of the serving DU 802 to another cell of the target DU 804 may take less time because the HO from the serving cell to one of the at least one target cell is already prepared in each of the one or more target cells to include either a contention-free RACH procedure (for RACH-less HO) or a contention-based RACH procedure (for RACH-based HO). Thus, handover latency is reduced, which can reduce user plane interruption time.

[0109] As described above, an F1 communication interface is set up between the CU-CP 806 and each of the first and second DUs 802, 804 (702, 704). As shown in Figures 7b and 8a, setting up the F1 communication interface between the first DU 802 and the CU-CP 806 (702, 722) includes the serving DU 802 sending an F1:setup request to the CU-CP 806 (808), which includes TA information for all beams / beam groups for each cell of the serving DU 802. Although the serving DU 802 is shown in Figure 8a as having multiple cells, including Cell1, Cell2, etc., the serving DU 802 may include a single cell, or may include two or more cells. In response to receiving the F1:setup request from the serving DU 802, the CU-CP 806 sends an F1:setup response to the serving DU 802 (810).

[0110] As also shown in Figures 7b and 8a, in an F1 setup procedure in which an F1 communication interface is set up between the CU-CP 806 and the target DU 804 (704, 724), the target DU 804 sends an F1:setup request to the CU-CP 806 including TA information for all beams / beam groups of each cell of the target DU 804 (812). Although the target DU 804 is shown in Figure 8a as having multiple cells including Cell1, Cell2, etc., the target DU 804 may include a single cell or may include two or more cells. In response to receiving the F1:setup request from the target DU 804, the CU-CP 806 sends an F1:setup response to the target DU 804 (814).

[0111] Although Figures 7a, 7b, and 8a show that the F1 communication interface is set up between the serving DU 802 and the CU-CP 806 (702, 722) before the F1 communication interface is set up between the target DU 804 and the CU-CP 806 (704, 724), the F1 communication interface can be set up between the target DU 804 and the CU-CP 806 (704, 724) before the F1 communication interface is set up between the serving DU 802 and the CU-CP 806 (702, 722).

[0112] In one embodiment, as shown in Figure 8a, the CU-CP 806 can provide the TA information received from one DU to each of the other DUs of the base station. Thus, each DU can be aware of the TA of the other DU's cell and, therefore, whether RACH-less HO is possible for the other DU's cell. As shown in Figure 8a, the CU-CP 806 can transmit 816 the TA information for one or more cells of the second DU (also referred to herein as a "neighboring DU") 804 to the first DU 802, for example, in a gNB-CU Configuration Update message, and can transmit 818 the TA information for one or more cells of the first DU 802 to the second DU 804, for example, in a gNB-CU Configuration Update message. Although FIG. 8a shows the CU-CP sending (816) the TA information to the first DU 802 before sending (818) the TA information to the second DU 804, the TA information can be sent (818) to the second DU 804 before the TA information is sent (816) to the first DU 802.

[0113] In one embodiment, the CU-CP 806 can select at least one target cell configuration for LTM using data received from at least one DU 802, 804 after an F1 communication interface is set up (702, 704) between the CU-CP 806 and each of the first and second DUs 802, 804. The data can also be received before the CU-CP 806 receives notification (708) from the serving DU 802 that a service change is required for the UE. Handover (HO) from one cell of a DU of a base station to another cell of another DU of a base station teeth, CU-CP806 but Receive notification that such changes are required Only if Therefore, by receiving the data related to HO before the CU-CP 806 receives the notification (708) from the serving DU 802, it can be ensured that the CU-CP 806 has the data related to HO on hand before the need for HO arises.

[0114] In some embodiments, such as those illustrated in FIGS. 7c and 8b, in which the CU-CP 806 receives data related to HO after F1 setup and before the CU-CP 806 receives notification (708) that the UE requires a serving cell change, the CU-CP 806 may use a machine learning (ML)-based data collection and training algorithm to determine the feasibility of dynamic switching. Machine learning may include artificial intelligence (AI), as will be understood by those skilled in the art. The CU-CP 806 may periodically receive data related to HO before the CU-CP 806 receives notification (708) that the UE requires a serving cell change, and the CU-CP may use machine learning to construct an HO policy based at least in part on the received data. The CU-CP 806 may also provide policies to the base station DUs 802, 804 so that the DUs 802, 804 are aware of policies indicating how at least one target cell should be prepared for LTM before they need to prepare the at least one target cell for LTM.

[0115] The data that the CU-CP806 can collect from the DU802, 804 and use for construction may include data regarding at least one of the type of UE, the speed of the UE, at least one service accessed by the UE in the serving DU802, and dynamic switching between the first cell of the serving DU802 and the second cell of the serving DU802.

[0116] The UE type (and / or capabilities), speed, and accessed services may enable machine learning in the CU-CP 806 to identify the type of UE undergoing dynamic switching and generate different policies for different types of UE. Types of UE Having different policies for different UEs recognizes that different UEs may have different types of mobility. For example, a cellular phone (a first type of UE) typically has more mobility than a laptop (a second type of UE), which typically has more mobility than a parking meter (a third type of UE). In another example, a smartwatch (a fourth type of UE) typically has more mobility than a game console (a fifth type of UE), which typically has more mobility than a server (a sixth type of UE). Examples of a UE include a cellular phone, a smartphone, a Session Initiation Protocol (SIP) phone, a laptop, a personal digital assistant (PDA), a satellite radio, a global positioning system (GPS), a multimedia device, a video device, a digital audio player (e.g., an MP3 player, etc.), a camera, a game console, a tablet, a smart device, a wearable device (e.g., a smart watch or other device), a vehicle, an electric meter, a gas pump, a large or small kitchen appliance, a healthcare device, an implant, a sensor / actuator, a display, or any other similarly functioning device. A UE may be an Internet of Things (IoT) device (e.g., a parking meter, a gas pump, a toaster, a vehicle, a heart monitor, etc.).

[0117] Dynamic switching is a phenomenon in which the network anticipates ping-ponging between a serving cell and a target cell and prepares the serving cell and target cell to be equipped for this back-and-forth switching. Associating dynamic switching with the type of UE can be used to optimize network planning in loaded cells. Data regarding dynamic switching between a first cell of the serving DU 802 and a second cell of the serving DU 802 can include identification information of the first cell and the second cell, the frequency of switching occurrence including source beam information and target beam information, the time of day when the dynamic switching occurs, and / or critical resources in the serving DU 802 that will be overloaded due to the dynamic switching. Associating source beam information and target beam information with the type of UE can be used to optimize network planning in loaded cells. Knowing the time can enable optimized resource planning in cells that undergo dynamic switching. Knowing the overload of critical resources can assist optimized resource management from the CU-CP 806.

[0118] 7c and 8b, the first DU 802 may periodically transmit (730, 820) to the CU-CP 806 data related to HO, including at least one of the UE type, the UE speed, at least one service accessed by the UE in the serving DU 802, and dynamic switching between the first cell of the serving DU 802 and the second cell of the serving DU 802. The second DU 804 may also periodically transmit (732, 822) to the CU-CP 806 data related to HO, including at least one of the UE type, the UE speed, at least one service accessed by the UE in the second DU 804, and dynamic switching between the first cell of the second DU 804 and the second cell of the second DU 804. As also shown in Figures 7c and 8b, data can be transmitted (730, 820) from the serving DU 802 in a status report message via the F1 interface previously set up (702), and can be transmitted (732, 822) from the target DU 804 in a status report message via the F1 interface previously set up (704). Although Figure 8b shows the first DU 802 transmitting data (730, 820) to the CU-CP 806 before the second DU 804 transmits data (732, 832) to the CU-CP 806, the second DU 804 can transmit data (732, 832) to the CU-CP 806 before the first DU 802 transmits data (730, 830) to the CU-CP 806.

[0119] The timing of the periodic reports from the DUs 802, 804 may be pre-programmed and based on one or more factors. As an example of a factor, the periodic reports may be sent according to a predetermined time schedule such that the reports are received periodically by the CU-CP 806. As another example of a factor, the periodic reports may be sent after a predetermined number of serving cell changes have occurred within the DU (e.g., a predetermined number of dynamic switches have occurred). As yet another example of a factor, the periodic reports may be sent based on the size of the report. Because a DU typically serves multiple UEs and data is sent to the CU-CP 806 for each UE, the reports may be large.

[0120] The CU-CP 806 uses an ML-based data collection and training algorithm to generate and build 824 handover policies based at least in part on the data received from the DUs 802, 804 in the status reports. The CU-CP 806 can be configured to iteratively generate and build 824 policies as new data is received. The ML-based data collection and training algorithm is RRM-specific and therefore vendor-specific. In other words, a vendor of the CU-CP 806, e.g., a vendor of a gNB that includes the CU-CP 806, can build its own algorithms to manage resources and configure UEs as desired for that particular vendor.

[0121] The CU-CP 806 notifies (736) the first and second DUs 802, 804 of the handover policy, including its parameters and values. As shown in FIG. 8b, the notifying (736) may include the CU-CP 806 sending (826) a gNB-CU configuration policy message to the first DU 802 via the previously set up F1 communication interface (702) and sending (828) a gNB-CU configuration policy message to the second DU 804 via the previously set up F1 communication interface (704). Although FIG. 8b shows the CU-CP 806 sending (826) the handover policy to the first DU 802 before sending (828) the handover policy to the second DU 804, the CU-CP 806 may send (826) the handover policy to the first DU 802 after sending (828) the handover policy to the second DU 804.

[0122] As shown in Figure 8b, after informing the first and second DUs 802, 804 of the handover policy (736), the CU-CP 806 can use the performance feedback sent from the first DU 802 to the CU-CP 806 (830) and the performance feedback sent from the second DU 804 to the CU-CP 806 (832) to fine-tune the ML-based data collection and training algorithm (834). Thus, the algorithm can become more effective over time. The performance feedback can be sent (830, 832) any number of times, and thus the fine-tuning (834) can be repeated any number of times.

[0123] In some embodiments, such as those illustrated in FIGS. 7d ​​and 8c, where the CU-CP 806 receives data related to HO after F1 setup and before the CU-CP 806 receives notification (708) that a serving cell change is required for the UE, the data related to HO received by the CU-CP 806 includes resource availability for one or more cells for the DU. The resource availability includes availability in each of the one or more cells for one or more of ICBM, dynamic switching, mTRP, and LTM SCC. In some embodiments, the availability for each of ICBM, dynamic switching, mTRP, and LTM SCC is provided to the CU-CP 806, which may enable the CU-CP 806 to have as much information as possible about the resources available in the cell / beam group and make an informed configuration decision for the target cell.

[0124] As shown in Figures 7d and 8c, the first DU 802 may periodically transmit data related to HO, including resource availability of one or more cells of the first DU (738, 836). The second DU 804 may also periodically transmit data related to HO, including resource availability of one or more cells of the second DU, to the CU-CP 806 (740, 838). Although Figure 8c shows that the first DU 802 transmits data to the CU-CP 806 (738, 836) before the second DU 804 transmits data to the CU-CP 806 (740, 838), the second DU 804 may transmit data to the CU-CP 806 (740, 838) before the first DU 802 transmits data to the CU-CP 806 (738, 836). The periodic reporting of resource availability reflects that resources may become available or unavailable based on one or more new UEs being served by a particular DU, a particular DU ceasing service to one or more UEs, and / or the changing needs of one or more UEs being served by a particular DU.

[0125] The timing of the periodic reports from the DUs 802, 804 may be pre-programmed and based on one or more factors. As an example of a factor, the periodic reports may be sent according to a predetermined time schedule such that the reports are received periodically by the CU-CP 806. As another example of a factor, the periodic reports may be sent after a predetermined number of serving cell changes have occurred within the DU (e.g., a predetermined number of dynamic switches have occurred). As yet another example of a factor, the periodic reports may be sent based on the size of the report. Because a DU typically serves multiple UEs and data is sent to the CU-CP 806 for each UE, the reports may be large.

[0126] In some embodiments, such as those illustrated in FIGS. 7e and 8d, in which the CU-CP 806 receives data related to HO after F1 setup and before the CU-CP 806 receives notification (708) that the UE requires a serving cell change, the data related to HO received by the CU-CP 806 includes timing advance information for one or more beams or beam groups of the DU. The timing advance information may be the average timing advance value used by the UE in each beam or beam group for a given reference signal received power (RSRP) value or RSRP range. Thus, the data provided to the CU-CP 806 may also include the RSRP value or range and the beam or beam group associated with a given average TA value. The CU-CP 806 can use the received average TA information to determine the feasibility of ICBM in the target DU cell. The DU providing the average TA value may be configured to calculate the average TA so that it has such information available to provide to the CU-CP 806.

[0127] As shown in Figures 7e and 8d, the CU-CP 806 may send a request to the first DU 802 for data related to the HO, including the average TA, RSRP, and beam or beam group (742, 850). In response to receiving the request from the CU-CP 806, the first DU 802 may send a response to the CU-CP 806 acknowledging the request (852) and send the requested data related to the HO, including the average TA, RSRP, and beam or beam group, to the CU-CP 806 (854). As shown in Figure 8d, the request may be an F1 resource status request message, the response acknowledgment may be an F1 resource status response message, and the requested data may be sent in an F1 resource status update message (854). The CU-CP 806 may also send a request to the second DU 804 for data related to the HO, including the average TA, RSRP, and beam or beam group (744, 856). In response to receiving the request from the CU-CP 806, the second DU 804 sends a response to the CU-CP 806 acknowledging the request (858) and sends the requested data related to the HO, including the average TA, RSRP, and beam or beam group, to the CU-CP 806 (860). As shown in Figure 8d, the request may be an F1 resource status request message, the response acknowledgment may be an F1 resource status response message, and the requested data may be sent in an F1 resource status update message (860). Although Figure 8d shows the CU-CP 806 requesting data from the first DU 802 before the second DU 804, the CU-CP 806 may request data from the second DU 804 before the first DU 802. FIG. 8d also shows the first and second DUs 802, 804 each transmitting the average TA, RSRP, and beam or beam group to the CU-CP 806 in a resource status update message via the previously set up (702, 704) F1 communication interface.However, the first and second DUs 802, 804 may each transmit the average TA, RSRP, and beam or beam group to the CU-CP 806 in a separate non-UE-related message, such as a gNB-DU configuration update message. Furthermore, the transmitted (742, 744, 854, 860) RSRP values ​​may be categorized into small ranges to reduce implementation complexity.

[0128] The average TA, RSRP, and beam or beam group can be periodically transmitted (742, 744, 854, 860) from the DU to the CU-CP 806. Alternatively, the CU-CP 806 can request (850) the average TA, RSRP, and beam or beam group information from the serving DU 802 whenever an inter-DU LTM target cell is prepared.

[0129] In one embodiment, as shown in Figure 8d, the CU-CP 806 can provide the RSRP, beam or beam group, and average TA information received from one DU to each of the other DUs of the base station. Each DU can thus know the average TA of the beam / beam group of the other DUs and therefore know whether ICBM is feasible, e.g., whether ICBM can be configured for a UE in a given target cell. A UE that provides an RSRP for a target cell with a given timing advance value in the serving cell can compare it with the information received from the target DU 804 to determine whether ICBM is feasible in the target DU's cell. As shown in Figure 8d, the CU-CP 806 can transmit (862) the RSRP, beam or beam group, and average TA information for one or more beams or beam groups of the second DU 804 to the first DU 802, for example, in an F1 gNB-CU Configuration Update message, and can transmit (864) the RSRP, beam or beam group, and average TA information for one or more beams or beam groups of the first DU 802 to the second DU 804, for example, in an F1 gNB-CU Configuration Update message. Although Figure 8d shows the CU-CP transmitting (862) the average TA information to the first DU 802 before transmitting (864) the average TA information to the second DU 804, the average TA information can be transmitted (864) to the second DU 804 before the average TA information is transmitted (862) to the first DU 802.

[0130] 7a, in response to receiving a request from the CU-CP 808, for example, in response to receiving a UE context setup request message from the CU-CP 808, the target DU 804 prepares each of the at least one target cell for LTM (712). In this illustrated embodiment, the at least one target cell includes only the target DU 804 preparing one target cell.

[0131] The target DU 804 notifies the CU-CP 806 that it is ready. The notification to the CU-CP 806 may include the target DU 804 sending a UE context setup response message to the CU-CP 806 in accordance with the 3GPP standard using the previously set up (704) F1 communication interface.

[0132] In an embodiment, the CU-CP 806's requesting the target DU 804 to prepare at least one target cell may include the CU-CP 806 sending an indication of the target cell configuration, which is at least one of ICBM, dynamic switch, and LTM SCC. The CU-CP 806's previous receipt of at least one resource availability report from the second DU 804, e.g., as described above with respect to Figures 7d and 8c, may enable the CU-CP 806 to indicate the target cell configuration as at least one of ICBM, dynamic switch, and LTM SCC, with a higher likelihood of success than in the absence of such resource availability report, because the second DU 804 is known by the CU-CP 806 to have one or more ICBM, dynamic switch, and LTM SCC available as indicated, as at least in the last received resource availability report.

[0133] 8c shows an embodiment in which the request to the second DU 804 includes the CU-CP 806 indicating the target cell configuration to the second DU 804. As shown in FIG. 8c, the target cell configuration can be sent (846) to the second DU 804 in a UE context setup request message. FIG. 8c also shows the second DU 804 sending (848) a UE context setup response message to the CU-CP 806.

[0134] Referring again to FIG. 7a, the CU-CP 806 identifies each of the one or more LTM-capable target cells and includes information about each of the one or more target DUs, thereby: Small At least one LTM capableThe target cell is notified 714 to the serving DU 804. In an inter-DU LTM scenario, one or more of the target cells capable of handling at least one LTM belong to a DU different from the serving DU 802. For example, referring to the system of FIG. 6b, the serving DU may be a small cell 626 of the macro1 DU 628a, and one or more of the target cells may be one or more small cells 626 of the macro2 DU 628b and / or macro3 DU 628c.

[0135] The notification (714) to the serving DU 802 may include the CU-CP 806 sending a UE context modification request message to the serving DU 802 using the F1 communication interface previously set up (702). The UE context modification request message may include, for each of the one or more target DUs, cell identification information (e.g., a unique cell ID that identifies the target DU, such as a physical cell identifier (PCI)) or an index corresponding to the cell ID.

[0136] In response to being notified (714) of at least one LTM-capable target DU cell, the serving DU 802 stores the received information regarding the at least one LTM target cell, e.g., stores a list of LTM-capable target cells. Also, in response to being notified (714) of at least one target DU 804, the serving DU 802 can send a UE context modification response message to the CU-CP 806 using the F1 communication interface previously set up (702). The UE context modification response message is a response to the UE context modification response message identified by the CU-CP 806 for the UE. 1 One or more target cells Each ofThe UE context modification request message and the UE context modification response message may include integrated cell group configuration information about the target cell. The UE context modification request message and the UE context modification response message are each defined by 3GPP. Therefore, the serving DU 802 can receive information about at least one target cell from the CU-CP 806 and can acknowledge the reception to the CU-CP 806 using a message already sent for HO according to the 3GPP standard.

[0137] In an embodiment, the notification (714) to the serving DU 802 may include the CU-CP 806 indicating the target cell configuration to the serving DU 802. As described above, the indication of the target cell configuration may be at least one of ICBM, dynamic switching, and LTM SCC. For example, the indicated target cell configuration may be ICBM. In another example, the indicated target cell configuration may be dynamic switching. In yet another example, the indicated target cell configuration may be LTM SCC. In yet another example, the indicated target cell configuration may be ICBM and dynamic switching. In another example, the indicated target cell configuration may be LLM SCC and dynamic switching.

[0138] 8c shows an embodiment in which the notification to the serving DU 802 (714) includes the CU-CP 806 indicating the target cell configuration to the serving DU 802. As shown in FIG. 8c, the target cell configuration can be sent (842) to the serving DU 802 in a UE context modification request message. FIG. 8c also shows the serving DU 802 sending (842) a UE context modification response message to the CU-CP 806.

[0139] 7a, in response to receiving the UE context modification response message, the CU-CP 806 may send an RRC reconfiguration message to the UE in accordance with the 3GPP standard. The RRC reconfiguration message includes the LTM target cell configuration information, for example, as provided by the target DU 804 to the CU-CP 806 in the sent UE context setup response message.

[0140] In response to receiving the target cell configuration in the RRC reconfiguration message, the UE may send an L1 measurement report to the serving DU 802 in accordance with the 3GPP standard. The L1 measurement report provides the UE measured radio condition information of the configured target cell to the serving DU 802.

[0141] In response to receiving the L1 measurement report sent from the UE, the serving cell 802 selects 716 a target cell from among the one or more LTM-capable target cells identified for the serving DU 802. In this illustrated embodiment, because there is only one target cell (target DU 804) identified for the serving DU 802 by the CU-CP 806 as an LTM-capable target cell, the serving cell selection 716 is straightforward, and the serving DU 802 selects 716 the target DU 806. If there are multiple LTM-capable target cells in the serving DU 802 that meet the handover criteria, the serving DU 802 can select a target cell in any of a variety of ways, including selection according to conventional procedures in accordance with 3GPP.

[0142] In an embodiment in which there are multiple target cells identified for the serving DU 802 by the CU-CP 806, the target cell selection (716) of the serving cell may include determining which one or more of the multiple target cells have a radio quality above a predetermined threshold radio quality. The predetermined threshold radio quality is defined by the UE's radio conditions received by the serving DU 802 from the UE in an L1 measurement report. Thus, the serving DU 802 can take into account the specific needs of the particular UE involved in the HO when selecting (716) a target cell for HO. Furthermore, the L1 measurement report sent by the UE to the serving DU 802 reports L1 measurements, which may include reference signal received power (RSRP) as defined by 3GPP, for each of the multiple target cells, the identity of which is known by the UE as provided to the UE by the CU-CP 806 in the RRC reconfiguration message. Thus, the serving DU 802 can analyze the L1 measurement report received from the UE to determine which one or more of the multiple target cells have a radio quality above a predetermined threshold radio quality.

[0143] If only one of the multiple target cells satisfies the radio conditions of the UE, e.g., if only one of the target cells' radio qualities exceeds a predetermined threshold radio quality, the serving cell 802 selects that target cell 716. If two or more of the multiple target cells satisfy the radio conditions of the UE, e.g., if the target cells' radio qualities each exceed a predetermined threshold radio quality, any one of the target cells can serve the UE's needs, and one of the target cells can be selected randomly or according to another desired criteria.

[0144] Upon selecting 716 a target cell (e.g., target DU 804 in the illustrated embodiment of FIG. 8a), the serving DU 802 triggers 718 a serving cell change to the selected 716 target cell. Triggering 718 a serving cell change may include the serving DU 802 sending a MAC CE to the UE that includes a serving cell change command and identifies the selected 716 target cell for the UE, e.g., by PCI or other identifier.

[0145] The UE's receipt of the MAC CE indicates to the UE that an LTM serving cell change (SCC) should occur to the identified target cell, e.g., target DU 804 in the illustrated embodiment of FIGS. 8a-8d for the UE. Thus, in response to receiving the MAC CE from the serving cell 802, the UE initiates HO to the target cell (720). The HO may be performed in accordance with 3GPP standards. In response to the UE accessing the target cell, the target DU 804 may transmit a serving cell change notification to the CU-CP 806 via the previously set up Fl communication interface (704), identifying the target DU 804, e.g., by a unique identifier per 3GPP, as the new current serving cell for the UE for at least one service. Also, in response to receiving the MAC CE from the serving cell 802, the UE may transmit an RRC reconfiguration acknowledgement message to the CU-CP 806. Thus, the CU-CP 806 receives acknowledgements from both the UE via the RRC Reconfiguration Acknowledgement message indicating successful RRC reconfiguration at the UE and from the target DU 804 via the Serving Cell Change Notification that the target DU 804 is currently serving the UE for at least one service handed over from the serving DU 802.

[0146] In some embodiments, such as the various embodiments described above in connection with FIGS. 7a-8d, the CU-CP receives data related to HO of at least one service for the UE from a DU. In other embodiments, DUs in a base station may share their TA information directly with each other, such that a first DU receives data related to HO of at least one service for the UE from at least one other DU. Such inter-DU communication is not possible in 5G wireless communication systems, but may be possible in 6G or later wireless communication systems. In embodiments in which a first DU receives data from at least one other DU, the first DU may perform similarly as described above in connection with CU-CP 806 of FIGS. 7a-8d to request one or more of the at least one other DU to prepare at least one LTM target cell for HO of at least one service for the UE, taking the data into account.

[0147] 7b and 8a as an example of an embodiment in which inter-DU communication is possible, instead of the first DU 802 transmitting TA information of all beams / beam groups for each cell of the first DU 802 to the CU-CP 806, the first DU 802 transmits the TA information to the second DU 804, and instead of the second DU 804 transmitting TA information of all beams / beam groups for each cell of the second DU 804 to the CU-CP 806, the first DU 802 transmits the TA information to the first DU 802. Furthermore, instead of the CU-CP 806 selecting a configuration and requesting the second DU 804 to prepare at least one target cell according to the selected configuration, the first DU 802 performs such selection and request. DU-to-DU transmission of TA information does not occur during setup of the F1 communication interface because, as described above, the F1 communication interface is for CU-DU communication. Instead, the DU-to-DU transmission of TA information may be performed as appropriate during the setup of the communication interface between the first DU 802 and the second DU 804, in accordance with the standard associated with the wireless communication system in which the first and second DUs 802, 804 are configured to communicate.

[0148] FIG. 9 illustrates an exemplary architecture of a DU 900 that can be used as the architecture for the DUs 802, 804 of FIGS. 8a-8d. As illustrated in FIG. 9, the DU 900 includes a memory 902, a processor 904, a communication unit 906, and a configuration management controller 908. The communication unit 906 is configured to communicate internally among the internal hardware components of the DU 900 and with external devices via one or more networks. The communication unit 906 may include standard-specific electronic circuitry that enables wired or wireless communication. The configuration management controller 908 is configured to perform the configuration selection described above and includes the ... 902 The DU900 is configured to store the configuration therein. Multiple configurations may be stored in the memory, one configuration per UE, so that the DU900 maintains configurations for multiple UEs. 902 9 shows hardware components of the DU 900, other embodiments of the DU 900 are possible. For example, the DU 900 may include fewer or more components. One or more components may be combined together to perform the same or substantially similar technical features for latency management.

[0149] In one embodiment, the present subject matter may be configured to be implemented in a system 1000, as shown in FIG. 10 . The system 1000 may include one or more of a processor 1010, a memory 1020, a storage device 1030, and an input / output device 1040. Each of the components 1010, 1020, 1030, and 1040 may be interconnected using a system bus 1050. The processor 1010 may be configured to process instructions for execution within the system 600. In one embodiment, the processor 1010 may be a single-threaded processor. In alternative embodiments, the processor 1010 may be a multi-threaded processor. The processor 1010 may be further configured to process instructions stored in the memory 1020 or the storage device 1030, including receiving or sending information through the input / output device 1040. The memory 1020 may store information within the system 1000. In one embodiment, the memory 1020 may be a computer-readable medium. In alternative embodiments, memory 1020 may be a volatile memory unit. Additionally, in some embodiments, memory 1020 may be a non-volatile memory unit. Storage device 1030 may be capable of providing mass storage for system 1000. In some embodiments, storage device 1030 may be a computer-readable medium. In alternative embodiments, storage device 1030 may be a floppy disk device, a hard disk device, an optical disk device, a tape device, a non-volatile solid-state memory, or any other type of storage device. Input / output device 1040 may be configured to provide input / output operations to system 1000. In some embodiments, input / output device 1040 may include a keyboard and / or a pointing device. In alternative embodiments, input / output device 1040 may include a display unit for displaying a graphical user interface.

[0150] 11 illustrates an exemplary method 1100 for configuration selection enhancement for LTM, in accordance with an embodiment of the present subject matter. Method 1100 can be performed, for example, using the embodiments shown in and described with respect to FIGS.

[0151] The method 1100 includes receiving, at a CU-CP of the base station, data related to preparing an LTM HO configuration of at least one service for the UE from a first DU of the base station (1102). The method also includes, after receiving the data, requesting, by the CU-CP, a second DU of the base station to prepare, taking into account the data, at least one LTM target cell configuration for HO of the at least one service for the UE (1104).

[0152] In certain embodiments, the present subject matter may include one or more of the following optional features.

[0153] In an embodiment, the data may include timing advance information for each of a plurality of cells of the DU. Further, the CU-CP may receive the data in a procedure for setting up an F1 communication interface between the CU-CP and the first DU, and / or the CU-CP may receive the data in an F1 setup request message sent from the first DU to the CU-CP, or the timing advance information may include average timing advance information for a given reference signal received power (RSRP) value for each of a plurality of beams or beam groups of a plurality of cells of the second DU, and the CU-CP may receive the average timing advance information from the first DU before the CU-CP receives a message from the first DU that a service change is required for the UE, and / or the CU-CP may receive the data periodically in a non-UE-related procedure between the CU-CP and the second DU.

[0154] In an embodiment, receiving (1102) may include the CU-CP periodically receiving data from the first DU before the CU-CP receives a message from the first DU that a service change is required for the UE, and the method may also include, at the CU-CP, using machine learning to construct an HO policy based at least in part on the received data. Further, the data may include data related to at least one of a UE type, a UE speed, at least one service accessed by the UE at the first DU, and dynamic switching between the first cell and the second cell, and / or the method may further include receiving, at the CU-CP, performance data related to the first DU's service to the UE from the first DU currently serving the UE for the at least one service, and requesting may request the second DU to prepare at least one LTM target cell, also taking into account the data received from the first DU.

[0155] In an embodiment, the first DU may include at least one cell, the data may include resource availability for the at least one cell, and receiving may include the CU-CP periodically receiving resource availability from the first DU before the CU-CP receives a message from the first DU currently serving the UE for at least one service that a service change is required for the UE, and / or the resource availability may include availability in each of the at least one cell for inter-cell beam management (ICBM), dynamic switching, multi-transmit / receive point (mTRP), and LTM serving cell change (SCC).

[0156] In some embodiments, the requesting ( 1104 ) may include sending an indication of a target cell configuration, which is at least one of ICBM, dynamic switching, and LTM SCC, from the CU-CP to the second DU.

[0157] In an embodiment, the CU-CP may receive data from the first DU currently serving the UE for at least one service before the CU-CP receives a message from the first DU that the UE requires a service change.

[0158] In an embodiment, the method 1100 may also include, at the CU-CP, selecting a target cell configuration based at least in part on the received data.

[0159] In some embodiments, the base station may have a non-aggregated architecture.

[0160] In an embodiment, the base station may include an NG-RAN node, including a gNodeB or an ng-eNodeB.

[0161] In an embodiment, the base station may include at least one processor and may also include at least one non-transitory storage medium that stores instructions that, when executed by the at least one processor, cause the at least one processor to perform the method 1100.

[0162] The systems and methods disclosed herein may be embodied in various forms, including, for example, a data processor such as a computer, including a database, digital electronic circuitry, firmware, software, or any combination thereof. Furthermore, the above-described features and other aspects and principles of the disclosed embodiments may be implemented in a variety of environments. Such environments and associated applications may be specially constructed to perform the various processes and operations in accordance with the disclosed embodiments, or they may comprise general-purpose computers or computing platforms selectively activated or reconfigured by code to provide the required functionality. The processes disclosed herein are not inherently related to any particular computer, network, architecture, environment, or other apparatus, but may be implemented by any suitable combination of hardware, software, and / or firmware. For example, various general-purpose machines may be used with programs written in accordance with the teachings of the disclosed embodiments, or it may be more convenient to construct specialized apparatus or systems to perform the required methods and techniques.

[0163] The systems and methods disclosed herein can be implemented as a computer program product, i.e., a computer program tangibly embodied in an information carrier, e.g., a machine-readable storage device or a propagated signal, for execution by or to control the operation of a data processing apparatus, e.g., a programmable processor, a computer, or multiple computers. The computer program can be written in any form of programming language, including compiled or interpreted languages, and can be deployed in any form, including as a stand-alone program or as a module, component, subroutine, or other unit suitable for use in a computing environment. The computer program can be deployed to be executed on one computer or on multiple computers at one site or distributed across multiple sites and interconnected by a communications network.

[0164] As used herein, the term "user" can refer to any entity, including a person or a computer.

[0165] Although ordinal numbers such as first, second, etc. may relate to order in some circumstances, as used in this document, ordinal numbers do not necessarily imply order. For example, ordinal numbers may be used simply to distinguish one item from another. For example, distinguishing a first event from a second event need not imply any chronological order or fixed frame of reference (just as a first event in one paragraph of description may differ from a first event in another paragraph of description).

[0166] The foregoing description is intended to illustrate, but not to limit, the scope of the invention, which is defined by the appended claims. Other embodiments are within the scope of the following claims.

[0167] These computer programs, which may also be referred to as programs, software, software applications, applications, components, or code, include machine instructions for a programmable processor and may be implemented in a high-level procedural and / or object-oriented programming language and / or in assembly / machine language. As used herein, the term “machine-readable medium” refers to any computer program product, apparatus, and / or device used to provide machine instructions and / or data to a programmable processor, such as, for example, a magnetic disk, an optical disk, a memory, and a programmable logic device (PLD), including a machine-readable medium that receives machine instructions as a machine-readable signal. The term “machine-readable signal” refers to any signal used to provide machine instructions and / or data to a programmable processor. A machine-readable medium may non-transitory store such machine instructions, such as, for example, a non-transitory solid-state memory or a magnetic hard drive or any equivalent storage medium. Alternatively or additionally, a machine-readable medium may temporarily store such machine instructions, such as, for example, a processor cache or other random access memory associated with one or more physical processor cores.

[0168] To provide for user interaction, the subject matter described herein can be implemented on a computer having a display device, such as a cathode ray tube (CRT) or liquid crystal display (LCD) monitor, for displaying information to the user, and a keyboard and pointing device, such as a mouse or trackball, by which the user can provide input to the computer. Other types of devices can also be used to provide for user interaction. For example, feedback provided to the user can be any form of sensory feedback, such as, for example, visual feedback, auditory feedback, or tactile feedback, and input from the user can be received in any form, including, but not limited to, acoustic, speech, or tactile input.

[0169] The subject matter described herein may be implemented in a computing system that includes back-end components, such as, for example, one or more data servers, or that includes middleware components, such as, for example, one or more application servers, or that includes front-end components, such as, for example, one or more client computers having a graphical user interface or web browser through which a user can interact with an embodiment of the subject matter described herein, or any combination of such back-end, middleware, or front-end components. The components of the system may be interconnected by any form or medium of digital data communication, such as, for example, a communications network. Examples of communications networks include, but are not limited to, a local area network ("LAN"), a wide area network ("WAN"), and the Internet.

[0170] A computing system may include clients and servers. Clients and servers are generally, but not exclusively, remote from each other and typically interact through a communication network. The relationship of client and server arises by virtue of computer programs running on the respective computers and having a client-server relationship to each other.

[0171] The embodiments set forth in the foregoing description do not represent all embodiments consistent with the subject matter described herein. Rather, they are merely some examples consistent with aspects related to the described subject matter. While certain variations have been described in detail above, other modifications or additions are possible. In particular, further features and / or variations may be provided in addition to those described herein. For example, the above-described embodiments may be directed to various combinations and subcombinations of the disclosed features and / or combinations and subcombinations of certain additional features disclosed above. Additionally, the logic flow depicted in the accompanying figures and / or described herein does not necessarily require the particular order shown, or sequential order, to achieve desirable results. Other embodiments may be within the scope of the following claims.

Claims

1. at least one processor; at least one non-transitory storage medium that stores instructions; The instructions, when executed by the at least one processor, cause the at least one processor to: receiving, from a first distributed unit (DU) of a base station, data related to preparing a Layer 1 / Layer 2 triggered mobility (LTM) handover (HO) configuration of at least one service for a user equipment (UE), at a centralized unit control plane (CU-CP) of the base station; After receiving the data, requesting, by the CU-CP, a second DU of the base station to prepare, taking into account the data, at least one LTM target cell configuration for HO of the at least one service for the UE; Execute an action that includes Device.

2. The apparatus of claim 1 , wherein the data includes timing advance information for each of a plurality of cells of the second DU.

3. The apparatus of claim 2 , wherein the CU-CP receives the data in a procedure for setting up an F1 communication interface between the CU-CP and the first DU.

4. The apparatus of claim 3 , wherein the CU-CP receives the data in an F1 Setup Request message sent from the first DU to the CU-CP.

5. The timing advance information includes average timing advance information of a given reference signal received power (RSRP) value for each of a plurality of beams or beam groups of a plurality of cells of the second DU; The apparatus of claim 2, wherein the CU-CP receives the average timing advance information from the first DU before the CU-CP receives a message from the first DU indicating that a service change is required for the UE.

6. The apparatus of claim 5 , wherein the CU-CP periodically receives the data in a non-UE-related procedure between the CU-CP and the first DU.

7. the receiving includes the CU-CP periodically receiving the data from the first DU before the CU-CP receives a message from the first DU indicating that a service change is required for the UE; The apparatus of claim 1 , wherein the operations further comprise: at the CU-CP, using machine learning to construct a HO policy based at least in part on the received data.

8. The data is the type of the UE; the speed of the UE; At least one service accessed by the UE in the first DU; and Dynamic switching between a first cell and a second cell 8. The apparatus of claim 7, further comprising data relating to at least one of:

9. the operations further include receiving, at the CU-CP, from the first DU currently serving the UE for the at least one service, performance data related to the first DU's service to the UE; The apparatus of claim 7 , wherein the requesting requests the second DU to prepare the at least one LTM target cell also taking into account the data received from the first DU.

10. the first DU includes at least one cell; the data includes resource availability for the at least one cell; 2. The apparatus of claim 1, wherein the receiving includes the CU-CP periodically receiving the resource availability from the first DU currently serving the UE for the at least one service before the CU-CP receives a message from the first DU that a service change is required for the UE.

11. 11. The apparatus of claim 10, wherein the resource availability includes availability in each of the at least one cell for inter-cell beam management (ICBM), LTM serving cell change with dynamic switching (SCC), multi-transmit / receive point (mTRP), and LTM SCC.

12. 2. The apparatus of claim 1, wherein the requesting includes transmitting an indication of a target cell configuration, which is at least one of inter-cell beam management (ICBM), LTM serving cell change with dynamic switching (SCC), and LTM SCC, from the CU-CP to the second DU.

13. The apparatus of claim 1, wherein the CU-CP receives the data from the first DU currently serving the UE for the at least one service before the CU-CP receives a message from the first DU indicating that a service change is required for the UE.

14. The apparatus of claim 1 , wherein the operations further comprise: selecting, at the CU-CP, a target cell configuration based at least in part on the received data.

15. The apparatus of claim 1 , wherein the base station has a non-aggregated architecture.

16. 10. The apparatus of claim 1, wherein the base station comprises a Next Generation Radio Access Network (NG-RAN) node, including a gNodeB or an ng-eNodeB.

17. The apparatus of claim 1 , wherein the base station includes the at least one processor and the at least one non-transitory storage medium.

18. When executed by at least one processor, the method causes the at least one processor to: receiving, from a first distributed unit (DU) of a base station, data related to preparing a Layer 1 / Layer 2 triggered mobility (LTM) handover (HO) configuration of at least one service for a user equipment (UE), at a centralized unit control plane (CU-CP) of the base station; After receiving the data, requesting, by the CU-CP, a second DU of the base station to prepare, taking into account the data, at least one LTM target cell configuration for HO of the at least one service for the UE; At least one non-transitory storage medium storing instructions for performing operations including:

19. receiving, from a first distributed unit (DU) of the base station, data related to preparing a Layer 1 / Layer 2 triggered mobility (LTM) handover (HO) configuration of at least one service for a user equipment (UE), at a centralized unit control plane (CU-CP) of the base station; After receiving the data, requesting, by the CU-CP, a second DU of the base station to prepare, taking into account the data, at least one LTM target cell configuration for the HO of the at least one service for the UE; A computer-implemented method comprising:

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