A method for determining the subdivision of user equipment handled by a wireless communication system.
The method for UE subdivision in wireless communication systems addresses the underutilization of multiplexing capabilities in 5G TSN bridges by optimizing UE clustering, improving performance and integration through NWDAF and NEF functionalities.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-03-10
- Publication Date
- 2026-03-13
AI Technical Summary
The existing 5G TSN bridge models do not effectively utilize the multiplexing capabilities of wireless communication systems, leading to performance degradation due to the low time granularity and inferior wireless transmission capacity compared to wired Ethernet, which limits the simultaneous use of internal links and results in suboptimal performance.
A method for determining the subdivision of user equipment (UE) in a wireless communication system, utilizing a network function entity with NWDAF and/or NEF to obtain grouping criteria, redistribute UEs into clusters, and signal or present clustering information to improve the integration and performance of wireless communication systems, particularly 5GS, by optimizing scheduling and multiplexing.
Enhances the performance and integration of wireless communication systems by optimizing UE clustering based on grouping criteria, such as multiplexing ability, independent quality of experience, and mobility behavior, allowing for better utilization of wireless communication systems in TSN networks.
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Abstract
Description
Technical Field
[0005]
[0001] The present disclosure relates to the field of telecommunications.
[0002] More particularly, the present disclosure relates to a method of determining a re-partitioning of a set of user equipment handled by a wireless bridge of a communication system within a time-sensitive network. The present disclosure also relates to a corresponding communication system and a corresponding computer program.
Background Art
[0003] The present disclosure addresses the problem of using a 5G network as a communication means for a time-sensitive network (TSN). The time-sensitive network was originally developed to provide guaranteed communication over industrial Ethernet wired networks.
[0004] According to the convention in the current TSN standard, when passing through a TSN bridge, the end-to-end delay is calculated by considering the sum of the delay of the transport link between the preceding bridges (external links) on the path and the delay of the internal link of the bridge between the input (ingress) port and the output (egress) port. In a normal TSN network, these summed delays are considered in a central scheduler, or a central network configuration node (CNC), to ensure that packet collisions do not occur on the transport link in the time domain.
[0005] In a one-to-many bridge, the bottleneck lies in the external transport link to which the TDMA (Time Division Multiple Access) strategy is applied as a result of CNC scheduling. While the bridge's internal links can be used simultaneously, they are actually used sequentially as a result of the TDMA on the input transport link. When the capacity of the internal links is much larger than the capacity of the transport links, the impact on performance is minor. However, due to the convention of considering the total delay, significant performance degradation occurs when the capacity of the internal links is comparable to or worse than the capacity of the external links. In practice, the bridge capability is limited because the possibility of using internal links simultaneously cannot be utilized.
[0006] Such a situation arises when considering a 5G TSN bridge where the internal link capacity is related to the wireless transmission capacity, which is generally inferior to the input link capacity that relies on wired Ethernet. Using the latest models available today, and representing 5GS as a one-to-many topology, the TDMA strategy is applied to all packets passing through the 5G TSN bridge. Unfortunately, TDMA is often not the optimal multiplexing method for wireless networks, and performance can be improved by utilizing other multiplexing dimensions. Examples of multiplexing dimensions include frequency (using multiple subbands in the frequency domain), space (using multiple antennas), and site (reusing frequencies between multiple non-interfering sites). Therefore, the latest definition of the 5G TSN bridge model does not utilize the multiplexing capabilities of 5GS, and as a result, optimal performance is not achieved.
[0007] The time multiplexing capability of 5GS is often far inferior to that of fixed Ethernet networks. For example, the smallest time unit of 5GS is a slot lasting at least 100 microseconds, while the maximum frame duration of a Gigabit Ethernet link is approximately 12 microseconds. Therefore, the low time granularity of 5GS is taken into account in the declaration of independent delay as a trade-off for any frame transmission. This is necessary because dependent and independent delays are used in CNC to calculate the guaranteed delay. However, 5GS inevitably relies on a radio interface that enables broadcasting. This means that several data flows can be transmitted simultaneously with variable capacity depending on the configuration, terminal location and channel state, the number of data flows sharing the radio channel simultaneously, etc. This multiplexing capability of 5GS is essentially not considered when considering the latest 5GS TSN bridge representations at present. In fact, according to this bridge model, CNC provides packets at the bridge input in TDMA format, according to the low internal time granularity of 5GS.
[0008] Figure 1 shows a known integration of 5GS operating as an Ethernet bridge in a TSN network according to 3GPP® Technical Report TR23.734. In this framework, the 5GS has one or more ports on a single User Plane Function (UPF) 306 at the network side (NW-TT) 310. These ports operate as a user plane tunnel between the UPF and user equipment (UE) 302 via a radio access network 304. The 5GS operating as an Ethernet bridge further has one port per user equipment at the device side (DS-TT) 300. In each 5GS bridge in a TSN network, the NW-TT side ports support connectivity to the TSN network, while each DS-TT side port is associated with a corresponding protocol data unit (PDU) session that provides connectivity to the TSN network according to 3GPP Technical Specification TS23.501.
[0009] Figure 1 shows that logical bridge configuration information is transmitted to the TSN network via the Trusted TSN Application Function (AF) 308. This configuration information relates to network status and performance parameters, which are received from the Access and Mobility Management Function (AMF) 316 by the Session Management Function (SMF) 318 in the Unified Data Management (UDM) 314 and transmitted to the AF 308 via the Network Exposure Function (NEF) 312 using the N33 interface in accordance with 3GPP technical specification TS23.502, or, if the AF is considered trusted, directly from the Policy Charge Function (PCF) 320 via the N5 interface to the AF 308. [Overview of the Initiative] [Problems that the invention aims to solve]
[0010] To improve the system performance of wireless communication systems such as 5GS, utilize their multiplexing capabilities, and compensate for their low time granularity, it is necessary to design better models of such wireless communication systems.
[0011] This disclosure aims to improve this situation. [Means for solving the problem]
[0012] A method for determining the subdivision of a set of user equipment handled by a wireless communication system, The wireless communication system comprises a core network component including a network function entity that includes a network data analysis function (NWDAF) and / or a network exposure function (NEF), and this method, in the network function entity, Obtaining grouping criteria from the requester, To provide the requester with a redistribution of at least a portion of the set of user devices into groups of user devices formed according to grouping criteria, A method including this is proposed.
[0013] The above method makes it possible to signal and / or present to the requester the clustering capability corresponding to a cluster of user equipment handled by the RAN of the wireless communication system.
[0014] If the wireless communication system is a 5G system, the requester may reside within the core components of the 5GS and can be a core network function (NF) or an application function (AF). For example, the requester may be a TSN application function configured to be an input source to a central network configuration node (CNC) of a time-sensitive network (TSN). In this example, the above method improves the performance of the 5GS bridge by the CNC and the integration of the 5GS bridge.
[0015] More generally, the above method enables improvements in the performance and integration of wireless communication systems in any type of network under any protocol, provided that the network includes a management entity configured to receive re-fractions from requesters.
[0016] In another embodiment, computer software or a program is proposed that includes one or more instructions that, when the software is executed by a processor, perform at least a part of the method as defined herein. In another embodiment, the software is proposed to be a non-temporary computer-readable recording medium that is registered to perform the method as defined herein when the software is executed by a processor.
[0017] In another embodiment, a wireless communication system for handling a set of user equipment, The wireless communication system further comprises a core network component including a network function entity that includes a network data analysis function (NWDAF) and / or a network exposure function (NEF), and the network function entity is Obtaining grouping criteria from the requester, To provide the requester with a redistribution of at least a portion of the set of user devices into groups of user devices formed according to grouping criteria, A wireless communication system is proposed that is configured to perform the following actions.
[0018] The following features can be implemented separately or in combination, at the discretion of the user.
[0019] In one example, the requester is an application function of a core network component, such as a time-sensitive network application function.
[0020] In one example, the grouping criteria are associated with a list of user devices provided by the requester, and the subdivision provided to the requester concerns a filtered set of user devices obtained by filtering the set of user devices according to the list.
[0021] For example, a list of user equipment may be associated with industrial equipment managed within the TSN network and may also correspond to wireless devices configured to communicate with at least a portion of the TSN network via a wireless communication system.
[0022] When a list of clusters determined based on given criteria is sent to the TSN-AF, the TSN-AF can determine the communication system model in terms of ports and guaranteed dependent and independent delays. This allows the CNC to optimally schedule communication with the list of industrial equipment, taking these delays into account.
[0023] Clusters provide insights into the differences related to how a wireless communication system provides services to different UEs from the perspective of grouping criteria.
[0024] In one example, the grouping criteria relate to the following. - The multiplexing ability of the wireless communication system, and / or - The independent quality of experience provided to user equipment by the communication system, - The radio quality of the communication channel between the user equipment and the wireless bridge, and / or - The mobility behavior of the user equipment.
[0025] Differences regarding the multiplexing ability mean that UEs are handled by a wireless bridge such that some of the communication with different UEs is orthogonalized while the rest is not. In other words, some subsets of UEs are handled by the same base station using the same physical channel, while other subsets of UEs are handled by different base stations, or by the same base station without using the same physical channel, or using different independent radio resources, or using different radio beams.
[0026] Differences regarding the radio quality mean, for example, that some of the physical channels used by the base station to handle the UEs exhibit a higher packet loss rate or a greater delay than other physical channels. For example, UEs can be assigned to different groups according to their distance from the serving base station.
[0027] Differences regarding the mobility behavior mean, for example, that in the placement of UEs that changes over time due to the geographical displacement of the UEs, some UEs tend to be stationary while others tend to move at various speeds, which has various effects on the topology of the wireless bridge and the dependent and independent delays related to further communication with the placed UEs.
[0028] In one example, the grouping criteria relate to data flow performance through a wireless bridge, and when a network function entity obtains the grouping criteria, it triggers a measurement related to data flow performance to determine the subdivision.
[0029] In this example, the required measurements are performed only after the grouping criteria have been received, which is advantageous for minimizing traffic usage. Alternatively, all the measurements required for various types of grouping criteria can be performed in advance, anticipating that a specific grouping criterion will be received and the most appropriate measurements will be selected directly.
[0030] In one example, the core network includes user plane functionality, and triggering measurements related to data flow performance includes requesting the user plane functionality to monitor quality of service performance, either on existing traffic or by initiating traffic injection.
[0031] UPF can monitor end-to-end quality of service, and as a result, it can provide a cluster of UEs that consider QoS differences at the wireless bridge level as a whole, rather than just considering the wireless portion of the network.
[0032] In one example, the wireless bridge further comprises a wireless access network, and the grouping criterion relates to the data flow performance through the wireless access network. The method further includes, in a network function entity, querying the wireless access network for clustering information related to the grouping criterion, and obtaining the subpartition determined based on the clustering information.
[0033] RAN level information is accurate in that it is rapidly acquired from various base stations and is directly related to the actual topology of the RAN.
[0034] In one example, a radio access network comprises multiple base stations, and the method further includes determining clustering information for each base station. The method may further include aggregating clustering information from each base station in a radio access network or core network component, and subdivision may be determined based on the aggregated clustering information.
[0035] This example demonstrates a possible method for centralizing RAN level information originating from multiple base stations.
[0036] Optionally, core network components can trigger measurements related to grouping criteria to determine repartitioning.
[0037] This example demonstrates a possible method for monitoring end-to-end QoS information that can be processed using machine learning, such as an autoencoder, to automatically identify common patterns in how UEs are handled by wireless bridges and to automatically determine clusters.
[0038] Other features, details, and advantages are described in the following detailed explanation and diagrams. [Brief explanation of the drawing]
[0039] [Figure 1] This diagram shows the current state of integration for wireless bridges within the TSN network. [Figure 2A] This figure shows spatial multiplexing and frequency multiplexing between different node base stations of a wireless bridge according to one embodiment. [Figure 2B] This figure shows spatial multiplexing using multiple antennas at a node base station of a wireless bridge according to one embodiment. [Figure 2C] This figure shows spatial multiplexing using multiple antennas at a node base station of a wireless bridge according to one embodiment. [Figure 2D]This figure shows time-frequency multiplexing through static scheduling or slicing at a node base station of a wireless bridge according to one embodiment. [Figure 3] This figure shows an overall algorithm for collecting clustering information from multiple base stations and aggregating it at a node, according to one embodiment. [Figure 4] This figure shows an NWDAF service-based interface according to one embodiment. [Figure 5] This figure shows the presentation of cluster information to NWDAF according to one embodiment. [Figure 6] This figure shows the determination of cluster information in NWDAF according to one embodiment. [Figure 7] This figure shows the presentation of cluster information from NWDAF to AF according to one embodiment. [Figure 8] This figure shows an overall overview of cluster determination methods according to multiple embodiments. [Figure 9] This figure shows an example of a processing circuit suitable for executing any of the algorithms shown in Figures 5, 6, 7, and 8, according to one embodiment. [Modes for carrying out the invention]
[0040] This disclosure addresses the problem of rapidly obtaining reliable multiplexing capability for wireless communication systems at the central network configuration node (CNC) of a TSN network. In a particular example, the wireless communication system comprises a logical bridge integrated into the TSN network. In particular, the wireless logical bridge may be a 5G system (5GS) operating as a logical bridge.
[0041] A more general objective is to extend the current framework for data analysis in wireless communication systems, including, for example, 5G networks, and to handle the determination and presentation of clusters of UEs by such wireless communication systems according to grouping criteria.
[0042] The grouping criteria may be related to "Independent Experience Quality (QoE)" or wireless access network criteria such as wireless quality. These criteria may also be related to UE mobility behavior.
[0043] In fact, the following methods do not exist in the current 3GPP specifications. - Means for integrating and / or presenting UE clustering information determined by the 5G system to third-party application functions (AF) or internal network functions (NF); - For example, a means of triggering group-related information from RAN; or - For example, a means of organizing, integrating, and updating group-related information from the RAN using the Network Data Analysis Function (NWDAF) or Network Exposure Function (NEF).
[0044] Therefore, novel signaling and new functionalities are proposed herein as analytical services handled by NWDAF and / or NEF. These analytical services aim to solve the aforementioned problems and improve the integration of virtual bridges into the TSN network and the performance of virtual bridges.
[0045] The proposed analysis service can present the determined UE cluster to the requester, i.e., the network function NF. This network function may be a standard 5G core (5GC) network function such as the Access and Mobility Management function (AMF) or UDM, or it may be a specific application function (AF).
[0046] The general principle of the proposed service is that a grouping criterion is provided to the network by the requester, and the network, based on this criterion, determines a certain UE clustering for the benefit of the requester.
[0047] This approach is fundamentally different from the current state-of-the-art technology related to UE grouping. Current technology typically involves an application providing information to the network about UEs that can be grouped and managed as a group by the network.
[0048] The key components of the above-mentioned analysis service for clusters, determined according to the so-called "Independent Experience Quality (QoE)" grouping criteria, are described in the following sections.
[0049] This analysis service can also be used to determine clusters according to other grouping criteria within the same architecture.
[0050] {Determination of clustering / grouping information} The following describes how to determine UE clusters according to the so-called independent experience quality grouping criteria.
[0051] In the following, a UE is said to be “activated” when it is involved in sending or receiving at least one data flow. A UE is said to be “deactivated” when it is not involved in sending or receiving any data flows.
[0052] Let's consider a pair of UEs. A pair is said to be "dependent" if the QoS performance of one UE in the pair changes depending on whether the other UE in the pair is active at the same time.
[0053] More specifically, sequential communication performance and simultaneous communication performance can be defined. Simultaneous communication performance is reflected by the QoS performance of a given data flow transmitted or received by a pair of UEs in an activation topology where both UEs are activated simultaneously. In contrast, sequential communication performance is reflected by the QoS performance of a given data flow in an activation topology where both UEs are activated one at a time rather than simultaneously.
[0054] This principle applies more generally to any group of two or more UEs. Sequential communication performance indicates the QoS performance of a given data flow transmitted or received by a UE in a group when the other UEs in the group are not simultaneously activated. Concurrent communication performance of a given data flow indicates the QoS performance of a given data flow when at least one other UE in the group is simultaneously activated.
[0055] The absolute difference between the sequential and simultaneous communication performance of a given data flow can be calculated and is hereafter referred to as the "change in QoS performance." When a data flow transmitted or received by a UE in a group of UEs exhibits a change in QoS performance exceeding a predetermined threshold, that UE can be said to be dependent on the group of UEs. Otherwise, that UE can be said to be independent of the group of UEs. This threshold can be pre-set to a non-zero value that can be positive or negative. The sign and absolute value of this threshold are selected according to the application.
[0056] A group of dependent UEs is also referred to herein as a "cluster of UEs associated with the 'Independent Quality of Experience (QoE)' grouping criterion," or simply as a "cluster." The concept of independent quality of experience stems from the fact that a group of UEs belonging to all different clusters is an independent group of UEs. In other words, given any group of UEs belonging to all different clusters, any change in the QoS performance of any data flow transmitted or received by the UEs in this group will not exceed a given threshold.
[0057] More specifically, according to an independent experience quality criterion, UEs belong to the same group if, when activated simultaneously, the performance of at least one dataflow of at least one of those UEs is reduced compared to the dataflow performance achieved when each of those UEs is activated sequentially and individually. Even for a set of UEs that all belong to different groups, their simultaneous activation does not reduce the dataflow performance of any of them compared to the dataflow performance achieved when each of the UEs in that set is activated individually.
[0058] The difference between the performance of at least one dataflow under simultaneous activation conditions and the performance of at least one dataflow under sequential activation conditions can be obtained as a result of a topological analysis of the wireless bridge and / or as a result of measuring dataflow performance. In the latter case, the difference between such measurements can be automatically compared to a predetermined absolute or relative non-zero threshold, making it clear whether such a difference corresponds to a performance degradation.
[0059] We will consider several examples of UE configurations where simultaneous packet transmission does not degrade data flow performance at each UE, and therefore demonstrate various types of multiplexing capabilities.
[0060] Figures 2A, 2B, 2C, and 2D illustrate four exemplary scenarios of the multiplexing status when integrating a 5G system (5GS) with a TSN network.
[0061] Figure 2A shows the arrangement of two UEs serviced by two different gNBs 101 and 102. Each UE is connected to its corresponding device-side (DS) ports 11 and 21. Radio access networks are typically designed so that large interference is not observed on the downlink or uplink of neighboring gNBs. This can be achieved, for example, by using different frequency bands, controlling the power of the gNBs and UEs, and / or using a combination of frequency / power control, known as inter-cell interference adjustment.
[0062] As a result, data transmission to any UE handled by the first gNB101 does not affect the performance of data transmission to any UE handled by the second gNB102. Such multiplexing capability belongs to frequency and spatial multiplexing, since the transmissions are isolated from each other due to the spatial configuration of the transmitter and receiver, and / or the orthogonality of the frequency band usage.
[0063] In this case, when distributing the UEs handled by the wireless bridge into multiple groups based on the determined multiplexing capability of the wireless bridge, for example, two clusters can be formed. One cluster is formed from all the UEs handled by the first gNB, and the other cluster is formed from all the UEs handled by the second gNB. More generally, in this case, if additional multiplexing capability of the wireless bridge is specified, three or more clusters can be formed. However, none of the formed clusters can include both UEs handled by the first gNB101 and UEs handled by the second gNB102.
[0064] Figure 2B shows the arrangement of two UEs within the coverage of the same gNB101. This gNB is equipped with multiple antennas and generates, for example, multiple beams 111, 112. Different multi-antenna techniques, such as beamforming as shown in Figure 2B, enable the orthogonalization of transmissions from several UEs in the multi-antenna spatial dimension. This means that the two UEs can use the same time-frequency resources without significant performance loss. Therefore, in this example, these two UEs can be distributed into two different groups of UEs.
[0065] In some cases, as shown in Figure 2C, particularly when the UEs are spatially close to each other, it is not possible to orthogonalize the UEs through the multi-antenna technique.
[0066] Figure 2C shows the following three UEs: -The first UE connected to the first DS port 11 is handled by the gNB 101 using the first antenna which generates the first beam 111. - The second UE connected to the second DS port 12 is handled by the gNB 101 using the first antenna which generates the first beam 111. - The third UE connected to the third DS port 21 is handled by the gNB 101 using the second antenna which generates the second beam 112.
[0067] The first and second UEs are considered to be spatially close to each other, and therefore the gNB communicates with both of these UEs by using the same antenna.
[0068] Assuming that the first and second UEs are not orthogonalized, a first group of UEs including the first and second UEs can be formed, and a second group of UEs including the third UE can be formed, according to the group definition shown above, based on the multi-antenna spatial orthogonality given by the multi-antenna technique used in the base station and UEs.
[0069] Figure 2D shows two UEs connected to different DS ports 11 and 21, under the coverage of the same gNB 101. One strategy for the gNB is to semi-statically allocate a given resource allocation to the active UE, regardless of the status of the active UE's traffic (i.e., before knowing whether packets are available for transmission). For example, semi-persistent scheduling can achieve such a result to guarantee QoS for guaranteed bitrate (GBR) traffic. As a result, their performance is independent regardless of the data traffic of each UE. In this case, the two UEs can be assigned to different clusters, according to the cluster definition shown above.
[0070] As shown in the examples in Figures 2A, 2B, 2C, and 2D, by analyzing the orthogonalization capabilities of placement and transmission associated with several UEs, it is possible to group UEs such that UEs belonging to the same group have competing access to radio resources (i.e., their performance affects each other when activated simultaneously), while any UE belonging to a different group is independent in terms of performance.
[0071] Typically, UEs (Ultima Electronic Devices) serviced by different base stations can belong to different clusters. Furthermore, UEs serviced by the same base station via different beams can also belong to different clusters.
[0072] There are various methods for evaluating the multiplexing capability of a wireless bridge to determine the cluster of UEs according to the "Independent Quality of Experience (QoE)" grouping criterion. In the context of this specification, applying the "Independent Quality of Experience (QoE)" grouping criterion means that the entities of the communication system make an objective assessment of whether the UEs affect each other's performance when activated simultaneously.
[0073] For example, for multiple data flows transmitted through a radio bridge using different data paths, it is possible to perform measurements related to the performance of each of these data flows. To do this, each gNB can perform radio measurements of radio bearers (downlink) transmitted to the UE and / or radio bearers (uplink) transmitted from the UE to the gNB. These measurements can be performed with respect to the multiplexing status at the base station, which may include spatial, frequency, and / or temporal dimensions. When such measurements are performed, clustering information is determined at the base station level.
[0074] Base stations can also determine their multiplexing capabilities based on their configuration and internal policies without requiring active data flow. In fact, base stations are aware of the multiplexing capabilities of the UEs they serve. These multiplexing capabilities depend on factors such as the beams used by the base station, the base station's scheduling policy, the carrier frequencies aggregated by the base station, the location of the UEs determined by the base station, or the slicing used by the base station. Base stations can initiate several further measurements to identify additional multiplexing capabilities of the RAN.
[0075] The multiplexing capability of wireless bridges is also, for example, - Known locations of base stations and UEs, - Known radio conditions between the base station and the UE, and / or - Known base station scheduling configurations, This can be determined from a topology analysis of the wireless bridge, including [specific details omitted].
[0076] {Aggregation of clustering / grouping information from multiple base stations} A node in the wireless system is selected as a collection node 305 that aggregates clustering information from multiple gNB nodes in the wireless access network.
[0077] Collection nodes can be nodes within a RAN (Range Area Network). The relative locations of base stations are an important criterion in selecting collection nodes. For example, a gNB located near all other gNBs is geographically central within the RAN. Collection nodes located in geographically central locations can generally minimize the communication delay associated with aggregating clustering information from all gNBs via wireless communication.
[0078] Alternatively, the collection node can be a node in the core network. Examples of core network nodes that can be selected as collection nodes include the following: The Data Acquisition Coordination and Delivery Function (DCCF) node as defined in section 6.2.24 of nplcit1, Specific signaling is added via the control interface N2 between the gNB and AMF, and an Access and Mobility Management (AMF) node can handle UE clustering information and update the UE context to associate the UE with a specific cluster. Universal Data Management (UDM) nodes, where the stored UE context is updated to include clustering information. The Management Data Analysis Function (MNDAF) node described in nplcit5, and An Operation Management and Maintenance (OAM) node that hosts clustering information and sends it to Network Data Analysis (NWDAF) nodes.
[0079] The collection node can trigger clustering information updates from multiple gNBs, as shown in Figure 3.
[0080] To do this, the collection node issues requests to several gNBs 101, 102 (401). These requests include a parameter indicated by UE_list, which provides a list of target UEs. The collection node is assumed to be aware of the bindings between the UEs and the gNBs providing services to them. The requests further include another parameter indicated by ClusterType, which defines the type of clustering being requested. Examples of cluster types are "Independent Experience Quality" (QoE), "Wireless Quality," or "Mobility Behavior." Depending on the requested cluster type, additional parameters may be provided. For example, the "Wireless Quality" cluster type may be associated with certain thresholds or bin values that more precisely define the criteria for clustering.
[0081] Each gNB responds to the received request. The response (402) from a given gNB includes a parameter indicated by Clusters. This parameter provides a list of clusters determined by the given gNB. Each cluster consists of a list of UEs identified in the list of target UEs provided in the request.
[0082] The collection node then processes the response to the request (403), for example, by aggregating it.
[0083] {Organization, integration, and presentation of clustering / grouping information} The presentation of clustering information may involve providing information related to the temporal changes in clustering, spatial validity, or any other statistics describing the long-term behavior of clusters.
[0084] The presentation of clustering information may also be accompanied by the provision of predictions related to the long-term behavior of clusters, cluster members, or cluster parameters.
[0085] For all these reasons, it is proposed that this clustering service be included as a novel analytical service provided by the Network Data Analysis Function (NWDAF) and / or Network Exposure Function (NEF). Both of these functions can be represented as a single network functional entity of the core network components of the 5G system.
[0086] The current Network Data Analysis Function (NWDAF) is described in Stage 3 3GPP technical specifications TS23.288 and 29.250.
[0087] NWDAF is part of the architecture specified in 3GPP Technical Specification 23.501 and uses the mechanisms and interfaces specified in this document for 5GC and OAM services (see in particular clause 6.2.3.1).
[0088] Figure 4 shows the service-based interface architecture of the NWDAF313.
[0089] NWDAF313 is - Data collection based on enrollment in events provided by AMF316, SMF318, PCF320, UDM314, AF308 (directly or via NEF312), and OAM324; - Retrieving information from the data repository (e.g., UDR via UDM314 to obtain subscriber-related information); - Retrieving information about NF (e.g., retrieving NF-related information from NSSF322 or NRF); - On-demand provision of consumer analytics; - Providing bulk data to consumers; It can be configured to interact with various entities for various purposes, such as those mentioned above.
[0090] A single or multiple instances of NWDAF can be deployed in PLMN. When multiple NWDAF instances are deployed, the architecture supports deploying NWDAF as a central network function (NF), as a collection of distributed network functions (NFs), or a combination of both. When multiple NWDAF instances are deployed, an NWDAF can act as an aggregation point (i.e., an aggregater NWDAF), collecting analytical information from other NWDAFs that may have different service areas, and potentially generating aggregated analytical information (per analytical ID) along with its own generated analytical information.
[0091] An important aspect disclosed herein is the enhancement of NWDAF / NEF using a novel service for presenting clustering information to the requester. An overall diagram of this novel service is provided in Figure 7 and will be discussed later. Throughout this specification, it is assumed that the presented clustering information is immediately available in NWDAF / NEF. Various exemplary embodiments discussed below with reference to Figures 5 and 6 detail possible methods for retrieving or determining clustering information in NWDAF / NEF, taking into account the presentation of clustering information to the requester.
[0092] {Cluster determination using collection nodes} The NWDAF itself can be selected as the collection node 305 shown in Figure 3. In such a case, clustering information is necessarily aggregated from gNB by the NWDAF. On the other hand, when the collection node 305 is different from the NWDAF, the collection node can be used to present clustering information to the NWDAF 313 through the request / response basic diagram shown in Figure 5.
[0093] NWDAF first provides the collection node with a cluster request including a list of UEs and grouping criteria (501).
[0094] The collection node then processes the above request (502) and determines or retrieves the UEs in the list, which have been re-divided into clusters formed according to the grouping criteria.
[0095] This re-partition is then provided to the NWDAF as a response message (503), where it is organized and consolidated (504).
[0096] Such signaling is novel to 3GPP technical specifications TS23.288 and 29.250 and could serve as a future extension to those specifications.
[0097] {Cluster determination using measurement} Another option as part of the clustering service in NWDAF / NEF is to provide statistics and predictions of clustering information organized and integrated by the preceding procedures using the Model Training Logical Function (MTLF) described in Section 5.1 of the 3GPP technical specification TS23.288.
[0098] In one option, when the requested cluster type refers to quality of service, NWDAF can directly determine the cluster by monitoring the quality of service (QoS) of the UEs provided in the UE_list input parameter list, which is provided by the application function and / or predicted by the NWDAF-MTLF function.
[0099] The signaling associated with this option is shown in Figure 6. In this case, NWDAF / NWDAF-MTLF issues a specific message, indicated as "Trigger_QoS," to the Session Management Function (SMF) which monitors the QoS of each UE in the UE list (601). The "Trigger_QoS" message contains a list of UE identifiers, where each UE identifier corresponds to a UE in the UE list.
[0100] The SMF then modifies the content of the "Trigger_QoS" message by translating the UE identifier to the PDU session identifier. The SMF then triggers QoS monitoring for these specific PDU sessions by issuing the modified "Trigger_QoS message" to the User Plane Function (UPF) (602).
[0101] The UPF can then provide the SMF with the requested QoS information associated with a particular PDU session in a response message called a "QoS response" (603). The SMF converts the PDU session identifier from the "QoS response" message back to the UE identifier.
[0102] Finally, the NWDAF or NEF can receive QoS information from the SMF along with the corresponding UE identifier (604) and use this information to build a cluster (605).
[0103] Various clustering algorithms can be applied to build clusters based on QoS information received from the SMF along with corresponding UE identifiers. An option for this purpose is to use an autoencoder AI engine. The general principle of using autoencoders is described in another patent document by the same applicant titled "Automatic TSN Model learning for 5G systems." Related advantages include the robustness and speed of clustering algorithms that do not require supervised learning.
[0104] {Service Overview} Next, the proposed new service is shown in Figure 7.
[0105] The application function 308 provides the NWDAF 313 with a list of UEs targeted by the application and the type of clustering requested (701). The NWDAF or NEF processes the cluster request (702) and, as a result, provides the application function (AF) with clustering information corresponding to the UE identifier (703). Optionally, the NWDAF may further update the clustering information, for example, periodically, and notify the AF of the updated clustering information through an update message (704).
[0106] UEs can be identified by their IP addresses, Ethernet addresses, or SUPIs (Subscription Permanent Identifiers). UE identifiers in the UE_list can also be external application identifiers, which can be converted to 5GS internal UE identifiers by the UDM internal node, as described in Section 5.9 of the 3GPP technical specification TS23.501. Communication between the AF and the UDM can be filtered by the Network Exposure Function (NEF) once the UE list corresponding to the AF list is determined.
[0107] Figure 8 serves as an overall overview of the exemplary embodiment described above.
[0108] As shown in Figure 8, the TSN-AF application function 308 communicates with the NWDAF 313 either directly or through the NEF 312 by sending a cluster service request that includes at least a grouping criterion and receiving a cluster service response that includes a list of clusters of UEs grouped according to the grouping criterion. The application function can then use the list of clusters to construct an abstraction of the 5GS, which is considered a bridge. In particular, when the grouping criterion relates to independent experience quality, the abstraction of the 5GS constructed by the TSN-AF can be used by the CNC to construct a TSN schedule that is optimized for the 5GS multiplexing capability.
[0109] Multiple options are available in NWDAF for determining the list of clusters according to grouping criteria.
[0110] For example, when determining grouping criteria requires information related to end-to-end service quality, QoS monitoring can be performed in UPF306, and AI-based cluster determination can be performed in NWDAF / NEF based on the acquired QoS monitoring values.
[0111] For example, when RAN level information is required to determine grouping criteria, NWDAF can correspond to a collection node 305 that has the task of collecting or aggregating RAN level information from multiple gNBs 101 and 102 of the RAN.
[0112] Figure 9 schematically represents a processing circuit 900 suitable for executing one or more of the algorithms described above. This processing circuit includes a memory 904 for storing a computer program containing the one or more algorithms described above. This processing circuit further includes a processor 902 for accessing the memory and executing the computer program. This processing circuit further includes a processor-controllable communication interface 906 for transmitting at least one or more topologies of the time-sensitive network model to centralized network configuration nodes in a communication system.
[0113] Of course, it doesn't matter whether the processor 902 uses a single core or multiple cores to run computer programs. Computer programs can also use cloud computing techniques, which allow them to run across processors with multiple processing circuits.
[0114] {List of citations} Depending on the purpose, the following non-patent literature may be cited. - nplcit1: 3GPP TS 23.501, System architecture for the 5G System (5GS); - nplcit2: 3GPP TS 23.288, Architecture enhancements for 5G System (5GS) to support network data analytics services; - nplcit3: 3GPP TS 29.520, 5G System; Network Data Analytics Services; Stage 3; - nplcit4: 3GPP TS 23.502, Procedures for the 5G System (5GS); - nplcit5: 3GPP TS 28.533, Management and orchestration; Architecture framework; and - nplcit6: 3GPP TR 23.734, Study on enhancement of 5G System (5GS) for vertical and Local Area Network (LAN) services.
Claims
1. A method for determining the subdivision of a set of user equipment handled by a wireless communication system, The wireless communication system comprises a core network component including a network function entity having a network data analysis function (NWDAF) and / or a network exposure function (NEF), and the method includes, in the network function entity, Obtaining grouping criteria from the requester, Providing the requester with a subdivision of at least a portion of the set of user equipment, wherein the subdivision is to subdivide at least a portion of the set of user equipment into groups of user equipment formed according to the grouping criteria, Methods that include...
2. The method according to claim 1, wherein the requesting party is an application function of the core network component of the time-sensitive network application function of a wireless bridge communication system.
3. The method according to claim 1 or 2, wherein the grouping criterion is associated with a list of user devices provided by the requester, and the subdivision provided to the requester relates to a filtered set of user devices obtained by filtering the set of user devices according to the list.
4. The aforementioned grouping criteria are: The independent experience quality provided in the user device by the wireless communication system, and / or The wireless quality of the communication channel between the user equipment and the wireless communication system, and / or The mobility behavior of the user device, The method according to claim 1 or 2, relating to the present invention.
5. The aforementioned wireless communication system further comprises a wireless access network, The aforementioned grouping criteria relate to the data flow performance through the wireless access network, The above method, in the network function entity, Inquiring with the wireless access network regarding clustering information related to the aforementioned grouping criteria, Obtaining the repartition determined based on the clustering information, The method according to claim 1 or 2, further comprising:
6. The wireless access network comprises multiple base stations, and the method is For each of the aforementioned base stations, the clustering information of the base station is determined, In the aforementioned wireless access network or core network component, the clustering information is aggregated from each of the base stations, It further includes, The method according to claim 5, wherein the subdivision is determined based on aggregated clustering information.
7. The aforementioned grouping criteria relate to the data flow performance through the wireless communication system, The method according to claim 1 or 2, wherein the network function entity, upon obtaining the grouping criteria, triggers a measurement related to the data flow performance in order to determine the repartition.
8. The aforementioned core network component includes user plane functionality, The method according to claim 7, wherein triggering the measurement related to the data flow performance includes requesting the user plane function to monitor quality of service performance, either on existing traffic or by initiating traffic injection.
9. The method according to claim 1 or 2, wherein the core network component triggers a measurement related to the grouping criterion in order to determine the subdivision.
10. A wireless communication system for handling a set of user equipment, The wireless communication system further comprises a core network component including a network function entity that includes a network data analysis function (NWDAF) and / or a network exposure function (NEF), and the network function entity is Obtaining grouping criteria from the requester, Providing the requester with a subdivision of at least a portion of the set of user equipment, wherein the subdivision is to subdivide at least a portion of the set of user equipment into groups of user equipment formed according to the grouping criteria, A wireless communication system configured to perform the following actions.
11. A computer program, which, when executed by a computer, includes an instruction causing the computer to perform the method according to claim 1 or 2.
Citation Information
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