WO2025008979A1 - Method and system for managing capability information for user equipment - Google Patents
Method and system for managing capability information for user equipment Download PDFInfo
- Publication number
- WO2025008979A1 WO2025008979A1 PCT/IN2024/050979 IN2024050979W WO2025008979A1 WO 2025008979 A1 WO2025008979 A1 WO 2025008979A1 IN 2024050979 W IN2024050979 W IN 2024050979W WO 2025008979 A1 WO2025008979 A1 WO 2025008979A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- capability
- network node
- response
- request
- unit
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W8/00—Network data management
- H04W8/22—Processing or transfer of terminal data, e.g. status or physical capabilities
- H04W8/24—Transfer of terminal data
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W60/00—Affiliation to network, e.g. registration; Terminating affiliation with the network, e.g. de-registration
- H04W60/04—Affiliation to network, e.g. registration; Terminating affiliation with the network, e.g. de-registration using triggered events
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/0005—Control or signalling for completing the hand-off
- H04W36/0055—Transmission or use of information for re-establishing the radio link
- H04W36/0064—Transmission or use of information for re-establishing the radio link of control information between different access points
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W8/00—Network data management
- H04W8/02—Processing of mobility data, e.g. registration information at HLR [Home Location Register] or VLR [Visitor Location Register]; Transfer of mobility data, e.g. between HLR, VLR or external networks
- H04W8/06—Registration at serving network Location Register, VLR or user mobility server
Definitions
- the present disclosure relates generally to the field of wireless communication systems. More particularly, the present disclosure relates to method and system for managing capability information for user equipment.
- Wireless communication technology has rapidly evolved over the past few decades, with each generation bringing significant improvements and advancements.
- the first generation of wireless communication technology was based on analog technology and offered only voice services.
- 2G second generation
- 3G third generation
- 4G fourth generation
- the fourth generation (4G) technology revolutionized wireless communication with faster data speeds, better network coverage, and improved security.
- 5G fifth generation
- wireless communication technology has become more advanced, sophisticated, and capable of delivering more services to its users.
- UE capability information messages that include both New Radio (NR) and Evolved Universal Terrestrial Radio Access (EUTRA) capabilities. This delay can result in extended registration times for UEs, negatively impacting the user experience.
- NR New Radio
- EUTRA Evolved Universal Terrestrial Radio Access
- Another problem is the expiry of procedure waiting timers at the gNodeB. If the UE takes too long to respond with its capability information, the timer can expire, leading to a failure in the registration process. This issue is exacerbated by the delay in forming the capability information messages.
- the combined NR and EUTRA capability information message can be quite large, around 2500 bytes or more.
- KPI Key Performance Indicator
- FIG. 1 illustrates an exemplary block diagram representation of 5 th generation core (5GC) network architecture.
- 5GC 5 th generation core
- FIG. 2 illustrates an exemplary block diagram of a system for managing capability information for user equipment, in accordance with exemplary implementations of the present disclosure.
- FIG. 3 illustrates an exemplary sequence diagram for managing capability information for UE, in accordance with exemplary implementations of the present disclosure.
- FIG. 4 illustrates an exemplary sequence diagram for UE capability enquiry flow if no UE capability in Initial Context Setup (ICS) request, in accordance with exemplary implementations of the present disclosure.
- ICS Initial Context Setup
- FIG. 5 illustrates an exemplary sequence diagram for UE capability procedure wait timer expiration flow, in accordance with exemplary implementations of the present disclosure.
- FIG. 6 illustrates exemplary sequence diagram where no UE capability enquiry as ICS request contains NR+EUTRA info, in accordance with exemplary implementations of the present disclosure.
- FIG. 7 illustrates exemplary sequence diagram related to UE capability enquiry decision (based on ICS request content), in accordance with exemplary implementations of the present disclosure.
- FIG. 8 illustrates an exemplary detailed workflow for advanced and optimized UE Capability Enquiry enhancement for 5G user when UE registration procedure is in progress, in accordance with exemplary implementations of the present disclosure.
- FIG. 9 illustrates an exemplary detailed workflow where the UE is moved to another gNodeB post registration procedure, in accordance with exemplary implementations of the present disclosure.
- FIG. 10 illustrates an exemplary method diagram indicating the process for managing capability information for a user equipment (UE) in a wireless communication network, in accordance with exemplary implementations of the present disclosure.
- UE user equipment
- FIG. 11 illustrates an exemplary block diagram of a computing device upon which the features of the present disclosure may be implemented in accordance with exemplary implementation of the present disclosure.
- An aspect of the present disclosure relates to a method for managing capability information for a user equipment (UE) in a wireless communication network.
- the method comprises receiving a registration request by a transceiver unit at a network node from an Access and Mobility Management Function (AMF) unit.
- the method also comprises sending a first UE capability enquiry request to the UE by the transceiver unit at the network node.
- the method also comprises receiving a first UE capability response by the transceiver unit at the network node in response to the first UE capability enquiry request.
- the method also comprises sending a second UE capability enquiry request by the transceiver unit at the network node to the UE.
- AMF Access and Mobility Management Function
- the method also comprises receiving a second UE capability response by the transceiver unit at the network node in response to the second UE capability enquiry request.
- the method also comprises transmitting a response message by the transceiver unit at the network node. It is important to note that the response message comprises a combination of the first UE capability response and the second UE capability response to the AMF unit.
- the method further comprises establishing, by the transceiver unit at the network node, a Packet Data Unit (PDU) session between the UE and the AMF unit based at least on the response message.
- PDU Packet Data Unit
- the network node is a gNodeB.
- the registration request is an initial context setup (ICS) request, wherein the ICS request is independent of one or more UE capabilities.
- ICS initial context setup
- the method further comprises establishing a secure connection between the gNodeB and the UE based on at least one secure protocol.
- the method upon receiving the first UE capability response, the method further comprises transmitting, by the transceiver unit at the network node, a registration response to the AMF unit in response to the registration request to complete a UE registration procedure.
- the second UE capability enquiry request is sent to the UE after completing the UE registration procedure, the UE registration procedure is completed based on receiving the first UE capability response from the UE; and transmitting the first UE capability response to the AMF unit.
- the method further comprises initiating, by an analysis unit at the network node, a predefined timer upon sending the second UE capability enquiry request. Further, in case the predefined timer expires before receipt of the second UE capability response, releasing, by the analysis unit at the network node, the UE from the wireless communication network and reinitiating, by the analysis unit at the network node, the registration request.
- the first UE capability enquiry request is a New Radio (NR) request.
- NR New Radio
- the second UE capability enquiry request is an Evolved Universal Terrestrial Radio Access (EUTRA) request.
- EUTRA Evolved Universal Terrestrial Radio Access
- the method further comprises receiving, by the transceiver unit at the network node, a measurement report from the UE and initiating, by the analysis unit at the network node, a handover procedure based at least on the received measurement report.
- the method upon successful initiation of the handover procedure, further comprises determining, by the analysis unit at the network node, whether a secure connection is established with the UE based at least on a first interface. Further, upon determining that the secure connection is established with the UE based at least on the first interface, initiating, by the analysis unit at the network node, a handover based at least on the first interface. Further, upon determining that the secure connection is not established with the UE based at least on the first interface, initiating, by the analysis unit at the network node, a handover based at least on a second interface. Thereafter, sending, by the transceiver unit at the network node, the second UE capability enquiry request to the UE.
- the first interface is an Xn interface.
- the second interface is an Ng interface.
- the system comprises an Access and Mobility Management Function (AMF) unit and a network node.
- the network node comprises a transceiver unit which is configured to receive a registration request from the AMF unit.
- the transceiver unit is further configured to send a first UE capability enquiry request to the UE.
- the transceiver unit is further configured to receive a first UE capability response in response to the first UE capability enquiry request.
- the transceiver unit is further configured to send a second UE capability enquiry request to the UE.
- the transceiver unit is further configured to receive a second UE capability response in response to the second UE capability enquiry request.
- the transceiver unit is further configured to transmit a response message to the AMF unit. It is emphasized that the response message comprises a combination of the first UE capability response and the second UE capability response to the AMF unit.
- the transceiver unit is further configured to establish a Packet Data Unit (PDU) session between the UE and the AMF unit based at least on the response message.
- PDU Packet Data Unit
- a User Equipment comprising a memory, and a processor coupled to the memory.
- the processor is configured to receive a first UE capability enquiry request from a network node.
- the network node is to send the first UE capability enquiry request to the UE pursuant to receiving a registration request from an Access and Mobility Management Function (AMF) unit.
- the processor is further configured to send a first UE capability response to the network node in response to the first UE capability enquiry request.
- the processor is further configured to receive a second UE capability enquiry request from the network node. Then in response to the second UE capability enquiry request, the processor is further configured to send a second UE capability response to the network node.
- AMF Access and Mobility Management Function
- the first UE capability response and the second UE capability response are to cause the network node to manage the capability information of the UE based on transmitting, by the network node to the AMF unit, a response message comprising a combination of the first UE capability response and the second UE capability response on receiving the first UE capability response and the second UE capability response from the UE.
- Yet another aspect of the present disclosure discloses a non-transitory computer readable storage medium storing one or more instructions for managing capability information for a user equipment (UE), the one or more instructions comprises executable code which, when executed by one or more units, cause the one or more units to perform certain functions.
- the instructions when executed causes a transceiver unit, at a network node, to receive a registration request from an Access and Mobility Management Function (AMF) unit.
- AMF Access and Mobility Management Function
- the instructions when executed further causes the transceiver unit, at the network node, to send a first UE capability enquiry request.
- the instructions when executed further causes the transceiver unit, at the network node, to receive a first UE capability response in response to the first UE capability enquiry request.
- AMF Access and Mobility Management Function
- the response message comprises a combination of the first UE capability response and the second UE capability response to the AMF unit.
- exemplary and/or “demonstrative” is used herein to mean serving as an example, instance, or illustration. For the avoidance of doubt, the subject matter disclosed herein is not limited by such examples.
- any aspect or design described herein as “exemplary” and/or “demonstrative” is not necessarily to be construed as preferred or advantageous over other aspects or designs, nor is it meant to preclude equivalent exemplary structures and techniques known to those of ordinary skill in the art.
- an “electronic device”, or “portable electronic device”, or “user device” or “communication device” or “user equipment” or “device” refers to any electrical, electronic, electromechanical, and computing device.
- the user device is capable of receiving and/or transmitting one or parameters, performing function/s, communicating with other user devices, and transmitting data to the other user devices.
- the user equipment may have a processor, a display, a memory, a battery, and an input-means such as a hard keypad and/or a soft keypad.
- the user equipment may be capable of operating on any radio access technology including but not limited to IP-enabled communication, Zig Bee, Bluetooth, Bluetooth Low Energy, Near Field Communication, Z-Wave, Wi-Fi, Wi-Fi direct, etc.
- the user equipment may include, but not limited to, a mobile phone, smartphone, virtual reality (VR) devices, augmented reality (AR) devices, laptop, a general-purpose computer, desktop, personal digital assistant, tablet computer, mainframe computer, or any other device as may be obvious to a person skilled in the art for implementation of the features of the present disclosure.
- the user device may also comprise a “processor” or “processing unit” includes processing unit, wherein processor refers to any logic circuitry for processing instructions.
- the processor may be a general-purpose processor, a special purpose processor, a conventional processor, a digital signal processor, a plurality of microprocessors, one or more microprocessors in association with a DSP core, a controller, a microcontroller, Application Specific Integrated Circuits, Field Programmable Gate Array circuits, any other type of integrated circuits, etc.
- the processor may perform signal coding data processing, input/output processing, and/or any other functionality that enables the working of the system according to the present disclosure. More specifically, the processor is a hardware processor.
- Radio Access Technology refers to the technology used by mobile devices/ user equipment (UE) to connect to a cellular network. It refers to the specific protocol and standards that govern the way devices communicate with base stations, which are responsible for providing the wireless connection. Further, each RAT has its own set of protocols and standards for communication, which define the frequency bands, modulation techniques, and other parameters used for transmitting and receiving data. Examples of RATs include GSM (Global System for Mobile Communications), CDMA (Code Division Multiple Access), UMTS (Universal Mobile Telecommunications System), LTE (Long-Term Evolution), and 5G. The choice of RAT depends on a variety of factors, including the network infrastructure, the available spectrum, and the mobile device's/device's capabilities.
- UE user equipment
- 5G networks 5G networks
- NR New Radio
- EUTRA Evolved Universal Terrestrial Radio Access
- the delay can result in extended registration times for UEs, negatively impacting the user experience.
- Another problem is the expiry of procedure waiting timers at the gNodeB. If the UE takes too long to respond with its capability information, the timer can expire, leading to a failure in the registration process.
- the combined NR and EUTRA capability information message can be quite large, around 2500 bytes or more. In areas with poor RF conditions, these bulky messages are more likely to be dropped, leading to unsuccessful registrations. Furthermore, existing methods often lead to inefficient use of network resources by enquiring and transmitting all UE capabilities in one go, even when only a subset is immediately needed. This can result in unnecessary network congestion and waste of resources.
- the present disclosure provides an enhanced procedure for managing user equipment (UE) capabilities in wireless communication networks, particularly in 5G networks, that addresses the challenges of existing approaches.
- UE user equipment
- the present disclosure reduces the delay in forming UE capability information messages, as the network node (gNodeB) first enquires and processes the more critical NR capabilities before proceeding to the EUTRA capabilities.
- the phased approach allows for quicker completion of the UE registration procedure, improving the user experience.
- the present disclosure helps in mitigating the issue of procedure waiting timer expiry at the gNodeB.
- the splitting of the capability enquiry also addresses the problem of bulky messages being dropped due to poor RF conditions. By transmitting smaller segments of capability information, the risk of message drop is significantly lowered, leading to a higher success rate in UE registrations.
- FIG. 1 illustrates an exemplary block diagram representation of 5th generation core (5GC) network architecture, in accordance with exemplary embodiment of the present disclosure.
- the 5GC network architecture [100] includes a user equipment (UE) [102], a radio access network (RAN) [104] (alternatively referred to as gNodeB [104], base station [104], gNB [104] or network node [104] hereinafter), an access and mobility management function (AMF) [106], a Session Management Function (SMF) [108], a Service Communication Proxy (SCP) [110], an Authentication Server Function (AUSF) [112], a Network Slice Specific Authentication and Authorization Function (NSSAAF) [114], a Network Slice Selection Function (NSSF) [116], a Network Exposure Function (NEF) [118], a Network Repository Function (NRF) [120], a Policy Control Function (PCF) [122], a Unified Data Management (UDM) [124], an application function (
- UE user equipment
- the User Equipment (UE) [102] interfaces with the network via the Radio Access Network (RAN) [104]; the Access and Mobility Management Function (AMF) [106] manages connectivity and mobility, while the Session Management Function (SMF) [108] administers session control; the service communication proxy (SCP) [110] routes and manages communication between network services, enhancing efficiency and security, and the Authentication Server Function (AUSF) [112] handles user authentication; the Network Slice Specific Authentication and Authorization Function (NSSAAF) [114] for integrating the 5G core network with existing 4G LTE networks i.e., to enable Non- Standalone (NSA) 5G deployments, the Network Slice Selection Function (NSSF) [116], Network Exposure Function (NEF) [118], and Network Repository Function (NRF) [120] enable network customization, secure interfacing with external applications, and maintain network function registries respectively; the Policy Control Function (PCF) [122] develops operational policies, and the Unified Data Management (UDM) [124] manages subscribe
- Radio Access Network (RAN) is the part of a mobile telecommunications system that connects user equipment (UE) [102] to the core network (CN) and provides access to different types of networks (e.g., 5G network). It consists of radio base stations and the radio access technologies that enable wireless communication.
- Access and Mobility Management Function (AMF) is a 5G core network function responsible for managing access and mobility aspects, such as UE registration, connection, and reachability. It also handles mobility management procedures like handovers and paging.
- Session Management Function (SMF) [108] is a 5G core network function responsible for managing session-related aspects, such as establishing, modifying, and releasing sessions. It coordinates with the User Plane Function (UPF) for data forwarding and handles IP address allocation and QoS enforcement.
- UPF User Plane Function
- Service Communication Proxy (SCP) [110] is a network function in the 5G core network that facilitates communication between other network functions by providing a secure and efficient messaging service. It acts as a mediator for service-based interfaces.
- AUSF Authentication Server Function
- 5G core responsible for authenticating UEs during registration and providing security services. It generates and verifies authentication vectors and tokens.
- NSSAAF Network Slice Specific Authentication and Authorization Function
- Network Slice Selection Function (NSSF) [116] is a network function responsible for selecting the appropriate network slice for a UE based on factors such as subscription, requested services, and network policies.
- Network Exposure Function [118] is a network function that exposes capabilities and services of the 5G network to external applications, enabling integration with third-party services and applications.
- Network Repository Function (NRF) [120] is a network function that acts as a central repository for information about available network functions and services. It facilitates the discovery and dynamic registration of network functions.
- PCF Policy Control Function
- Unified Data Management [124] is a network function that centralizes the management of subscriber data, including authentication, authorization, and subscription information.
- Application Function (AF) is a network function that represents external applications interfacing with the 5G core network to access network capabilities and services.
- UPF User Plane Function
- Data Network (DN) refers to a network that provides data services to user equipment (UE) [102] in a telecommunications system.
- the data services may include but are not limited to Internet services, private data network related services.
- FIG. 2 an exemplary block diagram of a system [200] for managing capability information for a user equipment (UE) [102] in a wireless communication network is shown, in accordance with the exemplary implementations of the present disclosure.
- the system [200] comprises at least one of a network node [104],
- the network node [104] comprises at least one transceiver unit [204] and at least one analysis unit [206] which may be connected to each other.
- the system [200] may also include at least one storage unit [202], which may be used for managing capability information for the UE [102] in a wireless communication network, in conjunction with the transceiver unit [204] and the analysis unit [206], Also, all of the components/units of the system [200] are assumed to be connected to each other unless otherwise indicated below. Also, in FIG. 2 only a few units are shown, however, the system [200] may comprise multiple such units or the system [200] may comprise any such numbers of said units, as required to implement the features of the present disclosure.
- the system [200] is configured for managing capability information of the UE [102] in a wireless communication network, with the help of the interconnection between the components/units of the system [200],
- the managing capability information refers to the management of the information related to capabilities of the UE [102] which is going to be connected to the wireless communication network.
- the capability information may refer to the information associated with one or more capabilities of the UE to connect with 5G network and 4G network, and may also comprise capabilities of connecting with newer communication technologies.
- the wireless communication network refers to the radio access network for different generation of telecommunication technology.
- the transceiver unit [204] of the network node [104] is configured to receive a registration request from the AMF unit [106] (herein alternatively referred to as AMF [106]).
- the transceiver unit [204] may correspond to a unit capable of reception and data transmission.
- the transceiver unit [204] may correspond to a processor capable of performing transmission and reception of data.
- the analysis unit [206] may be a unit capable of performing analysis by processing data, the analysis unit [206] may also be a processor capable of performing analysis of data.
- the registration request may be a request for registration of the UE [102] within the wireless communication network.
- the registration request may be an initial context setup (ICS) request, wherein the ICS request is independent of one or more UE capabilities.
- the ICS request may be a request for registration of the UE [102] within the wireless communication network.
- the one or more UE capabilities may refer to at least the capabilities of the UE [102] to connect to the 4G networks or the 5G networks.
- the one or more UE capabilities may be a capability of the UE [102] to connect with the 5G network via the New Radio telecommunication technology.
- the one or more UE capabilities may be a capability of the UE [102] to connect with the 4G network via the Evolved Universal Terrestrial Radio Access (EUTRA) technology.
- EUTRA Evolved Universal Terrestrial Radio Access
- the transceiver unit [204] is further configured to send a first UE capability enquiry request to the UE [102],
- the first UE capability enquiry request corresponds to the request for enquiring the capabilities of the UE [102],
- the capabilities of the UE [102] may correspond to capability of the UE [102] to connect to the different network technologies.
- the capabilities may further correspond to processing data for connecting with the newer generation of technology.
- the first UE capability enquiry request may comprise a new radio (NR) request seeking information related to the enquiry related to the capabilities of connecting to the 5G New Radio (NR).
- NR new radio
- the transceiver unit [204] is further configured to receive a first UE capability response in response to the first UE capability enquiry request.
- the first UE capability response comprises the details related to the capabilities of the UE [102],
- the first UE capability response may comprise information related to capabilities of the UE [102] to connect to the 5G NR.
- the NR may be referred to as the 5G core network technology.
- the transceiver unit [204] may also be further configured to send at the network node [104], a registration response to the AMF unit [106] in response to the registration request to complete a UE registration procedure.
- the registration response may be the response giving information that the UE registration procedure is completed.
- the UE registration procedure is completed based on receiving the first UE capability response from the UE [102] and transmitting the first UE capability response to the AMF unit [106],
- the registration response may be the response stating that the UE [102] has been successfully registered or not registered with the wireless communication networks. For example, if the UE [102] is capable of connecting to the 5G network, then it may send that the UE [102] has been connected with the 5G networks.
- the transceiver unit [204] is further configured to send a second UE capability enquiry request to the UE [102],
- the second UE capability enquiry request refers to the request seeking information related to the capabilities of the UE [102],
- the second UE capability enquiry request may be specifically an Evolved Universal Terrestrial Radio Access (EUTRA) request seeking capabilities of UE for connecting with the EUTRA.
- EUTRA may also be referred as the 4G network technologies.
- the transceiver unit [204] is further configured to receive a second UE capability response in response to the second UE capability enquiry request.
- the second UE capability response comprises the information related to capability of connecting with the EUTRA or the 4G network technology.
- the second UE capability enquiry request is sent to the UE [102] after completing the UE registration procedure.
- the transceiver unit [204] is further configured to transmit a response message to the AMF unit [106], It is emphasized that the response message comprises a combination of the first UE capability response and the second UE capability response to the AMF unit [106],
- the transceiver unit [204] is further configured to establish at the network node [104], a Packet Data Unit (PDU) session between the UE [102] and the AMF unit [106] based at least on the response message.
- PDU Packet Data Unit
- the PDU Session provides end-to-end user plane connectivity between the UE [102] and a specific Data Network (DN) [130] through the User Plane Function (UPF) [128],
- DN Data Network
- UPF User Plane Function
- the registration request is the initial context setup (ICS) request.
- the Initial Context Setup establishes the necessary overall initial UE context at the next generation-radio access networks (NG-RAN) node (such as 5G NR), when required, including the PDU session context, the Security Key, Mobility Restriction List, UE Radio Capability and UE Security Capabilities, etc.
- NG-RAN next generation-radio access networks
- 5G NR next generation-radio access networks
- the gNodeB [104] is further configured to establish a secure connection with the UE [102] based on at least one secure protocol.
- the secure connection refers to a connection which uses encryption protocols to protect the data that is being transferred.
- the secure connection protects data from unauthorized parties, identifies and authenticates the recipient of the data, and ensures the data has not been tampered with.
- the at least one secure protocol may refer to any protocol used for encryption/ decryption used for ciphering/deciphering and verifying the integrity for signalling messages between one or more network nodes (such as base stations) and the user equipment [102],
- the gNodeB [104] is further configured to transmit a registration response to the AMF unit [106] in response to the registration request upon receipt of the first UE capability response.
- the analysis unit [206] is configured to initiate a predefined timer upon sending the second UE capability enquiry request.
- the predefined timer may be a timer or a countdown which runs for a specified or predefined time period.
- the analysis unit [206] is further configured to release the UE [102] from the wireless communication network in case the predefined timer expires before receipt of the second UE capability response. Thereafter the analysis unit [206] is further configured to re-initiate the registration request.
- the first UE capability enquiry request is a New Radio (NR) request.
- NR New Radio
- the second UE capability enquiry request is an Evolved Universal Terrestrial Radio Access (EUTRA) request.
- EUTRA Evolved Universal Terrestrial Radio Access
- the gNodeB [104] is further configured to receive a measurement report from the UE [102] and initiate a handover procedure based at least on the received measurement report.
- the handover procedure or the handover is a process of transferring an ongoing call or data session from one channel connected to the core network to another channel, or specifically in this case refers to the transferring between one type of RAN to another type of RAN.
- the measurement report is a report sent by the UE [102] to the one or more network nodes (such as base stations).
- the measurement report comprises details associated with radio frequency of serving cells and neighbouring cells.
- the details in the measurement report comprises at least one of a signal strength (Reference Signal Received Power), a signal quality (Reference Signal Received Quality), a Received Signal Strength Indicator, a signal Interference Noise Ratio (SINR), and like.
- the analysis unit [206] upon successful initiation of the handover procedure, is further configured to determine whether a secure connection is established with the UE [102] based at least on a first interface.
- the analysis unit [206] is further configured to initiate a handover based at least on the first interface upon determination that the secure connection is established with the UE [102] based at least on the first interface.
- the analysis unit [206] is further configured to initiate a handover based at least on a second interface upon determination that the secure connection is not established with the UE [102] based at least on the first interface.
- the transceiver unit [204] is further configured to send the second UE capability enquiry request to the UE [102],
- the first interface is Xn interface.
- the Xn interface supports the exchange of signalling information between two NG-RAN nodes, and the forwarding of PDUs to the respective tunnel endpoints; - from a logical standpoint, the Xn interface is a point-to-point interface between two NG-RAN nodes.
- the Xn interface is an interface used for communication between one or more network nodes such as one or more base stations. For example, particularly in 5GC network, the Xn interface is an interface between two different gNBs.
- the second interface is Ng interface.
- the Ng (Next Generation) interface refers to the interface between the Next Generation Core (NGC) (5GC network) and the Radio Access Network (RAN).
- the Ng interface refers to an interface used for communication between one or more network nodes such as one or more base stations and the AMF unit [106],
- the Xn interface is an interface between two different gNBs.
- FIG. 3 an exemplary sequence diagram for managing capability information for the UE [102], in accordance with exemplary implementations of the present disclosure, is illustrated.
- the present disclosure further discloses that in order to provide the UE Capability Enquiry Procedure Enhancements, the transceiver unit [204] of the system [200] is configured to send through gNodeB [104] the UE capability in two steps - a. first for NR and then b. for EUTRA
- the NR may be referred to as the 5G core network telecommunication technology.
- the EUTRA may be referred to as the 4G network telecommunication technology.
- the process begins with the gNodeB [104] receiving an Initial Context Setup (ICS) Request from the Access and Mobility Management Function (AMF) [106],
- ICS Initial Context Setup
- AMF Access and Mobility Management Function
- the gNodeB [104] proceeds to enquire about the UE’s capabilities specific to New Radio (NR), as "UE Capability Enquiry - NR: n78". This step facilitates in determining that the NR functionalities that the UE [102] supports, essential for optimizing its operation within the 5G network.
- the n78 band is a 3.5 GHz band or a C- band used within the 5GC telecommunication networks.
- the n78 band has a frequency range from 3300 MHz to 3800 MHz, providing a total bandwidth of 500 MHz for usage.
- the UE [102] responds to the enquiry with "UE Capability Information - NR: n78", providing the gNodeB [104] with the necessary details about its NR capabilities for facilitating the gNodeB [104] to determine the UE’s functionality and to facilitate proper network resource allocation.
- the gNodeB [104] sends to the AMF unit [106] the NR capabilities associated with the UE [102],
- the gNodeB [104] sends an ICS Response to the AMF unit [106], This acknowledges the receipt of NR capability information and signals that, part of the UE's context setup is complete.
- the UE registration procedure progresses as the gNodeB [104] initiates a UE Capability Enquiry for EUTRA capabilities, covering bands B3, B5, and B40.
- the Band B3 is the 1800 MHz operating frequency band that is used globally for 4G LTE networks ranging from 1850 - 1910 for uplink and 1930 - 1990 for downlink.
- the Band B5 is another operating frequency band ranging from 824 - 849 for uplink and 869 - 894 for downlink.
- the Band B40 is another operating frequency band ranging from 2300 MHz - 2400 MHz and can be used as a single band or multi-band network. This represents the second phase of the capability enquiry, which is segmented from the NR capability enquiry to streamline the process.
- the UE [102] responds with the "UE Capability Information - EUTRA: B3, B5 and B40", indicating its capabilities related to the EUTRA technology.
- the segmentation of the NR and EUTRA enquiries allows for a more reliable and efficient exchange of capability information, particularly in conditions where large message sizes could compromise transmission.
- the gNodeB [104] compiles the received NR and EUTRA capabilities of the UE [102] into a single message and sends this combined "UE Capability Information Indication" over the NG interface to the AMF unit [106], This step ensures that the AMF has the complete set of capabilities of the UE [102], which is necessary for comprehensive service provision and management.
- FIG. 4 depicts exemplary sequence diagram for UE capability enquiry flow if no UE capability in ICS request, in accordance with exemplary implementations of the present disclosure.
- the sequence begins with the AMF unit [106] sending an Initial Context Setup Request to the gNodeB [104], signalling the start of the registration process for the User Equipment (UE) [102], without including the UE capability information.
- This initiates the registration accept process and is the first step in establishing a user's context within the 5G network.
- the gNodeB [104] sends a Security Mode Command to the UE [102], which is a part of the security procedures to ensure secure communication between the UE [102] and the network.
- the UE [102] completes the security procedures by responding with a Security Mode Complete message to the gNodeB [104], confirming that the security techniques are now in effect and any subsequent communication will be protected.
- the gNodeB [104] enquires about the UE's [102] NR (New Radio) capabilities by sending a UE Capability Enquiry (NR) message to the UE [102],
- the UE [102] responds with the UE Capability Information message, detailing its NR capabilities back to the gNodeB [104],
- the gNodeB [104] then sends a UE Radio Capability Information Indication to the AMF unit [106], informing the AMF of the UE’s NR capabilities, which is a critical part of the context setup process as it determines the services and quality that can be provided to the UE [102],
- the gNodeB [104] sends an Initial Context Setup Response to the AMF unit [106], indicating that the initial NR-related setup for the UE [102] has been successfully completed.
- the Registration Accept message is sent from the gNodeB [104] to the UE [102], indicating that the UE [102] has been successfully registered on the network.
- the registration complete message is sent from the UE [102] to the gNodeB [104], [0117] Moving forward to S10A, the gNodeB [104] and the AMF unit [106] exchange messages to complete the registration process, indicated by Uplink NAS Transport (Registration Complete) from the gNodeB [104] to the AMF unit [106],
- the Uplink NAS (Non-Access Stratum) Transport refers to the transmission of NAS messages from the User Equipment (UE) [102] to the core network, ensuring that critical signalling and control information are conveyed reliably.
- the gNodeB [104] initiates a UE Capability Enquiry (Evolved Universal Terrestrial Radio Access (EUTRA)) to get the UE's capabilities for the Evolved UTRA bands B3, B5, and B40.
- EUTRA Evolved Universal Terrestrial Radio Access
- the UE [102] responds with its EUTRA capabilities to the gNodeB [104],
- the gNodeB [104] consolidates the NR and EUTRA capability information and sends a UE Radio Capability Info Indication to the AMF unit [106], which contains the combined capabilities of the UE [102],
- FIG. 5 illustrates an exemplary sequence diagram for UE capability procedure wait timer expiration flow, in accordance with exemplary implementations of the present disclosure.
- the sequence initiates with the AMF unit [106] sending an Initial Context Setup Request to the gNodeB [104], This request is for the registration acceptance of the UE [102], starting the registration procedure without the inclusion of UE capability information, signalling the AMF’s intention to register the UE [102] but without knowledge of its radio capabilities.
- the gNodeB [104] sends a Security Mode Command to the UE [102], which is a part of the security procedures to ensure the communication between the network and the UE [102] is secure.
- the UE [102] responds with a Security Mode Complete message back to the gNodeB [104], which indicates that the UE [102] has successfully applied the security configurations required by the network.
- the gNodeB [104] requests the NR (New Radio) capabilities of the UE [102] through a UE Radio Capability Enquiry (NR).
- NR New Radio
- NR UE Radio Capability Enquiry
- the UE [102] responds to this enquiry with a UE Radio Capability Information message, which provides the gNodeB [104] with its NR capabilities.
- the gNodeB [104] then informs the AMF unit [106] of the UE’s [102] NR capabilities by sending a UE Radio Capability Info Indication message.
- the gNodeB [104] sends an Initial Context Setup Response back to the AMF unit [106], confirming that the UE’s [102] NR capabilities have been successfully received and the context setup can proceed.
- the Registration Accept message is sent from the gNodeB [104] to the UE [102], This message signifies that the UE [102] has been successfully registered on the network and can now receive services.
- the Registration Complete message is sent from the UE [102] to the gNodeB [104], concluding the registration procedure.
- the gNodeB [104] receives an Uplink NAS Transport message from the UE [102], which contains a confirmation of the registration completion from the UE’s perspective.
- the gNodeB [104] starts the procedure for EUTRA capabilities enquiry by sending a UE Radio Capability Enquiry (EUTRA) message to the UE [102], This is to acquire the UE’s capabilities in EUTRA frequency bands.
- EUTRA UE Radio Capability Enquiry
- the gNodeB [104] will initiate a release procedure towards the AMF unit [106] and trigger a Radio Resource Control (RRC) release towards the Distribution Unit (DU).
- RRC Radio Resource Control
- FIG. 6 illustrates exemplary sequence diagram where no UE capability enquiry as ICS request contains NR+EUTRA info, in accordance with exemplary implementations of the present disclosure.
- the process begins with the AMF unit [106] sending an Initial Context Setup Request to the gNodeB [104], which already includes both the NR and the EUTRAUE capability information. This indicates that the AMF unit [106] is initiating the registration process with the full knowledge of the UE’s capabilities, allowing for a more streamlined setup.
- the gNodeB [104] communicates with the UE [102] to establish a secure communication channel.
- the gNodeB [104] sends a Security Mode Command to the UE [102], which is necessary to ensure that the ensuing communication is encrypted and secure.
- the UE [102] responds to the gNodeB [104] with a Security Mode Complete message, indicating that the security procedures have been successfully applied and the UE [102] is now operating in a secure mode.
- FIG. 7 illustrates exemplary sequence diagram related to UE capability enquiry decision (based on ICS request content), in accordance with exemplary implementations of the present disclosure.
- the AMF unit [106] sends an Initial Context Setup Request to the gNodeB [104], This request includes only the NR UE radio capability information.
- the gNodeB [104] takes note of the NR UE radio capability information from the Initial Context Setup Request.
- a Security Mode Command is sent from the gNodeB [104] to the UE [102],
- the UE [102] responds to the gNodeB's [104] Security Mode Command with a Security Mode Complete message. This step signifies that the security protocols have been successfully negotiated and established. [0144]
- the gNodeB [104] initiates an enquiry for EUTRA capabilities towards the UE [102],
- the UE [102] provides its EUTRA capability information back to the gNodeB [104] in response to the enquiry.
- the gNodeB [104] combines the NR and EUTRA capability information received from the UE [102] into a single UE Radio Capability Info Indication message and sends this to the AMF unit [106], This combined capability information helps the AMF unit [106] in managing the UE's context with complete knowledge of its capabilities across both the NR and the EUTRA radio technologies.
- FIG. 8 illustrates an exemplary detailed workflow for advanced and optimized UE Capability Enquiry enhancement for 5G user when UE registration procedure is in progress, in accordance with exemplary implementations of the present disclosure.
- the process begins, at step [802], when a User Equipment (UE) [102] is in the process of registering with a 5G network. Then, at step [804], an Initial Context Setup (ICS) Request is received by the gNodeB [104], which has been initiated by the Access and Mobility Management Function (AMF). At this point, a series of decisions are made based on checking, at step [806], the content of the ICS Request.
- UE User Equipment
- AMF Access and Mobility Management Function
- the gNodeB [104] proceeds with the UE registration procedure without initiating any further UE capability enquiry. This path indicates a streamlined process where all necessary information is already provided, allowing for a continuation of the registration without delay.
- the gNodeB [104] will store this information and trigger an EUTRA UE capability enquiry after sending, at step [814], an initial context setup response.
- the EUTRA UE capability information the gNodeB [104] combines it with the stored NR information and sends a comprehensive UE capability indication for both NR and EUTRA to the AMF.
- the gNodeB [104] checks if the UE capability enquiry enhancement flag is enabled.
- the gNodeB [104] initiates a UE Radio Capability Enquiry for both the NR and the EUTRA towards the UE [102]
- the enhancement is enabled, then at step [826], only a NR capability enquiry is initiated.
- the gNodeB stores and passes it as UE capability indication for both the NR and the EUTRA to the AMF [106]
- the diagram signifies the flexibility of the gNodeB [104] to adapt the enquiry process based on the configuration and the information initially provided by the AMF [106], This flexibility is key to the enhanced procedure that aims to improve the UE registration success rate and the overall user experience on the 5G network.
- FIG. 9 illustrates an exemplary detailed workflow where the UE [102] is moved to another gNodeB [104] post registration procedure, in accordance with exemplary implementations of the present disclosure.
- the diagram depicts a scenario which begins, at step [902], when a User equipment (UE) [102] that is already registered with a 5G network (and only has NR capability information) undergoes a handover procedure.
- the process continues, at step [904], when an A3 measurement report is received by the gNodeB [104] from the UE [102], which signals that the conditions are favourable for the handover to a target gNodeB [104],
- the A3 measurement report is a kind of measurement report which is received in an A3 event that occurs when a signal for neighbouring cell becomes better offset than the serving cell.
- the gNodeB [104] determines, at step [908] whether an Xn connection (which is the interface between gNodeBs in 5G networks) to the target gNodeB [104] is available. If the Xn connection exists, then at step [910], the Xn-based handover is initiated, and the UE's NR capability information is passed to the target gNodeB [104],
- the Xn interface is an interface used for communication between one or more network nodes such as one or more base stations. For example, particularly in 5GC network, the Xn interface is an interface between two different gNBs. The Xn-based handover is the handover which is done using the Xn interface.
- the gNodeB [104] initiates an NG- based handover to the target gNodeB [104] via the AMF, again passing the UE's NR capability information.
- This NG interface is the connection between the gNodeB [104] and the AMF in the 5G core network, providing a different path for the handover if the direct Xn connection isn't up.
- the Ng interface refers to an interface used for communication between the one or more network nodes such as the one or more base stations and the AMF unit [106], For example, particularly in the 5GC network, the Xn interface is an interface between the two different gNBs.
- step [914] following a successful handover, the target gNodeB [104], now responsible for the UE [102], initiates a UE Radio Capability Enquiry for the EUTRA.
- This step is crucial as the initial registration only accounted for the NR capabilities, and the network now requires information on the UE's capabilities concerning the EUTRA to provide comprehensive network services.
- step [916] when the target gNodeB [104] receives the UE's EUTRA Radio Capability Information, it stores this new data and sends a combined UE capability indication for both the NR and the EUTRA back to the AMF [106], This completes the enhanced UE capability enquiry process, ensuring that the AMF [106] has full and updated capability information posthandover, allowing for better resource allocation and service provision for the UE [102] in the new network environment.
- FIG. 10 illustrates an exemplary method diagram indicating the process for managing capability information of a user equipment (UE) [102] in a wireless communication network, in accordance with exemplary implementations of the present disclosure.
- the method [1000] is performed by the system [200], As shown in FIG. 10, the method [1000] starts at step [1002],
- the managing capability information refers to the management of the information related to capabilities of the user equipment which is going to be connected to the wireless communication network.
- the capability information may refer to the information associated with one or more capabilities of the UE to connect with 5G network and 4G network, and may also comprise capabilities of connecting with newer communication technologies.
- the wireless communication network refers to the radio access network for different generation of telecommunication technology.
- the method [1000] as disclosed by the present disclosure comprises receiving a registration request by a transceiver unit [204] at the network node [104] (also referred to as the base station or the gNodeB [104]) from an Access and Mobility Management Function (AMF) unit [106],
- the transceiver unit [204] may be a unit capable of reception and data transmission of data or may also be a processor capable of performing transmission and reception of data.
- the analysis unit [206] may be a unit capable of performing analysis by processing data, the analysis unit [206] may also be a processor capable of performing analysis of data.
- the registration request may be a request for registration of the UE [102] within the wireless communication network.
- the registration request may be an initial context setup (ICS) request, wherein the ICS request is independent of one or more UE capabilities.
- the ICS request may be a request for registration of the UE [102] within the wireless communication network.
- the one or more UE capabilities may refer to at least the capabilities of the UE [102] to connect to the 4G networks or the 5G networks.
- the one or more UE capabilities may be a capability of the UE [102] to connect with the 5G network via the New Radio telecommunication technology.
- the one or more UE capabilities may be a capability of the UE [102] to connect with the 4G network via the Evolved Universal Terrestrial Radio Access (EUTRA) technology.
- EUTRA Evolved Universal Terrestrial Radio Access
- the registration request may be an initial context setup (ICS) request.
- the Initial Context Setup establishes the necessary overall initial UE context at the next generation radio access networks (NG-RAN) node (such as 5GNR), when required, including the PDU session context, the Security Key, Mobility Restriction List, UE Radio Capability and UE Security Capabilities, etc.
- the method further comprises establishing a secure connection between the gNodeB [104] and the UE [102] based on at least one secure protocol.
- the method further comprises receiving a measurement report from the UE [102] by the gNodeB [104] and initiating a handover procedure by the gNodeB [104] based at least on the received measurement report.
- the handover procedure or the handover is a process of transferring an ongoing call or data session from one channel connected to the core network to another channel, or specifically in this case refers to the transferring between one type of RAN to another type of RAN.
- the at least one secure protocol may refer to any protocol used for encryption/ decryption used for ciphering/deciphering and verifying the integrity for signalling messages between one or more network nodes (such as base stations) and the user equipment [102],
- the method further comprises determining whether a secure connection is established with the UE [102] by the gNodeB [104] based at least on a first interface. The method further comprises upon determining that the secure connection is established with the UE [102] based at least on the first interface. The method further comprises initiating a handover by the gNodeB [104] based at least on the first interface. The method further comprises upon determining that the secure connection is not established with the UE [102] based at least on the first interface. The method further comprises initiating the handover based at least on a second interface by the gNodeB [104], The method further comprises sending the second UE capability enquiry request to the UE [102] by the gNodeB [104],
- the first interface is an Xn interface.
- the Xn interface supports the exchange of signalling information between two NG-RAN nodes, and the forwarding of PDUs to the respective tunnel endpoints; - from a logical standpoint, the Xn interface is a point-to-point interface between two NG-RAN nodes.
- the Xn interface is an interface used for communication between one or more network nodes such as one or more base stations. For example, particularly in 5GC network, the Xn interface is an interface between two different gNBs.
- the second interface is Ng interface.
- the Ng (Next Generation) interface refers to the interface between the Next Generation Core (NGC) and the Radio Access Network (RAN).
- the Ng interface refers to an interface used for communication between one or more network nodes such as one or more base stations and the AMF unit [106], For example, particularly in 5GC network, the Xn interface is an interface between two different gNBs.
- the method [1000] as disclosed by the present disclosure comprises sending a first UE capability enquiry request by the gNodeB [104] to the UE [102],
- the first UE capability enquiry request to the UE [102] refers to the request for enquiring the capabilities of the UE [102],
- the capabilities of the UE [102] may be the capabilities to connect to the different network technologies and capabilities in terms of processing data for connecting with the newer generation of technology.
- the first UE capability enquiry request may comprise a new radio (NR) request seeking information related to the enquiry related to the capabilities of connecting to the 5GNew Radio (NR).
- NR new radio
- the first UE capability enquiry request is a New Radio (NR) request.
- NR New Radio
- the method [1000] as disclosed by the present disclosure comprises receiving a first UE capability response by the transceiver unit [204] at the network node (such as gNodeB [104]) in response to the first UE capability enquiry request.
- the first UE capability response is the response which comprises the details related to the capabilities of the UE [102]
- the first UE capability response may comprise information related to capabilities of the UE [102] to connect to the 5G NR.
- the NR may be referred to as the 5G core network technology.
- the transceiver unit [204] may also be further configured to transmit at the network node [104], a registration response to the AMF unit [106] in response to the registration request to complete a UE registration procedure.
- the registration response may be the response giving information that the UE registration procedure is completed.
- the UE registration procedure is completed based on receiving the first UE capability response from the UE [102] and transmitting the first UE capability response to the AMF unit [106],
- the registration response may be the response stating that the UE [102] has been successfully registered or not registered with the wireless communication networks. For example, if the UE [102] is capable of connecting to the 5G network, then it may send that the UE [102] has been connected with the 5G networks.
- the method [900] as disclosed by the present disclosure comprises sending a second UE capability enquiry request by the transceiver unit [204] at the network node (gNodeB [104]) to the UE [102],
- the second UE capability enquiry request refers to the request seeking information related to the capabilities of the UE [102],
- the second UE capability enquiry request may be specifically an Evolved Universal Terrestrial Radio Access (EUTRA) request seeking capabilities of the UE [102] for connecting with the EUTRA.
- EUTRA Evolved Universal Terrestrial Radio Access
- the EUTRA may also be referred as the 4G network technologies.
- the second UE capability enquiry request is an Evolved Universal Terrestrial Radio Access (EUTRA) request.
- EUTRA Evolved Universal Terrestrial Radio Access
- the method [1000] as disclosed by the present disclosure comprises receiving a second UE capability response by the gNodeB [104] in response to the second UE capability enquiry request.
- the second UE capability response comprises the information related to capability of connecting with the EUTRA or 4G network technology.
- the second UE capability enquiry request is sent to the UE [102] after completing the UE registration procedure.
- the method further comprises initiating a predefined timer by the gNodeB [104] upon sending the second UE capability enquiry request.
- the predefined timer may be a timer or a countdown which runs for a specified or predefined time period.
- the method further comprises releasing the UE [102] from the wireless communication network by the gNodeB [104] in case the predefined timer expires before receipt of the second UE capability response.
- the method further comprises re-initiating the registration request by the gNodeB [104],
- the method [1000] as disclosed by the present disclosure comprises transmitting a response message by the gNodeB [104], It is important to note that the response message comprises a combination of the first UE capability response and the second UE capability response to the AMF unit [106], In an exemplary implementation of the present disclosure, the method further comprises transmitting a registration response to the AMF unit [106] by the gNodeB [104] in response to the registration request upon receiving the first UE capability response.
- the present disclosure further discloses establishing a Packet Data Unit (PDU) session between the UE [102] and the AMF unit [106] by the gNodeB [104] based at least on the response message.
- PDU Packet Data Unit
- FIG. 11 illustrates an exemplary block diagram of a computing device [1100] (or referred to herein as a computer system [1100]) upon which the features of the present disclosure may be implemented in accordance with exemplary implementation of the present disclosure.
- the computing device [1100] may also implement a system [200] for managing capability information for a user equipment (UE) [102] in a wireless communication network by utilising the system [200],
- the computing device [1100] itself implements the system [200] for managing capability information for the user equipment (UE) [102] in the wireless communication network using one or more units configured within the computing device [1100], wherein said one or more units are capable of implementing the features as disclosed in the present disclosure.
- the computing device [1100] may include a bus [1102] or other communication mechanism for communicating information, and a processor [1104] coupled with bus [1102] for processing information.
- the processor [1104] may be, for example, a general-purpose microprocessor.
- the computing device [1100] may also include a main memory [1106], such as a random-access memory (RAM), or other dynamic storage device, coupled to the bus [1102] for storing information and instructions to be executed by the processor [1104],
- the main memory [1106] also may be used for storing temporary variables or other intermediate information during execution of the instructions to be executed by the processor [1104], Such instructions, when stored in non-transitory storage media accessible to the processor [1104], render the computing device [1100] into a special-purpose machine that is customized to perform the operations specified in the instructions.
- the computing device [1100] further includes a read only memory (ROM) [1108] or other static storage device coupled to the bus [1102] for storing static information and instructions for the processor [1104],
- ROM read only memory
- a storage device [1110], such as a magnetic disk, optical disk, or solid-state drive is provided and coupled to the bus [1102] for storing information and instructions.
- the computing device [1100] may be coupled via the bus [1102] to a display [1112], such as a cathode ray tube (CRT), Liquid crystal Display (LCD), Light Emitting Diode (LED) display, Organic LED (OLED) display, etc. for displaying information to a computer user.
- a cursor controller [1116] such as a mouse, a trackball, or cursor direction keys, for communicating direction information and command selections to the processor [1104], and for controlling cursor movement on the display [1112].
- the input device typically has two degrees of freedom in two axes, a first axis (e.g., x) and a second axis (e.g., y), that allow the device to specify positions in a plane.
- the computing device [1100] may implement the techniques described herein using customized hard-wired logic, one or more ASICs or FPGAs, firmware, and/or program logic which in combination with the computing device [1100] causes or programs the computing device [1100] to be a special-purpose machine.
- the techniques herein are performed by the computing device [1100] in response to the processor [1104] executing one or more sequences of one or more instructions contained in the main memory [1106], Such instructions may be read into the main memory [1106] from another storage medium, such as the storage device [1110], Execution of the sequences of instructions contained in the main memory [1106] causes the processor [1104] to perform the process steps described herein.
- hard-wired circuitry may be used in place of or in combination with software instructions.
- the computing device [1100] also may include a communication interface [1118] coupled to the bus [1102],
- the communication interface [1118] provides a two-way data communication coupling to a network link [1120] that is connected to a local network [1122].
- the communication interface [1118] may be an integrated services digital network (ISDN) card, cable modem, satellite modem, or a modem to provide a data communication connection to a corresponding type of telephone line.
- the communication interface [1118] may be a local area network (LAN) card to provide a data communication connection to a compatible LAN.
- LAN local area network
- Wireless links may also be implemented.
- the communication interface [1118] sends and receives electrical, electromagnetic, or optical signals that carry digital data streams representing various types of information.
- the computing device [1100] can send messages and receive data, including program code, through the network(s), the network link [1120] and the communication interface [1118],
- a server [1130] might transmit a requested code for an application program through the Internet [1128], the ISP [1126], the host [1124], the local network [1122] and the communication interface [1118],
- the received code may be executed by the processor [1104] as it is received, and/or stored in the storage device [1110], or other non-volatile storage for later execution.
- the present disclosure further discloses a User Equipment (UE) [102] comprises a memory and a processor coupled to the memory.
- the processor is configured to receive a first UE capability enquiry request from a network node [104], The network node is to send the first UE capability enquiry request to the UE pursuant to receiving a registration request from an Access and Mobility Management Function (AMF) unit [106], The processor is further configured to send a first UE capability response to the network node [104] in response to the first UE capability enquiry request.
- AMF Access and Mobility Management Function
- the processor is further configured to receive a second UE capability enquiry request from the network node [104], Then in response to the second UE capability enquiry request, the processor is further configured to send a second UE capability response to the network node [104], The first UE capability response and the second UE capability response are to cause the network node [104] to manage the capability information of the UE [102] based on transmitting, by the network node [104] to the AMF unit [106], a response message comprising a combination of the first UE capability response and the second UE capability response on receiving the first UE capability response and the second UE capability response from the UE [102],
- the present disclosure further discloses a non-transitory computer readable storage medium storing one or more instructions for managing capability information for a user equipment (UE) [102], the one or more instructions comprising executable code which, when executed by one or more units of a system, causes the one or more units to perform certain functions.
- the instruction when executed causes a transceiver unit [204], at a network node [104], to receive a registration request from an Access and Mobility Management Function (AMF) unit [106],
- AMF Access and Mobility Management Function
- the instruction when executed further causes the transceiver unit [204], at the network node [104], to send a first UE capability enquiry request.
- AMF Access and Mobility Management Function
- the present disclosure provides a technically advanced solution for providing UE Capability Enquiry Procedure Enhancements.
- the solution may be related to field of 5G SA cellular technology and provides set of steps considered in the view of users or UEs which are not able to register to the 5G network and for the user which is mobile and entering the location where 5G coverage is poor.
- set of steps disclosed in the present disclosure help the network operator to improve the UE registration success rate and resulting in improved user experience.
- the present disclosure provides a solution that 1) provides enhanced and optimized registration techniques for UEs in 5G networks, 2) is faster and more reliable UE registration process, 3) reduces overall latency in the networks, and 4) provides a smaller number of UE registration failures.
- the present solution may be very useful and may help in improving overall user experience.
- the present solution helps and guarantees the best possible services in the market and increases the registration success rate for different available UEs, which may lead to best services and RPU (Revenue per user).
Landscapes
- Engineering & Computer Science (AREA)
- Computer Networks & Wireless Communication (AREA)
- Signal Processing (AREA)
- Databases & Information Systems (AREA)
- Mobile Radio Communication Systems (AREA)
Abstract
Description
Claims
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP24835699.0A EP4740519A1 (en) | 2023-07-06 | 2024-06-27 | Method and system for managing capability information for user equipment |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| IN202321045578 | 2023-07-06 | ||
| IN202321045578 | 2023-07-06 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2025008979A1 true WO2025008979A1 (en) | 2025-01-09 |
Family
ID=94171646
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/IN2024/050979 Ceased WO2025008979A1 (en) | 2023-07-06 | 2024-06-27 | Method and system for managing capability information for user equipment |
Country Status (2)
| Country | Link |
|---|---|
| EP (1) | EP4740519A1 (en) |
| WO (1) | WO2025008979A1 (en) |
Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20210267001A1 (en) * | 2018-06-21 | 2021-08-26 | Sharp Kabushiki Kaisha | Ue and communication method for same |
| EP4178240A1 (en) * | 2020-07-07 | 2023-05-10 | Samsung Electronics Co., Ltd. | Method and device for providing terminal capability information in wireless communication system |
-
2024
- 2024-06-27 WO PCT/IN2024/050979 patent/WO2025008979A1/en not_active Ceased
- 2024-06-27 EP EP24835699.0A patent/EP4740519A1/en active Pending
Patent Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20210267001A1 (en) * | 2018-06-21 | 2021-08-26 | Sharp Kabushiki Kaisha | Ue and communication method for same |
| EP4178240A1 (en) * | 2020-07-07 | 2023-05-10 | Samsung Electronics Co., Ltd. | Method and device for providing terminal capability information in wireless communication system |
Also Published As
| Publication number | Publication date |
|---|---|
| EP4740519A1 (en) | 2026-05-13 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| CN119605315A (en) | Method and apparatus for controlling user equipment | |
| WO2021201729A1 (en) | Faster release or resume for ue in inactive state | |
| EP4740592A1 (en) | Method and system for performing handover from wlan to new radio (nr) in a wireless network | |
| EP4740519A1 (en) | Method and system for managing capability information for user equipment | |
| EP4740637A1 (en) | Method and system for configuring and managing proxy registrations in a network | |
| CN113439426B (en) | Method and apparatus for implementing NAS signaling via other access | |
| EP4740593A1 (en) | Method implemented by a network node for handling handover in a communication network | |
| EP4740563A1 (en) | Method and system for maintaining call continuity for a user device | |
| WO2025008869A1 (en) | Method and system for performing network registration in a wireless communication network | |
| WO2025013035A1 (en) | System and method for transmitting a user location information (uli) during a handover | |
| WO2012072021A1 (en) | Method and interworking function entity for redirecting tunnel | |
| WO2025008921A1 (en) | A method and a system for user equipment recovery post integrity validation failure | |
| EP4740527A1 (en) | Method and system for providing secured application programming interface based manual authentication of network functions | |
| WO2025008900A1 (en) | Method and system for performing a lawful interception provisioning | |
| EP4740626A1 (en) | Method and system for real-time synchronization of one or more network entities | |
| WO2025012933A1 (en) | System and method for ensuring call continuity during an inter-public land mobile network handover | |
| EP4740691A1 (en) | Method and system for whitelisting vowifi compatible devices | |
| WO2025008907A1 (en) | Method and system for transmitting paging message | |
| EP4740564A1 (en) | Method and system for handling protocol data unit release command initiated from session management function | |
| GB2637323A (en) | Apparatus, method and computer program | |
| WO2025008855A1 (en) | A method and a system to re-route a registration request | |
| WO2025008871A1 (en) | Method and system for routing a registration request in a communication network | |
| WO2025012932A1 (en) | Method and system for handover between a first network and a second network | |
| EP4740630A1 (en) | Method and system for cleanup of network resources after handover procedure | |
| WO2026075740A1 (en) | Method for performing handover and related apparatuses |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 24835699 Country of ref document: EP Kind code of ref document: A1 |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 2024835699 Country of ref document: EP |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| ENP | Entry into the national phase |
Ref document number: 2024835699 Country of ref document: EP Effective date: 20260206 |
|
| WWP | Wipo information: published in national office |
Ref document number: 2024835699 Country of ref document: EP |