Mobile device, access network node, and method
Location- and time-assisted cell reselection methods improve NTN cell reselection accuracy by excluding cells with insufficient serving time or distance, addressing signal strength variations and satellite-induced cell switching.
Patent Information
- Application Number
- JP2025111426
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-10-21
- Filing Date
- 2025-07-01
- Publication Date
- 2025-10-01
AI Technical Summary
NTN cells exhibit relatively small signal strength variations from the cell center to the cell edge, making signal strength-based cell reselection unreliable, and frequent cell switching due to satellite movement complicates UE reselection processes.
Implement location-assisted and time-assisted cell reselection techniques, where UEs exclude cells with insufficient remaining serving time or distance thresholds, and apply relaxation measurements based on UE mobility and location information.
Enhances cell reselection accuracy by distinguishing cell centers from edges and avoiding cells about to be switched off, improving network stability and reducing unnecessary measurements.
Smart Images

Figure 2025143369000001_ABST
Abstract
Description
[Technical Field]
[0001] This disclosure relates to wireless communication systems and devices thereof operating in accordance with 3rd Generation Partnership Project (3GPP®) standards, or equivalents or derivatives thereof. This disclosure is particularly, but not exclusively, related to improvements relating to mobility in so-called "5G" (or "next generation") systems that employ non-terrestrial portions comprising airborne or space-based network nodes. [Background technology]
[0002] Under 3GPP standards, a NodeB (or "eNB" in LTE and "gNB" in 5G) is a base station through which communication devices (user equipment or "UE") connect to the core network and communicate with other communication devices or remote servers. End-user communication devices are commonly referred to as user equipment (UE) and may comprise human-operated or automated devices. Such communication devices may be mobile communication devices, such as mobile phones, smartphones, smart watches, personal digital assistants, laptop / tablet computers, web browsers, e-book readers, connected vehicles, etc. Such mobile (or generally fixed) devices are typically operated by users (and therefore are often collectively referred to as user equipment "UE"), although Internet of Things (IoT) devices and similar Machine Type Communications (MTC) devices may also connect to the network. For simplicity, this application will use the term base station to refer to such base stations and the term mobile device or UE to refer to such communication devices.
[0003] The latest development in the 3GPP standards is the so-called "5G" or "New Radio" (NR) standard, which refers to an evolving communications technology that is expected to support a variety of applications and services, such as MTC, Internet of Things (IoT) / Industrial Internet of Things (IIoT) communications, vehicular communications and autonomous vehicles, high-definition video streaming, and smart city services. 3GPP intends to support 5G through the so-called 3GPP Next Generation (NextGen) Radio Access Network (RAN) / Radio Access Technology (RAT), and 3GPP NextGen core (NGC) network. Various details of 5G networks are described, for example, in Non-Patent Document 1.
[0004] 3GPP is also working on specifying integrated satellite and terrestrial network infrastructure in the context of 4G and 5G. The term Non-Terrestrial Networks (NTN) refers to a network or segment of a network that uses aircraft or spacecraft for transmission. Satellite refers to a spacecraft in Geostationary Earth Orbit (GEO) or Non-Geostationary Earth Orbit (NGEO), such as Low Earth Orbits (LEO), Medium Earth Orbits (MEO), and Highly Elliptical Orbits (HEO). Aircraft refers to Unmanned Aircraft Systems (UAS), such as High Altitude Platforms (HAPs), which encompass tethered UAS, lighter than air UAS, and heavier than air UAS, all of which typically operate in a quasi-stationary manner at altitudes between 8 and 50 km.
[0005] Non-Patent Document 2 is a study on new radios to support such non-terrestrial networks. This study includes, among other things, a description of NTN deployment scenarios and related system parameters (e.g., architecture, altitude, orbit, etc.), and adaptation of 3GPP channel models for non-terrestrial networks (e.g., propagation conditions, mobility, etc.). Non-Patent Document 3 provides further details on NTNs.
[0006] Non-terrestrial networks are - Helping to facilitate the deployment of 5G services in unserved or underserved areas to improve terrestrial network performance; - Enhancing service reliability by providing service continuity for user equipment or for mobile platforms (e.g. passenger vehicles - aircraft, ships, high-speed trains, buses); - To improve service availability everywhere, especially for critical communications, future rail, maritime and air communications; and It is expected to enable 5G network scalability by providing efficient multicast / broadcast resources for delivering data towards the network edge or directly to user equipment.
[0007] NTN Access is typically characterized by (among other things): NTN terminal: This may refer to a 3GPP UE if the satellite does not directly provide service to the 3GPP UE, or to a terminal specific to the satellite system. -Service link, which refers to the radio link between user equipment and a space / air platform (may be in addition to the radio link with the ground-based RAN). - Space or air platforms. - Gateways that connect satellite or aeronautical access networks to the core network ("NTN Gateways"). It will be appreciated that gateways are in most cases co-located with base stations. - Feeder link refers to the radio link between the gateway and the space / air platform.
[0008] A satellite or aircraft may generate several beams over a given area to provide each NTN cell, with the beams typically forming an elliptical footprint on the Earth's surface.
[0009] 3GPP - Earth-fixed cells (e.g. GEO satellites and HAPS) characterized by beams that always cover the same geographic area; - a quasi-Earth fixed cell (e.g., an NGEO satellite generating a steerable beam) characterized by a beam covering one geographic area for a finite period and a different geographic area for another period; - It is intended to support three types of NTN beams or cells: - Earth moving cells (e.g., NGEO satellites that generate fixed or non-steerable beams) characterized by beams that cover one geographic area at any given moment and a different geographic area at another moment;
[0010] For satellites or aircraft that maintain a fixed position in elevation / azimuth relative to a given Earth point, e.g., GEO and UAS, the beam footprint is fixed to the Earth.
[0011] For satellites that orbit the Earth in a circular fashion (e.g., LEO) or in an elliptical orbit around the Earth (e.g., HEO), the beam footprint may move around the Earth with the motion of the satellite or aircraft in its orbit. Alternatively, the beam footprint may be temporarily Earth-fixed (or quasi-Earth-fixed), in which case an appropriate beam-pointing mechanism (mechanical or electronic steering) may be used to compensate for the motion of the satellite or aircraft.
[0012] LEO satellites can have steerable beams, where the beams are temporarily directed to a substantially fixed footprint on the Earth. In other words, the beam footprints (representing NTN cells) remain stationary on the ground for a period of time before changing their focal area to another NTN cell (due to the satellite's orbital movement). From a cell coverage / UE perspective, cell changes occur periodically at discrete intervals, even when these beams serve the same terrestrial area (have the same footprint), due to the need to assign different physical cell identities (PCIs) and / or synchronization signal / physical broadcast channel (PBCH) blocks (SSBs) for each service link change. LEO satellites without steerable beams, like steerable beams, cause the beams (cells) to constantly move in a sweeping motion across the Earth as the satellite moves along its orbit, resulting in service link changes, and therefore cell changes, occurring periodically at discrete intervals. Similar to the service link change, the feeder link change also occurs at regular intervals due to the orbital movement of the satellite. Both the service link and the feeder link change may be performed between different base stations / gateways (sometimes referred to as an "inter-gNB radio link switch") or within the same base station / gateway (an "intra-gNB radio link switch").
[0013] In 3GPP systems, cell selection and reselection are facilitated by base stations broadcasting appropriate information (e.g., parameters / thresholds used and / or UE measurements performed) for calculating associated cell (re)selection criteria "S," based on which a UE may evaluate whether to select a particular cell to camp on (e.g., when the UE is operating in an RRC idle or inactive state). Similarly, such cell selection criteria S may be used when selecting a suitable handover cell (e.g., a neighboring cell). Cell selection criteria S includes a set of sub-criteria, including, for example, an "Srxlev" sub-criteria specifying a cell selection receiver (RX) level value (dB) and a "Squal" sub-criteria specifying a cell selection quality value (dB). For a given cell, cell selection criterion S is met when (for that cell) Srxlev>0 and Squal>0.
[0014] According to Non-Patent Document 4, if the Srxlev / Squal of the serving cell is higher than their configured thresholds, the UE may not need to measure intra-frequency and / or inter-frequency cells of equal or lower priority, however, the UE is always expected to measure inter-frequency cells of higher priority.
[0015] 3GPP TS 23.1106 / 01 / 03, 2013-06-1 ...
[0016] In the case of NR inter-frequency and inter-RAT cell reselection, as well as in the case of intra-frequency and equal priority inter-frequency cell reselection, some special criteria may apply. - For high priority inter-frequencies: always select a frequency if the cells on that frequency meet the relevant signal strength or quality threshold; In the intra-frequency and inter-frequency case with equal priority: perform cell reselection based on ranking (i.e., reselect to the best available cell with the same priority); and Low priority inter-frequency case: select a frequency only if the serving cell signal is worse than the relevant threshold and the cells on the frequency are better than the relevant threshold; As such, cell reselection to a higher priority RAT / frequency cell is prioritized over a lower priority RAT / frequency cell. [Prior art documents] [Non-patent literature]
[0017] [Non-Patent Document 1] “NGMN 5G White Paper” V1.0, Next Generation Mobile Networks (NGMN) Alliance,<https: / / www.ngmn.org / 5g-white-paper.html> [Non-patent document 2] 3GPP TR 38.811 V15.4.0 [Non-patent document 3] 3GPP TR 38.821 V16.1.0 [Non-patent document 4] 3GPP TS 38.304 v16.6.0 [Non-patent document 5] 3GPP TS 38.133 v16.9.0 [Non-patent document 6] 3GPP TS 38.300 V16.7.0 [Non-Patent Document 7] 3GPP TS 37.340 V16.7.0 Summary of the Invention [Problem to be solved by the invention]
[0018] The inventors have identified at least the following problems with current approaches when applied to cells of an NTN network: NTN cells are characterized by relatively small signal strength variations from the cell center to the cell edge compared to the signal strength variations of conventional non-NTN cells (see Figures 5A and 5B). Thus, signal strength-based cell reselection may not work well for NTN cells because it may be difficult for the UE to distinguish between the cell center and the cell edge based on signal strength and / or it may be difficult to find a suitable neighboring cell (for cell reselection purposes) with significantly better signal strength than the current cell because the difference between the two cells becomes relatively small as the UE approaches the edge of the candidate cell. In an NTN system, a given cell (e.g., cell A) may be switched off and another cell (e.g., cell B) may be switched on to replace it. The new cell (cell B) may not necessarily cover the same area as the cell being switched off (cell A). In this case, all UEs camped on the affected cell must reselect to another cell. Ideally, these UEs should avoid reselecting to the same cell (cell A) if that cell is about to disappear. Such cell switching off may occur due to satellite movement and / or any other reason, such as switching of service links and feeder links as shown in Figures 6A and 6B. Cells (e.g., NTN cells) may also be switched on / off to optimize cell capacity (in the terrestrial network). For example, a cell may be switched off due to relatively low traffic / low number of RRC connections in that cell (and may be switched on due to high traffic / load in the terrestrial network).
[0019] The present disclosure seeks to provide methods and associated apparatus that address, or at least mitigate, (at least some of) the problems discussed above. [Means for solving the problem]
[0020] In one aspect, the present disclosure provides a method performed by a user equipment (UE) configured to communicate over a network having a non-terrestrial network portion, the method including: performing measurements on at least one cell in a set of candidate cells; and performing cell selection based on results of the measurements and at least one of timing information and location information for the set of candidate cells, the method including excluding from the measurements or from the cell selection at least one candidate cell having an associated remaining serving time less than a first threshold; and excluding from the cell selection at least one candidate cell having an associated remaining serving time less than a first threshold from a current location of the UE. The method includes at least one of: excluding at least one candidate cell from the measurements or from the cell selection if the distance to the serving cell is less than a second threshold; applying relaxation measurements to at least one candidate cell if the distance from the UE's current location to the serving cell is less than a third threshold; applying relaxation measurements to at least one candidate cell if the UE's mobility is lower than a fourth threshold; and excluding at least one candidate cell from the measurements or from the cell selection if the distance from the UE's current location to the candidate cell is greater than a fifth threshold.
[0021] In one aspect, the present disclosure provides a method performed by a network node configured to communicate with a user equipment (UE) over a network having a non-terrestrial network portion, the method including providing configuration information to the UE, the configuration information being adapted to assist the UE in performing measurements on at least one cell in a set of candidate cells and performing cell selection based on results of the measurements and at least one of respective timing information and location information for the set of candidate cells, the configuration information being adapted to assist the UE in performing measurements on at least one cell in a set of candidate cells that has an associated remaining serving time less than a first threshold from the measurements or from the cell selection. The method includes at least one threshold for the UE to use at least one of: excluding candidate cells; excluding at least one candidate cell from its measurements or from its cell selection if the distance from the UE's current location to its serving cell is less than a second threshold; applying relaxation measurements to at least one candidate cell if the distance from the UE's current location to the serving cell is less than a third threshold; applying relaxation measurements to at least one candidate cell if the UE's mobility is lower than a fourth threshold; and excluding at least one candidate cell from its measurements or from its cell selection if the distance from the UE's current location to its candidate cell is greater than a fifth threshold.
[0022] In one aspect, the present disclosure provides a user equipment (UE) configured to communicate over a network comprising a non-terrestrial network portion, the UE comprising: means (e.g., a memory, a transceiver, and a processor) for performing measurements on at least one cell in a set of candidate cells; and means for performing cell selection based on results of the measurements and at least one of respective timing information and location information for the set of candidate cells, the UE excluding from the measurements or from its cell selection at least one candidate cell having an associated remaining serving time less than a first threshold; and means for selecting a candidate cell that is located near a current location of the UE. The UE is configured to perform at least one of the following: excluding at least one candidate cell from its measurements or from its cell selection if the distance to the serving cell is less than a second threshold; applying relaxation measurements to at least one candidate cell if the distance from the UE's current location to the serving cell is less than a third threshold; applying relaxation measurements to at least one candidate cell if the UE's mobility is lower than a fourth threshold; and excluding at least one candidate cell from its measurements or from its cell selection if the distance from the UE's current location to the candidate cell is greater than a fifth threshold.
[0023] In one aspect, the present disclosure provides a network node configured to communicate with a user equipment (UE) over a network comprising a non-terrestrial network portion, the network node including means (e.g., a memory, a transceiver, and a processor) for providing configuration information to the UE, the configuration information adapted to assist the UE in performing measurements on at least one cell in a set of candidate cells and performing cell selection based on results of the measurements and at least one of respective timing information and location information for the set of candidate cells, the configuration information including, from the measurements or from the cell selection, an associated remaining serving time less than a first threshold. The method includes at least one threshold for the UE to use at least one of: excluding at least one candidate cell; excluding at least one candidate cell from its measurements or from its cell selection if the distance from the UE's current location to its serving cell is less than a second threshold; applying mitigation measurements to at least one candidate cell if the distance from the UE's current location to the serving cell is less than a third threshold; applying mitigation measurements to at least one candidate cell if the UE's mobility is lower than a fourth threshold; and excluding at least one candidate cell from its measurements or from its cell selection if the distance from the UE's current location to its candidate cell is greater than a fifth threshold.
[0024] Aspects of the present disclosure extend to corresponding systems, apparatus, and computer program products, such as computer-readable storage media having instructions stored thereon, operable to program a programmable processor to perform the methods described above or in the claimed aspects and possibilities, and / or to program a computer suitably adapted to provide an apparatus as described in any of the claims.
[0025] Each feature disclosed in this specification (which term includes claims) and / or shown in the drawings may be incorporated into the disclosure independently (or in combination) with any other disclosed and / or shown feature. In particular, but not limited to, any feature of a claim depending from a particular independent claim may be introduced into that independent claim in any combination or individually. [Brief explanation of the drawings]
[0026] Embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings, in which: [Figure 1] 1 is a schematic diagram of a mobile (cellular or wireless) telecommunications system in which embodiments of the present disclosure may be applied; [Figure 2] 2 is a schematic block diagram of a mobile device forming part of the system shown in FIG. 1; [Figure 3] FIG. 2 is a schematic block diagram of an NTN node (e.g., a satellite / UAS platform) forming part of the system shown in FIG. [Figure 4] 2 is a schematic block diagram of an access network node (eg, a base station) forming part of the system shown in FIG. 1; [Figure 5A] 1A-1C are schematic diagrams of some example scenarios to which the present disclosure may be applied. [Figure 5B] 1A-1C are schematic diagrams of some example scenarios to which the present disclosure may be applied. [Figure 6A] 1A-1C are schematic diagrams of some example scenarios to which the present disclosure may be applied. [Figure 6B] 1A-1C are schematic diagrams of some example scenarios to which the present disclosure may be applied. [Figure 7] 2 is a schematic diagram of some exemplary architectural options for providing NTN functionality in the system shown in FIG. 1. DETAILED DESCRIPTION OF THE INVENTION
[0027] overview FIG. 1 is a schematic diagram of a mobile (cellular or wireless) telecommunications system 1 in which embodiments of the present disclosure may be applied.
[0028] In this system 1, users of mobile devices 3 (UE) may communicate with each other and other users via access network nodes, respectively satellites 5 and / or base stations 6, and a data network 7, using an appropriate 3GPP radio access technology (RAT), such as Evolved Universal Terrestrial Radio Access (E-UTRA) and / or 5G RAT. Those skilled in the art will appreciate that while two mobile devices 3, one satellite 5, and one base station 6 are shown in FIG. 1 for illustrative purposes, when implemented, the system will typically include other satellite / UAS platforms, base stations / RAN nodes, and mobile devices (UE).
[0029] It will be appreciated that several base stations 6 form a (Radio) Access Network or (R)AN, and several NTN nodes 5 (satellite and / or UAS platforms) form a Non-Terrestrial Network (NTN). Each NTN node 5 is connected to an appropriate gateway (in this case co-located with the base station 6) using a so-called feeder link, and is connected to a respective UE 3 via a corresponding service link. Thus, when served by an NTN node 5, a mobile device 3 communicates data to and from a base station 6 via the NTN node 5 using the appropriate service link (between the mobile device 3 and the NTN node 5) and the feeder link (between the NTN node 5 and the gateway / base station 6). In other words, the NTN forms part of the (R)AN, but may provide satellite communication services independently of E-UTRA (or "4G") and / or New Radio (or "5G") communication services.
[0030] Although not shown in Figure 1, adjacent base stations 6 are connected to each other via appropriate inter-base station interfaces (e.g., so-called "X2" interfaces, "Xn" interfaces, etc.) The base stations 6 are also connected to data network nodes via appropriate interfaces (e.g., so-called "S1", "NG-C", "NG-U" interfaces, etc.).
[0031] The data (or core) network 7 (e.g., EPC in the case of LTE, NGC in the case of NR / 5G) typically includes logical nodes (or “functions”) for supporting communications in the telecommunications system 1, as well as for subscriber management, mobility management, charging, security, and call / session management (among other things). For example, the data network 7 in a “next generation” / 5G system includes user plane and control plane entities, such as one or more control plane functions (CPF) and one or more user plane functions (UPF). The so-called Access and Mobility Management Function (AMF) in 5G, or Mobility Management Entity (MME) in 4G, is responsible for handling connectivity and mobility management tasks for mobile devices 3. The data network 7 may also be coupled to other data networks, such as the Internet or similar Internet Protocol (IP)-based networks (not shown in FIG. 1 ).
[0032] Each NTN node 5 controls several directional beams that may serve an associated NTN cell. Specifically, each beam has an associated footprint on the Earth's surface that corresponds to the NTN cell. Each NTN cell (beam) has an associated Physical Cell Identity (PCI) and / or beam identification. The beam footprint may move as the NTN node 5 moves along its orbit. Alternatively, the beam footprint may be fixed to the Earth, in which case an appropriate beam pointing mechanism (mechanical or electronic steering) may be used to compensate for the movement of the NTN node 5.
[0033] When a UE 3 first establishes an RRC connection with a base station 6 via a cell, it registers with the appropriate AMF 9 (or MME). The UE 3 is in the so-called RRC connected state, and the associated UE context is maintained by the network. When the UE 3 is served via an NTN node 5, it sends and receives data via one of the beams (NTN cells) of the NTN node 5. When the UE 3 is in the so-called RRC idle or RRC inactive state, it needs to select an appropriate cell to camp on, so that the network knows the approximate location (not necessarily at cell level) of the UE 3.
[0034] Over time, as the UE 3 moves and / or the serving NTN node 5 moves, the UE 3 switches from cell to cell (beam to beam) using appropriate mobility procedures. To do so, the base station 6 provides the UE 3 with appropriate configuration data and / or assistance information, based on which the UE 3 can decide which cells to use, which cells to measure, and when to switch from any cell to another.
[0035] When UE3 performs cell reselection between NTN cells, its behavior may differ from its cell reselection behavior for non-NTN (terrestrial) cells.
[0036] Specifically, to address the relatively low signal strength variation from the cell center to the cell edge of an NTN cell, the UE 3 is configured to use location-assisted cell reselection techniques, which beneficially enable the UE 3 to distinguish between the cell center and the cell edge and / or determine when it is approaching a suitable neighboring cell for cell reselection (even if the neighboring cell's signal strength is not better than that of the current cell).
[0037] To address the issue of switching off NTN cells (e.g., depending on system load), the UE 3 is configured to use a time-assisted cell reselection technique. This may allow the UE 3 to avoid reselecting to a cell that is about to be switched off or replaced by another cell. It will be appreciated that the location-assisted and time-assisted cell reselection techniques may be used together, if appropriate. Some UEs 3 (or types of UEs) may be configured to use the location-assisted cell reselection technique, some UEs may be configured to use the time-assisted cell reselection technique, and some UEs may be configured to use both techniques.
[0038] More specifically, to support cell reselection operations, the following four options may be configured for a particular UE 3 (or group of UEs):
[0039] Option 1: The UE 3 may be configured to exclude from cell reselection neighbor cells that have a remaining serving time below an associated threshold. Option 2: The UE 3 may be configured to not perform measurements on intra-frequency and inter-frequency cells (at least cells with a priority lower than or equal to that of the current cell) if the UE's distance to the serving cell is less than the relevant threshold (i.e., if the UE is relatively close to the cell center or reference point of the current serving cell). Alternative 3: The UE 3 may be configured to apply mitigation measurements if the distance to the UE's serving cell is less than an associated threshold (which may be the same threshold as alternative 2 or a different threshold), and / or if the UE is determined to be a low mobility UE based on the associated threshold; and Option 4: The UE 3 may be configured to exclude from cell reselection neighboring cells whose distance from the UE's current location is greater than an associated threshold (i.e., when the UE is relatively far from the edge, center, or appropriate reference point of that neighboring cell).
[0040] Typically, these thresholds are configured via broadcasted system information and apply to all UEs 3 camped on the corresponding cell (unless the threshold is associated with a particular UE class / type, in which case the threshold applies only to those UEs). It will be appreciated that these thresholds (at least one threshold) may apply to a particular UE class / type (e.g., IoT UEs or energy-saving UEs rather than all UEs), and that different thresholds (if any) may be defined for different UE classes / types. The thresholds may be factory-configured per UE (e.g., depending on its class / type and / or network operator). If necessary, the thresholds may be (re)configured via dedicated signaling (e.g., RRC signaling using one or more appropriate information elements).
[0041] User Equipment (UE) FIG. 2 is a block diagram illustrating the main components of the mobile device (UE) 3 shown in FIG. 1. As shown, the UE 3 includes transceiver circuitry 31 operable to transmit signals to and receive signals from connected nodes via one or more antennas 33. While not necessarily shown in FIG. 2, the UE 3 naturally has all the usual functionality of a conventional mobile device (e.g., a user interface 35), which may be provided by any one or any combination of hardware, software, and firmware, as appropriate. A controller 37 controls the operation of the UE 3 in accordance with software stored in memory 39. The software may be pre-installed in memory 39 and / or downloaded, for example, via the telecommunications network 1 or from a removable data storage device (RMD). The software includes, among other things, an operating system 41, a communication control module 43, a mobility module 44, and a positioning module 45 (optional for some UEs).
[0042] The communication control module 43 is responsible for handling (generating / sending / receiving) signaling messages and uplink / downlink data packets between the UE 3 and other nodes, including the NTN node 5, the (R)AN node 6, and core network nodes. The signaling may comprise control signaling (such as RRC signaling) related to configuring and assisting cell reselection by the UE 3.
[0043] The mobility module 44 is responsible for controlling mobility procedures of the UE 3 (RRC connected, RRC idle, and RRC inactive states) based on appropriate assistance information (e.g., configurations / parameters) from the network, such as time and / or location thresholds. Mobility procedures include, for example, (initial) cell selection, cell reselection, handover, providing location updates to the network, state transitions (e.g., changing cells), etc.
[0044] If present, the positioning module 45 is responsible for determining the location of the UE 3, for example based on Global Navigation Satellite System (GNSS) signals.
[0045] NTN Node (Satellite / UAS Platform) FIG. 3 is a block diagram illustrating the main components of the NTN node 5 (satellite or UAS platform) shown in FIG. 1. As shown, the NTN node 5 includes transceiver circuitry 51 operable to transmit signals to and receive signals from connected UEs 3 and (directly or indirectly) to and receive signals from other network nodes, such as gateways and base stations, via one or more antennas 53. A controller 57 controls the operation of the NTN node 5 in accordance with software stored in memory 59. The software may be pre-installed in memory 59 and / or downloaded, for example, via the telecommunications network 1 or from a removable data storage device (RMD). The software includes, among other things, an operating system 61, a communications control module 63, and a mobility control module 64.
[0046] The communication control module 63 is responsible for handling (generating / sending / receiving / relaying) signaling between the NTN node 5 and other nodes such as the UE 3, base stations 6, gateways, and core network nodes (via base stations / gateways). The signaling may comprise control signaling (such as radio resource control (RRC) signaling) related to configuring and assisting cell reselection by the UE 3.
[0047] The mobility control module 64 is responsible for controlling the mobility procedures (RRC connected, RRC idle, and RRC inactive states) of the UE 3 by sending appropriate aiding information (e.g., configurations / parameters), such as time and / or location thresholds, to the UE 3. The aiding information / thresholds may be provided by the gateway 6 to which the NTN node 5 is connected. Mobility procedures include, for example, (initial) cell selection, cell reselection, handover, providing location updates to the network, state transitions (e.g., changing cells), etc.
[0048] Base station / gateway (access network node) FIG. 4 is a block diagram illustrating the main components of the gateway 6 (a base station (gNB), or similar access network node) shown in FIG. 1 . As shown, the gateway / gNB 6 includes transceiver circuitry 71 operable to transmit signals to and receive signals from connected UEs 3 via one or more antennas 73, and to transmit signals to and receive signals from other network nodes (directly or indirectly) via a network interface 75. Signals may be transmitted to and received from UEs 3 directly and / or via NTN nodes 5, as appropriate. The network interface 75 typically includes an appropriate base station-to-base station interface (e.g., X2 / Xn) and an appropriate base station-to-core network interface (e.g., S1 / NG-C / NG-U). A controller 77 controls the operation of the base station 6 in accordance with software stored in memory 79. The software may be pre-installed in memory 79 and / or downloaded, for example, via the telecommunications network 1 or from a removable data storage device (RMD). The software includes, among other things, an operating system 81, a communications control module 83, and a mobility control module 84.
[0049] The communication control module 83 is responsible for handling (generating / sending / receiving) signaling between the base station 6 and other nodes such as the UE 3, the NTN node 5, and the core network nodes. The signaling may comprise control signaling (such as RRC signaling) related to configuring and assisting cell reselection by the UE 3.
[0050] The mobility control module 84 is responsible for controlling the mobility procedures (RRC connected, RRC idle, and RRC inactive states) of the UE 3 by providing appropriate assistance information (e.g., configurations / parameters), such as time and / or location thresholds, to the UE 3. Mobility procedures include, for example, (initial) cell selection, cell reselection, handover, providing location updates to the network, state transitions (e.g., changing cells), etc.
[0051] detail The following is a description of some example cell (re)selection procedures that may be implemented by the nodes of the system shown in Figure 1. The procedures may be particularly useful in the example scenarios shown in Figures 5A, 5B, 6A and 6B.
[0052] If the Srxlev / Squal of the serving cell is higher than a configured threshold, the UE may be configured to not measure intra-frequency and / or inter-frequency cells of equal or lower priority, however, the UE always measures inter-frequency cells of higher priority. More specifically, section 5.2.4.2 of 3GPP TS 26.240 describes the following measurement rules for cell reselection, which are used by the UE to limit the measurements required: -Serving cell is Srxlev>S IntraSearchP and Squal>S IntraSearchQ If , the UE may be selected not to perform intra-frequency measurements. The "Srxlev" cell selection subcriterion specifies the cell selection receiver (RX) level value (in dB), and the "Squal" cell selection subcriterion specifies the cell selection quality value (in dB). S IntraSearchPis the power threshold associated with the Srxlev subcriterion of the serving cell for performing intra-frequency measurements, and S IntraSearchQ is the quality threshold associated with the Squal sub-criterion of the serving cell for performing intra-frequency measurements. - Otherwise (i.e., the serving cell is Srxlev>S IntraSearchP and Squal>S IntraSearchQ If one or both of the above conditions are not met, the UE shall perform intra-frequency measurements. For NR inter-frequency and inter-RAT frequencies indicated in the system information and having the priority defined in section 5.2.4.1 of TS 365, the UE shall apply the following rules: For NR inter-frequency or inter-RAT frequencies with a higher reselection priority than the reselection priority of the current NR frequency, the UE shall perform measurements on the higher priority NR inter-frequency or inter-RAT frequency in accordance with TS 36544-10. In the case of an inter-NR frequency having a reselection priority equal to or lower than the reselection priority of the current NR frequency, and in the case of an inter-RAT frequency having a reselection priority lower than the reselection priority of the current NR frequency, -Serving cell is Srxlev>S nonIntraSearchP and Squal>S nonIntraSearchQ If the following condition is satisfied, the UE may choose not to perform measurements on NR inter-frequency cells of equal or lower priority, or on inter-RAT frequency cells of lower priority; Otherwise, i.e., the serving cell is IntraSearchP and Squal>S IntraSearchQ If at least one of the above conditions is not met, the UE shall perform measurements on NR inter-frequency cells of equal or lower priority, or on inter-RAT frequency cells of lower priority in accordance with 3GPP TS 36.21. If the UE supports relaxation measurements and the information element (IE) relaxation measurements is present in system information block type 2 (SIB2), the UE may further relax the required measurements as specified in section 5.2.4.9 of 3GPP TS 36.410.
[0053] In this system, the UE 3 may be configured to use a location-assisted cell reselection technique, which may be used in NTN cells where signal strength variation from the cell center to the cell edge is relatively low. Alternatively or additionally, the UE 3 may also be configured to use a time-assisted cell reselection technique, which may be used in NTN cells that may be switched on and off (e.g., depending on system load).
[0054] It will be appreciated that some UEs 3 (or some types / classes of UEs) may be configured to use location-assisted cell reselection techniques, some UEs may be configured to use time-assisted cell reselection techniques, and some UEs may be configured to use both location-assisted and time-assisted cell reselection techniques.
[0055] Time-Aided Cell Reselection Regarding time-assisted (or time-based) cell reselection, based on the latest agreement in 3GPP, the following assumptions apply: For quasi-earth fixed cells, timing information about when the cell will stop serving an area in an earth fixed scenario is broadcast to the UE via system information. Typically, quasi-earth fixed cells are served via NGEO satellites using steerable beams, as in this case the beam covers one geographic area (i.e., the quasi-earth fixed cell) for a finite period of time and a different geographic area for another period of time. For quasi-terrestrial fixed cells, the timing information about when the cell will stop serving the area refers to when the cell no longer covers the current area. The timing information is broadcast within the cell. In case of a quasi-terrestrial fixed cell, the UE 3 starts measuring its neighboring cells (which are candidates for cell selection) before the serving cell's outage time indicated via the timing information. In other words, the UE 3 tries to complete measurements and cell reselection before the serving cell stops covering the current area in order to avoid going out of coverage.
[0056] Below is a description of an example way ("Option 1") in which neighbor cell timing information (e.g., cell outage times) may be used to assist cell reselection by UE3.
[0057] Option 1 The UE 3 may be configured to exclude from cell reselection neighboring cells that have a remaining serving time below an associated threshold.
[0058] Timing information about when a particular neighboring cell will stop serving an area is broadcast to UEs 3 via system information. This information may be broadcast for at least some NTN cells, such as quasi-terrestrial fixed cells. This information may be obtained via OAM configuration and / or shared with neighboring base stations 6 via their inter-base station interfaces. A time threshold (also referred to as the "first threshold" or "first exclusion threshold") may be configured via system information.
[0059] A UE 3 in idle or inactive state may read system information and perform measurements and cell reselection by taking into account any timing information and any other applicable configurations.
[0060] Specifically, in this case, the UE 3 is configured to exclude any cell from measurement if the remaining serving time of that cell (the time until the cell stops serving the current area) is less than the time threshold associated with that cell. In other words, even if a particular cell is the best cell in frequency, the UE 3 will not measure that cell (or ignore the associated measurement results) and will not reselect that cell if the timing information indicates that the cell will stop serving the current area relatively soon.
[0061] Location-assisted cell reselection Regarding location-assisted (or location-based) cell reselection, based on the latest agreement in 3GPP, the following assumptions apply: For quasi-earth fixed cells, the reference position of the cell (serving cell or neighbor cell) is broadcast in the system information. The reference position is defined as the cell center (although any other suitable reference position may be used if necessary). If the UE 3 has valid (recent or current) location information, location-assisted cell reselection based on the distance between the UE 3 and the reference position of the cell (serving cell and / or neighbor cell) is supported for quasi-terrestrial fixed cells. It will be appreciated that position acquisition is not triggered at the UE side just for location-assisted cell reselection (although this may be possible in some cases).
[0062] The following describes some example ways (called "Option 2" through "Option 4") in which location information may be used to assist cell reselection by UE 3. Location information may be applicable to the distance between UE 3 and the reference position of its serving cell and / or the distance between UE 3 and the reference positions of neighboring cells (i.e., candidates for cell selection).
[0063] Option 2 If the UE's distance to the serving cell is less than a relevant threshold (i.e., if the UE is relatively close to the cell center or reference point of the current serving cell), the UE 3 may be configured to not perform measurements on certain neighboring frequencies / cells, such as intra-frequency and inter-frequency cells (at least cells with a lower or equal priority than that of the current cell). If the UE 3 performs measurements on such cells, the UE 3 may be configured to exclude or ignore these measurements in its cell reselection process.
[0064] More specifically, the reference position of the serving cell (e.g., a terrestrial cell center) or information related to the reference position of the serving cell (e.g., ephemeris information) is broadcast / transmitted to the UE 3, for example, via system information. This information may be broadcast for at least some NTN cells, such as quasi-terrestrial fixed cells, and this information may be shared between neighboring base stations. The base station 6 may configure at least one distance threshold (e.g., a "second threshold" or a "first exclusion threshold") associated with the serving cell to assist the UE 3 in determining when to stop / trigger measurements of neighboring cells on a particular frequency or type of neighboring cell. It will be understood that different associated second thresholds may be configured for different neighboring cells, different frequencies, and / or different cell types.
[0065] Option 2-1: A single distance threshold applicable to all neighboring cells.
[0066] Option 2-2: Multiple distance thresholds, in this case: One distance threshold may be applicable per frequency, or One distance threshold may be applicable to inter-frequency cells (with equal or lower priority) and another distance threshold may be applicable to intra-frequency cells, or One distance threshold may be applicable to each neighbor cell type, e.g., TN neighbor frequency / cell, GEO neighbor frequency / cell, LEO neighbor frequency / cell, etc.
[0067] If the UE 3 has valid location information, it calculates the distance to the reference position of the serving cell before proceeding to perform measurements related to cell reselection. If the distance from the UE's location to the serving cell reference position is less than the configured second threshold, the UE 3 does not perform measurements on the corresponding neighboring frequencies, cells, or cell types (however, the UE 3 may still perform measurements on other cells to which different or no thresholds apply). If the distance from the UE's location to the serving cell reference position is greater than (or at least equal to) the configured second threshold, the UE 3 performs measurements on the corresponding neighboring frequencies / cells / types and proceeds to perform cell reselection based on the results of these measurements.
[0068] Option 3 UE3 is The distance of the UE to the serving cell is less than the relevant threshold for the cell edge (i.e., the threshold for determining whether the UE 3 is at the cell edge), and The speed of the UE is lower than a relevant threshold or the change in the position of the UE is less than a relevant threshold (i.e., the threshold for determining low mobility); may be configured to apply relaxation measurements if at least one of the following conditions is met:
[0069] Mitigation measurements for intra-frequency cells, inter-frequency cells, and inter-RAT frequency cells are performed in accordance with the mitigation methods in sections 4.2.2.9, 4.2.2.10, and 4.2.2.11 of Non-Patent Document 5.
[0070] The base station 6 may broadcast parameters related to location-assisted cell reselection by the UE 3. These parameters may be applicable to at least a UE 3 that is not located at or near the edge of the serving cell. To assist the UE 3 in determining whether it is located at a cell edge, the base station 6 broadcasts (or provides) an associated distance threshold (e.g., a "third threshold" or a "first relaxed threshold").
[0071] If the UE 3 has valid location information, it may calculate the distance to the reference position of the serving cell. If the distance to the serving cell reference position is less than a configured (third) threshold, the UE 3 may apply mitigation measurements for all or some neighboring frequencies / cells / cell types.
[0072] The base station 6 may also broadcast parameters related to location-assisted cell reselection by low-mobility UEs 3. Specifically, the parameters may include at least one of a speed threshold or a location change threshold (e.g., a "fourth threshold" or a "first mitigation threshold") within a configured time window. Thus, in this case, the fourth threshold may be used to determine low mobility and may be provided in the form of a speed threshold or a location change threshold.
[0073] If the UE 3 has valid position information for itself, it may calculate its velocity, or (rate of) position change, within a configured time window.
[0074] If the UE's speed is below a configured speed threshold, or if the UE's position change is below a position change threshold (within a configured time window), the UE3 applies relaxation measurements to all or some neighboring frequencies / cells / cell types.
[0075] In summary, the UE3 applies mitigation measurements by taking into account at least one threshold associated with the serving cell, where the at least one threshold may include at least one of a distance threshold, a velocity threshold, and a location change threshold.
[0076] Option 4 The UE3 may be configured to exclude from cell reselection neighboring cells whose distance from the UE's current location is greater than an associated threshold (i.e., when the UE is relatively far from the edge, center, or appropriate reference point of that neighboring cell).
[0077] More particularly, the base station 6 may broadcast the ephemeris information of neighboring cells and / or information identifying respective reference positions associated with the neighboring cells.
[0078] The base station 6 may also broadcast an appropriate distance threshold (also referred to as the "fifth threshold" or "second exclusion threshold") associated with a particular neighboring cell (or group of cells). The base station 6 may broadcast multiple distance thresholds for each neighboring cell or each type of neighboring cell, e.g., a distance threshold for each satellite type (GEO, MEO, LEO, non-satellite, etc.). Alternatively, a fifth threshold may be provided per neighboring cell or frequency.
[0079] The UE 3 may calculate the distance to any indicated / detected neighboring cell based on its current location and a reference location associated with the neighboring cell. If the distance to a particular neighboring cell is greater than a corresponding distance threshold, the UE 3 will not reselect that cell. In other words, the UE 3 may be configured to exclude one or more neighboring cells or frequencies from cell reselection based on an associated fifth threshold.
[0080] Modifications and Substitutions Detailed embodiments have been described above. Those skilled in the art will appreciate that several modifications and alternatives may be made to the above embodiments while still benefiting from the disclosure embodied therein. By way of example, only some of these alternatives and modifications are described herein.
[0081] It will be understood that the above-mentioned thresholds apply to a specific UE class / type (e.g., IoT UEs or energy-saving UEs rather than all UEs), and that different thresholds may be defined for different UE classes / types. The thresholds may be (re)configured via dedicated signaling. The dedicated signaling may comprise appropriately formatted RRC signaling (e.g., an RRC Connection Reconfiguration message, etc.) including one or more information elements. The one or more information elements may include information identifying at least one threshold and / or information identifying at least one UE category (e.g., UE class / type). However, the thresholds (or default values) may be factory-configured for each UE (e.g., depending on its class / type and / or network operator). It will be understood that different thresholds (or different sets of thresholds) may be configured for different types of satellites (GEO, MEO, LEO, etc.).
[0082] [Table 1]
[0083] Although the above example procedures are described in the context of cell reselection (in RRC idle or RRC inactive state), it will be appreciated that the same approach may be applied to other types of mobility procedures, such as (initial) cell selection, cell measurement / selection for handover, etc. It will be appreciated that similar time and / or location thresholds may be used for other types of procedures, such as cell measurement or cell selection for carrier aggregation / dual connectivity / auxiliary uplink.
[0084] Base stations in 5G / NR communication systems are commonly referred to as New Radio Base Stations ("NR-BS"), or "gNBs," although it will be understood that they may also be referred to using the term "eNB" (or 5G / NR eNB), which is typically associated with Long Term Evolution (LTE) base stations (also commonly referred to as "4G" base stations). 3GPP TS 25.110 and 25.111 define, among other things, the following nodes: gNB: A node that provides NR user plane and control plane protocol termination towards the UE and is connected to the 5G core network (5GC) via the NG interface. ng-eNB: A node that provides E-UTRA user plane and control plane protocol termination towards the UE and is connected to the 5GC via the NG interface. En-gNB: A node that provides NR user plane and control plane protocol termination towards the UE and acts as a secondary node in E-UTRA-NR dual connectivity (EN-DC). NG-RAN node: Either a gNB or a ng-eNB.
[0085] It will be understood that the above embodiments may be applied to both the 5G New Radio System and the LTE system (E-UTRAN). A base station (gateway) supporting the E-UTRA / 4G protocol may be referred to as an "eNB," and a base station supporting the Next Generation / 5G protocol may be referred to as a "gNB." It will be understood that some base stations may be configured to support both 4G and 5G protocols, and / or any other 3GPP or non-3GPP communication protocol.
[0086] It will be appreciated that there are various architectural options for implementing an NTN in a 5G system, some of which are illustrated schematically in FIG. 7. The first option shown is an NTN featuring a satellite / aeronautical-based access network serving UEs with bent-pipe payloads and terrestrial gNBs (at the satellite hub or gateway level). The second option is an NTN featuring a satellite / aeronautical-based access network serving UEs with gNBs. The third option is an NTN featuring a satellite / aeronautical-based access network serving relay nodes with bent-pipe payloads. The fourth option is an NTN featuring a satellite / aeronautical-based access network serving relay nodes with gNBs. It will be appreciated that other architectural options may also be used, such as a combination of two or more of the above options. Alternatively, the relay node may comprise a satellite / UAS. It will be appreciated that similar architectural options may be used in a 4G / LTE system, but with an eNB instead of the gNB, an EPC instead of the NGC, and an appropriate LTE interface instead of the NG interface shown in FIG. 7.
[0087] Each cell has an associated "NR Cell Global Identifier" (NCGI) to globally identify the cell. The NCGI consists of the Public Land Mobile Network (PLMN) identity (PLMN ID) to which the cell belongs and the NR Cell Identity (NCI) of the cell. The PLMN ID included in the NCGI is the first PLMN ID in the set of PLMN IDs associated with the NR Cell Identity in System Information Block Type 1 (SIB1). The "gNB Identifier" (gNB ID) is used to identify a specific gNB within a PLMN. The gNB ID is included in the NCI of that cell. The "Global gNB ID" is used to globally identify a gNB and is constructed from the PLMN identity to which the gNB belongs and the gNB ID. The Mobile Country Code (MCC) and Mobile Network Code (MNC) are the same as those included in the NCGI.
[0088] In the above description, for ease of understanding, the UE, NTN node (satellite / UAS platform), and access network node (base station) are described as having several separate modules (e.g., communications control module). While these modules may be provided in this manner for specific applications, such as when an existing system is modified to implement the present disclosure, in other applications, such as systems designed from the beginning with the features of the present invention in mind, these modules may not be identifiable as separate entities because they may be incorporated into an overall operating system or code. These modules may be implemented in software, hardware, firmware, or a combination thereof.
[0089] Each control unit may comprise any suitable form of processing circuitry including, for example (but not limited to), one or more hardware-implemented computer processors, microprocessors, central processing units (CPUs), arithmetic logical units (ALUs), input / output (IO) circuitry, internal memory / cache (program and / or data), processing registers, communication buses (e.g., control buses, data buses and / or address buses), direct memory access (DMA) functions, hardware or software-implemented counters, pointers and / or timers, etc.
[0090] In the above embodiments, several software modules have been described. Those skilled in the art will understand that the software modules may be provided in compiled or uncompiled form, or may be supplied to the UE, NTN node, and access network node (base station) as a signal via a computer network or a recording medium. Furthermore, the functions performed by some or all of this software may be implemented using one or more dedicated hardware circuits. However, the use of software modules is preferred because it facilitates the updating of the UE, NTN node, and access network node (base station) to update their functions.
[0091] The above embodiments are also applicable to "non-mobile" or generally fixed user equipment. The mobile devices (UEs) mentioned above may comprise MTC / IoT devices, power-saving UEs, etc.
[0092] The method performed by the UE may include obtaining, for the corresponding candidate cells, their respective timing information (eg, from system information of the serving cell).
[0093] The method implemented by the UE may include obtaining configuration information for the set of at least one candidate cell, including information identifying a respective location associated with the given candidate cell.
[0094] The method performed by the UE may include obtaining at least a portion of its configuration information via system information or via dedicated signaling (e.g., RRC signaling including at least one information element).
[0095] The configuration information may include at least one of the first through fifth thresholds, which may be applicable based on a class or type of UE (e.g., IoT UE and / or power saving UE).
[0096] The remaining serving time may be determined based on the time remaining before the cell stops serving the current area. The distance from the UE's current location to its serving or candidate cell may be determined based on a center point or reference point of the cell (relative to the UE's current location).
[0097] The method implemented by the UE may include excluding from its measurements or from its cell selection at least one intra-frequency or inter-frequency cell that is of lower or equal priority to the priority of the current cell if the distance from the UE's current location to its serving cell is less than a second threshold.
[0098] The method performed by the UE may further include ranking cells in the set of at least one candidate cell and performing cell selection based on the ranking.
[0099] The UE may be in a radio resource control (RRC) idle state or an RRC inactive state when performing its measurements and its cell selection. The cell selection may comprise cell reselection (e.g., using the cell selection criteria Srxlev and Squal specified by 3GPP). The measurements may be performed for each cell in the set of at least one candidate cell via an associated channel state information reference signal (CSI-RS) resource.
[0100] Various other modifications will be apparent to those skilled in the art and will not be described in further detail here.
[0101] Some or all of the above exemplary embodiments may also be described as, but not limited to, the following supplementary notes. (Appendix 1) 1. A method performed by a user equipment (UE) configured to communicate over a network including a non-terrestrial network portion, the method comprising: performing measurements on at least one cell in a set of candidate cells; performing cell selection based on results of the measurements; performing a step including: The procedure is, a remaining serving time for each of the at least one cell; a distance between the current location of the UE and each of the at least one cell; the distance between the UE's current location and the serving cell; UE mobility and The method is performed based on at least one parameter for at least one cell including at least one of: (Appendix 2) the procedure includes excluding from the measurement or from the cell selection measurements of cells having a value corresponding to at least one parameter below a first exclusion threshold; The method described in Appendix 1. (Appendix 3) If the mobility of the UE is less than a first mitigation threshold, the procedure includes applying mitigation measurements. 3. The method according to claim 1 or 2. (Appendix 4) the procedure includes excluding from the measurement or from the cell selection measurements of cells having a value corresponding to at least one parameter greater than a second exclusion threshold; 10. The method according to any one of appendices 1 to 3. (Appendix 5) the procedure includes performing inter-frequency cell measurements and intra-frequency cell measurements; the value of the threshold applied in the procedure is different between the inter-frequency and intra-frequency cells; 5. The method of any one of appendices 1 to 4. (Appendix 6) 6. The method of any one of claims 1 to 5, wherein the threshold values applied in the procedure differ between the frequencies at which each of the at least one cell operates. (Appendix 7) 7. The method of any one of Supplementary Notes 1 to 6, wherein the procedure is performed based on the class or type of the UE. (Appendix 8) 8. The method of any one of claims 1 to 7, wherein the remaining service time is determined based on the remaining time until the cell corresponding to the remaining service time ends service provision in the current area. (Appendix 9) 9. The method of any one of Supplementary Notes 1 to 8, wherein the distance from the current location of the UE to each of the at least one cell is determined based on a center point or a reference point of each of the at least one cell. (Appendix 10) 10. The method of claim 9, further comprising receiving location information identifying a reference position for determining a center point or reference point of each of the at least one cell. (Appendix 11) 3. The method of claim 2, wherein the exclusion is performed on cells having a priority lower than or equal to the priority of the serving cell. (Appendix 12) 11. The method of claim 10, wherein receiving location information includes receiving configuration information that includes the location information. (Appendix 13) 12. The method of claim 11, wherein the configuration information is transmitted via system information or via dedicated signaling. (Appendix 14) 13. The method of claim 11 or 12, further comprising: the configuration information including at least one of a first exclusion threshold, a first mitigation threshold, and a second exclusion threshold. (Appendix 15) 15. The method of any one of Supplementary Notes 1 to 14, wherein the UE is in a Radio Resource Control (RRC) idle state or an RRC inactive state when performing the procedure. (Appendix 16) 16. The method of any one of claims 1 to 15, further comprising receiving at least one parameter via system information. (Appendix 17) ranking the cells in the at least one set of cells; performing cell selection based on the ranking; 12. The method of any one of appendices 1 to 11. (Appendix 18) 13. The method of any one of Supplementary Notes 1 to 12, wherein performing the measurements is performed via associated channel state information reference signal (CSI-RS) resources. (Appendix 19) 1. A method performed by a network node configured to communicate with a user equipment (UE) over a network including a non-terrestrial network portion, the method comprising: Providing configuration information to a UE, performing measurements on at least one cell in a set of candidate cells; performing cell selection based on results of the measurements; providing configuration information configured to assist the UE in performing the procedure, including The procedure is, a remaining serving time for each of the at least one cell; a distance between the current location of the UE and each of the at least one cell; the distance between the UE's current location and the serving cell; UE mobility and based on at least one parameter for at least one cell including at least one of A method wherein the configuration information includes at least one threshold value for the procedure. (Appendix 20) 1. A user equipment (UE) configured to communicate over a network including a non-terrestrial network portion, the UE comprising: performing measurements on at least one cell in a set of candidate cells; performing cell selection based on results of the measurements; a means for performing a procedure including The procedure is, a remaining serving time for each of the at least one cell; a distance between the current location of the UE and each of the at least one cell; the distance between the UE's current location and the serving cell; UE mobility and The UE is performed based on at least one parameter for at least one cell including at least one of: (Appendix 21) 1. A network node configured to communicate with a user equipment (UE) over a network including a non-terrestrial network portion, the network node comprising: A means for providing configuration information to a UE, comprising: performing measurements on at least one cell in a set of candidate cells; performing cell selection based on results of the measurements; the configuration information is configured to assist the UE in performing a procedure including The procedure is, a remaining serving time for each of the at least one cell; a distance between the current location of the UE and each of the at least one cell; the distance between the UE's current location and the serving cell; UE mobility and a network node that performs the process based on at least one parameter for at least one cell including at least one of:
[0102] This application claims the benefit of priority from UK Patent Application No. 2115145.1 filed on October 21, 2021, the disclosure of which is incorporated herein by reference in its entirety. [Explanation of symbols]
[0103] 1. Mobile (cellular or wireless) telecommunications systems 3. Mobile Devices 5 satellites 6 base station 7 Data (or Core) Network 31 Transceiver Circuit 33 Antenna 35 User Interface 37 Control Unit 39 Memory 41 Operating Systems 43 Communication Control Module 44 Mobility Module 45 Positioning Module 51 Transceiver circuit 53 Antenna 57 Control Unit 59 Memory 61 Operating Systems 63 Communication Control Module 64 Mobility Control Module 71 Transceiver Circuit 73 Antenna 75 network interfaces 77 Control Unit 79 Memory 81 Operating Systems 83 Communication Control Module 84 Mobility Control Module
Claims
1. 1. A mobile device configured to communicate over a network, including a non-terrestrial network, comprising: means for receiving system information including information indicating a distance threshold and a reference location of a serving cell; means for determining not to perform measurements on at least one frequency cell of equal or lower priority than the serving cell when a distance between the current location of the mobile device and the reference location of the serving cell is less than the distance threshold; Equipped with The determining means is configured to determine whether to perform relaxed measurements when it is determined using a threshold related to a cell edge that the current location of the mobile device is not at a cell edge of the serving cell, or when it is determined using a threshold related to low mobility that the mobile device has low mobility.
2. 2. The mobile device of claim 1, wherein the determining means is configured to, when the system information includes time information indicating a time when the serving cell is about to terminate service of an area currently covered by the serving cell, determine whether to perform measurement based on the time information regardless of other conditions.
3. 3. A mobile device according to claim 1, comprising means for receiving system information comprising the cell edge related threshold and the low mobility related threshold.
4. The mobile device according to claim 1 or 2, wherein the system information includes ephemeris information of neighboring cells.
5. 1. An access network node configured to communicate with a mobile device over a network, including a non-terrestrial network, comprising: means for transmitting system information including information indicating a distance threshold and a reference location of a serving cell; the distance threshold and the reference location of the serving cell are used by the mobile device to determine not to measure at least one frequency cell of equal or lower priority than the serving cell when a distance between a current location of the mobile device and the reference location of the serving cell is less than the distance threshold; An access network node that determines whether to perform relaxed measurements when the mobile device determines, using a threshold related to a cell edge, that the current location of the mobile device is not at the cell edge of the serving cell, or when the mobile device determines, using a threshold related to low mobility, that the mobile device has low mobility.
6. 1. A method in a mobile device configured to communicate over a network, including a non-terrestrial network, comprising: receiving system information including information indicating a distance threshold and a reference location of a serving cell; determining not to perform measurements on at least one frequency cell of equal or lower priority than the serving cell when a distance between the current location of the mobile device and the reference location of the serving cell is less than the distance threshold; Including, The method, wherein the determining includes determining whether to perform relaxed measurements when it is determined using a threshold related to a cell edge that the current location of the mobile device is not at a cell edge of the serving cell, or when it is determined using a threshold related to low mobility that the mobile device has low mobility.
7. 1. A method in an access network node configured to communicate with a mobile device over a network, including a non-terrestrial network, comprising: transmitting system information including information indicating a distance threshold and a reference location of a serving cell; the distance threshold and the reference location of the serving cell are used by the mobile device to determine not to measure at least one frequency cell of equal or lower priority than the serving cell when a distance between a current location of the mobile device and the reference location of the serving cell is less than the distance threshold; A method in which it is determined whether to perform relaxed measurements when the mobile device determines, using a threshold related to a cell edge, that the current location of the mobile device is not at the cell edge of the serving cell, or when the mobile device determines, using a threshold related to low mobility, that the mobile device has low mobility.
Citation Information
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UE procedures for reducing RSRP / RSRQ measurement in RRC idle mode and inactive state
WO2020148582A1