Requesting a configuration change to a radio access network node

By passing configuration update messages between 5G RAN network nodes, detection and resolution of capacity and coverage problems under multi-connectivity and branch architectures is solved, and more efficient network configuration coordination and problem solving are achieved.

JP7675170B2Active Publication Date: 2025-05-12TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
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Patent Information

Application Number
JP2023507580
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-06
Filing Date
2021-08-05
Publication Date
2025-05-12
Estimated Expiration
2041-08-05

AI Technical Summary

Technical Problem

The existing technology is difficult to effectively solve the capacity and coverage problems in multi-connectivity and branch architecture scenarios in 5G RAN architecture.

Method used

Detection and resolution of capacity and coverage issues is achieved by passing configuration update request and response messages between network nodes. The specific steps include the first network node sending a configuration update request message to the second network node, the second network node receives the request and selects a configuration update, and sends a configuration update message back to the first network node.

Benefits of technology

It improves the configuration coordination efficiency between network nodes and effectively improves capacity and coverage problems in multi-connectivity and branch architecture scenarios.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A first network node may send a configuration update request message to a second network node in response to detecting a capacity and / or coverage problem in a network including the second network node. The configuration update request message may include an indication of a requested configuration change to the second network node. The first network node may receive a configuration update message from the second network node. The configuration update message may include an indication of a configuration update selected by the second network node.
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Description

[Technical field]

[0001] The present disclosure relates generally to communications, and more particularly to communication methods and associated devices and nodes supporting wireless communications. [Background technology]

[0002] The current 5G RAN (NG-RAN) architecture is shown in Figure 23. The NG architecture may be further described below. The NG-RAN consists of a set of gNBs connected to the 5GC through the NG. The gNBs may support FDD, TDD, or dual mode operation. The gNBs may be interconnected through an Xn interface. The gNBs may consist of a gNB-CU and a gNB-DU. The gNB-CU and gNB-DU are connected through an F1 logical interface. One gNB-DU is connected to only one gNB-CU. For resilience, a gNB-DU may be connected to multiple gNB-CUs by appropriate implementation. NG, Xn, and F1 are logical interfaces. The NG-RAN is layered into a Radio Network Layer (RNL) and a Transport Network Layer (TNL). The NG-RAN architecture, i.e., the NG-RAN logical nodes and the interfaces between them, are specified as part of the RNL. For each NG-RAN interface (NG, Xn, F1), the associated TNL protocols and functionality are specified. The TNL provides services for user plane transport and signalling transport.

[0003] A gNB may also be connected to an LTE eNB via an X2 interface. Another architectural option is that an LTE eNB connected to an evolved packet core network is connected through an X2 interface with a so-called nr-gNB, which is a gNB that is not directly connected to a CN but is connected to an eNB via X2 for the sole purpose of implementing dual connectivity.

[0004] The architecture of Figure 23 can be extended by bifurcating the gNB-CU into two entities: one gNB-CU-UP serving the user plane and hosting the PDCP protocol, and one gNB-CU-CP serving the control plane and hosting the PDCP and RRC protocols. For completeness, it should be said that the gNB-DU hosts the RLC / MAC / PHY protocols. Summary of the Invention

[0005] According to some embodiments of the inventive concept, there is provided a method of operating a first network node in a network including a second network node, wherein a configuration update request message is transmitted to the second network node, wherein the configuration update request message includes an indication of a requested configuration change for the second network node, and wherein a configuration update message is received from the second network node, wherein the configuration update message includes an indication of a configuration update selected by the second network node.

[0006] According to some other embodiments of the inventive concept, there is provided a method of operating a second network node in a network including a first network node. A configuration update request message is received from the first network node. The configuration update request message includes an indication of a requested configuration change for the second network node. A configuration update to be applied by the second network node is selected in response to receiving the configuration update request message. The configuration update message is transmitted to the first network node. The configuration update message includes an indication of the configuration update selected by the second network node.

[0007] According to some embodiments, capacity resolution and / or coverage issues may be ameliorated by providing communication of requested configuration and / or configuration update indications between network nodes.

[0008] The accompanying drawings, which are included to provide a further understanding of the disclosure and are incorporated in and constitute a part of this application, illustrate several non-limiting embodiments of the inventive concepts. [Brief description of the drawings]

[0009] [Figure 1] FIG. 2 is a message diagram illustrating RAN node-to-node signaling according to some embodiments of the inventive concept. [Diagram 2] FIG. 2 is a message diagram illustrating RAN node-to-node signaling according to some embodiments of the inventive concept. [Diagram 3] FIG. 2 is a message diagram illustrating RAN node-to-node signaling according to some embodiments of the inventive concept. [Figure 4] FIG. 1 illustrates an indication of a coverage hole according to some embodiments of the inventive concept. [Diagram 5] FIG. 1 illustrates indication of cell / beam edge movement according to some embodiments of the inventive concept. [Figure 6] FIG. 2 is a message diagram illustrating signaling between nodes in a branching node architecture, in accordance with some embodiments of the inventive concept. [Figure 7] FIG. 1 illustrates an indication of a coverage hole in a branched architecture in accordance with some embodiments of the inventive concept. [Figure 8] FIG. 1 is a message diagram illustrating signaling between gNB-CU nodes according to some embodiments of the inventive concept. [Figure 9] A message diagram showing signaling between a first and a second gNB-CU, and between a second gNB-CU and a gNB-DU, according to some embodiments of the inventive concept. [Figure 10] A message diagram showing signaling between a first gNB-CU and a gNB-DU, and between a first gNB-CU and a second gNB-CU, according to some embodiments of the inventive concept. [Figure 11A-B]FIG. 2 is a message diagram illustrating signaling between an NG-RAN node and an eNB in ​​accordance with some embodiments of the inventive concept. [Figure 12] A message diagram showing signaling between an eNB and a gNB-CU, and between a gNB-CU and a gNB-DU, according to some embodiments of the inventive concept. [Figure 13] A message diagram showing signaling between a gNB-CU and a gNB-DU, and between a gNB-CU and an eNB, according to some embodiments of the inventive concept. [Figure 14] A message diagram showing signaling between a gNB-CU and an eNB, and between a gNB-CU and a gNB-DU, according to some embodiments of the inventive concept. [Figure 15] FIG. 11 is a message diagram illustrating an EN-DC configuration update request message according to some embodiments of the inventive concept. [Figure 16] FIG. 11 is a message diagram illustrating an EN-DC configuration update request message according to some embodiments of the inventive concept. [Figure 17] FIG. 2 is a message diagram illustrating an EN-DC configuration update message in accordance with some embodiments of the inventive concept. [Figure 18] FIG. 2 is a message diagram illustrating an EN-DC configuration update message in accordance with some embodiments of the inventive concept. [Figure 19] FIG. 1 is a message diagram illustrating a NG-RAN configuration update request message in accordance with some embodiments of the inventive concept. [Figure 20] FIG. 1 is a message diagram illustrating an NG-RAN node configuration update message in accordance with some embodiments of the inventive concept. [Figure 21] FIG. 2 is a message diagram illustrating a GNB-DU configuration update message according to some embodiments of the inventive concept. [Figure 22] FIG. 11 is a message diagram illustrating a GNB-CU configuration update message according to some embodiments of the inventive concept. [Figure 23] FIG. 1 is a block diagram showing 5G RAN architecture. [Figure 24] FIG. 13 is a message diagram showing a successful eNB configuration update. [Diagram 25] FIG. 13 is a message diagram showing a failed eNB configuration update. [Figure 26] FIG. 13 is a message diagram showing a successful EN-DC configuration update initiated by an eNB. [Figure 27] A message diagram showing a successful EN-DC configuration update initiated by the en-gNB. [Figure 28] FIG. 13 is a message diagram showing a failed EN-DC configuration update initiated by an eNB. [Figure 29] A message diagram showing a failed EN-DC configuration update initiated by the en-gNB. [Diagram 30] FIG. 13 is a message diagram showing a successful NG-RAN node configuration update. [Diagram 31] FIG. 13 is a message diagram showing a failed NG-RAN node configuration update. [Diagram 32] 1 is a block diagram illustrating a wireless device UE according to some embodiments of the inventive concept. [Diagram 33] FIG. 1 is a block diagram illustrating a radio access network RAN ​​node (e.g., a base station eNB / gNB) in accordance with some embodiments of the inventive concept. [Diagram 34] A block diagram showing a core network CN node (e.g., an AMF node, an SMF node, etc.) according to some embodiments of the inventive concept. [Diagram 35] 4 is a flowchart illustrating the operation of a network node in accordance with some embodiments of the inventive concept. [Diagram 36] 4 is a flowchart illustrating the operation of a network node in accordance with some embodiments of the inventive concept. [Figure 37] 1 is a table illustrating an example of an inter-node communication interface according to some embodiments of the inventive concept. [Figure 38] 1 is a table illustrating an example of a Class 2 basic procedure, according to some embodiments of the inventive concepts. [Figure 39]1 is a table illustrating example IEs in an EN-DC CONFIGURATION UPDATE REQUEST message or an NG-RAN NODE CONFIGURATION UPDATE REQUEST message, in accordance with some embodiments of the inventive concept. [Diagram 40] 1 is a table illustrating example information associated with an EN-DC CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Diagram 41] 1 is a table illustrating example information associated with an EN-DC CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Diagram 42] 1 is a table illustrating example information associated with an EN-DC CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Diagram 43] 1 is a table illustrating an example of an NR Neighbor Information IE in accordance with some embodiments of the inventive concept. [Diagram 44] 1 is a table showing an example of an improved Class 2 base procedure, according to some embodiments of the inventive concepts. [Diagram 45] 1 is a table illustrating example information associated with an NG-RAN NODE CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Figure 46] 1 is a table illustrating example information associated with an NG-RAN NODE CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Figure 47] 1 is a table illustrating example information associated with an NG-RAN NODE CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Figure 48] 1 is a table illustrating example information associated with a GNB-DU CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Figure 49]1 is a table illustrating example information associated with a GNB-DU CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Figure 50] 1 is a table illustrating example information associated with a GNB-CU CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Figure 51] 1 is a table illustrating example information associated with a GNB-DU CONFIGURATION UPDATE message, in accordance with some embodiments of the inventive concept. [Figure 52] 1 is a block diagram of a wireless network according to some embodiments. [Diagram 53] FIG. 2 is a block diagram of a user equipment according to some embodiments. [Figure 54] FIG. 1 is a block diagram of a virtualization environment, according to some embodiments. [Figure 55] 1 is a block diagram of a communications network connected to a host computer through an intermediate network according to some embodiments. [Figure 56] FIG. 2 is a block diagram of a host computer communicating with user equipment via a base station over a partially wireless connection according to some embodiments. [Figure 57] 1 is a block diagram of a method implemented in a communications system including a host computer, a base station, and user equipment, according to some embodiments. [Figure 58] 1 is a block diagram of a method implemented in a communications system including a host computer, a base station, and user equipment, according to some embodiments. [Figure 59] 1 is a block diagram illustrating a method implemented in a communication system including a host computer, a base station, and user equipment, according to some embodiments of the inventive concept. [Figure 60] 1 is a block diagram of a method implemented in a communications system including a host computer, a base station, and user equipment, according to some embodiments. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] The inventive concept will now be described more fully hereinafter with reference to the accompanying drawings, in which examples of embodiments of the inventive concept are shown. However, the inventive concept may be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the inventive concept to those skilled in the art. It should also be noted that these embodiments are not mutually exclusive. It may be implicitly assumed that an element from one embodiment is present / used in another embodiment.

[0011] The following description presents various embodiments of the disclosed subject matter. These embodiments are presented as teaching examples and should not be construed as limiting the scope of the disclosed subject matter. For example, some details of the described embodiments may be modified, omitted, or expanded without departing from the scope of the described subject matter.

[0012] Consider now configuration updates: XnAP, X2AP, and F1AP procedures, in which a first network node can provide a second network node with information used by the second network node for Coverage and Capacity Optimization (CCO), i.e., to indicate (and potentially resolve) capacity and / or coverage issues ("CCI").

[0013] In the following, eNB Configuration Update is considered. The purpose of the eNB Configuration Update procedure is to update application level configuration data that is necessary for two eNBs to interoperate properly over the X2 interface.

[0014] The procedure uses non-UE related signaling. The successful operation of the eNB Configuration Update procedure is shown in the message diagram of Figure 24. If the Coverage Modification List IE is present, eNB2 shall use the information in the Cell Coverage Status IE to identify the cell deployment configuration for configuring mobility enabled by eNB1 towards the cell indicated by the ECGI IE. If the Cell Deployment Status Indicator IE is present in the Coverage Modification List IE, eNB2 shall consider the cell deployment configuration of the cell to be modified as the next planned configuration and shall remove a planned configuration if one is stored for this cell. If the Cell Deployment Status Indicator IE is present and the Cell Replacement Information IE contains a non-empty list of cells, eNB2 may use this list to avoid connection or re-establishment failures during re-configuration, e.g. consider the cells in the list as possible alternative handover targets. If the Cell Deployment Status Indicator IE is not present, eNB2 shall consider the cell deployment configuration of the cell to be modified as activated and shall replace any previous configuration for the cell indicated in the Coverage Modification List IE.

[0015] The operation of the eNB configuration update procedure failure is illustrated in the message diagram of Figure 25. The ENB CONFIGURATION UPDATE message is transmitted by the eNB to the peer eNB to transfer updated information for the TNL association.

[0016] In the following, the EN-DC Configuration Update is considered. The purpose of the EN-DC Configuration Update procedure is to update the application level configuration data required for the eNB and en-gNB to interoperate properly over the X2 interface.

[0017] The procedure uses UE-unrelated signaling. The successful operation of the EN-DC configuration update procedure is shown in the message diagrams of Figures 26 to 27. Figure 26 shows the successful operation of an eNB-initiated EN-DC configuration update, and Figure 27 shows the successful operation of an en-gNB-initiated EN-DC configuration update.

[0018] The operation of the EN-DC configuration update procedure failure is shown in the message diagrams of Figures 28 to 29. Figure 28 shows the operation of the eNB initiated EN-DC configuration update failure, and Figure 29 shows the operation of the en-gNB initiated EN-DC configuration update failure.

[0019] In the following, the X2AP ENB Configuration Update is considered: The X2AP ENB Configuration Update (also called "ENB CONFIGURATION UPDATE" message) contains a "Coverage Modification List" for a list of E-UTRA cells whose coverage has been modified, including an index "Cell Coverage Status" indicating the coverage configuration of the involved cell, and a "Replacement Cell" IE identifying a cell that may optionally be replaced.

[0020] In the following, the XnAP NG-RAN node configuration update is considered. For a gNB, the "NG-RAN NODE CONFIGURATION UPDATE" message contains updated configuration data for the NR cell served by the node transmitting the message ("Served Cells Updating NR" IE) and the "Cell Assistance Information NR". For an ng-eNB, the "NG-RAN NODE CONFIGURATION UPDATE" contains updated configuration data for the E-UTRA cell served by the node transmitting the message ("Served Cells Updating E-UTRA" IE) and the "Cell Assistance Information NR".

[0021] For a gNB, the "NG-RAN NODE CONFIGURATION UPDATE AKNOWLEDGE" message includes 1) configuration data for the NR cell served by the node transmitting the message ('Served Cell Information' IE in the "Served NR Cell" IE), 2) configuration data for NR neighbors of the NR cell served by the node transmitting the message ('Neighbor Information NR' IE in the "Served NR Cell" IE), and 3) configuration data for E-UTRA neighbors of the NR cell served by the node transmitting the message ('Neighbor Information E-UTRA' IE in the "Served NR Cell" IE).

[0022] The EN-DC configuration update message is transmitted by the initiating node to the peer neighbor node, allowing both nodes to interact for the EN-DC and transfer updated information for the TNL association.

[0023] In the following, the NG-RAN node configuration update is considered. The purpose of the NG-RAN node configuration update procedure is to update the application level configuration data required for two NG-RAN nodes to interoperate properly over the Xn-C interface. The procedure uses UE non-related signaling. The operation of a successful NG-RAN node configuration update is shown in the message diagram of Figure 30. The operation of an unsuccessful NG-RAN node configuration update is shown in the message diagram of Figure 31.

[0024] The NG-RAN NODE CONFIGURATION UPDATE message is transmitted by an NG-RAN node to neighboring NG-RAN nodes to transfer updated information for instances of the Xn-C interface.

[0025] In the following, reference signals in NR are considered. Two types of reference signals are defined for NR, SSB and CSI-RS. Some of their characteristics are reported below by 3GPP TS 38.331.

[0026] In the following, we consider the SSB. The IE SSB Index identifies the SS block within the SS burst, see TS 38.213, section 4.1. The IE SSB-MTC is used to configure the measurement timing configuration, i.e. the timing occasion at which the UE measures the SSB. The IE SSB-PositionQCL-Relationship is used to indicate the QCL relationship between the SSB positions at the frequency indicated by ssbFrequency (see TS 38.213, section 4.1). The value n1 corresponds to 1, the value n2 to 2, and so on. The IE SSB-ToMeasure is used to configure the pattern of the SSB.

[0027] In the following, the CSI-RS is considered. The IE NZP-CSI-RS-Resource is used to configure the non-zero power (NZP) CSI-RS transmitted in the cell the IE is included in, which the UE may be configured to measure (see TS 38.214, clause 5.2.2.3.1). Changing the configuration between periodic, semi-persistent or aperiodic for the NZP-CSI-RS-Resource is not supported without releases and adds. The IE NZP-CSI-RS-ResourceId is used to identify one NZP-CSI-RS-Resource. The IE NZP-CSI-RS-ResourceSet is a set of non-zero power (NZP) CSI-RS resources (their IDs) and set-specific parameters. The IE NZP-CSI-RS-ResourceSetId is used to identify one NZP-CSI-RS-ResourceSet.

[0028] However, current standards may not adequately address capacity and / or coverage issues, for example, in multi-connectivity and / or branched architecture scenarios.

[0029] 32 is a block diagram illustrating elements of a communications device UE 300 (also referred to as a mobile terminal, mobile communications terminal, wireless device, wireless communications device, wireless terminal, mobile device, wireless communications terminal, user equipment (UE), user equipment node / terminal / device, etc.) configured to provide wireless communications in accordance with an embodiment of the inventive concept. (The communications device 300 may be provided, for example, as described below with respect to wireless device 4110 of FIG. 52.) As shown, the communications device UE may include an antenna 307 (e.g., corresponding to antenna 4111 of FIG. 52) and a transceiver circuit 301 (e.g., corresponding to interface 4114 of FIG. 52, also referred to as a transceiver) including a transmitter and a receiver configured to provide uplink and downlink wireless communications with base station(s) of a radio access network (e.g., corresponding to network node 4160 of FIG. 52, also referred to as a RAN node). The communication device UE may also include a processing circuit 303 (e.g., corresponding to the processing circuit 4120 of FIG. 52, also referred to as a processor) coupled to the transceiver circuit, and a memory circuit 305 (e.g., corresponding to the device-readable medium 4130 of FIG. 52, also referred to as a memory) coupled to the processing circuit. The memory circuit 305 may include computer-readable program code that, when executed by the processing circuit 303, causes the processing circuit to perform operations according to embodiments disclosed herein. According to other embodiments, the processing circuit 303 may be defined to include a memory such that a separate memory circuit is not required. The communication device UE may also include an interface (such as a user interface) coupled to the processing circuit 303, and / or the communication device UE may be incorporated into a vehicle.

[0030] As described herein, operations of the communication device UE may be performed by the processing circuitry 303 and / or the transceiver circuitry 301. For example, the processing circuitry 303 may control the transceiver circuitry 301 to transmit communications through the transceiver circuitry 301 over an air interface to a radio access network node (also called a base station) and / or receive communications through the transceiver circuitry 301 over an air interface from a RAN node. Furthermore, modules may be stored in the memory circuitry 305 and may provide instructions such that, when instructions of the modules are executed by the processor circuitry 303, the processor circuitry 303 performs respective operations (e.g., operations described below with respect to exemplary embodiments related to wireless communication devices). According to some embodiments, the communication device UE 300 and / or elements / functions thereof may be embodied as virtual nodes and / or virtual machines.

[0031] FIG. 33 is a block diagram illustrating elements of a radio access network (RAN) node 400 (also referred to as a network node, base station, eNodeB / eNB, gNodeB / gNB, etc.) of a RAN configured to provide cellular communications, according to an embodiment of the inventive concept. (The RAN node 400 may be provided, for example, as described below with respect to the network node 4160 of FIG. 52.) As shown, the RAN node may include a transceiver circuit 401 (e.g., corresponding to a portion of the interface 4190 of FIG. 52, also referred to as a transceiver) including a transmitter and a receiver configured to provide uplink and downlink wireless communications with mobile terminals. The RAN node may include a network interface circuit 407 (e.g., corresponding to a portion of the interface 4190 of FIG. 52, also referred to as a network interface) configured to provide communications with other nodes of the RAN and / or core network CN (e.g., with other base stations). The network node may also include a processing circuit 403 (e.g., corresponding to processing circuit 4170, also referred to as a processor) coupled to the transceiver circuit, and a memory circuit 405 (e.g., corresponding to device readable medium 4180 of FIG. 52, also referred to as a memory) coupled to the processing circuit. The memory circuit 405 may include computer readable program code that, when executed by the processing circuit 403, causes the processing circuit to perform operations according to embodiments disclosed herein. According to other embodiments, the processing circuit 403 may be defined to include memory such that a separate memory circuit is not required.

[0032] As described herein, the operations of the RAN node may be performed by the processing circuitry 403, the network interface 407, and / or the transceiver 401. For example, the processing circuitry 403 may control the transceiver 401 to transmit downlink communications over the air interface through the transceiver 401 to one or more mobile terminals UEs and / or receive uplink communications over the air interface through the transceiver 401 from one or more mobile terminals UEs. Similarly, the processing circuitry 403 may control the network interface 407 to transmit communications over the network interface 407 to one or more other network nodes and / or receive communications from one or more other network nodes through the network interface. Additionally, modules may be stored in the memory 405 that may provide instructions such that, when instructions of the modules are executed by the processor circuitry 403, the processor circuitry 403 performs respective operations (e.g., operations described below with respect to exemplary embodiments related to a RAN node). According to some embodiments, the RAN node 400 and / or elements / functions thereof may be embodied as virtual nodes and / or virtual machines.

[0033] According to some other embodiments, the network node may be implemented as a core network CN node lacking a transceiver. In such embodiments, a transmission to the wireless communication device UE may be initiated by the network node such that the transmission to the wireless communication device UE is provided through a network node that includes a transceiver (e.g., through a base station or a RAN node). According to an embodiment in which the network node is a RAN node that includes a transceiver, initiating the transmission may include transmitting through the transceiver.

[0034] FIG. 34 is a block diagram illustrating elements of a core network CN node (e.g., SMF node, AMF node, etc.) of a communication network configured to provide cellular communications, according to an embodiment of the inventive concept. As shown, the CN node may include a network interface circuit 507 (also referred to as a network interface) configured to provide communications with other nodes of the core network and / or radio access network RAN. The CN node may also include a processing circuit 503 (also referred to as a processor) coupled to the network interface circuit, and a memory circuit 505 (also referred to as a memory) coupled to the processing circuit. The memory circuit 505 may include computer readable program code that, when executed by the processing circuit 503, causes the processing circuit to perform operations according to embodiments disclosed herein. According to other embodiments, the processing circuit 503 may be defined to include memory such that a separate memory circuit is not required.

[0035] As described herein, the operations of the CN node may be performed by the processing circuitry 503 and / or the network interface circuitry 507. For example, the processing circuitry 503 may control the network interface circuitry 507 to transmit communications through the network interface circuitry 507 to one or more other network nodes and / or to receive communications through the network interface circuitry from one or more other network nodes. Additionally, modules may be stored in the memory 505 that may provide instructions such that, when the instructions of the modules are executed by the processor circuitry 503, the processor circuitry 503 performs respective operations (e.g., operations described below with respect to exemplary embodiments relating to core network nodes). According to some embodiments, the CN node 500 and / or elements / functions thereof may be embodied as virtual nodes and / or virtual machines.

[0036] The XnAP and X2AP procedures defined in the 3GPP technical specifications for LTE and NG-RAN systems allow a first RAN node to provide information to a second RAN node about changes in its configuration. In LTE, an eNB can use such procedures to inform neighboring gNBs about changes in the coverage and capacity of one or more of its serving cells.

[0037] Current solutions do not support resolving capacity and coverage issues in the case of multi-connectivity (such as EN-DC or NR-NR) or branched architectures.

[0038] Furthermore, current approaches may not support indicating that a detected capacity and coverage problem has not been resolved, nor may they support alternative approaches to resolving it, as described in this invention.

[0039] According to some embodiments, the procedure performed by the first RAN node may provide for improving / optimizing the coverage and capacity of the serving radio cell or the reference signal (RS) (such as SSB beam or CSI-RS beam) of the serving radio cell. The procedure may include transmitting a first instruction to the second RAN node. The first instruction may include a RAN NODE CONFIGURATION UPDATE REQUEST message. In some examples, the message, the action, or the procedure may be named differently. The purpose of the message is to generate a trigger condition for a RAN node configuration update procedure. That is, the message may include information such as an indication of the problem faced, as well as measurements for the problem faced and signaled in the message, which trigger the receiving node to initiate a node configuration update. Such a node configuration update then triggers inter-node signaling to inform neighboring nodes of the configuration changes that have been applied or should be applied.

[0040] The method may further include receiving a second indication from the second RAN node, the second indication including a RAN NODE CONFIGURATION UPDATE associated with at least one serving cell or at least a reference signal (RS) beam coverage area of ​​the second RAN node.

[0041] The terms "RAN node" or "network node" may be used interchangeably herein.

[0042] An embodiment relating to the first RAN node may further include transmitting a third indication to the second RAN node. The third indication may include a RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE. The first indication may include an indication of a cell identity of the second RAN node that may be related to a capacity and / or coverage issue, an indication of a cell identity of the first RAN node that may be related to a capacity and / or coverage issue, an indication of an RS beam identity of the second RAN node that may be related to a capacity and / or coverage issue (the RS beam may further be associated with a serving cell identity, e.g., indicating that an SSB index alone may not be sufficient), an indication of an RS beam identity of the first RAN node that may be related to a capacity and / or coverage issue (the RS beam may further be associated with a serving cell identity, e.g., indicating that an SSB index alone may not be sufficient). The report may further include an indication of the type of capacity and / or coverage problem detected by the first RAN node, such as a serving cell of the first RAN node or a RS beam of a serving cell of the first RAN node for which the capacity and / or coverage problem has been detected by the first network node, such as a capacity problem (such as a high demand for service or high interference caused by a large number of users at a cell edge), a coverage problem (such as a coverage hole, an imbalance between uplink and downlink coverage), an indication of a UE identity that may be associated with the capacity and / or coverage problem, and / or one or more UE measurement reports associated to a serving cell of the first RAN node or an RS beam of a serving cell of the first RAN node for which the capacity and / or coverage problem has been detected by the first network node.

[0043] The first RAN node may be one of an eNB, an NG-RAN node, an en-gNB, and a gNB-CU. The second RAN node may be one of an eNB, an NG-RAN node, and a gNB-DU. The first, second, or third indication is transmitted over an inter-node communication interface, such as a 3GPP X2 interface, a 3GPP Xn interface, a 3GPP F1 interface, or an equivalent interface, for example as shown in FIG. 37.

[0044] In some embodiments, operations performed by a second RAN node may be provided for improving / optimizing a coverage area of ​​a reference signal (RS) beam. The operations may include receiving a first indication from the first RAN node. The first indication may include a RAN NODE CONFIGURATION UPDATE REQUEST message. The operations may further include determining a new RAN NODE CONFIGURATION UPDATE for at least a serving cell of the second RAN node or at least an RS beam coverage area of ​​a serving cell of the second RAN node based on the first indication. The operations may further include transmitting a second indication to the first RAN node. The second indication may include a RAN NODE CONFIGURATION UPDATE associated with at least one serving cell or at least an RS beam coverage area of ​​the second RAN node.

[0045] In a further or alternative embodiment, the first RAN node may receive a third indication from the first RAN node, the third indication including a RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE.

[0046] In additional or alternative embodiments, a different procedural structure may be used where instead of relying on improvements to the RAN node configuration update procedure, a new procedure is defined. In some examples, the new procedure may include a first instruction from the first RAN node to the second RAN node, including content similar to that described with respect to the RAN node configuration update request. This message may be named a CCO change request. In additional or alternative examples, a second instruction may be transmitted from the second RAN node to the first RAN node, including information similar to that described in this disclosure with respect to the RAN node configuration update. Such a message may be named a CCO change acknowledgement.

[0047] In additional or alternative embodiments, after receiving the CCO change request, the second RAN node may send back to the first RAN node a message listing the CCO changes applied by the second RAN node, in response to which the first RAN node is expected to issue an acknowledgement of the properly received CCO change configuration. In such embodiments, the message transmitted by the second RAN node may be named CCO change. Upon receiving the CCO change, the first RAN node may send back a CCO change acknowledgement that it has properly received and adopted the changes applied by the second RAN node.

[0048] In additional or alternative embodiments, a first RAN node may be enabled to trigger and coordinate the elimination of coverage or capacity issues by a second (neighbor) RAN node. This may be particularly beneficial if the first RAN node is unable to eliminate the issue itself. In this case, the proposed solution allows for the coverage or capacity issue to be efficiently eliminated using inter-RAN node signaling that points out the serving cell or associated reference signal (such as SSB or CSI-RS beam) that is of interest for the capacity or coverage issue, thereby enabling precise and efficient optimization of coverage and capacity.

[0049] We now consider operations performed by the first network node according to some embodiments.

[0050] In some embodiments, the operations are performed by a first network node to improve / optimize coverage and capacity of a serving radio cell or a reference signal (RS) beam (e.g., an SSB beam or a CSI-RS beam, etc.) defined in the serving radio cell. The operations may include transmitting a first instruction to a second network node. The first instruction may include a message similar to a RAN NODE CONFIGURATION UPDATE REQUEST (e.g., an "NG-RAN NODE CONFIGURATION UPDATE REQUEST" message). The operations may further include receiving a second instruction from the second network node. The second instruction may include a message similar to a RAN NODE CONFIGURATION UPDATE (e.g., an "NG-RAN NODE CONFIGURATION UPDATE" message) related to at least one serving cell or at least a reference signal (RS) beam coverage area of ​​the second network node.

[0051] In additional or alternative embodiments, the first network node may send a third indication to the second network node. The third indication may include a message similar to the RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE (e.g., an “NG-RAN NODE CONFIGURATION AKNOWLEDGE” message).

[0052] Figure 1 illustrates RAN inter-node signaling, according to some embodiments. In some embodiments, the first and second network nodes may employ CCO-specific procedures rather than relying on configuration update procedures. This may be a suitable design because the node configuration update procedures that exist today in the Xn, X2, and F1 interfaces are for indicating configuration changes to a given node that are potentially independent of any trigger conditions signaled by external nodes.

[0053] Although the node configuration update procedure may be adapted to be triggered upon detection of an external node signal, e.g., a particular event or particular information that when analyzed triggers a configuration action at the receiving node, a possible design may be to leave the node configuration update procedure unchanged and instead prescribe a CCO-specific procedure. In this example, the procedure prescribe herein may be as shown in FIG. 2.

[0054] Figure 2 illustrates alternative inter-RAN node signaling according to some embodiments. In Figure 2, the CCO CHANGE ACKNOWLEDGE may not be present. If this message is not present, it is assumed that any CCO changes applied to the second RAN node's configuration and signaled to the first RAN node are accepted by the first RAN node.

[0055] In some examples, the information included in the CCO CHANGE REQUEST and the behavior of the node receiving the message is equivalent to the information included in the RAN NODE CONFIGURATION UPDATE REQUEST message of the present disclosure. In additional or alternative examples, the information included in the CCO CHANGE and the behavior of the node receiving the message is equivalent to the information included in the RAN NODE CONFIGURATION UPDATE message of the present disclosure. In additional or alternative examples, the information included in the CCO CHANGE ACKNOWLEDGE and the behavior of the node receiving the message is equivalent to the information included in the RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE message of the present disclosure.

[0056] Next, embodiments related to the contents of the first instruction are considered. In some embodiments, the RAN NODE CONFIGURATION UPDATE REQUEST message transmitted with the first instruction includes one or more of the following: In some examples, the first instruction includes an indication of a capacity and / or coverage problem (sometimes referred to herein as CCI) detected by the first network node associated with a serving cell and / or RS beam of the first network node or a serving cell and / or RS beam of the second network node, such as an indication of a capacity problem involving one or more served and / or neighboring cells, an indication of a coverage problem (e.g., coverage hole) involving one or more served and / or neighboring cells, an indication of cell / beam edge movement due to cell border interference, an indication of cell / beam edge movement due to coverage optimization, and an indication of uplink / downlink coverage imbalance involving one or more served and / or neighboring cells. In a further or alternative example, the first instruction includes an identity of at least a serving cell of the first network node associated with the capacity and / or coverage problem. In a further or alternative example, the first instruction includes an identity of at least a serving cell of the second network node associated with the capacity and / or coverage problem. In a further or alternative example, the first instruction includes an identity of at least an RS beam of a serving cell of the first network node associated with the capacity and / or coverage problem. The RS beam identity may be further related to the serving cell identity of the first network node. In a further or alternative example, the first instruction includes an identity of at least an RS beam of a serving cell of the second network node associated with the capacity and / or coverage problem. The RS beam identity may be further related to the serving cell identity of the second network node.In additional or alternative examples, the first instructions include instructions for recommended configuration updates for a serving cell of the second network node or for an RS beam of a serving cell to eliminate the problem, such as shrinking the coverage area of ​​the serving cell and / or RS beam, expanding the coverage area of ​​the serving cell and / or RS beam, merging the coverage areas of two or more serving cells or RS beams, and branching the coverage areas of the serving cell and / or RS beam. In additional or alternative examples, the first instructions include an identity of at least one UE or a group of UEs associated with the capacity and / or coverage problem. In additional or alternative examples, the first instructions include one or more UE measurement reports associated with a serving cell of the first network node or an RS beam of a serving cell of the first network node for which the capacity and / or coverage problem was detected by the first network node. In an additional or alternative example, the first indication includes one or more UE measurement reports relating to a serving cell of the second network node, or an RS beam of a serving cell of the second network node, for which a capacity and / or coverage problem has been detected by the first network node.

[0057] In some embodiments, the request message may indicate a required action for the second network node or an optional action for the second network node.

[0058] Next, embodiments relating to NG-RAN or LTE architectures are considered. In some embodiments, the first and second network nodes are RAN nodes of the same radio access network technology, such as two NG-RAN nodes (e.g., two gNBs) of a 3GGP NG-RAN system connected via an Xn interface, and two LTE RAN nodes (e.g., two eNBs) of a 3GGP NG-RAN system connected via an X2 interface. In some examples, embodiments apply other RAN technologies. Figure 3 illustrates such an embodiment for two NG-RAN nodes of a 3GPP NG-RAN system.

[0059] In one example shown in FIG. 4, NG-RAN node 1 indicates to NG-RAN node 2 a coverage hole detection in the neighborhood of one or more RS beams of the serving cell. The indicated RS beams can be related to the serving cell of NG-RAN node 1 itself and / or to the serving cell of NG-RAN node 2. In one possible implementation of an embodiment, the RAN NODE CONFIGURATION UPDATE REQUEST may thus include the identity of the relevant serving cell and RS beam of NG-RAN node 1 and / or NG-RAN node 2. In addition, the RAN NODE CONFIGURATION UPDATE REQUEST may indicate the type of capacity and / or coverage problem (e.g., coverage hole), the recommended action to eliminate the problem (e.g., an indication of whether to shrink / expand the coverage area of ​​the RS beam, or whether to branch / merge the RS beam).

[0060] Thus, the second indication sent by NG-RAN node 2 may include a RAN NODE CONFIGURATION UPDATE indicating a configuration update for at least the serving cell, or for at least the RS beam of the serving cell of NG-RAN node 2, that resolves the capacity and / or coverage problem.

[0061] 4 shows an example where NG-RAN node 1 indicates coverage holes in the vicinity of one or more RS beams to NG-RAN node 2. The RS beams indicated by NG-RAN node 1 may belong to NG-RAN node 1 itself and / or to NG-RAN node 2.

[0062] In a different example shown in Figure 5, also using a similar RS architecture scenario, NG-RAN node 1 indicates edge movement related to its cell or RS beam due to cell edge interference to NG-RAN node 2. In this case, the RAN NODE CONFIGURATION UPDATE REQUEST sent within the first indication would indicate all information elements necessary to identify different types of capacity and / or coverage problems (e.g., a flag indicating edge movement due to cell edge interference) and the serving cell or RS beam of NG-RAN node 2 associated with the capacity and / or coverage problem.

[0063] FIG. 5 shows an example where NG-RAN node 1 indicates cell / beam edge movement of NG-RAN node 2 due to cell border interference.

[0064] Next, an embodiment regarding an NG-RAN branched architecture is considered. In one example shown in FIG. 6, the first network node is a gNB central unit (gNB-CU) of an NG-RAN node, and the second network node is a gNB distributed unit (gNB-DU) of an NG-RAN node. In this case, the gNB-CU is an RRC anchor point for user devices that transmit RRC measurement reports to the gNB-CU. Based on measurement reports from user devices, such as RRC reports, the gNB-CU can detect potential coverage or capacity problems with serving cells of the underlying gNB-DU with which the gNB-CU shares a communication interface (e.g., F1 interface).

[0065] In this example, the gNB-CU detects a capacity and / or coverage problem associated with the gNB-DU. Identification of the capacity and / or coverage problem may occur in various forms. Non-existent examples are provided below for the NR case: 1) the first network node is a gNB-CU-CP, the second network node is a gNB-DU, and the gNB-CU-CP autonomously detects the capacity and / or coverage problem, and 2) the first network node is a gNB-CU-CP, the second network node is a gNB-DU, and the gNB-CU-CP receives a signal from the gNB-DU indicating detection of the capacity and / or coverage problem.

[0066] The first network node is a first gNB-CU-CP and the second network node is a gNB-DU, and the first gNB-CU-CP receives a signal from a third network node, such as a second gNB-CU-CP, indicating detection of a capacity and / or coverage problem.

[0067] Additionally, in this case, the first network node (i.e., gNB-CU) may identify a capacity and / or coverage problem associated with a cell and / or RS beam (e.g., an SSB beam or a CSI-RS beam) of the second node (gNB-DU), such as, for example, one of an indication of a capacity problem, an indication of a coverage problem (e.g., a coverage hole), an indication of cell / beam edge movement due to cell edge interference, and an indication of uplink / downlink coverage imbalance.

[0068] 6 provides an illustration of an embodiment in which the first and second network nodes belong to an NG-RAN node having a branched architecture. In this example, the first network node is a gNB-CU and the second network node is a gNB-DU. The gNB-CU detects a coverage or capacity problem using a serving cell or an RS beam of a serving cell of the gNB-DU, and the gNB-DU resolves the problem.

[0069] In one example shown in Figures 6-7, a first network node (gNB-CU) indicates to a second network node (gNB-DU) a coverage hole in the neighborhood of one or more RS beams of the second network node. In one possible implementation of the embodiment, the first indication includes a gNB-CU configuration update indicating the possible capacity and / or coverage problem to the gNB-DU, for example, including one or more information elements in the following group: identification information of the gNB-CU's associated serving cell and RS beam, the type of capacity and / or coverage problem (e.g., coverage hole), and a recommended action to eliminate the problem (e.g., an indication of whether to shrink / expand the coverage area of ​​the RS beam, or an indication of whether to branch / merge the RS beam).

[0070] The second instruction sent by the second network node (i.e., gNB-DU) may include a gNB-DU NODE CONFIGURATION UPDATE indicating a configuration update for at least the serving cell or for at least the RS beam of the serving cell of the gNB-DU associated with the capacity and / or coverage problem to eliminate the capacity and / or coverage problem. Thus, the second instruction sent by the second network node may include a RAN NODE CONFIGURATION UPDATE indicating a configuration update for at least the serving cell or for at least the RS beam of the serving cell of the second network node that eliminates the capacity and / or coverage problem.

[0071] 7 shows an example where the first and second network nodes belong to an NG-RAN node having a branched architecture, where the first network node is a gNB-CU and the second network node is a gNB-DU, and the gNB-CU presents a coverage hole to the gNB-DU in the neighborhood of the RS beam of the gNB-DU.

[0072] We now consider an additional scenario regarding a RAN branched architecture: In some embodiments, the first and second network nodes are both gNB-CU nodes of an NG-RAN system having a branched architecture, as shown in Figure 8. In this case, the two nodes may communicate over an Xn interface.

[0073] FIG. 8 provides an illustration of the method applied to a case in which the first and second network nodes are two gNB-CU nodes of an NG-RAN system having a branched architecture.

[0074] In one embodiment, a first network node (gNB-CU1) indicates to a second network node (gNB-CU2) the detection of a capacity and / or coverage problem associated with one or more of: an identity of a serving cell of the first network node or an RS beam within the serving cell associated with the capacity and / or coverage problem, an identity of a serving cell of the first network node or an RS beam within the serving cell associated with the capacity and / or coverage problem, a type of the detected capacity and / or coverage problem (as exemplified in the embodiments described above), and a recommended action to resolve the capacity and / or coverage problem (as exemplified in the embodiments described above).

[0075] In one possible implementation of the embodiment, the first instruction including the gNB-CU CONFIGURATION UPDATE REQUEST may therefore include identification information of the relevant serving cell and RS beam of the NG-RAN node 1 and / or NG-RAN node 2. In addition, the gNB-CU CONFIGURATION UPDATE REQUEST may include the type of capacity and / or coverage problem (e.g., coverage hole), the recommended action to eliminate the problem (e.g., an instruction to shrink / expand the coverage area of ​​the RS beam or not, or an instruction to branch / merge the RS beam or not). The second instruction sent by the gNB-CU2 node may therefore include a gNB-CU CONFIGURATION UPDATE indicating a configuration update for at least the serving cell, or for at least the RS beam of the serving cell of the NG-gNB-CU2, that eliminates the capacity and / or coverage problem.

[0076] In some embodiments, the operations may be performed multiple times in a cascaded manner to address capacity and / or coverage issues involving multiple RAN nodes. Figure 9 illustrates an example where operations are applied twice in a cascaded manner in an NG-RAN branched architecture: first between a gNB-CU of a first NG-RAN node having a branched architecture (i.e., gNB-CU1) and a gNB-CU of a second NG-RAN node having a branched architecture (i.e., gNB-CU2), and then between the gNB-CU and an associated gNB-DU of the second RAN node associated with the capacity and / or coverage issue. In an alternative embodiment not shown in FIG. 9, the second RAN node may trigger pre-existing RAN NODE CONFIGURATION PROCEDURES based on the RAN NODE CONFIGURATION UPDATE REQUEST received from gNB-CU1, such as a 3GPP gNB-CU configuration update procedure between gNB-CU2 and its corresponding associated gNB-DU, and a 3GPP gNB-DU configuration update procedure between gNB-DU and its corresponding gNB-CU2.

[0077] 9 provides an example illustration in which the method is applied twice in a cascaded manner in a RAN branched architecture, once between a gNB-CU of a first NG-RAN node having a branched architecture (i.e., gNB-CU1) and a gNB-CU of a second NG-RAN node having a branched architecture (i.e., gNB-CU2), and a second time between the gNB-CU and an associated gNB-DU of the second RAN node associated with the capacity and / or coverage problem. In the example of FIG. 9, the first gNB-CU (i.e., gNB-CU1) sends a first indication to the second gNB-CU (i.e., gNB-CU2) indicating a capacity and / or coverage problem with at least a serving cell or RS beam of gNB-CU1 or gNB-CU2. In this case, the first indication may include a gNB-CU CONFIGURATION UPDATE REQUEST and may be sent over the Xn interface.

[0078] In this example, gNB-CU2 again performs the operation by transmitting another first instruction to the gNB-DU that is associated with the capacity and / or coverage problem detected by gNB-CU1. In this case, the new first instruction may include another gNB-CU CONFIGURATION UPDATE REQUEST and may send an indication of the existence of the capacity and / or coverage problem to the associated gNB-DU over the F1 interface, as in the embodiment described in the section Error! Reference source not found.

[0079] In this example, the concerned gNB-DU may then take action to resolve the capacity and / or coverage problem indicated by the gNB-CU2, e.g., send a second instruction to the gUB-CU2 indicating a new RAN node configuration for the cell or RS beam that is being updated to resolve the capacity and / or coverage problem. In this case, the second instruction may include a gNB-DU CONFIGURATION UPDATE and may be sent over the F1 interface.

[0080] In this example, the gNB-CU2 may then send a third indication to the gNB-DU to acknowledge the new configuration received from the gNB-CU. In this case, the third indication may include a gNB-CU CONFIGURATION UPDATE ACKNOWLEDGE and may be sent over the F1 interface.

[0081] In this example, gNB-CU2 may send another second indication to gNB-CU1 indicating a new RAN node configuration for the cell or RS beam that has been updated to address, for example, the capacity and / or coverage issue. In this case, the additional second indication may include a gNB-DU CONFIGURATION UPDATE and may be sent over the Xn interface.

[0082] In this example, gNB-CU1 may send another third indication to gNB-CU2 to acknowledge the new configuration received from gNB-CU2, in this case the third indication may include a gNB-CU CONFIGURATION UPDATE ACKNOWLEDGE and may be sent over the Xn interface.

[0083] In another example shown in Figure 10, the procedure is applied between a first network node and a second network node, and the first network node, upon receiving a second instruction including a RAN node configuration update for a serving cell or RS beam of the second network node, further transmits the received information to a third network node. Although this example illustrates a case where the first network node is a gNB-CU and the second network node is a gNB-DU connected to the gNB-CU using an F1 interface or the like, the third network node can be an NG-RAN node, an eNB, a gNB-CU, etc. Upon receiving the second instruction from the gNB-DU, the gNB-CU further forwards all or a part of the information received with the second instruction to another RAN node, for example for a gNB-CU CONFIGURATION UPDATE.

[0084] FIG. 10 shows an example in which the first network node is a gNB-CU, the second network node is a gNB-DU connected to the gNB-CU using an F1 interface or the like, and the gNB-CU further forwards all or part of the information received from the gNB-DU to a third network node, such as an NG-RAN node, an eNB, or a gNB-CU.

[0085]

[0036] Next, embodiments relating to inter-RAT architectures are considered. In some embodiments, the first network node and the second network node are RAN nodes of different radio access network technologies, such as an NG-RAN node of a 3GPP NG-RAN system, an eNB node of a 3GPP LTE system, and a RAN node operating in unlicensed spectrum, such as a WiFi access point.

[0086] 11A-11B show two examples of inter-RAT application of the method. In both examples, the method is applied between a 3GPP NG-RAN node and a 3GPP LTE node. In FIG. 11A, the first network node is an NG-RAN node and the second network node is an LTE node such as an eNB. In FIG. 11B, the first network node is a 3GPP LTE eNB and the second network node is an NG-RAN node. In both examples, the first and second network nodes can communicate over an X2 interface.

[0087] 11A-11B show examples of inter-RAT application of the method. In both examples, the method is applied between a 3GPP NG-RAN node and a 3GPP LTE node. In FIG. 11A, the first network node is an NG-RAN node and the second network node is an LTE node, such as an eNB. Thus, in this example, the NG-RAN node can request the 3GPP LTE eNB to update the configuration for the serving radio cell to eliminate the capacity and / or coverage problem. In FIG. 11B, the first network node is a 3GPP LTE eNB and the second network node is an NG-RAN node. In both examples, the first and second network nodes can communicate through an X2 interface. Then, in this example, the 3GPP LTE eNB can request the 3GPP NR node to update the configuration for the serving radio cell to eliminate the capacity and / or coverage problem. It will be clear to the reader skilled in the art that similar examples can be devised between any two nodes of different radio access technologies that share a communication interface.

[0088] In the following, we consider a scenario of inter-RAN architecture. Several embodiments herein can be combined to solve coverage and capacity problems with multiple RAN nodes of different RATs. Figure 12 shows an example where the procedure is applied twice in a cascaded manner, first between the eNB and the gNB-CU of an NG-RAN node with branched architecture, and secondly between the gNB-CU and the associated gNB-DU that is involved with the capacity and / or coverage problem. This example follows the same steps as described with respect to Figure 9.

[0089] FIG. 12 shows an example where the method is applied twice in a cascaded manner, first between the eNB and the gNB-CU of an NG-RAN node having a branched architecture, and secondly between the gNB-CU and an associated gNB-DU that is associated with capacity and / or coverage issues.

[0090] In another example shown in Figure 13, the first network node is a gNB-CU and the second network node is a gNB-DU connected to the gNB-CU, such as via an F1 interface. Upon receiving the second instruction from the gNB-DU, the gNB-CU further forwards all or part of the information received with the second instruction to another RAN node, for example for a gNB-CU CONFIGURATION UPDATE. This example is similar to the example previously illustrated in Figure 10.

[0091] Figure 13 shows an example in which the first network node is a gNB-CU, the second network node is a gNB-DU connected to the gNB-CU using an F1 interface or the like, and the gNB-CU further forwards all or part of the information received from the gNB-DU to a third network node of another RAT, such as an eNB.

[0092] In another example shown in Figure 14, the first network node is a gNB-CU of an NG-RAN node having a branched architecture, while the second network node is a RAN node belonging to a different radio access technology, such as a 3GPP LTE eNB. In this case, upon receiving a second indication from the eNB containing an eNB CONFIGURATION UPDATE (e.g., over an X2 interface, etc.), the gNB-CU forwards all or part of the information contained in the eNB CONFIGURATION UPDATE to a gNB-DU with which it shares a communication interface (e.g., an F1 interface).

[0093] 14 shows an example where the first network node is a gNB-CU of an NG-RAN node having a branched architecture and the second network node is a RAN node belonging to a different radio access technology, such as a 3GPP LTE eNB. Upon receiving a second instruction from the eNB containing an eNB CONFIGURATION UPDATE (e.g., over an X2 interface), the gNB-CU forwards all or part of the information contained in the eNB CONFIGURATION UPDATE to a gNB-DU with which it shares a communication interface (e.g., an F1 interface).

[0094] Now consider the operations performed by the second network node. According to some embodiments, the operations may be performed by the second network node to improve / optimize a coverage area of ​​a reference signal (RS) beam. The operations may include receiving a first instruction from the first network node. The first instruction may include a RAN NODE CONFIGURATION UPDATE REQUEST message. The operations may further include determining a new RAN NODE CONFIGURATION UPDATE for at least a serving cell of the second network node or at least an RS beam coverage area of ​​a serving cell of the second network node based on the first instruction. The operations may further include transmitting a second instruction to the first network node. The second instruction includes a RAN NODE CONFIGURATION UPDATE relating to at least one serving cell or at least an RS beam coverage area of ​​the second network node.

[0095] The operations may further include receiving a third indication from the first network node, the third indication including a RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE.

[0096] Based on the information included in the first instruction, the second network node may determine a RAN NODE CONFIGURATION UPDATE for at least a serving cell of the second network node, or at least an RS beam coverage area of ​​a serving cell, which may include reducing the coverage area of ​​the serving cell and / or RS beam, expanding the coverage area of ​​the serving cell and / or RS beam, merging the coverage areas of two or more serving cells or RS beams, branching the coverage area of ​​the serving cell and / or RS beam, etc.

[0097] In some embodiments, the RAN NODE CONFIGURATION UPDATE sent in the second instruction in the second network may include a coverage modification list including a list of cells and RS beams (e.g., SSB beams or CSI-RS beams) that are valid before the coverage modification, a list of cells and RS beams (e.g., SSB beams or CSI-RS beams) that are valid after the coverage modification, and a deployment status indicator indicating whether the cell-related and SSB beam-related coverage states are planned to be used at the next reconfiguration.

[0098] The list of cells and RS beams (e.g., SSB beams or CSI-RS beams) that are valid before the coverage modification may include the NR global cell identifier of the cell to be modified, the coverage state associated with the cell coded as an index indicating whether the cell is active in the new configuration of the concerned cell and the identifier of the RS beam (e.g., SSB beam or CSI-RS beam). In the case of an SSB beam, the identifier may be the SS / PBCH block index, and the coverage state associated with the RS beam (e.g., in the case of an SSB beam or CSI-RS beam) coded as an index indicating whether the RS beam is active in the new configuration of the concerned RS beam and the identifier of the RS beam (e.g., in the case of an SSB beam or CSI-RS beam).

[0099] The list of cells and RS beams (e.g., SSB beams or CSI-RS beams) that are valid after the coverage modification may include the NR global cell identifier of the cell to be modified, the cell-related coverage state coded as an index indicating the new configuration of the concerned cell and whether the cell is active in the configuration, an identifier of the RS beam (e.g., SSB beam or CSI-RS beam). In the case of an SSB beam, the identifier may be an SS / PBCH block index, the RS beam-related coverage state (e.g., in the case of an SSB beam or CSI-RS beam) coded as an index indicating the new configuration of the concerned RS beam and whether the RS beam is active in the configuration, and a deployment status indicator indicating whether the cell-related and SSB beam-related coverage states are planned to be used in the next reconfiguration.

[0100] According to some embodiments, the capacity and / or coverage problem may not be directly solved. In some examples, the operations may be applied iteratively to solve the detected capacity and / or coverage problem by the node. A non-limiting example for the NR case is detailed below. First, a first gNB-CU-CP1 may detect a capacity and / or coverage problem in one of the cells controlled by one of the gNB-DUs of the same gNB. A configuration update may be transmitted from the gNB-CU-CP1 to the gNB-DU in a gNB-CU CONFIGURATION UPDATE message indicating the detection of the capacity and / or coverage problem. The gNB-DU cannot solve the problem and a gNB-CU CONFIGURATION UPDATE FAILURE is sent back to the gNB-CU-CP1. The gNB-CU-CP1 may then decide to try to solve the capacity and / or coverage problem by contacting a second gNB-CU-CP2 that controls a cell that is a neighbor of the cell where the capacity and / or coverage problem is detected.

[0101] An example of implementation in an EN-DC scenario is considered below. For the EN-DC scenario, the EN-DC configuration update is enhanced to inform neighboring RAN nodes upon cell coverage modification. In some embodiments, the eNB transmits the enhanced configuration update to the gNB by including LTE related information related to coverage modification for an LTE cell served by the eNB transmitting the message. In additional or alternative embodiments, the additional information relates to coverage modification for an LTE or NR cell served by a third RAN node that is a neighbor of the eNB transmitting the message.

[0102] In some embodiments, the gNB transmits an enhanced configuration update to the eNB by including NR-related information related to modifying NR cell coverage. In additional or alternative embodiments, the additional information relates to modifying coverage for LTE or NR cells served by a third RAN node that is a neighbor of the gNB transmitting the message.

[0103] In the following, an example of a solution for the EN-DC to extend / modify the existing X2AP signaling is considered. The table in Figure 38 is adapted from 3GPP TS 36.423.

[0104] Modified sections of 3GPP TS 36.423 according to some embodiments of the inventive concepts are provided below: As described below, some sections of 3GPP TS 36.423 may be modified / added.

[0105] In some embodiments, the purpose of the EN-DC Configuration Update procedure is to request an update of application level configuration data required for the eNB and en-gNB to interoperate properly over the X2 interface. The procedure uses non-UE related signaling.

[0106] FIG. 15 illustrates an example of an operation for a successful eNB initiated EN-DC configuration update request.

[0107] FIG. 16 illustrates an example of an operation for a successful en-gNB initiated EN-DC configuration update request.

[0108] In some embodiments, the eNB may initiate the procedure by transmitting an EN-DC CONFIGURATION UPDATE REQUEST message to the peer en-gNB. If the CCO Problem Detection IE is present, the en-gNB shall use it, if supported, to generate a EUTRA Coverage Modification List IE and include the list in the EN-DC CONFIGURATION UPDATE message.

[0109] In some embodiments, the en-gNB may initiate the procedure by transmitting an EN-DC CONFIGURATION UPDATE REQUEST message to the eNB. If the CCO Problem Detection IE is present, the en-gNB shall use it, if supported, to generate an NG-RAN Coverage Modification List IE and include the list in the EN-DC CONFIGURATION UPDATE message.

[0110] In some embodiments, an EN-DC CONFIGURATION UPDATE REQUEST message can be transmitted by the initiating node to the peer neighbor node, and both nodes can interact with the EN-DC to request updated information for the TNL association. Figure 41 shows an example of an IE in the EN-DC CONFIGURATION UPDATE REQUEST message.

[0111] In some embodiments, the purpose of the EN-DC configuration update procedure may be to update application level configuration data required for the eNB and en-gNB to interoperate properly over the X2 interface. Application level configuration data updates also apply between the eNB and en-gNB if the SN (i.e. the en-gNB) does not broadcast system information other than that related to radio frame timing and SFN as specified in TS 37.340

[32] . It is not explicitly specified how to use this information if this option is used. The procedure uses non-UE related signaling.

[0112] FIG. 17 illustrates an example of a successful operation of an eNB initiated EN-DC configuration update.

[0113] FIG. 18 illustrates an example of a successful en-gNB initiated EN-DC configuration update operation.

[0114] In some instances of network sharing with multiple cell ID broadcast using a shared X2-C signaling transport as specified in TS 36.300

[15] , the EN-DC CONFIGURATION UPDATE message and the EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message shall contain an interface instance indication IE, identifying the corresponding interface instance.

[0115] In some embodiments, the eNB initiates the procedure by transmitting an EN-DC CONFIGURATION UPDATE message to the peer en-gNB.

[0116] In some embodiments, after successfully updating the requested information, the en-gNB shall respond with an EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message to inform the initiating eNB of successful implementation of the requested update of the application data.

[0117] In some embodiments, if the Cell Assistance Information IE is present, the en-gNB shall use it to generate a served NR cell list IE, if supported, and include the list in the EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message. If the EN-DC CONFIGURATION UPDATE REQUEST message contains a Protected E-UTRA Resource Indication IE, the receiving en-gNB shall take this into account for cell-level resource coordination with the eNB. The en-gNB shall consider the content of the received Protected E-UTRA Resource Indication IE valid until it receives a new update of the IE for the same eNB. The protected resource pattern indicated in the Protected E-UTRA Resource Indication IE is not valid in the subframes indicated by the Reserved Subframes IE as well as in the non-control region of the MBSFN subframe, i.e. only in the control region therein. The size of the control region of the MBSFN subframe is indicated in the Protected E-UTRA Resource Indication IE.

[0118] In some embodiments, the eNB may initiate a further EN-DC configuration update procedure only after a previous EN-DC configuration update procedure is completed.

[0119] In some embodiments, if an auxiliary uplink is configured in the en-gNB, the en-gNB shall include a SUL Information IE and a Supported SUL Band List IE in the EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message for each cell being added to the Served NR Cells IE to be added and the Served NR Cells IE to be modified.

[0120] In some embodiments, if the EN-DC CONFIGURATION UPDATE message contains a TNL Transport Layer Address Information IE, the receiving en-gNB shall take this into account for IPSEC tunnel establishment, if supported.

[0121] In some embodiments, if the EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message contains a TNL Transport Layer Address Information IE, the receiving eNB shall take this into account for IPSEC tunnel establishment, if supported.

[0122] In some embodiments, if the NR cell PRACH configuration IE is included in the Served NR Cell Information IE contained in the EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message, the eNB may update the information.

[0123] In some embodiments, if the CSI-RS transmission indication IE is included in the EN-DC CONFIGURATION UPDATE message, the en-gNB may use this information for CSI-RS measurements of neighbor NR cells.

[0124] In some embodiments, if the EUTRA Coverage Modification List IE is present, the en-gNB may use the information in the EUTRA Cell Coverage Status IE to identify the cell deployment configuration enabled by the eNB and configure mobility to the cells indicated by the ECGI IE as described in TS 36.300

[15] .

[0125] In some embodiments, if the EUTRA Cell Deployment Status Indicator IE is present in the EUTRA Coverage Modification List IE, the en-gNB shall consider the cell deployment configuration of the cell to be modified as the next planned configuration and shall remove any planned configuration stored for this cell.

[0126] In some embodiments, if the EUTRA Cell Deployment Status Indicator IE is present and the EUTRA Cell Replacement Information IE contains a non-empty list of cells, the en-gNB may use this list to avoid connection or re-establishment failures during reconfiguration, e.g., by considering the cells in the list as possible alternative handover targets.

[0127] In some embodiments, if the EUTRA cell deployment status indicator IE is not present, the en-gNB shall consider the cell deployment configuration of the cell to be modified as activated and replace any previous configuration for the cell indicated in the EUTRA coverage modification list IE.

[0128] In some embodiments, the en-gNB initiates the procedure by transmitting an EN-DC CONFIGURATION UPDATE message to the eNB.

[0129] In some embodiments, if an auxiliary uplink is configured in the en-gNB, the en-gNB shall include a SUL Information IE and a Supported SUL Band List IE in the EN-DC CONFIGURATION UPDATE message for each served cell added to the Served NR Cells IE to be added and the Served NR Cells IE to be modified.

[0130] In some embodiments, when the deactivation indication IE is included in a modified served NR cell IE, as described in TS 36.300

[15] , the deactivation indication IE indicates that the relevant NR cell has been switched off to reduce energy consumption and is available for activation upon request from the eNB.

[0131] In some embodiments, if the NG-RAN Coverage Modification List IE is present, the eNB may use information in the NR Cell Coverage Status IE to identify the NR cell deployment configuration and configure mobility to the NR cell indicated by the NR CGI IE, as described in TS 38.300

[47] .

[0132] In some embodiments, if the NG-RAN Deployment Status Indicator IE is present in the NG-RAN Coverage Modification List IE, the eNB shall consider the NR cell deployment configuration of the NR cell to be modified as the next planned configuration, if supported, and shall remove a planned configuration if one is stored for this cell.

[0133] In some embodiments, if the NG-RAN Deployment Status Indicator IE is present and the NG-RAN Replacement Information IE contains a non-empty list of cells, the eNB may use this list to avoid connection or re-establishment failures during reconfiguration, e.g., by considering the cells in the list as possible alternative handover targets.

[0134] In some embodiments, if the NG-RAN Deployment Status Indicator IE is not present, the eNB shall consider the NR cell deployment configuration for the NR cell to be modified as activated, if supported, and replace any previous configuration for the NR cell indicated in the NG-RAN Coverage Modification List IE.

[0135] In some embodiments, after the requested information has been successfully updated, the eNB shall respond with an EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message to inform the initiating en-gNB that it has successfully implemented the requested updates to the application data. If the eNB receives an EN-DC CONFIGURATION UPDATE with no IEs other than the message type IE, it shall reply with an EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message without implementing any updates to the existing configuration.

[0136] In some embodiments, upon receiving the EN-DC CONFIGURATION UPDATE message, the eNB shall update the following information for the en-gNB: updating served NR cell information, and updating the SCTP association.

[0137] Updating the served NR cell information may include that, if a Served NR Cell IE to add is included in the EN-DC CONFIGURATION UPDATE message, the eNB shall add cell information according to the information in the Served NR Cell Information IE, if a Served NR Cell IE to modify is included in the EN-DC CONFIGURATION UPDATE message, the eNB shall modify the information of the cell indicated by the old NR-CGI IE according to the information in the Served NR Cell Information IE, and if a Served NR Cell IE to delete is included in the EN-DC CONFIGURATION UPDATE message, the eNB shall delete the information of the cell indicated by the old NR-CGI IE.

[0138] The en-gNB may initiate further EN-DC configuration update procedures only after the previous EN-DC configuration update procedure has been completed. If the EN-DC CONFIGURATION UPDATE message includes the TNL Transport Layer Address Information IE, the receiving eNB shall take this into account for IPSEC tunnel establishment, if supported. If the EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message includes the TNL Transport Layer Address Information IE, the receiving en-gNB shall take this into account for IPSEC tunnel establishment, if supported. If the NR Cell PRACH Configuration IE is included in the Served NR Cell Information IE included in the EN-DC CONFIGURATION UPDATE message, the eNB may update the information. If the CSI-RS Transmission Indication IE is included in the EN-DC CONFIGURATION UPDATE message, the eNB shall take this into account when forwarding the CSI-RS configuration of the neighbor NR cell.

[0139] The SCTP association update may include that if an additional TNL Association List IE is included in the EN-DC CONFIGURATION UPDATE message, the receiving eNB shall use it to establish TNL associations with the en-gNB, if supported. The eNB shall report the successful establishment of TNL associations with the en-gNB in ​​an EN-DC CONFIGURATION UPDATE ACKNOWLEDGE message to the en-gNB such that the list of successfully established TNL associations shall be included in the TNL Association Setup List IE, and the list of failed TNL associations shall be included in the TNL Association Setup Failure List IE.

[0140] If the List of TNL Associations to Remove IE is included in the EN-DC CONFIGURATION UPDATE message, the receiving eNB shall initiate the removal of TNL associations indicated by the received transport layer information for the en-gNB, if supported.If the List of TNL Associations to Update IE is included in the EN-DC CONFIGURATION UPDATE message, the receiving eNB shall update the TNL associations indicated by the received transport layer information for the en-gNB, if supported.

[0141] In some embodiments, the EN-DC CONFIGURATION UPDATE message can be transmitted by the initiating node to the peer neighbor and both nodes can interact with the EN-DC to forward updated information for the TNL association. The tables in Figures 40-42 show an example of information associated with the EN-DC CONFIGURATION UPDATE message.

[0142] In some embodiments, the NR Neighbor Information IE includes cell configuration information of the NR cell that the neighbor node may need for the X2 AP interface. An example of an implementation in an NR-DC scenario is shown in Figure 43 and discussed below.

[0143] For NR-DC scenarios, NG-RAN node configuration updates are extended to inform neighboring nodes upon cell coverage modifications.

[0144] In some embodiments, the gNB transmits an enhanced configuration update to the gNB by including NR-related information related to modifying NR cell coverage. In additional or alternative embodiments, the additional information relates to modifying coverage for LTE or NR cells served by a third RAN node that is a neighbor of the gNB transmitting the message.

[0145] An example of an approach for NR-DC is provided below: The proposed approach extends the existing XnAP signaling.

[0146] The table in Figure 44 has been modified from 3GPP TS 38.423 v16.2.0. Modified sections of 3GPP TS 38.423 according to some embodiments of the inventive concepts are provided.

[0147] In some embodiments, the purpose of the NG-RAN Node Configuration Update Request procedure is to request an update of application level configuration data required for two NG-RAN nodes to interoperate properly over the Xn-C interface. The procedure uses non-UE related signaling.

[0148] An example of a successful NG-RAN node configuration update request is shown in Figure 19. NG-RAN node 1 initiates the procedure by transmitting a NG-RAN NODE CONFIGURATION UPDATE REQUEST message to the peer NG-RAN node 2. In some examples, if the CCO Problem Detection IE is present, the NG-RAN node 2 shall use it, if supported, to generate a NG-RAN Coverage Modification List IE and include the list in the NG-RAN NODE CONFIGURATION UPDATE message.

[0149] In some embodiments, the NG-RAN NODE CONFIGURATION UPDATE REQUEST message is transmitted by an NG-RAN node to a neighboring NG-RAN node to request an update of application level configuration data. Figure 39 shows an example of an IE in the NG-RAN NODE CONFIGURATION UPDATE REQUEST message.

[0150] In some embodiments, the purpose of the NG-RAN node configuration update procedure is to update application level configuration data required for two NG-RAN nodes to interoperate properly over the Xn-C interface. The procedure uses non-UE related signaling. Figure 20 shows an example of a successful operation of a NG-RAN node configuration update.

[0151] In some embodiments, the NG-RAN node 1 initiates the procedure by transmitting a NG-RAN NODE CONFIGURATION UPDATE message to the peer NG-RAN node 2. If an auxiliary uplink is configured in the NG-RAN node 1, the NG-RAN node 1 shall include in the NG-RAN NODE CONFIGURATION UPDATE message a SUL Information IE and a Supported SUL Band List IE for each cell to be added in the Served NR Cells IE to add and the Served NR Cells IE to modify.

[0152] In some examples, if an auxiliary uplink is configured in the NG-RAN node 2, the NG-RAN node 2 shall include the SUL Information IE and Supported SUL Band List IE in the NG-RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE message for each cell that is added to the Served NR Cell IE, if any. In an additional or alternative example, if a TAI Support List IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the receiving node shall replace the previously provided TAI Support List IE with the received TAI Support List IE. In an additional or alternative embodiment, if the Cell Assistance Information NR IE is present, the NG-RAN node 2 shall use it to generate the Served NR Cell IE, if supported, and include the list in the NG-RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE message. In an additional or alternative example, if the partial list indicator NR IE is included in the NG-RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE message and set to "partial", NG-RAN node 1 shall assume that the Served NR Cells IE in the NG-RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE message contains a partial list of NR cells, if supported. In an additional or alternative example, if the Cell and Capacity Assistance Information NR IE is present in the NG-RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE message from candidate NG-RAN node 2, NG-RAN node 1 shall store the collected information to be used for future NG-RAN node interface management, if supported.

[0153] In some embodiments, upon receiving the NG-RAN NODE CONFIGURATION UPDATE message, NG-RAN node 2 shall update its information to NG-RAN node 1 as follows: In case of a network sharing multiple cell IDs broadcast on a shared Xn-C signaling transport as specified in TS 38.300 [9], the NG-RAN NODE CONFIGURATION UPDATE message and the NG-RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE message shall include an Interface Instance Indication IE, identifying the corresponding interface instance.

[0154] In the following, the updating of the served cell information NR is considered. In some embodiments, if an adding served cell NR IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall add the cell information according to the information of the served cell information NR IE. In additional or alternative embodiments, if a modifying served cell NR IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall modify the information of the cell indicated by the old NR-CGI IE according to the information of the served cell information NR IE. In additional or alternative embodiments, if either the served cell information or the neighbor information of an existing served cell of the NG-RAN node 1 needs to be updated, the entire list of neighbor cells, if any, shall be included in the neighbor information NR IE. The NG-RAN node 2 shall overwrite the entire list of served cell information and neighbor cell information for the involved served cell. In an additional or alternative embodiment, if the deactivation indication IE is included in the modifying served cell NR IE, the deactivation indication IE indicates that the relevant cell has been switched off to lower energy consumption. In an additional or alternative embodiment, if the erasing served cell NR IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall erase the information of the cell indicated by the old NR-CGI IE. In an additional or alternative embodiment, if the intended TDD DL-UL settings NR IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall take this information into account for crosslink interference management with the NG-RAN node 1. The NG-RAN node 2 shall consider the content of the received intended TDD DL-UL settings NR IE as valid until it receives a new update of the IE for the same NG-RAN node 2.

[0155] In the following, the updating of the served cell information E-UTRA is considered. In some embodiments, if an adding served cell E-UTRA IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall add the cell information according to the information of the served cell information E-UTRA IE. In additional or alternative embodiments, if a modifying served cell E-UTRA IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall modify the information of the cell indicated by the old ECGI IE according to the information of the served cell information E-UTRA IE. In additional or alternative embodiments, if either the served cell information or the neighbor information of an existing served cell of the NG-RAN node 1 needs to be updated, the entire list of neighbor cells, if any, shall be included in the neighbor information E-UTRA IE. The NG-RAN node 2 shall overwrite the entire list of served cell information and neighbor cell information for the involved served cell. In an additional or alternative embodiment, if the deactivation indication IE is included in the modifying served cell E-UTRA IE, the deactivation indication IE indicates that the concerned cell has been switched off in order to lower energy consumption. In an additional or alternative embodiment, if the erasing served cell E-UTRA IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall erase the information of the cell indicated by the old ECGI IE. In an additional or alternative embodiment, if a protected E-UTRA resource indication IE is included in the NG-RAN NODE CONFIGURATION UPDATE (inside the served cell information E-UTRA IE), the receiving gNB shall take this into account for cell level resource coordination with the ng-eNB. The gNB shall consider the content of the received protected E-UTRA resource indication IE as valid until it receives a new update of the IE for the same eng-NB.The protected resource pattern indicated in the Protected E-UTRA Resource Indication IE is not valid in the subframes indicated by the Reserved Subframes IE (contained in the E-UTRA-NR CELL RESOURCE COORDINATION REQUEST message) as well as in the non-control region of the MBSFN subframe, i.e. only in the control region therein. The size of the control region of the MBSFN subframe is indicated in the Protected E-UTRA Resource Indication IE.

[0156] In the following, updating of TNL addresses for SCTP associations is considered. In some embodiments, if the Add TNL Association List IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall use it to establish TNL associations with the NG-RAN node 1, if supported. The NG-RAN node 2 shall report the successful establishment of TNL associations with the NG-RAN node 1 in the NG-RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE message, such that the list of successfully established TNL associations shall be included in the TNL Association Setup List IE, and the list of failed TNL associations shall be included in the TNL Association Setup Failure List IE.

[0157] In an additional or alternative embodiment, if the List of TNL Associations to Remove IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall initiate the removal of TNL associations, if supported, indicated by the received transport layer information for the NG-RAN node 1. In an additional or alternative embodiment, if the List of TNL Associations to Update IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall update the TNL associations, if supported, indicated by the received transport layer information for the NG-RAN node 1.

[0158] In the following, updating of AMF realm information is considered. In some embodiments, if an adding AMF realm information IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall add the AMF realm to its AMF realm list. In additional or alternative embodiments, if a clearing AMF realm information IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall remove the AMF realm from its AMF realm list. In additional or alternative embodiments, if a TNL configuration information IE is included in the NG-RAN NODE CONFIGURATION UPDATE message, the NG-RAN node 2 shall take this IE into account for IPSec establishment. In additional or alternative embodiments, if a TNL configuration information IE is included in the NG-RAN NODE CONFIGURATION UPDATE ACKNOWLEDGE message, the NG-RAN node 1 shall take this IE into account for IPSec establishment.

[0159] In additional or alternative embodiments, if the NG-RAN Coverage Modification List IE is present, gNB2 may use information in the NR Cell Coverage Status IE to identify an NR cell deployment configuration and configure mobility to an NR cell indicated by the NR CGI IE, as described in TS 38.300 [8]. If the NG-RAN Coverage Modification List IE is present, gNB2 may use information in the SSB Coverage Status IE to identify an SSB beam deployment configuration enabled by gNB1.

[0160] In additional or alternative embodiments, if the NG-RAN Deployment Status Indicator IE is present in the NG-RAN Coverage Modification List IE, the gNB2 shall consider the NR cell deployment configuration of the NR cell to be modified as the next planned configuration, if supported, and shall remove a planned configuration stored for this cell if it is present.

[0161] In additional or alternative embodiments, if the NG-RAN Deployment Status Indicator IE is present in the NG-RAN Coverage Modification List IE, the gNB2 shall consider the SSB beam deployment configuration of the SSB beam to be modified as the next SSB beam configuration for the cell, if supported.

[0162] In additional or alternative embodiments, if the NG-RAN Deployment Status Indicator IE is present and the Replacement NR Cell IE contains a non-empty list of NR cells, the gNB2 may use this list to avoid connection or re-establishment failures during reconfiguration, e.g., by considering the NR cells in the list as possible alternative handover targets.

[0163] In additional or alternative embodiments, if the NG-RAN Deployment Status Indicator IE is not present, the gNB2 shall consider the NR cell deployment setting for the NR cell to be modified and the SSB beam deployment setting for the SSB beam to be modified as activated, if supported, and replace any previous settings for the NR cell and SSB beam indicated in the NG-RAN Coverage Modification List IE.

[0164] In some embodiments, the NG-RAN NODE CONFIGURATION UPDATE message is transmitted by an NG-RAN node to neighboring NG-RAN nodes to forward updated information for instances of the Xn-C interface. Information associated with the NG-RAN NODE CONFIGURATION UPDATE message is shown in the tables of Figures 45-47.

[0165] An example of implementation in F1AP is considered below. This approach extends the existing F1AP signaling. Modified sections of 3GPP TS 38.473 v16.2.0 according to some embodiments of the inventive concept are provided below. Some sections of 3GPP TS 38.473 v16.2.0 may be modified / added as described below.

[0166] In some embodiments, the purpose of the gNB-DU configuration update procedure is to update application level configuration data required for the gNB-DU and gNB-CU to interoperate properly over the F1 interface. This procedure does not affect existing UE related context, if any. The procedure uses non-UE related signaling.

[0167] Figure 21 shows an example of a successful operation of the gNB-DU configuration update procedure.

[0168] In some embodiments, the gNB-DU initiates the procedure by transmitting a GNB-DU CONFIGURATION UPDATE message to the gNB-CU, including the appropriate set of updated configuration data that has just been put into operation. The gNB-CU responds with a GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message to acknowledge successful updating of the configuration data. If an information element is not included in the GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall interpret that the corresponding configuration data has not changed and shall continue to operate the F1-C interface with the existing associated configuration data.

[0169] In some embodiments, the updated configuration data is stored on both nodes and shall be used as long as there is an operational TNL association or until any further updates are implemented.

[0170] In some embodiments, if a gNB-DU ID IE is included in a GNB-DU CONFIGURATION UPDATE message for a newly established SCTP association, the gNB-CU associates this association with the relevant gNB-DU.

[0171] In an additional or alternative embodiment, if the Served Cell Item IE to be added is included in the GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall add the cell information according to the information in the Served Cell Information IE. In the case of NG-RAN, the gNB-DU shall include the gNB-DU System Information IE.

[0172] In an additional or alternative embodiment, if a modifying Served Cell Item IE is included in the GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall modify the information of the cell indicated by the old NR CGI IE according to the information in the Served Cell Information IE and overwrite the Served Cell Information for the involved served cell. Furthermore, if the gNB-DU System Information IE is present, the gNB-CU shall store and replace any previous information received.

[0173] In an additional or alternative embodiment, if the Served Cells to be Erase item IE is included in the GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall erase the information of the cell indicated by the old NR CGI IE.

[0174] In additional or alternative embodiments, if the Cell Status Item IE is included in a GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall update the information about the cell as described in TS 38.401 [4]. If the SWITCH OFF DURING IE is present in the CELL STATUS Item IE and included in a GNB-DU CONFIGURATION UPDATE message and the corresponding service state IE is set to "out of service", the gNB-CU shall ignore the SWITCH OFF DURING IE.

[0175] In an additional or alternative embodiment, if the list item IE of the cell to be activated is included in the GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message, the gNB-DU shall activate the cell indicated by the NR CGI IE and reconfigure the physical cell identity to the cell in which the NR PCI IE is included.

[0176] In an additional or alternative embodiment, if the list item IE of the cell to be activated is included in the GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message and the indicated cell is already activated, the gNB-DU shall update the cell information received in the list item IE of the cell to be activated.

[0177] In an additional or alternative embodiment, if the List Item IE of Cells to Activate is included in the GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message and the Cell Information for the cell indicated by the NR CGI IE includes the IAB Information IAB Donor CU IE, the gNB-DU shall apply the IAB STC Information IE therein to the indicated cell, if supported.

[0178] In an additional or alternative embodiment, if the List of Cells to Deactivate Item IE is included in the GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message, the gNB-DU shall deactivate all cells whose NR CGI is listed in the IE.

[0179] In an additional or alternative embodiment, if a UE list IE requiring delivery of dedicated SI is included in the GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall take it into account when notifying the UE of updated system information via a dedicated RRC message.

[0180] In additional or alternative embodiments, in the case of NG-RAN, the gNB-CU shall include the gNB-CU System Information IE in the GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message. The List of SIB Types to be Updated IE shall contain the complete list of SIBs to broadcast. In the case of NG-RAN, the gNB-DU may also include the RAN Area Code IE in the GNB-DU CONFIGURATION UPDATE message. The gNB-CU shall store the received RAN Area Code IE, thereby replacing any previously provided RAN Area Code IE.

[0181] In additional or alternative embodiments, if the Available PLMN List IE, and optionally also the Extended Available PLMN List IE, are included in the GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message, the gNB-DU shall overwrite the entire Available PLMN List and update the corresponding system information.

[0182] In an additional or alternative embodiment, if the Available SNPN ID List IE is included in the GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message, the gNB-DU shall overwrite the entire Available SNPN ID List and update the corresponding system information.

[0183] In additional or alternative embodiments, if the Cell Direction IE is present in the GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall use it to understand whether the cell is UL or DL ​​only. If the Cell Direction IE is omitted in the Served Cell Information IE in the GNB-DU CONFIGURATION UPDATE message, it shall be interpreted that the cell direction is bidirectional.

[0184] In additional or alternative embodiments, if the GNB-DU CONFIGURATION UPDATE message includes a List of gNB-DU TNL Associations to Remove IE and the Endpoint IP Address IE and Port Number IE for both TNL endpoints of the TNL association are included in the List of gNB-DU TNL Associations to Remove IE, the gNB-CU shall consider the TNL associations indicated by both received TNL endpoints to be removed by the gNB-DU, if supported. If the Endpoint IP Address IE or Endpoint IP Address IE and Port Number IE for one or both TNL endpoints are included in the List of gNB-DU TNL Associations to Remove IE of the GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall consider the TNL association indicated by the received Endpoint IP Address to be removed by the gNB-DU, if supported.

[0185] In additional or alternative embodiments, if the intended TDD DL-UL configuration IE is present in the GNB-DU CONFIGURATION UPDATE message, the receiving gNB-CU shall use the received information for crosslink interference management and / or NR-DC power adjustment. The gNB-CU may aggregate the intended TDD DL-UL configuration information received from two or more gNB-DUs. The gNB-CU shall consider the content of the received intended TDD DL-UL configuration IE to be valid until it receives an update of the IE for the same cell.

[0186] In an additional or alternative embodiment, if the aggressor gNB Set-ID IE is included in the Served Cell Information IE of the GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall take it into account if supported.

[0187] In an additional or alternative embodiment, if the Victim gNB Set ID IE is included in the Served Cell Information IE of the GNB-DU CONFIGURATION UPDATE message, the gNB-CU shall take it into account if supported.

[0188] In an additional or alternative embodiment, if the GNB-DU Configuration Update message includes a Transport Layer Address Information IE, the gNB-CU shall take this into account for IPSec tunnel establishment, if supported.

[0189] In an additional or alternative embodiment, if the GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message includes a Transport Layer Address Information IE, the gNB-DU shall take this into account for IPSec tunnel establishment, if supported.

[0190] In an additional or alternative embodiment, if the GNB-DU CONFIGURATION UPDATE ACKNOWLEDGE message includes an uplink BH non-UP traffic mapping IE, the gNB-DU shall take into account the information therein for mapping non-UP uplink traffic, if supported.

[0191] In additional or alternative embodiments, if the Coverage Modification List IE is included in the GNB-CU CONFIGURATION UPDATE message and the indicated cell is already activated, the gNB-DU shall, if supported, replace the NR cell indicated by the NR CGI IE with the NR cell identified in the Replacement NR Cell IE. The gNB-DU may use the NR Cell Coverage Status IE indicated in the Replacement NR Cell IE for the new cell configuration.

[0192] In additional or alternative embodiments, if the SSB Beam List IE is included in the Coverage Modification List IE in the GNB-CU CONFIGURATION UPDATE message, the gNB-DU shall replace the SSB beam identified by the SSB Beam Index IE in the SSB Beam List IE with the SSB beam identified in the Replacement SSB Beam IE, if supported. The gNB-DU may use the SSB Beam Cell Coverage Status IE indicated in the Replacement SSB Beam for the new SSB beam configuration.

[0193] In some embodiments, the GNB-DU CONFIGURATION UPDATE message is transmitted by the gNB-DU to transfer updated information related to the F1-C interface instance. If the F1-C signaling transport is shared between several F1-C interface instances, this message may transfer updated information related to several F1-C interface instances. The tables in Figures 48-49 show an example of information associated with the GNB-DU CONFIGURATION UPDATE message.

[0194] In some embodiments, the purpose of the gNB-CU Configuration Update procedure is to update application level configuration data required for the gNB-DU and gNB-CU to interoperate properly over the F1 interface. This procedure does not affect existing UE related context, if any. The procedure uses non-UE related signaling.

[0195] Figure 22 shows an example of a successful gNB-CU configuration update procedure.

[0196] In some embodiments, the gNB-CU initiates the procedure by transmitting a GNB-CU CONFIGURATION UPDATE message containing the appropriate updated configuration data to the gNB-DU. The gNB-DU responds with a GNB-CU CONFIGURATION UPDATE ACKNOWLEDGE message to acknowledge successful update of the configuration data. If an information element is not included in the GNB-CU CONFIGURATION UPDATE message, the gNB-DU shall interpret the corresponding configuration data as unchanged and shall continue to operate the F1-C interface with the existing associated configuration data.

[0197] In additional or alternative embodiments, the updated configuration data shall be stored in the respective nodes and used as long as there is an operational TNL association or until any further updates are implemented.

[0198] In an additional or alternative embodiment, if the list item IE of the cell to be activated is included in the GNB-CU CONFIGURATION UPDATE message, the gNB-DU shall activate the cell indicated by the NR CGI IE and reconfigure the physical cell identity information included in the NR PCI IE.

[0199] In an additional or alternative embodiment, if the list item IE of cells to be deactivated is included in the GNB-CU CONFIGURATION UPDATE message, the gNB-DU shall deactivate the cells indicated by the NR CGI IE.

[0200] In an additional or alternative embodiment, if a list item IE of the cell to be activated is included in the GNB-CU CONFIGURATION UPDATE message and the indicated cell is already activated, the gNB-DU shall update the cell information received in the list item IE of the cell to be activated.

[0201] In an additional or alternative embodiment, if the List Item IE of Cells to Activate is included in the GNB-CU CONFIGURATION UPDATE message and the Cell Information for the cell indicated by the NR CGI IE includes the IAB Information IAB Donor CU IE, the gNB-DU shall apply the IAB STC Information IE therein to the indicated cell, if supported.

[0202] In an additional or alternative embodiment, if the gNB-CU system information IE is included in the gNB-CU CONFIGURATION UPDATE message, the gNB-DU shall include a UE list IE requiring delivery of dedicated SI in the GNB-CU CONFIGURATION UPDATE ACKNOWLEDGE message for UEs that are unable to receive the system information from the broadcast.

[0203] In an additional or alternative embodiment, if a UE list IE requiring delivery of dedicated SI is included in the GNB-CU CONFIGURATION UPDATE ACKNOWLEDGE message, the gNB-CU shall take it into account when notifying the UE of the updated system information via a dedicated RRC message.

[0204] In additional or alternative embodiments, if an additional gNB-CU TNL Association List IE is included in the gNB-CU CONFIGURATION UPDATE message, the gNB-DU shall use it to establish a TNL association with the gNB-CU, if supported. The gNB-DU shall report the successful establishment of the TNL association with the gNB-CU in a gNB-CU CONFIGURATION UPDATE ACKNOWLEDGE message to the gNB-CU such that the list of TNL addresses with which the gNB-DU successfully established a TNL association shall be included in the gNB-CU TNL Association Setup List IE and the list of TNL addresses with which the gNB-DU failed to establish a TNL association shall be included in the gNB-CU TNL Association Setup Failure List IE.

[0205] In additional or alternative embodiments, if the GNB-CU CONFIGURATION UPDATE message includes a List of gNB-CU TNL Associations to Remove IE and the Endpoint IP Address IE and Port Number IE for both TNL endpoints of the TNL association are included in the List of gNB-CU TNL Associations to Remove IE, the gNB-DU shall initiate removal of the TNL association indicated by both received TNL endpoints for the gNB-CU, if supported. If the Endpoint IP Address IE or Endpoint IP Address IE and Port Number IE for one or both TNL endpoints are included in the List of gNB-CU TNL Associations to Remove IE, the gNB-DU shall initiate removal of the TNL association indicated by the received endpoint IP address, if supported.

[0206] In an additional or alternative embodiment, if the List of gNB-CU TNL Associations to Update IE is included in the gNB-CU CONFIGURATION UPDATE message, the gNB-DU shall overwrite previously stored information regarding the relevant TNL associations, if supported.

[0207] In additional or alternative embodiments, if the TNL Association Usage IE is included in the List of gNB-CU TNL Associations to Add or List of gNB-CU TNL Associations to Update in the gNB-CU CONFIGURATION UPDATE message, the gNB-DU node shall use it, if supported, as described in TS 38.472

[22] .

[0208] In an additional or alternative embodiment, in the case of NG-RAN, the gNB-CU shall include a gNB-CU System Information IE in the GNB-CU CONFIGURATION UPDATE message. The List of SIB Types to be Updated IE shall contain the complete list of SIBs to broadcast.

[0209] In additional or alternative embodiments, if a Protected E-UTRA Resource List IE is included in the GNB-CU CONFIGURATION UPDATE message, the gNB-DU shall protect the corresponding resources of the cells indicated by the E-UTRA Cell List IE with respect to the spectrum shared between E-UTRA and NR.

[0210] In additional or alternative embodiments, if the GNB-CU CONFIGURATION UPDATE message contains a protected E-UTRA resource indication IE, the receiving gNB-DU shall forward it to lower layers and use it for cell-level resource adjustment. The gNB-DU shall take the received protected E-UTRA resource indication IE into account when expressing its desired resource allocation during the gNB-DU resource adjustment procedure. The gNB-DU shall consider the content of the received protected E-UTRA resource indication IE as valid until it receives a new update of the IE for the same gNB-DU.

[0211] In additional or alternative embodiments, if the Available PLMN List IE, and optionally also the Extended Available PLMN List IE, are included in the GNB-CU CONFIGURATION UPDATE message, the gNB-DU shall overwrite the entire Available PLMN List and update the corresponding system information.

[0212] In an additional or alternative embodiment, if the Available SNPN ID List IE is included in the GNB-CU CONFIGURATION UPDATE message, the gNB-DU shall overwrite the entire Available SNPN ID List and update the corresponding system information.

[0213] In additional or alternative embodiments, if an item IE for a cell that failed to activate is included in the GNB-CU CONFIGURATION UPDATE ACKNOWLEDGE message, the gNB-CU shall consider the indicated cell to be dormant as described in TS 38.401[4].

[0214] In additional or alternative embodiments, if the Neighbor Cell Information List IE is present in the GNB-CU CONFIGURATION UPDATE message, the receiving gNB-DU shall use the received information for crosslink interference management and / or NR-DC power adjustment. The gNB-DU shall consider the contents of the received Neighbor Cell Information List IE to be valid until it receives an update of the IE for the same cell. If the intended TDD DL-UL configuration NR IE is missing from the Neighbor Cell Information List IE while the corresponding NR CGI IE is present, the receiving gNB-DU shall remove the previously stored Neighbor Cell Information IE corresponding to the NR CGI.

[0215] In an additional or alternative embodiment, if the GNB-CU Configuration Update message includes a Transport Layer Address Information IE, the gNB-DU shall take this into account for IPSec tunnel establishment, if supported.

[0216] In an additional or alternative embodiment, if the GNB-CU CONFIGURATION UPDATE ACKNOWLEDGE message includes a Transport Layer Address Information IE, the gNB-CU shall take this into account for IPSec tunnel establishment, if supported.

[0217] In an additional or alternative embodiment, if the GNB-CU CONFIGURATION UPDATE message includes an uplink BH non-UP traffic mapping IE, the gNB-DU shall take into account the information therein for mapping non-UP uplink traffic, if supported.

[0218] In an additional or alternative embodiment, if the IAB Prohibited IE is included in the GNB-CU CONFIGURATION UPDATE message, the gNB-DU shall consider it, if supported, as an indication of whether the cell allows IAB node access or not.

[0219] In an additional or alternative embodiment, if the CCO Problem Detection IE is included in the GNB-CU CONFIGURATION UPDATE message, the gNB-DU shall use it to determine new cell and beam configurations, if supported.

[0220] In some embodiments, the GNB-CU CONFIGURATION UPDATE message is transmitted by the gNB-CU to forward updated information related to the F1-C interface instance. If the F1-C signaling transport is shared between several F1-C interface instances, the message may forward updated information related to several F1-C interface instances. The tables of Figures 50-51 show an example of information associated with the GNB-CU CONFIGURATION UPDATE message.

[0221] Operation of a first network node (e.g., a first RAN node 400 (implemented using the structure of FIG. 33)) will now be discussed with reference to the flowchart of FIG. 35, in accordance with some embodiments of the inventive concepts. For example, modules may be stored in memory 405 of FIG. 33, and these modules may provide instructions such that, when the instructions of the modules are executed by the respective RAN node processing circuitry 403, the processing circuitry 403 performs the respective operations of the flowchart.

[0222] According to some embodiments, in block 3505, the processing circuit 403 sends (through the network interface 407) a configuration update request message to the second RAN node. The configuration update request message includes an indication of the requested configuration change to the second RAN node.

[0223] According to some embodiments, in block 3509, the processing circuit 403 receives (through the network interface 407) a configuration update message from the second RAN node. The configuration update message includes an indication of the configuration update selected by the second RAN node.

[0224] According to some embodiments, in block 3515, the processing circuit 403 transmits an acknowledgement ACK message to the second RAN node (through the network interface 407) in response to receiving the configuration update message.

[0225] Various operations of FIG. 35 are discussed in further detail below with respect to exemplary embodiments 1-19.

[0226] Various operations from the flowchart of Figure 35 may be optional with respect to some embodiments of the RAN node and associated methods. With respect to the method of example embodiment 1 (described below), for example, the operation of block 3515 of Figure 35 may be optional.

[0227] The operation of a second network node (e.g., a second RAN node 400 (implemented using the structure of FIG. 33)) will now be discussed with reference to the flowchart of FIG. 36, in accordance with some embodiments of the inventive concepts. For example, modules may be stored in the memory 405 of FIG. 33 that may provide instructions such that, when the instructions of the modules are executed by the processing circuitry 403 of the respective RAN node, the processing circuitry 403 performs the respective operations of the flowchart.

[0228] According to some embodiments, in block 3605, the processing circuit 403 receives a configuration update request message from the first RAN node. The configuration update request message includes an indication of a requested configuration change for the second RAN node.

[0229] According to some embodiments, in block 3609, the processing circuit 403 selects a configuration update to be applied by the second RAN node in response to receiving the configuration update request message.

[0230] According to some embodiments, in block 3615, the processing circuit 403 sends a configuration update message to the first RAN node. The configuration update message includes an indication of the configuration update selected by the second RAN node.

[0231] According to some embodiments, in block 3619, the processing circuit 403 receives an acknowledgement ACK message from the first RAN node after transmitting the configuration update message. The ACK message corresponds to the configuration update message.

[0232] Various operations of FIG. 36 are discussed in further detail below with respect to exemplary embodiments 20-39.

[0233] Various operations from the flowchart of Figure 36 may be optional with respect to some embodiments of the RAN node and associated methods. For example, the operation of block 3619 of Figure 36 may be optional with respect to the method of example embodiment 20 (described below).

[0234] Exemplary embodiments are discussed below. 1. A method of operating a first Radio Access Network (RAN) node in a network including a second RAN node, comprising: sending a configuration update request message to the second RAN node including an indication of the requested configuration change to the second RAN node (3505); and receiving (3509) a configuration update message from the second RAN node including an indication of a configuration update selected by the second RAN node. 2. The method of embodiment 1, further comprising: in response to receiving the configuration update message, sending an acknowledgement (ACK) message to the second RAN node (3515). 3. The method of embodiment 1 or 2, wherein the indication of the requested configuration change to the second RAN node indicates at least one serving cell of the second RAN node associated with the requested configuration change, and / or the indication of the requested configuration change to the second RAN node indicates at least one reference signal (RS) beam coverage area of ​​the second RAN node associated with the requested configuration change. 4. A method according to any one of embodiments 1 to 3, wherein the configuration update request message includes an indication of at least one serving cell of the first RAN node associated with the configuration change in the first RAN node, and / or the configuration update request message includes an indication of at least one reference signal (RS) beam coverage area of ​​the first RAN node associated with the configuration change in the first RAN node. 5. A method according to any one of embodiments 1 to 4, wherein the configuration update request message further includes at least one of an indication of a capacity problem, an indication of a coverage problem, an indication of cell / beam edge movement, and / or an indication of uplink / downlink coverage imbalance. 6. A method according to any one of embodiments 1 to 5, wherein the configuration update request message further includes identification information of a serving cell of the first RAN node and / or identification information of a reference signal (RS) beam of the serving cell of the first RAN node. 7. The method of embodiment 6, wherein the serving cell and / or RS beam of the first RAN node is associated with a capacity problem and / or a coverage problem. 8. A method according to any one of embodiments 1 to 7, wherein the configuration update request message further includes identification information of a serving cell of the second RAN node and / or identification information of a reference signal (RS) beam of the serving cell of the second RAN node. 9. The method of embodiment 8, wherein the serving cell and / or RS beam of the second RAN node is associated with capacity and / or coverage issues. 10. A method according to any one of embodiments 1 to 9, wherein the instruction to the second RAN node of the requested configuration change includes at least one of an instruction to reduce a coverage area of ​​a serving cell and / or reference signal (RS) beam of the second RAN node, an instruction to expand a coverage area of ​​a serving cell and / or RS beam of the second RAN node, an instruction to merge the coverage areas of at least two serving cells and / or RS beams of the second RAN node, and / or an instruction to branch the coverage area of ​​a serving cell and / or RS beam of the second RAN node. 11. The method according to any one of embodiments 1 to 10, wherein the configuration update request message further includes identification information of at least one user equipment (UE) or a group of UEs. 12. The method of any one of embodiments 1 to 11, wherein the configuration update request message further includes a user equipment (UE) measurement report associated with the first RAN node. 13. The method of any one of embodiments 1 to 12, wherein the configuration update request message further includes a user equipment (UE) measurement report associated with the second RAN node. 14. The method of any one of embodiments 1-13, wherein the first RAN node includes one of a Next Generation (NG) RAN node (gNB) and a Long Term Evolution (LTE) RAN node (eNB), and the second RAN node includes one of a NG RAN node and an LTE RAN node. 15. The method of embodiment 14, wherein the setting update request message and the setting update message are transmitted through at least one of an Xn interface and / or an X2 interface. 16. The method of any one of embodiments 1 to 13, wherein the first RAN node includes a RAN node central unit (CU) (e.g., a gNB-CU or a ng-eNB-CU) and the second RAN node includes a RAN node distributed unit (DU) (e.g., a gNB-DU or a ng-eNB-DU). 17. The method of embodiment 16, wherein the setting update request message and the setting update message are transmitted through an F1 interface. 18. The method of any one of embodiments 1-17, wherein the configuration update request message comprises a coverage and capacity optimization (CCO) request message, the indication of the requested configuration change to the second RAN node comprises an indication of a requested CCO configuration change to the second RAN node, the configuration update message comprises a CCO configuration update message, and the indication of the configuration update selected by the second RAN node comprises an indication of a CCO configuration update selected by the second RAN node. 19. A method according to any one of embodiments 1 to 18, wherein the indication of the configuration update selected by the second RAN node indicates at least one serving cell of the second RAN node associated with the configuration update selected by the second RAN node, and / or the indication of the configuration update to the second RAN node indicates at least one reference signal (RS) beam coverage area of ​​the second RAN node associated with the configuration update selected by the second RAN node. 20. A method of operating a second Radio Access Network (RAN) node in a network including a first RAN node, comprising: receiving a configuration update request message from the first RAN node including an indication of a requested configuration change for the second RAN node (3605); Selecting (3609) a configuration update to be applied by the second RAN node in response to receiving the configuration update request message; and transmitting (3615) a configuration update message to the first RAN node including an indication of the configuration update selected by the second RAN node. 21. The method of embodiment 20, further comprising receiving (3619) an acknowledgement (ACK) message from the first RAN node after transmitting the configuration update message, the ACK message corresponding to the configuration update message. 22. The method of embodiment 20 or 21, wherein the indication of the requested configuration change to the second RAN node indicates at least one serving cell of the second RAN node associated with the requested configuration change, and / or the indication of the requested configuration change to the second RAN node indicates at least one reference signal (RS) beam coverage area of ​​the second RAN node associated with the requested configuration change. 23. A method according to any one of embodiments 20 to 22, wherein the configuration update request message includes an indication of at least one serving cell of the first RAN node associated with the configuration change in the first RAN node, and / or the configuration update request message includes an indication of at least one reference signal (RS) beam coverage area of ​​the first RAN node associated with the configuration change in the first RAN node. 24. A method according to any one of embodiments 20 to 23, wherein the configuration update request message further includes at least one of an indication of a capacity problem, an indication of a coverage problem, an indication of cell / beam edge movement, and / or an indication of uplink / downlink coverage imbalance. 25. A method according to any one of embodiments 20 to 24, wherein the configuration update request message further includes identification information of a serving cell of the first RAN node and / or identification information of a reference signal (RS) beam of the serving cell of the first RAN node. 26. The method of embodiment 25, wherein a serving cell and / or RS beam of the first RAN node is associated with a capacity and / or coverage problem. 27. A method according to any one of embodiments 20 to 26, wherein the configuration update request message further includes identification information of a serving cell of the second RAN node and / or identification information of a reference signal (RS) beam of the serving cell of the second RAN node. 28. The method of embodiment 27, wherein a serving cell and / or RS beam of the second RAN node is associated with capacity and / or coverage issues. 29. A method according to any one of embodiments 20 to 28, wherein the instruction to the second RAN node of the requested configuration change includes at least one of an instruction to reduce a coverage area of ​​a serving cell and / or reference signal (RS) beam of the second RAN node, an instruction to expand a coverage area of ​​a serving cell and / or RS beam of the second RAN node, an instruction to merge the coverage areas of at least two serving cells and / or RS beams of the second RAN node, and / or an instruction to branch the coverage area of ​​a serving cell and / or RS beam of the second RAN node. 30. The method of any one of embodiments 20 to 29, wherein the configuration update request message further includes identification information of at least one user equipment (UE) or group of UEs. 31. The method of any one of embodiments 20 to 30, wherein the configuration update request message further includes a user equipment (UE) measurement report associated with the first RAN node. 32. The method of any one of embodiments 20 to 31, wherein the configuration update request message further includes a user equipment (UE) measurement report associated with the second RAN node. 33. The method of any one of embodiments 20-32, wherein the first RAN node comprises one of a Next Generation (NG) RAN node (gNB) and a Long Term Evolution (LTE) RAN node (eNB), and the second RAN node comprises one of an NG RAN node and an LTE RAN node. 34. The method of embodiment 33, in which the setting update request message and the setting update message are transmitted through at least one of an Xn interface and / or an X2 interface. 35. The method of any one of embodiments 20 to 34, wherein the first RAN node includes a RAN node central unit (CU) (e.g., a gNB-CU or a ng-eNB-CU) and the second RAN node includes a RAN node distributed unit (DU) (e.g., a gNB-DU or a ng-eNB-DU). 36. The method of embodiment 35, in which a configuration update request message and a configuration update message are transmitted between the RAN node CU and the RAN node DU over an F1 interface. 37. The method of any one of embodiments 20-36, wherein the configuration update request message comprises a coverage and capacity optimization (CCO) request message, the indication of the requested configuration change to the second RAN node comprises an indication of a requested CCO configuration change to the second RAN node, the configuration update message comprises a CCO configuration update message, and the indication of the configuration update selected by the second RAN node comprises an indication of a CCO configuration update selected by the second RAN node. 38. A method according to any one of embodiments 20 to 37, wherein the configuration updates to be applied are selected based on an indication of a requested configuration change. 39. A method according to any one of embodiments 20 to 38, wherein the indication of the configuration update selected by the second RAN node indicates at least one serving cell of the second RAN node associated with the configuration update selected by the second RAN node, and / or the indication of the configuration update to the second RAN node indicates at least one reference signal (RS) beam coverage area of ​​the second RAN node associated with the configuration update selected by the second RAN node. 40. A first Radio Access Network (RAN) node (400), A processing circuit (403); A first RAN node (400) comprising: a memory (405) coupled to a processing circuit and including instructions, the instructions, when executed by the processing circuit, causing the first RAN node to perform an operation described in any one of embodiments 1 to 19. 41. A first Radio Access Network (RAN) node (400) adapted to perform the operations described in any one of embodiments 1 to 19. 42. A computer program comprising program code executed by a processing circuit (403) of a first radio access network (RAN) node (400), the computer program causing the first RAN node (400) to perform an operation described in any one of embodiments 1 to 19 by executing the program code. 43. A computer program product comprising a non-transitory storage medium containing program code executed by a processing circuit (403) of a first radio access network (RAN) node (400), the program code, when executed, causing the first RAN node (400) to perform an operation described in any one of embodiments 1 to 19. 44. A second radio access network (RAN) node (400), A processing circuit (403); A second RAN node (400) comprising: a memory (405) coupled to a processing circuit and including instructions, the instructions, when executed by the processing circuit, causing the second RAN node to perform an operation described in any one of embodiments 20 to 39. 45. A second Radio Access Network (RAN) node (400) adapted to perform the operations described in any one of embodiments 20 to 39. 46. ​​A computer program comprising program code executed by a processing circuit (403) of a second radio access network (RAN) node (400), the computer program causing the second RAN node (400) to perform an operation described in any one of embodiments 20 to 39 by executing the program code. 47. A computer program product comprising a non-transitory storage medium containing program code executed by a processing circuit (403) of a second radio access network (RAN) node (400), the program code, when executed, causing the second RAN node (400) to perform an operation described in any one of embodiments 20 to 39.

[0235] Provided below are explanations for various abbreviations / acronyms used in this disclosure. Explanation of Abbreviations CAC combined available capacity CCI Capacity and / or Coverage Issues CCO Coverage and Capacity Optimization CU-CP Centralized Unit - Control Plane CU-UP Centralized Unit - User Plane DL Downlink DU Distributed Unit ECID Extended Cell Identification Information GNSS Global Navigation Satellite System LTE Long Term Evolution MCG Master Cell Group Minimizing MDT Drive Tests ML Machine Learning MN Master Node NR new radio PDCP Packet Data Convergence Protocol RAN Radio Access Network RSRP reference signal received power RSRQ Reference signal reception quality SCG Secondary Cell Group SINR Signal to Interference and Noise Ratio SN Secondary Node TNL Transport Network Layer UE User Equipment UL Uplink WLAN Wireless Local Area Network

[0236] Further explanation is provided below.

[0237] Generally, all terms used herein should be interpreted according to the ordinary meaning of those terms in the relevant technical field, unless a different meaning is expressly given and / or implied from the context in which the term is used. All references to a / an / the element, apparatus, component, means, step, etc. should be openly interpreted as referring to at least one instance of that element, apparatus, component, means, step, etc., unless expressly stated otherwise. The steps of any method disclosed herein need not be performed in the exact order disclosed, unless a step is expressly described as following or preceding another step, and / or where it is implicit that a step must follow or precede another step. Any feature of any of the embodiments disclosed herein may be applied to any other embodiment, wherever appropriate. Likewise, any advantage of any of the embodiments may be applied to any other embodiment, and vice versa. Other objects, features, and advantages of the enclosed embodiments will become apparent from the following description.

[0238] Some of the embodiments contemplated herein will now be described more fully with reference to the accompanying drawings, in which: However, other embodiments are included within the scope of the subject matter disclosed herein, and the disclosed subject matter should not be construed as being limited to only the embodiments described herein, but rather, these embodiments are provided as examples to convey the scope of the subject matter to those skilled in the art.

[0239] FIG. 52 illustrates a wireless network according to some embodiments.

[0240] Although the subject matter described herein may be implemented in any suitable type of system using any suitable components, the embodiments disclosed herein are described with respect to a wireless network, such as the exemplary wireless network shown in FIG. 52. For simplicity, the wireless network of FIG. 52 illustrates only the network 4106, the network nodes 4160 and 4160b, and the WDs 4110, 4110b, and 4110c (also referred to as mobile terminals). In practice, the wireless network may further include any additional elements suitable for supporting communication between wireless devices, or between a wireless device and another communication device, such as a landline, a service provider, or any other network node or end device. Of the components shown, the network node 4160 and the wireless device (WD) 4110 are illustrated with additional details. The wireless network may provide communication and other types of services to one or more wireless devices to facilitate the wireless device's access to the wireless network and / or use of services provided by or via the wireless network.

[0241] A wireless network may comprise and / or interface with any type of communication, telecommunication, data, cellular, and / or radio network, or other similar type of system. In some embodiments, a wireless network may be configured to operate according to a particular standard or other type of predefined rules or procedures. Thus, particular embodiments of a wireless network may implement a communications standard, such as Global System for Mobile Communications (GSM), Universal Mobile Telecommunications System (UMTS), Long Term Evolution (LTE), and / or other suitable 2G, 3G, 4G, or 5G standards, a wireless local area network (WLAN) standard, such as the IEEE 802.11 standard, and / or any other suitable wireless communication standard, such as Worldwide Interoperability for Microwave Access (WiMax), Bluetooth, Z-Wave, and / or ZigBee standards.

[0242] The network 4106 may comprise one or more backhaul networks, core networks, IP networks, public switched telephone networks (PSTN), packet data networks, optical networks, wide area networks (WANs), local area networks (LANs), wireless local area networks (WLANs), wired networks, wireless networks, metropolitan area networks, and other networks to enable communication between devices.

[0243] The network node 4160 and WD 4110 comprise various components, which are described in more detail below. These components cooperate to provide network node and / or wireless device functionality, such as providing wireless connectivity in a wireless network. In different embodiments, a wireless network may comprise any number of wired or wireless networks, network nodes, base stations, controllers, wireless devices, relay stations, and / or any other components or systems that may facilitate or participate in the communication of data and / or signals, whether via wired or wireless connections.

[0244] A network node, as used herein, refers to a device capable of, set up, configured, and / or operable to communicate directly or indirectly with wireless devices and / or other network nodes or devices in a wireless network to enable and / or provide wireless access to wireless devices and / or to perform other functions (e.g., administration) in the wireless network. Examples of network nodes include, but are not limited to, access points (APs) (e.g., wireless access points), base stations (BSs) (e.g., radio base stations, Node Bs, evolved Node Bs (eNBs) and NR Node Bs (gNBs)). Base stations may be categorized based on the amount of coverage they provide (or, in other words, their transmit power levels), and may then be referred to as femto, pico, micro, or macro base stations. A base station may be a relay node or a relay donor node that controls a relay. A network node may also include one or more (or all) parts of a distributed radio base station, such as a centralized digital unit and / or a remote radio unit (RRU), sometimes referred to as a remote radio head (RRH). Such a remote radio unit may or may not be integrated with an antenna as an antenna-integrated radio. A part of a distributed radio base station may also be referred to as a node in a distributed antenna system (DAS). Still further examples of a network node include MSR equipment such as a multi-standard radio (MSR) BS, a network controller such as a radio network controller (RNC) or a base station controller (BSC), a base transceiver station (BTS), a transmission point, a transmitting node, a multi-cell / multicast coordination entity (MCE), a core network node (e.g., MSC, MME), an O&M node, an OSS node, a SON node, a positioning node (e.g., E-SMLC), and / or an MDT. As another example, a network node may be a virtual network node, as described in more detail below.More generally, however, a network node may represent any suitable device (or group of devices) capable of, configured to, and / or operable to enable and / or provide wireless devices with access to a wireless network or to provide some service to wireless devices that have accessed the wireless network.

[0245] In FIG. 52, the network node 4160 includes a processing circuit 4170, a device readable medium 4180, an interface 4190, an auxiliary device 4184, a power source 4186, a power circuit 4187, and an antenna 4162. Although the network node 4160 shown in the example wireless network of FIG. 52 may represent a device including the shown combination of hardware components, other embodiments may comprise a network node with a different combination of components. It should be understood that a network node comprises any suitable combination of hardware and / or software required to perform the tasks, features, functions and methods disclosed herein. Moreover, while the components of the network node 4160 are illustrated as a single box located within a larger box or nested within multiple boxes, in reality the network node may comprise multiple different physical components that make up a single shown component (e.g., the device readable medium 4180 may comprise multiple separate hard drives as well as multiple RAM modules).

[0246] Similarly, the network node 4160 may be assembled from multiple physically separate components (e.g., a Node B component and an RNC component, or a BTS component and a BSC component, etc.), each of which may have their own respective components. In some scenarios in which the network node 4160 comprises multiple separate components (e.g., a BTS component and a BSC component), one or more of the separate components may be shared among several network nodes. For example, a single RNC may control several Node Bs. In such scenarios, each unique Node B and RNC pair may be considered as a single separate network node in some cases. In some embodiments, the network node 4160 may be configured to support several radio access technologies (RATs). In such embodiments, some components may be duplicated (e.g., separate device-readable media 4180 for different RATs) and some components may be reused (e.g., the same antenna 4162 may be shared by the RATs). The network node 4160 may also include multiple sets of the various shown components for different wireless technologies, such as, for example, GSM, WCDMA, LTE, NR, WiFi, or Bluetooth wireless technologies, integrated into the network node 4160. These wireless technologies may be integrated in the same or different chips or sets of chips and other components within the network node 4160.

[0247] The processing circuit 4170 is configured to perform any decision, computation, or similar operations (e.g., some acquisition operations) described herein as being provided by a network node. These operations performed by the processing circuit 4170 may include processing information acquired by the processing circuit 4170, for example, by transforming the acquired information into other information, comparing the acquired or transformed information with information stored in the network node, and / or performing one or more operations based on the acquired or transformed information and as a result of said processing making a decision.

[0248] The processing circuit 4170 may comprise one or more combinations of a microprocessor, controller, microcontroller, central processing unit, digital signal processor, application specific integrated circuit, field programmable gate array, or any other suitable computing device, resource, or combination of hardware, software, and / or coded logic operable to provide network node 4160 functionality, either alone or in conjunction with other network node 4160 components, such as device readable medium 4180. For example, the processing circuit 4170 may execute instructions stored on the device readable medium 4180 or in memory within the processing circuit 4170. Such functionality may include providing any of the various wireless features, functions, or benefits described herein. In some embodiments, the processing circuit 4170 may include a system on a chip (SOC).

[0249] In some embodiments, the processing circuitry 4170 may include one or more of a radio frequency (RF) transceiver circuitry 4172 and a baseband processing circuitry 4174. In some embodiments, the radio frequency (RF) transceiver circuitry 4172 and the baseband processing circuitry 4174 may be on separate chips (or sets of chips), boards, or units, such as a radio unit and a digital unit. In alternative embodiments, some or all of the RF transceiver circuitry 4172 and the baseband processing circuitry 4174 may be on the same chip or set of chips, board, or unit.

[0250] In some embodiments, some or all of the functionality described herein as being provided by a network node, base station, eNB, or other such network device may be performed by the processing circuitry 4170 executing instructions stored in a device-readable medium 4180, or in a memory within the processing circuitry 4170. In alternative embodiments, some or all of the functionality may be provided by the processing circuitry 4170 without executing instructions stored in a separate or distinct device-readable medium, such as in a hardwired manner. In any of those embodiments, the processing circuitry 4170 may be configured to perform the described functionality, whether or not it executes instructions stored in a device-readable storage medium. Benefits provided by such functionality are enjoyed by the processing circuitry 4170 alone, or by other components of the network node 4160, but by the network node 4160 as a whole, and / or by end users and wireless networks in general.

[0251] The device readable medium 4180 may comprise any form of volatile or non-volatile computer readable memory, including, but not limited to, persistent storage, solid state memory, remotely mounted memory, magnetic media, optical media, random access memory (RAM), read only memory (ROM), mass storage media (e.g., hard disk), removable storage media (e.g., flash drive, compact disk (CD) or digital video disk (DVD)), and / or any other volatile or non-volatile, non-transitory device readable and / or computer executable memory device that stores information, data, and / or instructions that may be used by the processing circuit 4170. The device readable medium 4180 may store any suitable instructions, data or information, including applications including one or more of computer programs, software, logic, rules, codes, tables, etc., and / or other instructions that may be executed by the processing circuit 4170 and utilized by the network node 4160. The device-readable medium 4180 may be used to store calculations performed by the processing circuit 4170 and / or data received via the interface 4190. In some embodiments, the processing circuit 4170 and the device-readable medium 4180 may be considered to be integrated.

[0252] The interface 4190 is used in wired or wireless communication of signaling and / or data between the network node 4160, the network 4106, and / or the WD 4110. As shown, the interface 4190 comprises a port(s) / terminal(s) 4194 for sending and receiving data to and from the network 4106, for example over a wired connection. The interface 4190 also includes a wireless front-end circuit 4192, which is coupled to the antenna 4162 or, in some embodiments, may be part of the antenna 4162. The wireless front-end circuit 4192 comprises a filter 4198 and an amplifier 4196. The wireless front-end circuit 4192 may be connected to the antenna 4162 and the processing circuit 4170. The wireless front-end circuit may be configured to condition signals communicated between the antenna 4162 and the processing circuit 4170. The wireless front-end circuit 4192 may receive digital data to be sent to other network nodes or WDs via a wireless connection. The radio front-end circuit 4192 may convert the digital data into a radio signal having appropriate channel and bandwidth parameters using a combination of filters 4198 and / or amplifiers 4196. The radio signal may then be transmitted via the antenna 4162. Similarly, when receiving data, the antenna 4162 may collect the radio signal, which is then converted into digital data by the radio front-end circuit 4192. The digital data may be passed to the processing circuit 4170. In other embodiments, the interface may comprise different components and / or different combinations of components.

[0253] In some alternative embodiments, the network node 4160 may not include a separate radio front-end circuit 4192, and instead the processing circuit 4170 may comprise a radio front-end circuit and be connected to the antenna 4162 without a separate radio front-end circuit 4192. Similarly, in some embodiments, all or a portion of the RF transceiver circuit 4172 may be considered part of the interface 4190. In still other embodiments, the interface 4190 may include one or more ports or terminals 4194, the radio front-end circuit 4192, and the RF transceiver circuit 4172 as part of a radio unit (not shown), and the interface 4190 may communicate with a baseband processing circuit 4174 that is part of a digital unit (not shown).

[0254] The antenna 4162 may include one or more antennas or antenna arrays configured to transmit and / or receive wireless signals. The antenna 4162 may be coupled to the radio front-end circuitry 4192 and may be any type of antenna capable of wirelessly transmitting and receiving data and / or signals. In some embodiments, the antenna 4162 may comprise one or more omni-directional, sector or panel antennas operable to transmit / receive wireless signals, for example, between 2 GHz and 66 GHz. An omni-directional antenna may be used to transmit / receive wireless signals in any direction, a sector antenna may be used to transmit / receive wireless signals from devices in a particular area, and a panel antenna may be a line-of-sight antenna used to transmit / receive wireless signals in a relatively straight line. In some instances, the use of more than one antenna may be referred to as MIMO. In some embodiments, the antenna 4162 may be separate from the network node 4160 and may be connectable to the network node 4160 through an interface or port.

[0255] The antenna 4162, the interface 4190, and / or the processing circuit 4170 may be configured to perform any receiving operation and / or some obtaining operation described herein as being performed by a network node. Any information, data, and / or signal may be received from a wireless device, another network node, and / or any other network equipment. Similarly, the antenna 4162, the interface 4190, and / or the processing circuit 4170 may be configured to perform any transmitting operation described herein as being performed by a network node. Any information, data, and / or signal may be transmitted to a wireless device, another network node, and / or any other network equipment.

[0256] The power circuit 4187 may comprise or be coupled to a power management circuit and is configured to supply power to the components of the network node 4160 for performing the functions described herein. The power circuit 4187 may receive power from a power source 4186. The power source 4186 and / or the power circuit 4187 may be configured to provide power to the various components of the network node 4160 in a form suitable for the respective components (e.g., at the voltage and current levels required for each respective component). The power source 4186 may either be included in the power circuit 4187 and / or the network node 4160 or may be external to the power circuit 4187 and / or the network node 4160. For example, the network node 4160 may be connectable to an external power source (e.g., an electrical outlet) via an input circuit or interface such as an electrical cable, whereby the external power source supplies power to the power circuit 4187. As a further example, power supply 4186 may include a power source in the form of a battery or battery pack connected to or integrated in power circuit 4187. The battery may provide backup power in the event that an external power source fails. Other types of power sources, such as photovoltaic devices, may also be used.

[0257] Alternative embodiments of the network node 4160 may include additional components other than those shown in FIG. 52 that may be responsible for providing some aspects of the network node's functionality, including any of the functions described herein and / or functions necessary to support the subject matter described herein. For example, the network node 4160 may include user interface devices to enable input of information into the network node 4160 and output of information from the network node 4160. This may enable a user to perform diagnostic, maintenance, repair, and other administrative functions for the network node 4160.

[0258] A wireless device (WD) as used herein refers to a device capable of, configured to, and / or operable to communicate wirelessly with network nodes and / or other wireless devices. Unless otherwise noted, the term WD may be used interchangeably herein with user equipment (UE). Communicating wirelessly may involve transmitting and / or receiving wireless signals using electromagnetic, radio, infrared, and / or other types of signals suitable for conveying information over the air. In some embodiments, a WD may be configured to transmit and / or receive information without direct human interaction. For example, a WD may be designed to transmit information to a network on a predefined schedule, when triggered by an internal or external event, or in response to a request from the network. Examples of WDs include, but are not limited to, smartphones, mobile phones, cell phones, voice-over-IP (VoIP) phones, wireless local loop phones, desktop computers, personal digital assistants (PDAs), wireless cameras, gaming consoles or devices, music storage devices, playback appliances, wearable terminal devices, wireless endpoints, mobile stations, tablets, laptop computers, laptop embedded equipment (LEE), laptop mounted equipment (LME), smart devices, wireless customer premises equipment (CPE), in-vehicle wireless terminal devices, etc. A WD may support device-to-device (D2D) communications, for example, by implementing 3GPP standards for sidelink communications, vehicle-to-vehicle (V2V), vehicle-to-infrastructure (V2I), vehicle-to-everything (V2X), in which case it may be referred to as a D2D communications device. As yet another specific example, in an Internet of Things (IoT) scenario, a WD may represent a machine or other device that performs monitoring and / or measurements and transmits results of such monitoring and / or measurements to another WD and / or network node. The WD may in this case be a machine-to-machine (M2M) device, which may be referred to as an MTC device in the 3GPP context.As one particular example, the WD may be a UE implementing the 3GPP Narrowband Internet of Things (NB-IoT) standard. Particular examples of such machines or devices are sensors, metering devices such as power meters, industrial machinery, or household or personal appliances (e.g., refrigerators, televisions, etc.), personal wearables (e.g., watches, fitness trackers, etc.). In other scenarios, the WD may represent a vehicle or other equipment capable of monitoring and / or reporting on its operational status or other functions related to its operation. The WD described above may represent an endpoint of a wireless connection, in which case the device may be referred to as a wireless terminal. Additionally, the WD described above may be mobile, in which case the device may be referred to as a mobile device or mobile terminal.

[0259] As shown, the wireless device 4110 includes an antenna 4111, an interface 4114, a processing circuit 4120, a device readable medium 4130, a user interface device 4132, an auxiliary device 4134, a power source 4136, and a power circuit 4137. The WD4110 may include multiple sets of one or more of the shown components for different wireless technologies supported by the WD4110, such as, for example, GSM, WCDMA, LTE, NR, WiFi, WiMAX, or Bluetooth wireless technologies, just to name a few. These wireless technologies may be integrated on the same or different chips or sets of chips as other components within the WD4110.

[0260] The antenna 4111 may include one or more antennas or antenna arrays configured to transmit and / or receive wireless signals and is connected to the interface 4114. In some alternative embodiments, the antenna 4111 may be separate from the WD 4110 and connectable to the WD 4110 through an interface or port. The antenna 4111, the interface 4114, and / or the processing circuit 4120 may be configured to perform any receiving or transmitting operation described herein as being performed by a WD. Any information, data, and / or signal may be received from a network node and / or another WD. In some embodiments, the wireless front-end circuit and / or the antenna 4111 may be considered an interface.

[0261] As shown, the interface 4114 comprises a radio front-end circuit 4112 and an antenna 4111. The radio front-end circuit 4112 comprises one or more filters 4118 and an amplifier 4116. The radio front-end circuit 4112 is connected to the antenna 4111 and the processing circuit 4120 and is configured to condition signals communicated between the antenna 4111 and the processing circuit 4120. The radio front-end circuit 4112 may be coupled to the antenna 4111 or may be part of the antenna 4111. In some embodiments, the WD 4110 may not include a separate radio front-end circuit 4112, rather the processing circuit 4120 may comprise a radio front-end circuit and be connected to the antenna 4111. Similarly, in some embodiments, some or all of the RF transceiver circuit 4122 may be considered part of the interface 4114. The radio front-end circuit 4112 may receive digital data to be sent to other network nodes or WDs via a wireless connection. The radio front-end circuitry 4112 may convert the digital data into a radio signal having appropriate channel and bandwidth parameters using a combination of filters 4118 and / or amplifiers 4116. The radio signal may then be transmitted via the antenna 4111. Similarly, when receiving data, the antenna 4111 may collect the radio signal, which is then converted into digital data by the radio front-end circuitry 4112. The digital data may be passed to the processing circuitry 4120. In other embodiments, the interface may comprise different components and / or different combinations of components.

[0262] The processing circuitry 4120 may comprise one or more combinations of a microprocessor, controller, microcontroller, central processing unit, digital signal processor, application specific integrated circuit, field programmable gate array, or any other suitable computing device, resource, or combination of hardware, software, and / or coded logic operable to provide WD4110 functionality, either alone or in conjunction with other WD4110 components such as device readable medium 4130. Such functionality may include providing any of the various wireless features or benefits described herein. For example, the processing circuitry 4120 may execute instructions stored on the device readable medium 4130 or in memory within the processing circuitry 4120 to provide the functionality disclosed herein.

[0263] As shown, the processing circuit 4120 includes one or more of an RF transceiver circuit 4122, a baseband processing circuit 4124, and an application processing circuit 4126. In other embodiments, the processing circuit may comprise different components and / or different combinations of components. In some embodiments, the processing circuit 4120 of the WD4110 may comprise a SOC. In some embodiments, the RF transceiver circuit 4122, the baseband processing circuit 4124, and the application processing circuit 4126 may be on separate chips or sets of chips. In alternative embodiments, some or all of the baseband processing circuit 4124 and the application processing circuit 4126 may be combined into one chip or set of chips, and the RF transceiver circuit 4122 may be on a separate chip or set of chips. In yet alternative embodiments, some or all of the RF transceiver circuit 4122 and the baseband processing circuit 4124 may be on the same chip or set of chips, and the application processing circuit 4126 may be on a separate chip or set of chips. In yet other alternative embodiments, some or all of the RF transceiver circuitry 4122, the baseband processing circuitry 4124, and the application processing circuitry 4126 may be combined in the same chip or set of chips. In some embodiments, the RF transceiver circuitry 4122 may be part of the interface 4114. The RF transceiver circuitry 4122 may condition RF signals for the processing circuitry 4120.

[0264] In some embodiments, some or all of the functionality described herein as being performed by the WD may be provided by the processing circuitry 4120 executing instructions stored on a device-readable medium 4130, which in some embodiments may be a computer-readable storage medium. In alternative embodiments, some or all of the functionality may be provided by the processing circuitry 4120 without executing instructions stored on a separate or distinct device-readable storage medium, such as in a hardwired manner. In any of those particular embodiments, the processing circuitry 4120 may be configured to perform the described functionality, whether or not it executes instructions stored on a device-readable storage medium. Benefits provided by such functionality are enjoyed by the WD 4110 as a whole, and / or by end users and wireless networks in general, but not limited to the processing circuitry 4120 alone or other components of the WD 4110.

[0265] The processing circuit 4120 may be configured to perform any of the decision, calculation, or similar operations (e.g., some of the acquisition operations) described herein as being performed by the WD. These operations as performed by the processing circuit 4120 may include processing information acquired by the processing circuit 4120, for example, by converting the acquired information into other information, comparing the acquired or converted information to information stored by the WD 4110, and / or performing one or more operations based on the acquired or converted information and as a result of the processing making a decision.

[0266] The device-readable medium 4130 may be operable to store applications including one or more of computer programs, software, logic, rules, codes, tables, etc., and / or other instructions that may be executed by the processing circuit 4120. The device-readable medium 4130 may include computer memory (e.g., random access memory (RAM) or read-only memory (ROM)), mass storage media (e.g., hard disk), removable storage media (e.g., compact disc (CD) or digital video disc (DVD)), and / or any other volatile or non-volatile, non-transitory device-readable and / or computer-executable memory device that stores information, data, and / or instructions that may be used by the processing circuit 4120. In some embodiments, the processing circuit 4120 and the device-readable medium 4130 may be considered to be integrated.

[0267] The user interface device 4132 may provide components that allow a human user to interact with the WD4110. Such interaction may be of many forms, such as visual, auditory, tactile, etc. The user interface device 4132 may be operable to produce output to the user and to allow the user to provide input to the WD4110. The type of interaction may vary depending on the type of user interface device 4132 installed on the WD4110. For example, if the WD4110 is a smartphone, the interaction may be via a touch screen, and if the WD4110 is a smart meter, the interaction may be through a screen that provides usage (e.g., number of gallons used), or a speaker that provides an audible alarm (e.g., if smoke is detected). The user interface device 4132 may include input interfaces, devices and circuits, as well as output interfaces, devices and circuits. The user interface device 4132 is configured to allow input of information to the WD4110 and is connected to the processing circuit 4120 to allow the processing circuit 4120 to process the input information. The user interface device 4132 may include, for example, a microphone, proximity or other sensors, keys / buttons, a touch display, one or more cameras, a USB port, or other input circuitry. The user interface device 4132 is also configured to enable output of information from the WD4110 and to enable the processing circuitry 4120 to output information from the WD4110. The user interface device 4132 may include, for example, a speaker, a display, a vibration circuitry, a USB port, a headphone interface, or other output circuitry. Using one or more input and output interfaces, devices, and circuits of the user interface device 4132, the WD4110 may communicate with an end user and / or a wireless network, enabling the end user and / or the wireless network to benefit from the functionality described herein.

[0268] The auxiliary device 4134 is operable to provide more specific functionality that may not generally be implemented by a WD. It may include specialized sensors for taking measurements for various purposes, interfaces for additional types of communication such as wired communication, etc. The inclusion and type of components of the auxiliary device 4134 may vary depending on the embodiment and / or scenario.

[0269] The power source 4136 may be in the form of a battery or battery pack in some embodiments. Other types of power sources may also be used, such as an external power source (e.g., an electrical outlet), a photovoltaic device, or a battery. The WD4110 may further comprise a power circuit 4137 for delivering power from the power source 4136 to various parts of the WD4110 that require power from the power source 4136 to perform any of the functions described or indicated herein. The power circuit 4137 may comprise a power management circuit in some embodiments. The power circuit 4137 may additionally or alternatively be operable to receive power from an external power source, in which case the WD4110 may be connectable to an external power source (such as an electrical outlet) via an input circuit or interface, such as a power cable. The power circuit 4137 may also be operable in some embodiments to deliver power from the external power source to the power source 4136. This may be for example for charging the power source 4136. The power circuitry 4137 may perform any formatting, conversion, or other modification on the power from the power source 4136 to make the power suitable for the respective components of the WD4110 that are being powered.

[0270] FIG. 53 illustrates a user equipment according to some embodiments.

[0271] FIG. 53 illustrates an embodiment of a UE according to various aspects described herein. User equipment or UE as used herein does not necessarily have a user in the sense of a human user who owns and / or operates an associated device. Instead, a UE may represent a device (e.g., a smart sprinkler controller) that is intended for sale to or operation by a human user, but may not be associated with or may not be initially associated with a particular human user. Alternatively, a UE may represent a device (e.g., a smart power meter) that is not intended for sale to or operation by an end user, but may be associated with or operated for the benefit of a user. The UE 4200 may be any UE identified by the 3rd Generation Partnership Project (3GPP), including an NB-IoT UE, a machine type communication (MTC) UE, and / or an enhanced MTC (eMTC) UE. The UE 4200 shown in FIG. 53 is an example of a WD configured for communication according to one or more communications standards promulgated by the 3rd Generation Partnership Project (3GPP), such as the 3GPP GSM, UMTS, LTE, and / or 5G standards. As previously mentioned, the terms WD and UE may be used interchangeably. Thus, although FIG. 53 is a UE, the components described herein are equally applicable to a WD and vice versa.

[0272] In FIG. 53, the UE 4200 includes a processing circuit 4201 operatively coupled to an input / output interface 4205, a radio frequency (RF) interface 4209, a network connection interface 4211, a memory 4215 including a random access memory (RAM) 4217, a read only memory (ROM) 4219, a storage medium 4221, etc., a communication subsystem 4231, a power source 4213, and / or any other components, or any combination thereof. The storage medium 4221 includes an operating system 4223, an application program 4225, and data 4227. In other embodiments, the storage medium 4221 may include other similar types of information. Some UEs may utilize all of the components shown in FIG. 53 or only a subset of those components. The level of integration between components may vary from UE to UE. Additionally, some UEs may include multiple instances of a component, such as multiple processors, memories, transceivers, transmitters, receivers, etc.

[0273] In Fig. 53, the processing circuit 4201 may be configured to process computer instructions and data. The processing circuit 4201 may be configured to implement any sequential state machine operable to execute machine instructions stored in memory as a machine-readable computer program, such as one or more hardware-implemented state machines (e.g., in discrete logic, FPGA, ASIC, etc.), programmable logic with appropriate firmware, one or more pre-programmed, general-purpose processors, such as a microprocessor or digital signal processor (DSP) with appropriate software, or any combination of the above. For example, the processing circuit 4201 may include two central processing units (CPUs). Data may be information in a form suitable for use by a computer.

[0274] In the illustrated embodiment, the input / output interface 4205 may be configured to provide an input device, an output device, or a communication interface to an input / output device. The UE 4200 may be configured to use an output device via the input / output interface 4205. The output device may use the same type of interface port as the input device. For example, a USB port may be used to provide input to and output from the UE 4200. The output device may be a speaker, a sound card, a video card, a display, a monitor, a printer, an actuator, an emitter, a smart card, another output device, or any combination thereof. The UE 4200 may be configured to use an input device via the input / output interface 4205 to allow a user to capture information into the UE 4200. The input device may include a touch-sensitive or presence-sensitive display, a camera (e.g., a digital camera, a digital video camera, a webcam, etc.), a microphone, a sensor, a mouse, a trackball, a directional pad, a trackpad, a scroll wheel, a smart card, etc. The presence-sensitive display may include a capacitive or resistive touch sensor to sense input from a user. The sensor may be, for example, an accelerometer, a gyroscope, a tilt sensor, a force sensor, a magnetometer, a light sensor, a proximity sensor, another like sensor, or any combination thereof. For example, the input device may be an accelerometer, a magnetometer, a digital camera, a microphone, and a light sensor.

[0275] In FIG. 53, the RF interface 4209 may be configured to provide a communication interface to RF components, such as a transmitter, a receiver, and an antenna. The network connection interface 4211 may be configured to provide a communication interface to a network 4243a. The network 4243a may encompass a wired and / or wireless network, such as a local area network (LAN), a wide area network (WAN), a computer network, a wireless network, a communication network, another similar network, or any combination thereof. For example, the network 4243a may comprise a Wi-Fi network. The network connection interface 4211 may be configured to include a receiver and a transmitter interface used to communicate with one or more other devices over a communication network according to one or more communication protocols, such as Ethernet, TCP / IP, SONET, ATM, etc. The network connection interface 4211 may implement receiver and transmitter functions suitable for a communication network link (e.g., optical, electrical, etc.). The transmitter and receiver functions may share circuit components, software or firmware, or may alternatively be implemented separately.

[0276] The RAM 4217 may be configured to interface to the processing circuit 4201 via the bus 4202 to provide storage or caching of data or computer instructions during execution of software programs, such as an operating system, application programs, and device drivers. The ROM 4219 may be configured to provide computer instructions or data to the processing circuit 4201. For example, the ROM 4219 may be configured to store unchanging low-level system code or data for basic system functions, such as basic input / output (I / O), booting, or receiving keystrokes from a keyboard, stored in non-volatile memory. The storage medium 4221 may be configured to include memory, such as RAM, ROM, programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), magnetic disk, optical disk, floppy disk, hard disk, removable cartridge, or flash drive. In one example, the storage medium 4221 may be configured to include an operating system 4223, an application program 4225, such as a web browser application, a widget or gadget engine, or another application, and data files 4227. The storage medium 4221 may store any of a variety of different operating systems or combinations of operating systems for use by the UE 4200.

[0277] The storage medium 4221 may be configured to include several physical drive units, such as a redundant array of independent disks (RAID), a floppy disk drive, a flash memory, a USB flash drive, an external hard disk drive, a thumb drive, a pen drive, a key drive, a high density digital versatile disk (HD-DVD) optical disk drive, an internal hard disk drive, a Blu-Ray optical disk drive, a holographic digital data storage (HDDS) optical disk drive, an external mini dual in-line memory module (DIMM), a synchronous dynamic random access memory (SDRAM), an external micro-DIMM SDRAM, a smart card memory such as a subscriber identity module or a removable user identity (SIM / RUIM) module, other memory, or any combination thereof. The storage medium 4221 may enable the UE 4200 to access computer executable instructions, application programs, etc. stored in a temporary or non-transitory memory medium, offload data, or upload data. An article of manufacture, such as an article of manufacture utilizing a communication system, may be tangibly embodied in the storage medium 4221, and the storage medium 4221 may comprise a device-readable medium.

[0278] In FIG. 53, the processing circuit 4201 may be configured to communicate with the network 4243b using the communication subsystem 4231. The network 4243a and the network 4243b may be the same network or networks or different networks or networks. The communication subsystem 4231 may be configured to include one or more transceivers used to communicate with the network 4243b. For example, the communication subsystem 4231 may be configured to include one or more transceivers used to communicate with one or more remote transceivers of another device capable of wireless communication, such as another WD, UE, or base station of a radio access network (RAN), according to one or more communication protocols, such as IEEE 802.11, CDMA, WCDMA, GSM, LTE, UTRAN, WiMax, etc. Each transceiver may include a transmitter 4233 and / or a receiver 4235 for implementing a transmitter function or a receiver function, respectively, appropriate for a RAN link (e.g., frequency allocation, etc.). Furthermore, the transmitter 4233 and receiver 4235 of each transceiver may share circuit components, software or firmware, or may alternatively be implemented separately.

[0279] In the illustrated embodiment, the communication capabilities of the communication subsystem 4231 may include data communications, voice communications, multimedia communications, short-range communications such as Bluetooth, near-field communications, location-based communications such as using a global positioning system (GPS) to determine location, another similar communication capability, or any combination thereof. For example, the communication subsystem 4231 may include cellular communications, Wi-Fi communications, Bluetooth communications, and GPS communications. The network 4243b may encompass wired and / or wireless networks, such as a local area network (LAN), a wide area network (WAN), a computer network, a wireless network, a communications network, another similar network, or any combination thereof. For example, the network 4243b may be a cellular network, a Wi-Fi network, and / or a near-field network. The power source 4213 may be configured to provide alternating current (AC) or direct current (DC) power to the components of the UE 4200.

[0280] The features, benefits and / or functions described herein may be implemented in one of the components of the UE 4200 or distributed across multiple components of the UE 4200. Furthermore, the features, benefits and / or functions described herein may be implemented in any combination of hardware, software or firmware. In one example, the communication subsystem 4231 may be configured to include any of the components described herein. Furthermore, the processing circuit 4201 may be configured to communicate with any of such components over the bus 4202. In another example, any of such components may be represented by program instructions stored in memory that, when executed by the processing circuit 4201, perform the corresponding functions described herein. In another example, the functions of any of such components may be distributed between the processing circuit 4201 and the communication subsystem 4231. In another example, non-computationally intensive functions of any of such components may be implemented in software or firmware, and computationally intensive functions may be implemented in hardware.

[0281] FIG. 54 illustrates a virtualization environment according to some embodiments.

[0282] FIG. 54 is a schematic block diagram illustrating a virtualization environment 4300 in which functions implemented by some embodiments may be virtualized. In this context, virtualizing means creating a virtual version of an apparatus or device, which may include virtualizing a hardware platform, storage devices, and networking resources. Virtualization as used herein may be applied to a node (e.g., a virtualized base station or a virtualized radio access node) or to a device (e.g., a UE, a wireless device, or any other type of communication device) or to a component of that device, and relates to implementations in which at least a portion of the functionality is implemented as one or more virtual components (e.g., via one or more applications, components, functions, virtual machines, or containers running on one or more physical processing nodes in one or more networks).

[0283] In some embodiments, some or all of the functionality described herein may be implemented as virtual components executed by one or more virtual machines implemented in one or more virtual environments 4300 hosted by one or more of the hardware nodes 4330. Furthermore, in embodiments where the virtual nodes are not wireless access nodes or do not require wireless connectivity (e.g., core network nodes), the network nodes may be fully virtualized.

[0284] The functionality may be implemented by one or more applications 4320 (which may alternatively be referred to as software instances, virtual appliances, network functions, virtual nodes, virtual network functions, etc.) operable to implement some of the features, functions, and / or benefits of some of the embodiments disclosed herein. The applications 4320 are run in a virtualization environment 4300, which provides hardware 4330 comprising a processing circuit 4360 and a memory 4390. The memory 4390 includes instructions 4395 executable by the processing circuit 4360 such that the applications 4320 are operable to provide one or more of the features, benefits, and / or functions disclosed herein.

[0285] The virtualization environment 4300 includes a general-purpose or dedicated network hardware device 4330 that includes a set of one or more processors or processing circuitry 4360, which may be a commercial off-the-shelf (COTS) processor, a dedicated application specific integrated circuit (ASIC), or any other type of processing circuitry including digital or analog hardware components or dedicated processors. Each hardware device may include a memory 4390-1, which may be a non-persistent memory for temporarily storing instructions 4395 or software executed by the processing circuitry 4360. Each hardware device may include one or more network interface controllers (NICs) 4370, also known as network interface cards, which include a physical network interface 4380. Each hardware device may also include a non-transitory, persistent, machine-readable storage medium 4390-2 that stores software 4395 and / or instructions executable by the processing circuitry 4360. Software 4395 may include any type of software, including software for instantiating one or more virtualization layers 4350 (also called hypervisors), software for running virtual machines 4340, and software that enables it to perform the functions, features and / or benefits described in connection with some embodiments described herein.

[0286] The virtual machines 4340 may comprise virtual processing, virtual memory, virtual networking or interfaces, and virtual storage, and may be run by a corresponding virtualization layer 4350 or hypervisor. Different embodiments of the virtual appliance 4320 instances may be implemented on one or more of the virtual machines 4340, and the implementations may be done in different ways.

[0287] During operation, the processing circuitry 4360 executes software 4395 to instantiate a hypervisor or virtualization layer 4350, which may sometimes be referred to as a virtual machine monitor (VMM). The virtualization layer 4350 may present to the virtual machine 4340 a virtual operating platform that looks like networking hardware.

[0288] As shown in Figure 54, the hardware 4330 may be a standalone network node with general or specific components. The hardware 4330 may include an antenna 43225 and may implement some functions via virtualization. Alternatively, the hardware 4330 may be part of a larger cluster of hardware (e.g., as in the case of a data center or customer premises equipment (CPE)) where many hardware nodes work together and are managed via a management and orchestration (MANO) 43100 that, among other things, oversees the lifecycle management of the applications 4320.

[0289] Hardware virtualization is referred to in some contexts as network function virtualization (NFV). NFV can be used to consolidate many network equipment types onto industry-standard high-volume server hardware, physical switches, and physical storage that may be located in data centers and customer premises equipment.

[0290] In the context of NFV, virtual machine 4340 may be a software implementation of a physical machine that runs programs as if those programs were running on a physical, non-virtualized machine. Each virtual machine 4340 and the portion of hardware 4330 on which it runs, whether hardware dedicated to that virtual machine and / or hardware shared by that virtual machine with other ones of virtual machines 4340, form a separate virtual network element (VNE).

[0291] Further in the context of NFV, a virtual network function (VNF) is responsible for handling a specific network function running on one or more virtual machines 4340 on top of the hardware networking infrastructure 4330 and corresponds to application 4320 in FIG. 54.

[0292] In some embodiments, one or more radio units 43200, each including one or more transmitters 43220 and one or more receivers 43210, may be coupled to one or more antennas 43225. The radio units 43200 may communicate directly with the hardware node 4330 via one or more suitable network interfaces and may be used in combination with a virtualization component to provide a virtualization node with wireless capabilities, such as a wireless access node or base station.

[0293] In some embodiments, some signaling may be accomplished using the control system 43230, which may alternatively be used for communication between the hardware node 4330 and the wireless unit 43200.

[0294] FIG. 55 illustrates a communications network connected to a host computer through an intermediate network, according to some embodiments.

[0295] Referring to FIG. 55, according to one embodiment, a communication system includes a communication network 4410, such as a 3GPP type cellular network, comprising an access network 4411, such as a wireless access network, and a core network 4414. The access network 4411 comprises a number of base stations 4412a, 4412b, 4412c, such as NBs, eNBs, gNBs or other types of wireless access points, each defining a corresponding coverage area 4413a, 4413b, 4413c. Each base station 4412a, 4412b, 4412c can be connected to the core network 4414 over a wired or wireless connection 4415. A first UE 4491 located in the coverage area 4413c is configured to wirelessly connect to the corresponding base station 4412c or to be paged by the corresponding base station 4412c. A second UE 4492 in the coverage area 4413a can be wirelessly connected to the corresponding base station 4412a. Although multiple UEs 4491, 4492 are shown in this example, the disclosed embodiments are equally applicable to situations where only one UE is in a coverage area or where only one UE is connected to a corresponding base station 4412.

[0296] The communication network 4410 is itself connected to a host computer 4430, which may be embodied in hardware and / or software of a standalone server, a cloud-implemented server, a distributed server, or as a processing resource in a server farm. The host computer 4430 may be owned or under the control of a service provider, or may be operated by or on behalf of the service provider. The connections 4421 and 4422 between the communication network 4410 and the host computer 4430 may extend directly from the core network 4414 to the host computer 4430, or may proceed through an optional intermediate network 4420. The intermediate network 4420 may be one of a public network, a private network, or a hosted network, or a combination of two or more of them, and the intermediate network 4420 may be a backbone network or the Internet, if any, and in particular the intermediate network 4420 may comprise two or more sub-networks (not shown).

[0297] The communication system of FIG. 55 as a whole enables connectivity between the connected UEs 4491, 4492 and the host computer 4430. The connectivity may be described as an over-the-top (OTT) connection 4450. The host computer 4430 and the connected UEs 4491, 4492 are configured to communicate data and / or signaling via the OTT connection 4450 using the access network 4411, the core network 4414, any intermediate networks 4420, and possible further infrastructure (not shown) as intermediaries. The OTT connection 4450 may be transparent in the sense that the participating communication devices through which the OTT connection 4450 passes are unaware of the routing of the uplink and downlink communications. For example, the base station 4412 may not be or need not be informed of the past routing of incoming downlink communications involving data originating from the host computer 4430 to be forwarded (e.g., handed over) to the connected UE 4491. Similarly, the base station 4412 does not need to be aware of the future routing of outgoing uplink communications originating from the UE 1491 and destined for the host computer 4430 .

[0298] FIG. 56 illustrates a host computer communicating with user equipment via a base station over a partially wireless connection according to some embodiments.

[0299] Next, an exemplary implementation of the UE, base station and host computer described in the previous paragraph according to an embodiment will be described with reference to FIG. 56. In the communication system 4500, the host computer 4510 comprises hardware 4515 including a communication interface 4516 configured to set up and maintain wired or wireless connections with interfaces of different communication devices of the communication system 4500. The host computer 4510 further comprises a processing circuit 4518, which may have storage and / or processing capabilities. In particular, the processing circuit 4518 may comprise one or more programmable processors, application specific integrated circuits, field programmable gate arrays, or combinations thereof (not shown) adapted to execute instructions. The host computer 4510 further comprises software 4511, which is stored in or accessible by the host computer 4510 and is executable by the processing circuit 4518. The software 4511 includes a host application 4512. The host application 4512 may be operable to provide services to a remote user, such as a UE 4530 connecting via an OTT connection 4550 that terminates at the UE 4530 and the host computer 4510. In providing services to the remote user, the host application 4512 may provide user data that is transmitted using the OTT connection 4550.

[0300] The communication system 4500 further includes a base station 4520 provided in the communication system, the base station 4520 comprising hardware 4525 enabling the base station 4520 to communicate with the host computer 4510 and the UE 4530. The hardware 4525 may include a communication interface 4526 for setting up and maintaining wired or wireless connections with interfaces of different communication devices of the communication system 4500, as well as a wireless interface 4527 for setting up and maintaining at least a wireless connection 4570 with a UE 4530 located in a coverage area (not shown in FIG. 56) served by the base station 4520. The communication interface 4526 may be configured to facilitate a connection 4560 to the host computer 4510. The connection 4560 may be direct or alternatively the connection 4560 may pass through a core network (not shown in FIG. 56) of the communication system and / or one or more intermediate networks outside the communication system. In the illustrated embodiment, the hardware 4525 of the base station 4520 further includes processing circuitry 4528, which may comprise one or more programmable processors, application specific integrated circuits, field programmable gate arrays, or combinations thereof (not shown) adapted to execute instructions. The base station 4520 further has software 4521 stored internally or accessible via an external connection.

[0301] The communication system 4500 further includes the UE 4530 already mentioned. The hardware 4535 of the UE 4530 may include a wireless interface 4537 configured to set up and maintain a wireless connection 4570 with a base station serving the coverage area in which the UE 4530 is currently located. The hardware 4535 of the UE 4530 further includes a processing circuit 4538, which may comprise one or more programmable processors, application specific integrated circuits, field programmable gate arrays, or combinations thereof (not shown) adapted to execute instructions. The UE 4530 further includes software 4531 stored in or accessible by the UE 4530 and executable by the processing circuit 4538. The software 4531 includes a client application 4532. The client application 4532 may be operable to provide services to a human or non-human user via the UE 4530 with the support of the host computer 4510. At the host computer 4510, a running host application 4512 may communicate with a running client application 4532 via an OTT connection 4550 that terminates at the UE 4530 and the host computer 4510. In providing a service to a user, the client application 4532 may receive request data from the host application 4512 and provide user data in response to the request data. The OTT connection 4550 may transfer both the request data and the user data. The client application 4532 may interact with the user to generate the user data that the client application 4532 provides.

[0302] It should be noted that the host computer 4510, base station 4520 and UE 4530 shown in Figure 56 may be similar or equivalent to the host computer 4430, one of the base stations 4412a, 4412b, 4412c, and one of the UEs 4491, 4492, respectively, of Figure 55. That is, the inner workings of these entities may be as shown in Figure 56, and separately, the surrounding network topology may be that of Figure 55.

[0303] In FIG. 56, the OTT connection 4550 is depicted abstractly to show communication between the host computer 4510 and the UE 4530 via the base station 4520, without explicit reference to intermediary devices and the exact routing of messages through these devices. The network infrastructure may determine the routing, and the network infrastructure may be configured to hide the routing from the UE 4530 or from the service provider operating the host computer 4510, or both. The network infrastructure may also make decisions to dynamically change the routing while the OTT connection 4550 is active (e.g., based on load balancing considerations or reconfiguration of the network).

[0304] The wireless connection 4570 between the UE 4530 and the base station 4520 follows the teachings of the embodiments described throughout this disclosure. One or more of the various embodiments may improve the performance of the OTT service provided to the UE 4530 using the OTT connection 4550 of which the wireless connection 4570 forms the last segment. More precisely, the teachings of these embodiments may improve the random access speed and / or reduce the random access failure rate, thereby providing benefits such as faster and / or more reliable random access.

[0305] Measurement procedures may be provided for the purpose of monitoring data rates, latency and other factors that one or more embodiments improve upon. There may further be an optional network function for reconfiguring the OTT connection 4550 between the host computer 4510 and the UE 4530 in response to fluctuations in the measurement results. The measurement procedures and / or the network function for reconfiguring the OTT connection 4550 may be implemented in the software 4511 and hardware 4515 of the host computer 4510 or in the software 4531 and hardware 4535 of the UE 4530, or both. In an embodiment, sensors (not shown) may be deployed in or in association with the communication device through which the OTT connection 4550 passes, and the sensors may participate in the measurement procedures by providing values ​​of the monitored quantities exemplified above, or other physical quantities from which the software 4511, 4531 may calculate or estimate the monitored quantities. The reconfiguration of the OTT connection 4550 may include message formats, retransmission settings, preferred routing, etc., and the reconfiguration need not affect the base station 4520, and the reconfiguration may be unknown or imperceptible to the base station 4520. Such procedures and functions may be known and practiced in the art. In some embodiments, the measurements may involve proprietary UE signaling that facilitates the host computer 4510 measurements of throughput, propagation time, latency, etc. The measurements may be implemented in the software 4511 and 4531 causing messages, particularly empty or "dummy" messages, to be sent using the OTT connection 4550 while the software 4511 and 4531 monitors propagation times, errors, etc.

[0306] FIG. 57 illustrates a method implemented in a communications system including a host computer, a base station, and user equipment, according to some embodiments.

[0307] FIG. 57 is a flow chart illustrating a method implemented in a communication system according to one embodiment. The communication system includes a host computer, a base station, and a UE, which may be as described with reference to FIG. 55 and FIG. 56. To simplify this disclosure, only drawing references to FIG. 57 are included in this section. In step 4610, the host computer provides user data. In sub-step 4611 (which may be optional) of step 4610, the host computer provides the user data by executing a host application. In step 4620, the host computer initiates a transmission carrying the user data to the UE. In step 4630 (which may be optional), the base station transmits the user data carried in the host computer initiated transmission to the UE, according to the teachings of the embodiments described throughout this disclosure. In step 4640 (which may also be optional), the UE executes a client application associated with the host application executed by the host computer.

[0308] FIG. 58 illustrates a method implemented in a communications system including a host computer, a base station, and user equipment, according to some embodiments.

[0309] FIG. 58 is a flow chart illustrating a method implemented in a communication system according to one embodiment. The communication system includes a host computer, a base station, and a UE, which may be as described with reference to FIG. 55 and FIG. 56. To simplify this disclosure, only drawing references to FIG. 58 are included in this section. In step 4710 of the method, the host computer provides user data. In an optional sub-step (not shown), the host computer provides the user data by executing a host application. In step 4720, the host computer initiates a transmission carrying the user data to the UE. The transmission may proceed via the base station according to the teachings of the embodiments described throughout this disclosure. In step 4730 (which may be optional), the UE receives the user data carried in the transmission.

[0310] FIG. 59 illustrates a method implemented in a communications system including a host computer, a base station, and user equipment, according to some embodiments.

[0311] FIG. 59 is a flow chart illustrating a method implemented in a communication system according to one embodiment. The communication system includes a host computer, a base station, and a UE, which may be as described with reference to FIG. 55 and FIG. 56. To simplify this disclosure, only drawing references to FIG. 59 are included in this section. In step 4810 (which may be optional), the UE receives input data provided by the host computer. Additionally or alternatively, in step 4820, the UE provides user data. In sub-step 4821 (which may be optional) of step 4820, the UE provides the user data by executing a client application. In sub-step 4811 (which may be optional) of step 4810, the UE executes a client application that provides the user data in response to the received input data provided by the host computer. In providing the user data, the executed client application may further take into account user input received from the user. Regardless of the particular manner in which the user data is provided, the UE initiates transmission of the user data to the host computer in sub-step 4830 (which may be optional). In method step 4840, the host computer receives user data transmitted from the UE in accordance with the teachings of the embodiments described throughout this disclosure.

[0312] FIG. 60 illustrates a method implemented in a communication system including a host computer, a base station, and user equipment, according to some embodiments.

[0313] FIG. 60 is a flow chart illustrating a method implemented in a communication system according to one embodiment. The communication system includes a host computer, a base station, and a UE, which may be as described with reference to FIG. 55 and FIG. 56. To simplify this disclosure, only drawing references to FIG. 60 are included in this section. In step 4910 (which may be optional), the base station receives user data from the UE, according to the teachings of the embodiments described throughout this disclosure. In step 4920 (which may be optional), the base station initiates transmission of the received user data to the host computer. In step 4930 (which may be optional), the host computer receives the user data carried in the transmission initiated by the base station.

[0314] Any suitable steps, methods, features, functions, or benefits disclosed herein may be implemented through one or more functional units or modules of one or more virtual devices. Each virtual device may comprise several of these functional units. These functional units may be implemented via processing circuitry, which may include one or more microprocessors or microcontrollers, as well as other digital hardware, which may include digital signal processors (DSPs), dedicated digital logic, and the like. The processing circuitry may be configured to execute program code stored in memory, which may include one or several types of memory, such as read-only memory (ROM), random access memory (RAM), cache memory, flash memory devices, optical storage devices, and the like. The program code stored in memory includes program instructions for implementing one or more communication and / or data communication protocols, as well as instructions for performing one or more of the techniques described herein. In some implementations, the processing circuitry may be used to cause each functional unit to perform a corresponding function according to one or more embodiments of the present disclosure.

[0315] The term unit may have its conventional meaning in the field of electronics, electrical devices, and / or electronic devices and may include, for example, electric and / or electronic circuits, devices, modules, processors, memories, logical solid and / or discrete devices, computer programs or instructions, etc., for performing a respective task, procedure, computation, output, and / or display function, such as those described herein.

[0316] Further definitions and embodiments are described below.

[0317] In the above description of various embodiments of the inventive concept, it should be understood that the terminology used herein is merely for describing specific embodiments, and is not intended to limit the inventive concept. Unless otherwise specified, all terms (including technical and scientific terms) used herein have the same meaning as those commonly understood by those skilled in the art to which the inventive concept belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning according to the meaning of those terms in the context of this specification and related art, and should not be interpreted in an ideal or overly formal sense unless expressly so defined herein.

[0318] When an element is referred to as being "connected," "coupled," "responsive" to another element, or variations thereof, the element may be directly connected, coupled, or responsive to the other element, or there may be intervening elements. In contrast, when an element is referred to as being "directly connected," "directly coupled," "directly responsive" to another element, or variations thereof, there are no intervening elements. Like numbers refer to like elements throughout. Furthermore, as used herein, "coupled," "connected," "responsive," or variations thereof may include wirelessly coupled, wirelessly connected, or wirelessly responsive. As used herein, the singular forms "a," "an," and "the" are intended to include the plural forms unless the context clearly dictates otherwise. For the sake of brevity and / or clarity, well-known functions or constructions may not be described in detail. The term "and / or" (abbreviated as " / ") includes any and all combinations of one or more of the associated listed items.

[0319] Terms such as first, second, third, etc. may be used herein to describe various elements / operations, but it will be understood that these elements / operations should not be limited by these terms. These terms are merely used to distinguish one element / operation from another. Thus, a first element / operation in some embodiments may be called a second element / operation in other embodiments without departing from the teachings of the inventive concept. The same reference numbers or characters refer to the same or similar elements throughout this specification.

[0320] As used herein, the terms "comprise," "comprising," "comprises," "include," "including," "includes," "have," "has," "having," or variations thereof, are open-ended and include one or more stated features, integers, elements, steps, components, or functions, but do not exclude the presence or addition of one or more other features, integers, elements, steps, components, functions, or groups thereof. Additionally, as used herein, the common abbreviation "eg," from the Latin phrase "exempli gratia," may be used to introduce or specifically name one or more general examples of the aforementioned items, without being limiting of such items. The common abbreviation "ie," from the Latin phrase "id est," may be used to specifically name a particular item from a more general statement.

[0321] Exemplary embodiments are described herein with reference to block diagrams and / or flowchart illustrations of computer-implemented methods, apparatus (systems and / or devices) and / or computer program products. It should be understood that the blocks of the block diagrams and / or flowchart illustrations, and combinations of blocks in the block diagrams and / or flowchart illustrations, may be implemented by computer program instructions carried out by one or more computer circuits. These computer program instructions may be provided to a processor circuit of a general-purpose computer circuit, a special-purpose computer circuit, and / or other programmable data processing circuit to create a machine, such that the instructions executing via the processor of the computer and / or other programmable data processing apparatus transform and control transistors, values ​​stored in memory locations, and other hardware components in such circuits to implement the function / act specified in one or more blocks of the block diagrams and / or flowcharts, and thereby create means (functions) and / or structures for implementing the function / act specified in the block(s) of the block diagrams and / or flowcharts.

[0322] These computer program instructions may also be stored on a tangible computer readable medium that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored on the computer readable medium produce an article of manufacture containing instructions that implement the functions / acts specified in one or more blocks of the block diagrams and / or flowcharts. Thus, embodiments of the inventive concepts may be embodied in hardware and / or in software (including firmware, resident software, microcode, etc.) running on a processor, such as a digital signal processor, which may be collectively referred to as a "circuit," "module," or variations thereof.

[0323] It should also be noted that in some alternative implementations, the functions / acts noted in the blocks may occur out of the order noted in the flowcharts. For example, two blocks shown in succession may in fact be performed substantially concurrently, or the blocks may sometimes be performed in reverse order, depending on the functions / acts involved. Moreover, the functionality of a given block of the flowcharts and / or block diagrams may be separated into multiple blocks, and / or the functionality of two or more blocks of the flowcharts and / or block diagrams may be at least partially integrated. Finally, other blocks may be added / inserted between the blocks shown, and / or blocks / acts may be omitted without departing from the scope of the inventive concept. Moreover, while some of the figures include arrows on communication paths to indicate a primary direction of communication, it should be understood that communication may occur in the opposite direction to the illustrated arrows.

[0324] Many variations and modifications may be made to the embodiments without substantially departing from the principles of the inventive concept. All such variations and modifications are intended to be included herein within the scope of the inventive concept. Accordingly, the subject matter disclosed above should be considered as illustrative and not limiting, and the example embodiments are intended to cover all such modifications, extensions, and other embodiments that fall within the spirit and scope of the inventive concept. Thus, to the fullest extent permitted by law, the scope of the inventive concept should be determined by the broadest permissible interpretation of the present disclosure, including the example embodiments and their equivalents, and should not be limited or restricted by the above detailed description.

Claims

1. 1. A method of operating a first network node in a network including a second network node, comprising the steps of: sending a configuration update request message to the second network node in response to detecting a capacity and / or coverage problem (3505), the configuration update request message including an indication of a requested configuration change to the second network node; receiving a configuration update message from the second network node, the configuration update message including an indication of a configuration update selected by the second network node (3509); the indication of the requested configuration change to the second network node indicates at least one Reference Signal (RS) beam coverage area of ​​the second network node associated with the requested configuration change; and / or A method, wherein the configuration update request message includes an indication of at least one reference signal (RS) beam coverage area of ​​the first network node associated with a configuration change in the first network node.

2. the configuration update request message is a Coverage and Capacity Optimization (CCO) change request message including the indication of at least one RS beam coverage area of ​​the first network node; the indication of the requested configuration change to the second network node indicating at least one RS beam coverage area of ​​the second network node to address the capacity problem and / or the coverage problem; the configuration update message is a CCO change message; 2. The method of claim 1 , wherein the indication of the configuration update selected by the second network node is an indication of a configuration change selected by the second network node to address the capacity and / or coverage problem.

3. 3. The method of claim 1, wherein the indication of the requested configuration change to the second network node further indicates at least one serving cell of the second network node associated with the requested configuration change.

4. The method of claim 1 , wherein the configuration update request message further comprises an indication of at least one serving cell of the first network node that is associated with a configuration change in the first network node.

5. 1. A method of operating a first network node in a network including a second network node, comprising the steps of: sending a configuration update request message to the second network node in response to detecting a capacity and / or coverage problem (3505), the configuration update request message including an indication of a requested configuration change to the second network node; receiving a configuration update message from the second network node, the configuration update message including an indication of a configuration update selected by the second network node (3509); A method, wherein the configuration update request message further includes at least one of an indication of beam edge movement and / or an indication of uplink / downlink coverage imbalance.

6. the configuration update request message further comprises an identity of a serving cell of the first network node and / or an identity of a reference signal (RS) beam of a serving cell of the first network node; The method according to claim 1 , wherein the serving cell and / or the RS beam of the first network node are associated with the capacity and / or coverage problem.

7. the configuration update request message further comprises an identity of a serving cell of the second network node and / or an identity of a reference signal (RS) beam of a serving cell of the second network node; The method according to claim 1 , wherein the serving cell and / or the RS beam of the second network node are associated with the capacity and / or coverage problem.

8. 1. A method of operating a first network node in a network including a second network node, comprising the steps of: sending a configuration update request message to the second network node in response to detecting a capacity and / or coverage problem (3505), the configuration update request message including an indication of a requested configuration change to the second network node; receiving a configuration update message from the second network node, the configuration update message including an indication of a configuration update selected by the second network node (3509); The method, wherein the instruction of the requested configuration change to the second network node includes at least one of an instruction to reduce a coverage area of ​​a reference signal (RS) beam of the second network node, an instruction to expand the coverage area of ​​an RS beam of the second network node, an instruction to merge the coverage areas of at least two RS beams of the second network node, and / or an instruction to branch the coverage area of ​​an RS beam of the second network node.

9. 1. A method of operating a first network node in a network including a second network node, comprising the steps of: sending a configuration update request message to the second network node in response to detecting a capacity and / or coverage problem (3505), the configuration update request message including an indication of a requested configuration change to the second network node; receiving a configuration update message from the second network node, the configuration update message including an indication of a configuration update selected by the second network node (3509); The configuration update request message is an identity of at least one User Equipment (UE) or a group of UEs associated with said capacity and / or coverage problem; - UE measurement reports associated with serving cells of the first network node, for which the capacity and / or coverage problem has been detected by the first network node; and a UE measurement report associated with a serving cell of the second network node, where the capacity problem and / or the coverage problem is detected by the first network node.

10. the first network node comprises one of a Next Generation (NG) Radio Access Network (RAN) node (gNB) and a Long Term Evolution (LTE) RAN node (eNB); the second network node comprises one of an NG RAN node and an LTE RAN node; The method according to claim 1 , wherein the configuration update request message and the configuration update message are transmitted over at least one of an Xn interface and / or an X2 interface.

11. 1. A method of operating a second network node in a network including a first network node, comprising: receiving a configuration update request message from the first network node including an indication of a requested configuration change to the second network node following a capacity and / or coverage problem (3605); selecting (3609) a configuration update to be applied by the second network node in response to receiving the configuration update request message; and transmitting a configuration update message to the first network node including an indication of the configuration update selected by the second network node (3615); the indication of the requested configuration change to the second network node indicates at least one Reference Signal (RS) beam coverage area of ​​the second network node associated with the requested configuration change; and / or A method, wherein the configuration update request message includes an indication of at least one reference signal (RS) beam coverage area of ​​the first network node associated with a configuration change in the first network node.

12. the configuration update request message is a Coverage and Capacity Optimization (CCO) change request message including an indication of at least one RS beam coverage area of ​​the first network node; the indication of the requested configuration change to the second network node indicating at least one RS beam coverage area of ​​the second network node to address the capacity problem and / or the coverage problem; the configuration update message is a CCO change message; 12. The method of claim 11 , wherein the indication of the configuration update selected by the second network node is an indication of a configuration update selected by the second network node to address the capacity problem and / or the coverage problem.

13. 13. The method of claim 11 or 12, wherein the indication of the requested configuration change to the second network node further indicates at least one serving cell of the second network node associated with the requested configuration change.

14. 14. The method of claim 11, wherein the configuration update request message further comprises an indication of at least one serving cell of the first network node that is associated with a configuration change at the first network node.

15. 1. A method of operating a second network node in a network including a first network node, comprising: receiving a configuration update request message from the first network node including an indication of a requested configuration change to the second network node following a capacity and / or coverage problem (3605); selecting (3609) a configuration update to be applied by the second network node in response to receiving the configuration update request message; and transmitting a configuration update message to the first network node including an indication of the configuration update selected by the second network node (3615); A method, wherein the configuration update request message further includes at least one of an indication of beam edge movement and / or an indication of uplink / downlink coverage imbalance.

16. the configuration update request message further comprises an identity of a serving cell of the first network node and / or an identity of a reference signal (RS) beam of a serving cell of the first network node; 16. The method of any one of claims 11 to 15, wherein the serving cell and / or the RS beam of the first network node are associated with the capacity and / or coverage problem.

17. the configuration update request message further comprises an identity of a serving cell of the second network node and / or an identity of a reference signal (RS) beam of a serving cell of the second network node; 17. The method of any one of claims 11 to 16, wherein the serving cell and / or the RS beam of the second network node are associated with the capacity and / or coverage problem.

18. 1. A method of operating a second network node in a network including a first network node, comprising: receiving a configuration update request message from the first network node including an indication of a requested configuration change to the second network node following a capacity and / or coverage problem (3605); selecting (3609) a configuration update to be applied by the second network node in response to receiving the configuration update request message; and transmitting a configuration update message to the first network node including an indication of the configuration update selected by the second network node (3615); The method, wherein the instruction of the requested configuration change to the second network node includes at least one of an instruction to reduce a coverage area of ​​a reference signal (RS) beam of the second network node, an instruction to expand the coverage area of ​​an RS beam of the second network node, an instruction to merge the coverage areas of at least two RS beams of the second network node, and / or an instruction to branch the coverage area of ​​an RS beam of the second network node.

19. 1. A method of operating a second network node in a network including a first network node, comprising: receiving a configuration update request message from the first network node including an indication of a requested configuration change to the second network node following a capacity and / or coverage problem (3605); selecting (3609) a configuration update to be applied by the second network node in response to receiving the configuration update request message; and transmitting a configuration update message to the first network node including an indication of the configuration update selected by the second network node (3615); The configuration update request message is an identity of at least one User Equipment (UE) or a group of UEs associated with said capacity and / or coverage problem; - UE measurement reports associated with serving cells of the first network node, for which the capacity and / or coverage problem has been detected by the first network node; and a UE measurement report associated with a serving cell of the second network node, where the capacity problem and / or the coverage problem is detected by the first network node.

20. A first network node (400) adapted to perform the operations according to any one of claims 1 to 10.

21. A second network node (400) adapted to perform the operations according to any one of claims 11 to 18.

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