Transceiver device, network entity, and base station
The transceiver device optimizes 5G network signaling by determining its geographic location and sending precise cell identifiers, addressing inefficiencies in diverse deployment scenarios and use cases, thereby enhancing network efficiency and resource allocation.
Patent Information
- Application Number
- JP2023507745
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-08-06
- Filing Date
- 2021-08-03
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2041-08-03
AI Technical Summary
Current wireless communication networks face challenges in managing signaling overhead, particularly in 5G networks with diverse deployment scenarios and use cases such as eMBB, URLLC, and mMTC, which require different numerologies and latency requirements, leading to inefficiencies in resource allocation and increased signaling.
A transceiver device that determines its geographic location and sends a current cell identifier in a registration request, receiving multiple cell identifiers in a registration accept message, optimizing cell registration and reducing signaling overhead through precise geographic mapping.
This approach enhances network efficiency by minimizing unnecessary signaling and improving resource allocation in 5G networks, aligning with diverse use case requirements and reducing overall network load.
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Abstract
Description
[Technical Field]
[0001] This disclosure relates to the transmission and reception of signals in communication systems, such as 3GPP® communication systems. In particular, this disclosure relates to methods and apparatus for such transmission and reception. [Background technology]
[0002] Currently, the 3rd Generation Partnership Project (3GPP) is working on technical specifications for the next generation of cellular technology, also known as the fifth generation (5G).
[0003] One objective is to provide a single technical framework that addresses all usage scenarios, requirements, and deployment scenarios (see, for example, Section 6 of Non-Patent Document 1), including at least enhanced mobile broadband (eMBB), ultra-reliable low-latency communications (URLLC), and massive machine-type communications (mMTC). For example, deployment scenarios for eMBB may include indoor hotspots, dense urban areas, suburban areas, urban areas, and high-speed areas. Deployment scenarios for URLLC may include industrial control systems, mobile health management (remote monitoring, remote diagnosis, and remote treatment), real-time vehicle control, and wide-area monitoring and control systems for smart grids. Deployment scenarios for mMTC may include scenarios using a large number of devices, such as smart wearables and sensor networks, where the impact of data transmission delays is small. eMBB and URLLC services are similar in that they both require extremely high bandwidth, but differ in that URLLC services preferably require extremely low latency.
[0004] A second objective is to achieve forward compatibility: backward compatibility to Long Term Evolution (LTE, LTE-A) cellular systems is not required, which facilitates the design of entirely new systems and / or the introduction of novel features. [Prior art documents] [Non-patent literature]
[0005] [Non-Patent Document 1] TR 38.913 version 15.0.0 [Non-patent document 2] 3GPP TS 38.300 v15.6.0 [Non-patent document 3] 3GPP TR 38.801 v14.0.0 [Non-patent document 4] 3GPP TS 38.211 v15.6.0 [Non-Patent Document 5] TS 23.501 v16.1.0 [Non-patent document 6] TS 38.212 v15.6.0 [Non-Patent Document 7] TS 38.304 v15.4.0 [Non-patent document 8] TS 38.331 v15.6.0 [Non-Patent Document 9] 3GPP TS 38.304 v15.3.0 [Non-Patent Document 10] 3GPP TS 23.501 v15.10.0: “System architecture for the 5G System (5GS)” [Non-Patent Document 11] 3GPP TS 23.502 v15.10.0: “Procedures for the 5G System (5GS)” [Non-Patent Document 12] 3GPP TS 24.501 v15.6.0: “Non-Access Stratum (NAS) protocol for 5G Systems (5GS)” Non-Patent Document 13 3GPP TS 38.213 v15.6.0 Non-Patent Document 14 3GPP TR 38.811, Study on New Radio (NR) to support non-terrestrial networks, version 15.0.0 Non-Patent Document 15 3GPP TR 38.821, Solutions for NR to support non-terrestrial networks, version 0.3.0 Non-Patent Document 16 3GPP TR 23 737, Study on architecture aspects for using satellite access in 5G (Release 17), version 17.0.0 Non-Patent Document 17 3GPP TR 38.821 v.16.0.0: “Solutions for NR to support non-terrestrial networks (NTN)” Non-Patent Document 18 3GPP TS 38.331 v.16.1.0: “Radio Resource Control (RRC) protocol specification” Non-Patent Document 19 3GPP TS 24.501 v16.5.1: “Non-Access-Stratum (NAS) protocol for 5G systems (5GS)” Non-Patent Document 20 3GPP TS 38.413 v16.2.0: “NG Application Protocol (NGAP)” Summary of the Invention [Problem to be solved by the invention]
[0006] One non-limiting, illustrative embodiment facilitates providing improved procedures that facilitate reducing signaling overhead in wireless communication networks. [Means for solving the problem]
[0007] In one embodiment, the technology disclosed herein provides a transceiver device comprising: a circuit that, during operation, determines a current geographic cell using a current geographic location of the transceiver device and a mapping relationship between the geographic location and the geographic cell; and a transceiver that, during operation, sends a current identifier indicating the current geographic cell in a registration request message and receives a plurality of first identifiers indicating a plurality of first geographic cells in a registration accept message.
[0008] It should be noted that the general or specific embodiments may be implemented as a system, a method, an integrated circuit, a computer program, a storage medium, or any combination thereof.
[0009] Further benefits and advantages of the disclosed embodiments will become apparent from the specification and drawings. These benefits and / or advantages may be obtained individually by the various embodiments and features of the specification and drawings, and it is not necessary for all of these features to be present in order to obtain one or more of such benefits and / or advantages. [Brief explanation of the drawings]
[0010] Exemplary embodiments will now be described in more detail with reference to the accompanying figures and drawings. [Figure 1] 1 illustrates an example architecture of a 3GPP NR system. [Figure 2]1 illustrates an exemplary user plane and control plane architecture for an LTE eNB, gNB, and UE. [Figure 3] 1 is a schematic diagram showing the separation of functions between NG-RAN and 5GC. [Figure 4] FIG. 1 is a sequence diagram of an RRC connection establishment / reconfiguration procedure. [Figure 5] A schematic diagram showing the usage scenarios of enhanced mobile broadband (eMBB), massive machine-type communications (mMTC), and ultra-reliable low-latency communications (URLLC). [Figure 6] FIG. 1 is a block diagram illustrating the architecture of an exemplary 5G system in a non-roaming scenario. [Figure 7A] The situation at a first time instant is shown for a moving cell and a stationary tracking area. [Figure 7B] The situation of a moving cell and a stationary tracking area is shown at a second time point, which is later than the first time point. [Figure 8A] It shows a possible realization of geographic cells as a rectangular pattern near the border between two countries. [Figure 8B] It shows a possible realization of geographic cells as a hexagonal pattern near the border between two countries. [Figure 8C] 1 shows a possible realization of geographic cells where border geographic cells are subdivided into multiple smaller geographic cells. [Figure 9] FIG. 2 is a block diagram illustrating functional elements of a network entity, a base station, and a transceiver device according to an embodiment. [Figure 10] 4 illustrates steps of a method performed by a transceiver device according to one embodiment. [Figure 11] 4 illustrates steps of a method performed by a network entity according to one embodiment. [Figure 12] 1 illustrates a tracking area of a transceiver device that includes multiple geographic cells. [Figure 13]1 shows the coverage areas of satellite base stations that overlap the geographic cells that make up the tracking area assigned to the transceiver device. [Figure 14] 4 illustrates steps of a method performed by a base station according to one embodiment. [Figure 15] 4 illustrates steps of a method performed by a transceiver device according to one embodiment. [Figure 16] 4 illustrates steps of a method performed by a network entity according to one embodiment. [Figure 17] 4 illustrates steps of a method performed by a base station according to one embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0011] <5G NR system architecture and protocol stack> 3GPP is working on the next release of fifth-generation cellular technology (simply known as 5G), which includes the development of a new radio access technology (NR) that will operate in frequencies up to 100 GHz. The first version of the 5G standard was completed at the end of 2017, allowing for the testing and commercial deployment of smartphones compliant with the 5G NR standard.
[0012] In particular, the overall system architecture assumes an NG-RAN (Next Generation - Radio Access Network) comprising gNBs, which terminate NG radio access user plane (SDAP / PDCP / RLC / MAC / PHY) and control plane (RRC) protocols towards UEs. The gNBs are interconnected with each other by an Xn interface. The gNBs are further connected to an NGC (Next Generation Core) by a Next Generation (NG) interface, more specifically to an AMF (Access and Mobility Management Function) (e.g., a specific core entity running the AMF) by an NG-C interface, and to a UPF (User Plane Function) (e.g., a specific core entity running the UPF) by an NG-U interface. Figure 1 shows the architecture of an NG-RAN (see Section 4 of Non-Patent Document 2).
[0013] Various different deployment scenarios can be supported (see, for example, Non-Patent Document 3). For example, a decentralized deployment scenario (see, for example, Section 5.2 of Non-Patent Document 3, and a centralized deployment is described in Section 5.4) is presented in which base stations supporting 5G NR can be deployed. Figure 2 shows an exemplary decentralized deployment scenario (see, for example, Figure 5.2.-1 of Non-Patent Document 3), and further shows an LTE eNB and user equipment (UE) connected to both a gNB and an LTE eNB. The new eNB for NR 5G may exemplarily be referred to as a gNB. The eLTE eNB is an evolved version of the eNB and supports connection to an Evolved Packet Core (EPC) and a Next Generation Core (NGC).
[0014] The user plane protocol stack in NR (see, for example, Section 4.4.1 of Non-Patent Document 2) includes a PDCP (Packet Data Convergence Protocol) sublayer, an RLC (Radio Link Control) sublayer, and a MAC (Medium Access Control) sublayer, which are terminated at the gNB on the network side. In addition, a new access stratum (AS) sublayer (SDAP: Service Data Adaptation Protocol) is introduced above PDCP (see, for example, Section 6.5 of Non-Patent Document 2). NR also defines a control plane protocol stack (see, for example, Section 4.4.2 of Non-Patent Document 2). An overview of Layer 2 functions is provided in Section 6 of Non-Patent Document 2. The functions of the PDCP sublayer, RLC sublayer, and MAC sublayer are described in sections 6.4, 6.3, and 6.2, respectively, of Non-Patent Document 2. The functions of the RRC layer are described in section 7 of Non-Patent Document 2.
[0015] The Medium Access Control (MAC) layer handles, for example, logical channel multiplexing and scheduling and scheduling-related functions (including handling various numerologies).
[0016] The physical layer (PHY) is responsible for, for example, coding, PHY HARQ processing, modulation, multi-antenna processing, and mapping of signals to the appropriate physical time-frequency resources. Furthermore, the physical layer (PHY) handles the mapping of transport channels to physical channels. The physical layer (PHY) provides services to the MAC layer in the form of transport channels. A physical channel corresponds to a set of time-frequency resources used for the transmission of a particular transport channel, and each transport channel is mapped to a corresponding physical channel. One physical channel is the PRACH (Physical Random Access Channel), which is used for random access.
[0017] NR use cases / deployment scenarios may include enhanced mobile broadband (eMBB), ultra-reliable and low-latency communications (URLLC), and massive machine-type communications (mMTC), which have diverse requirements for data rates, latency, and coverage. For example, eMBB is expected to support peak data rates (20 Gbps downlink and 10 Gbps uplink) and user-perceived data rates on the order of three times those offered by IMT-Advanced. In contrast, URLLC has more stringent requirements, including extremely low latency (user plane latency of 0.5 ms uplink and downlink, respectively) and high reliability (1-10 Mbps within 1 ms). -5 ) is imposed. Furthermore, mMTC requires high connection density (1 km 2 1,000,000 devices per second), wide coverage in harsh environments, and extremely long battery life (15 years) to lower device costs may be desirable.
[0018] Therefore, an OFDM numerology (e.g., subcarrier spacing, OFDM symbol duration, cyclic prefix (CP) duration, number of symbols per scheduling interval) suitable for a certain use case may not function well in another use case. For example, for low-latency services, a shorter symbol duration (and thus a larger subcarrier spacing) than mMTC services, and / or fewer symbols per scheduling interval (also referred to as transmission time interval (TTI)) may preferably be required. Further, in a deployment scenario with a large channel delay spread, a longer cyclic prefix (CP) duration may preferably be required than in a scenario with a short delay spread. To maintain a comparable cyclic prefix (CP) overhead, the subcarrier spacing should be optimized according to the delay spread. In NR, two or more values of subcarrier spacing may be supported. Therefore, currently, subcarrier spacings of 15 kHz, 30 kHz, 60 kHz,... are being considered. The symbol duration T u and the subcarrier spacing Δf are directly related by the equation Δf = 1 / T u . Similar to the LTE system, the term "resource element" can be used to represent the minimum resource unit composed of one subcarrier with respect to the length of one OFDM / SC-FDMA symbol.
[0019] In the new radio system 5G NR, for each numerology and carrier, a resource grid of subcarriers and OFDM symbols is defined for both the uplink and the downlink, respectively. Each element in the resource grid is called a resource element and is identified based on the frequency index in the frequency domain and the symbol position in the time domain (see Non-Patent Document 4).
[0020] <Split of 5G NR Functions between NG-RAN and 5GC> Figure 3 shows the division of functions between NG-RAN and 5GC. The logical nodes of NG-RAN are gNB or ng-eNB. The logical nodes of 5GC are AMF, UPF, and SMF.
[0021] The gNB and ng-eNB handle, among other things, the following key functions: - Radio Resource Management functions, such as Radio Bearer Control, Radio Admission Control, Connection Mobility Control, and dynamic resource allocation (scheduling) to UEs in both uplink and downlink directions. - IP header compression, encryption, and data integrity protection - AMF selection at UE attach time when routing to an AMF cannot be determined from information provided by the UE - Routing of user plane data to the UPF - Routing control plane information to AMF - Establishing and releasing connections - Scheduling and sending paging messages - Scheduling and transmission of system broadcast information (sent from AMF or OAM) - Configuring measurements and measurement reporting for mobility and scheduling - Transport-level packet marking in the uplink - Session Management - Network slicing support - QoS flow management and mapping to data radio bearers - Support for UEs in RRC_INACTIVE state - NAS message delivery function - Wireless Access Network Sharing - Dual Connection - Tight interworking between NR and E-UTRA
[0022] The Access and Mobility Management Function (AMF) handles the following main functions: - Termination of Non-Access Stratum (NAS) signaling - NAS signaling security - Access Stratum (AS) security control - Core Network (CN) inter-node signaling for mobility between 3GPP access networks - Idle mode UE reachability (including control and execution of paging retransmissions) - Registration Area Management - Support for intra-system and inter-system mobility - Access authentication - Access authentication, including roaming rights checks - Mobility management controls (subscriptions and policies) - Network slicing support - Selection of Session Management Function (SMF)
[0023] Furthermore, the User Plane Function (UPF) handles the following main functions: - Anchor points for intra-RAT / inter-RAT mobility (when applicable) - External PDU session points for interconnection with data networks - Packet routing and forwarding - User plane portion of packet inspection and policy rule enforcement - Traffic usage reports - an uplink classifier to support routing of traffic flows to the data network; - Branching point for supporting multi-home PDU sessions - User plane QoS processing (e.g., packet filtering, gating, UL / DL rate enforcement) - Verification of uplink traffic (mapping from SDF to QoS flow) - Buffering of downlink packets and triggering of downlink data notifications
[0024] Finally, the Session Management Function (SMF) processes the following main functions. - Session management - Allocation and management of UE IP addresses - Selection and control of the UP function - Configuration of traffic steering in the User Plane Function (UPF) for routing traffic to the correct destination - Policy enforcement and QoS control part - Downlink data notification
[0025] <Procedures for establishment and reconfiguration of RRC connection> Figure 4 shows a part of the interaction between the UE, gNB, and AMF (5GC entity) when the UE transitions from RRC_IDLE to RRC_CONNECTED in the NAS part (see Non-Patent Document 2).
[0026] RRC is the higher layer signaling protocol used to configure the UE and the gNB. In particular, during this transition, the AMF creates UE context data (including, for example, PDU session context, security keys, UE radio capabilities, and UE security capabilities) and sends it to the gNB via an INITIAL CONTEXT SETUP REQUEST. The gNB then activates AS security with the UE by sending a SecurityModeCommand message to the UE, and the UE responds with a SecurityModeComplete message. The gNB then performs reconfiguration to establish signaling radio bearer 2 (SRB2) and data radio bearers (DRBs) by sending an RRCReconfiguration message to the UE and receiving an RRCReconfigurationComplete message from the UE in response. In the case of a signaling-only connection, these steps related to RRCReconfiguration are skipped because SRB2 and DRBs are not established. Finally, the gNB notifies the AMF by means of an INITIAL CONTEXT SETUP RESPONSE that the establishment procedure is complete.
[0027] Therefore, the present disclosure provides a 5th Generation Core (5GC) entity (e.g., AMF, SMF, etc.), the 5th Generation Core entity comprising: control circuitry that, in operation, establishes a Next Generation (NG) connection with a gNodeB; and a transmitter that, in operation, transmits an initial context setup message to the gNodeB over the NG connection to establish a signaling radio bearer between the gNodeB and a user equipment (UE). Specifically, the gNodeB transmits Radio Resource Control (RRC) signaling, which includes a resource allocation configuration information element, to the UE over the signaling radio bearer. The UE performs uplink transmission or downlink reception based on the resource allocation configuration.
[0028] <IMT usage scenarios after 2020> Figure 5 shows some of the use cases for 5G NR. The 3GPP (3rd Generation Partnership Project) New Radio (3GPP NR) is considering three possible use cases to support various services and applications in IMT-2020. The enhanced mobile broadband (eMBB) phase 1 specifications have been finalized. Current and future work includes standardization of ultra-reliable low-latency communications (URLLC) and large-scale machine-type communications, in addition to further extending support for eMBB. Figure 5 shows some example IMT usage scenarios expected beyond the year 2020.
[0029] URLLC use cases have stringent requirements for capabilities such as throughput, latency, and availability, and are envisioned as one of the enablers for future vertical applications, such as wireless control of industrial manufacturing and production processes, remote medical surgery, power distribution automation in smart grids, and transportation safety. URLLC's ultra-high reliability is supported by identifying technologies to meet the requirements set by NR URLLC in Release 15. Key requirements for NR URLLC include a target user plane latency of 0.5 ms for both the uplink (UL) and downlink (DL). Typical URLLC requirements for a single packet transmission are a block error rate (BLER) of 1E-5 for a 32-byte packet size with a user plane latency of 1 ms.
[0030] From the RAN1 perspective, there are several possible ways to improve reliability. The current scope for improving reliability includes defining a separate CQI table for URLLC, more compact DCI formats, PDCCH repetition, etc. However, as NR becomes more stable and more developed (a key requirement for NR URLLC), the scope for achieving ultra-high reliability may increase. Specific use cases for NR URLLC in Release 15 include augmented reality / virtual reality (AR / VR), eHealth, eSafety, and mission-critical applications.
[0031] Furthermore, technology enhancements targeted at NR URLLC target latency improvement and reliability enhancement. Technology enhancements for latency improvement include configurable numerology, non-slot-based scheduling with flexible mapping, grant-free (configured grant) uplink, slot-level repetition of data channels, and downlink preemption. Preemption means that a transmission for which resources have already been allocated is aborted and the already allocated resources are used for another transmission requested later with smaller latency / higher priority requirements. Thus, an already granted transmission is preempted by a later transmission. Preemption applies regardless of service type. For example, a transmission of service type A (URLLC) can be preempted by a transmission of service type B (e.g., eMBB). Technology enhancements related to reliability improvement include dedicated CQI / MCS tables for a target BLER of 1E-5.
[0032] The mMTC (Massive Machine Type Communication) use case is characterized by a very large number of connected devices transmitting relatively small amounts of data that are generally latency sensitive. The devices are required to be low cost and have extremely long battery life. From an NR perspective, utilizing very narrow bandwidth portions is one possible solution to achieve power savings from the UE perspective, enabling long battery life.
[0033] As mentioned above, it is expected that the reliability spectrum in NR will expand. One key requirement in all cases, especially for URLLC and mMTC, is high or ultra-high reliability. Several mechanisms can be considered to improve reliability from a radio perspective and a network perspective. In general, there are several key areas that can help improve reliability. These areas include compact control channel information, data channel / control channel repetition, and diversity related to the frequency, time, and / or spatial domains. These areas are generally applicable to reliability, regardless of the specific communication scenario.
[0034] For NR URLLC, further use cases with more stringent requirements have been identified, such as factory automation, transportation, and power distribution. Depending on the use case, these requirements include higher reliability (up to the 10-6 level), higher availability, packet sizes up to 256 bytes, time synchronization on the order of a few microseconds (1 microsecond to a few microseconds depending on the frequency range), and low latency on the order of 0.5-1 ms, with a target user plane latency of 0.5 ms in particular.
[0035] Furthermore, for NR URLLC, several technical enhancements have been identified from the perspective of RAN1. In particular, enhancements related to PDCCH (Physical Downlink Control Channel) include compact DCI, repetition of PDCCH, and increased PDCCH monitoring. Also, enhancements related to UCI (Uplink Control Information) include enhancements of HARQ (Hybrid Automatic Repeat Request) and CSI feedback. In addition, enhancements of PUSCH related to mini-slot level hopping and enhancements of retransmission / repetition have also been recognized. The term "mini-slot" means a TTI (Transmission Time Interval) that contains a smaller number of symbols than a slot (a slot contains 14 symbols).
[0036] <QoS Control> The 5G QoS (Quality of Service) model is based on QoS flows and supports both QoS flows that require a guaranteed flow bit rate (GBR QoS flows) and QoS flows that do not require a guaranteed flow bit rate (non-GBR QoS flows). Therefore, at the NAS level, a QoS flow is the finest granularity for QoS differentiation in a PDU session. A QoS flow is identified within a PDU session by a QoS flow ID (QFI) that is transmitted within the encapsulation header through the NG-U interface.
[0037] The 5GC establishes one or more PDU sessions for each UE. The NG-RAN establishes at least one Data Radio Bearer (DRB) for each UE along with the PDU session, and can then configure additional DRBs for the QoS flows of that PDU session (as determined by the NG-RAN, e.g., as described above with reference to Figure 4). The NG-RAN maps packets belonging to different PDU sessions to different DRBs. NAS-level packet filters in the UE and 5GC associate UL and DL packets with QoS flows, and AS-level mapping rules in the UE and NG-RAN associate UL and DL QoS flows with DRBs.
[0038] Figure 6 shows the 5G NR non-roaming reference architecture (see Section 4.23 of 3GPP TS 36544-10001). Application Functions (AFs) (e.g., external application servers handling 5G services exemplarily described in Figure 5) interact with the 3GPP core network to provide services. For example, they support application influence on traffic routing, access Network Exposure Functions (NEFs), and interact with a policy framework (see Policy Control Function (PCF)) for policy control (e.g., QoS control). Based on the operator's deployment, application functions (AFs) deemed trusted by the operator can be allowed to interact directly with associated network functions. Application Functions (AFs) not permitted by the operator to directly access network functions interact with associated network functions using an external exposure framework via the NEF.
[0039] Figure 6 shows further functional units of the 5G architecture, namely the Network Slice Selection Function (NSSF), the Network Repository Function (NRF), the Unified Data Management (UDM), the Authentication Server Function (AUSF), the Access and Mobility Management Function (AMF), the Session Management Function (SMF), and the Data Network (DN) (e.g. operator services, internet access, or third-party services).
[0040] <Downlink control channel monitoring, PDCCH, DCI> Many of the functions performed by a UE involve monitoring a downlink control channel (eg, PDCCH, see section 5.2.3 of 3GPP TS 26.2444) for example to receive specific control information or data destined for the UE.
[0041] Below are some of these features: Paging message monitoring function System information acquisition function Signaling monitoring operation in discontinuous reception (DRX) function INACTIVE state monitoring operation in discontinuous reception (DRX) function Receiving a random access response in the random access function · PDCP (Packet Data Convergence Protocol) layer reordering function.
[0042] As mentioned above, the PDCCH is monitored by the UE to identify and receive information intended for the UE, such as control information as well as user traffic (e.g., DCI on the PDCCH, user data on the PDSCH indicated by the PDCCH).
[0043] Downlink control information (which may be referred to as Downlink Control Information, DCI) has the same purpose in 5G NR as DCI in LTE, i.e., it is a special set of control information for scheduling, for example, a downlink data channel (e.g., PDSCH) or an uplink data channel (e.g., PUSCH). Many different DCI formats have already been defined for 5G NR (see section 7.3.1 of 3GPP TS 36.254).
[0044] The PDCCH monitoring for each of these functions serves a specific purpose and is therefore initiated for that purpose. PDCCH monitoring is typically controlled based on at least a timer operated by the UE. The timer has the purpose of controlling PDCCH monitoring, e.g., limiting the maximum time that the UE monitors the PDCCH. For example, the UE does not need to monitor the PDCCH indefinitely and can stop monitoring after a certain time to save power. Thus, a timer can be started when the UE starts monitoring the PDCCH for its intended purpose. When the timer expires, the UE can stop monitoring the PDCCH for its intended purpose and has the opportunity to save power.
[0045] <Paging procedure in 5G NR> In the following, an exemplary implementation of the paging function in 5G NR with monitoring of the PDCCH according to the currently standardized version is briefly described.
[0046] There are two types of paging procedures in 5G NR: RAN-based paging procedures (e.g., based on RAN-based notification areas) and core network-based paging procedures (see, for example, Non-Patent Document 2, Non-Patent Document 7, and Non-Patent Document 8, which describe RAN paging and CN paging in several sections, for example, in Section 9.2.5 "Paging" of Non-Patent Document 2).
[0047] Paging allows the network to contact UEs in RRC_IDLE and RRC_INACTIVE states via paging messages and to inform UEs in RRC_IDLE, RRC_INACTIVE and RRC_CONNECTED states about system information changes and indications of public warning information (such as ETWS / CMAS (Earthquake and Tsunami Warning System / Commercial Mobile Alert System)) via short messages. Both paging messages and short messages are addressed by the P-RNTI on the PDCCH monitored by the UE. However, the actual paging message (e.g., carrying the paging record) is sent on the PCCH (indicated by the PDCCH), while short messages can be sent directly over the PDCCH.
[0048] In RRC_IDLE, the UE monitors the paging channel for paging initiated by the CN, whereas in RRC_INACTIVE, the UE also monitors the paging channel for paging initiated by the RAN. However, the UE does not need to continuously monitor the paging channel. Paging DRX is defined, and a UE in RRC_IDLE or RRC_INACTIVE only needs to monitor the paging channel for one paging occasion (PO) per DRX cycle (see, for example, sections 6.1 and 7.1 of 3GPP TS 36.210). The paging DRX cycle is configured by the network.
[0049] The paging occasions (POs) of a UE in CN-initiated paging and RAN-initiated paging are based on the same UE ID, resulting in overlapping POs for both paging. The number of different POs in a DRX cycle is configurable via system information, and the network can distribute UEs to these POs based on their IDs. A paging occasion (PO) is a set of PDCCH monitoring opportunities and can consist of multiple time slots (e.g., subframes or OFDM symbols) in which paging DCI can be transmitted. A paging frame (PF) is a radio frame and can contain one or multiple POs or the start of a PO.
[0050] When in RRC_CONNECTED state, the UE monitors the paging channel on any PO for System Information (SI) change indication information and / or Public Warning System (PWS) notifications. In case of Bandwidth Adaptation (BA) (see 3GPP T2R01.01.02, clause 6.10), a UE in RRC_CONNECTED state only monitors the paging channel on active BWPs with a common search space configured.
[0051] When the UE receives the paging message, it can stop monitoring the PDCCH. Depending on the reason for the paging, the UE can, for example, continue to acquire system information or receive traffic / instructions from the network after establishing an RRC connection with the base station.
[0052] <Connection Management: CM_IDLE and CM_CONNECTED> A transceiver device, such as a UE in an NR radio network, may communicate with an NR core network entity, such as an entity that implements AMF. For example, when a transceiver device is first switched on or has been idle for an extended period of time, it needs to establish a connection with the AMF. This is also called Connection Management and is used to establish and release control plane signaling connections between the UE and the AMF.
[0053] That is, Connection Management (CM) reflects the state of the UE in terms of its signaling connection with the AMF. In CM_IDLE, the UE has no signaling connection with the AMF. In CM_CONNECTED, the UE has a signaling connection with the AMF.
[0054] The connection between the AMF and the UE may be used to transmit NAS (Non-Access Stratum) signaling messages. NAS is a functional layer in the network between the core network and the UE that is used to manage the establishment of communication sessions and maintain continuous communication as the UE moves.
[0055] The signaling connection between the UE and the AMF can be considered as a combination of the signaling connection between the UE and the base station and the signaling connection between the base station and the AMF.
[0056] The UE transitions itself to CM_CONNECTED when the RRC signaling connection is established. The AMF transitions the UE to CM_CONNECTED when the signaling connection is established. The CM_IDLE and CM_CONNECTED states are maintained in both the UE and the AMF.
[0057] A UE that is RRC_IDLE is also CM_IDLE. A UE that is RRC_CONNECTED or RRC_INACTIVE is CM_CONNECTED.
[0058] When paging a UE, the network broadcasts an RRC paging message, which triggers the UE to establish an RRC connection and send a service request to the AMF. The service request initiates the establishment of a signaling connection, which causes the UE to transition to CM_CONNECTED.
[0059] When the signaling connection is released or fails, the UE transitions to CM_IDLE.
[0060] Further details regarding connection management, CM_CONNECTED, and CM_IDLE can be found, for example, in Non-Patent Document 10, Non-Patent Document 11, or Non-Patent Document 12.
[0061] <Tracking area and tracking area code> Since the location of the UE is typically known at cell level, paging messages are typically sent across multiple cells within a so-called Tracking Area (TA) which may be controlled by an AMF / MME (Mobility Management Entity).
[0062] A group of neighboring gNBs can be defined as a TA. This can be done, for example, during the initial deployment of the network, and each gNB can be configured with its own TA. A Tracking Area Code (TAC) is a unique code assigned to each TA.
[0063] In other words, the TAC is a unique code that each operator assigns to each of its TAs. The Tracking Area Identifier (TAI) is composed of the PLMN ID and the TAC. The PLMN ID can be a combination of the MCC (Mobile Country Code) and the MNC (Mobile Network Code), and is a unique code assigned to each operator in the world. With such an assignment format, the TAI can be uniquely identified globally.
[0064] For the purpose of checking which TA a specific UE is located in, since the network needs to have updated location information regarding the UE in the RRC_IDLE state, the UE can notify its current location to the network by sending a Tracking Area Update (TAU) message each time it moves between TAs.
[0065] For this purpose, when the UE attaches to the network, a list indicating the TAs where the UE is located and recognized by the network is obtained. When moving within the TAs shown in this list, there is no need to execute the TAU procedure. However, when the UE moves into a TA that is not shown in the list, the TAU procedure is started.
[0066] Furthermore, a UE in RRC_IDLE can send TAU messages periodically even when staying within the same TA. By periodically providing TAU messages, it can be notified to the network that the UE is still available and can receive data.
[0067] The tracking area code associated with a cell can be broadcast in the system information by each gNB, as will be explained later.
[0068] <Obtaining NR System Information> In the following, an exemplary implementation of the system information acquisition function in 5G NR with PDCCH monitoring according to the currently standardized version, already briefly mentioned above, is briefly described.
[0069] In 5G NR, system information (SI) is divided into a Master Information Block (MIB) and several System Information Blocks (SIBs) (see e.g., Section 5.2 of Non-Patent Document 8, e.g., Section 7.3 of Non-Patent Document 2, and e.g., Section 13 of Non-Patent Document 13). The MIB is transmitted on the BCH and contains parameters necessary to acquire SIB1 from the cell. SIB1 is transmitted periodically on the DL-SCH and contains information about availability and scheduling (e.g., mapping of SIBs to SI messages, periodicity, SI window size for other SIBs including indication of whether one or more SIBs are provided only upon request, and in that case the configuration required by the UE to make an SI request).
[0070] SIBs other than SIB1 are conveyed in system information messages (SI messages) transmitted on the DL-SCH. SIBs with the same periodicity can be mapped to the same SI message. Each SI message is transmitted within a periodically occurring time-domain window (called the SI window, which has the same length for all SI messages). Each SI message is associated with an SI window, and the SI windows of different SI messages do not overlap.
[0071] The UE applies the SI acquisition procedure to acquire access stratum (AS) and non-access stratum (NAS) information. The SI acquisition procedure applies to UEs in RRC_IDLE, RRC_INACTIVE, and RRC_CONNECTED modes. For example, the UE can apply the SI acquisition procedure during cell selection (e.g., power-on), cell reselection, recovery from out-of-service, reconfiguration with synchronization completion, after entering the network from another RAT (Radio Access Technology), when receiving an indication that system information has changed (SI change indication), and when the UE does not have a valid version of the stored SIB. A modification period is used, i.e., the updated SI is broadcast during the modification period following the modification period in which the SI change indication is transmitted. The modification period can be defined by multiplying the default paging cycle (for example, 230 / 640 / 1280 / 2560 ms) by the corresponding coefficient (modificationPeriodCoeff: 2 / 4 / 8 / 16), and can be expressed as modification period=defaultPagingCycle×modificationPeriodCoeff.
[0072] <Beamforming> Beamforming is one solution to improve the performance of mobile networks, enabling higher spectral efficiency, improved link performance, and extended coverage. Beamforming was first included in the NR specifications in 3GPP Release 15. While traditionally data is transmitted over the entire cell area, with beamforming the data is transmitted in a relatively narrow beam.
[0073] The beams can be formed in several different ways, either providing a fixed grid of beams or performing user-specific (UE-specific) beamforming.
[0074] Beamforming can be thought of as the application of multiple radiating elements transmitting the same signal at the same wavelength and phase, which in combination form a longer, targeted stream. That is, the targeted stream is formed by reinforcing waves in a particular direction. The direction of the beam can be changed by changing the phase of radiating elements with a common frequency, and different frequencies can be used to beam steer in different directions.
[0075] <Non-terrestrial networks> 3GPP has considered and described NR-based operation in NTNs (non-terrestrial networks) (see, for example, Non-Patent Document 14 and Non-Patent Document 15). The architecture is discussed in Non-Patent Document 16.
[0076] Its benefits include the extension of NR communication services to remote areas, ships, aircraft, etc. Because space / airborne vehicles have wide service coverage and are less vulnerable to physical attacks and natural disasters, NTNs can facilitate the deployment of NR services in areas that cannot be covered by terrestrial NR networks (e.g., isolated or remote areas, on aircraft or ships) and in unserved areas (e.g., suburban and rural areas). Furthermore, NTNs can enhance the reliability of NR services by providing service continuity to passengers on moving platforms and ensuring service availability everywhere, especially for critical communications.
[0077] These benefits are relevant to either standalone non-terrestrial networks or integrated terrestrial and non-terrestrial networks and can impact coverage, user bandwidth, system capacity, service reliability and availability.
[0078] A non-terrestrial network refers to a network or part of a network that uses RF resources onboard a satellite, for example. An NTN typically comprises the following system elements: NTN terminals (3GPP UEs, or terminals specific to the satellite system if the satellite does not directly serve 3GPP UEs), service links, which refer to radio links between user equipment and space / airborne platforms, airborne platforms carrying payloads, gateways connecting space / airborne platforms to the core network, and feeder links, which refer to radio links between gateway centers and space / airborne platforms.
[0079] A satellite or other high-altitude platform may consist of only a relay function for the feeder link from the access side to the ground station, or it may include some or all of the NR radio baseband processing (e.g., part of the gNB or the entire gNB). The rest of the network and the core network may be located on the ground. A satellite may also have a link with another satellite (an inter-satellite link, ISL), which may be advantageous if the satellite cannot reach any ground station directly.
[0080] The NTN architecture may use existing NR logical interfaces, protocols, and concepts, with adaptations to address, for example, longer latencies and / or other NTN specifications.
[0081] Transmission between terminals (UEs) can be performed via a remote radio unit (RTU) including a satellite and an NTN gateway. A gNB can be located in the gateway as a scheduling device / base station. The satellite's payload can perform frequency conversion and high-frequency amplification in both the uplink and downlink directions. Thus, the satellite can replicate the NR radio interface from the feeder link (between the NTN gateway and the satellite) to the service link (between the satellite and the UE) or vice versa. A satellite with this configuration is called a transparent relay satellite.
[0082] Also, the transmission between terminals (UEs) may be performed via a satellite including a gNB as a scheduling device / base station. A satellite of this configuration is called a regenerative relay satellite.
[0083] Satellites may be in low Earth orbit (LEO), i.e., at an altitude of approximately 600 km to 1200 km, or in a geostationary orbit, i.e., at an altitude of approximately 35786 km. In the GEO orbit, the position of the satellite does not substantially change with time with respect to the Earth's surface, but in the LEO orbit, the satellite moves with respect to the Earth's surface.
[0084] <Tracking Area within NTN> For example, in an NTN where a base station is located on a LEO satellite, the tracking area associated with the cell served by the base station may move with respect to the Earth's surface. In other words, if the satellite / cell does not change the broadcast TAC value, as the cell moves, the TA moves across the Earth's surface (moving tracking area). As a result, a stationary UE needs to continuously perform a TAU in the RRC_IDLE state, leading to a large TAU overhead and unnecessary UE power consumption.
[0085] On the other hand, the TA may be set to be stationary with respect to the Earth's surface regardless of the position of the cell moving with respect to the Earth's surface (fixed tracking area). That is, the TA may be set based on the geographical location of the Earth rather than based on the service area formed by a series of base stations.
[0086] This is shown in FIGS. 7A and 7B. FIG. 7A shows the situation at a certain time t, where a plurality of cells C1 to C12 are located near the boundary between two tracking areas TA1 and TA2 (the boundary is shown as a thick line). The boundary can be set to correspond to, for example, the border between two adjacent countries A and B. FIG. 7B shows the same geographical area as FIG. 7A at a different time t + Δt after t. As can be understood from the figure, cells C1 to C12 have moved a specific distance from right to left, and the relative positions of cells C1 to C12 with respect to the boundary between TA1 and TA2 have changed. For example, C5, which was entirely within TA2 at time t, is partially within TA1 and TA2 at time t + Δt. Further, for example, C7, which was partially within TA1 and TA2 at time t, is entirely within TA1 at time t + Δt.
[0087] <Determination of Tracking Area Using UE Position> From the above, in section 7.3.1.3.2 of Non-Patent Document 17, a proposal is made for the implementation of the concept of a stationary tracking area in which the UE derives the tracking area using its current position.
[0088] For this purpose, on the UE and network sides, a mapping relationship between geographical locations on the earth's surface and tracking area codes can be maintained. Further, the UE can determine its current position by using the position provided by a global navigation satellite system such as GPS, GLONASS, Beidou, or Galileo. The UE can determine its current TAC by using the mapping relationship between the TAC and the geographical location. In this framework, the TAC is not broadcast by the network. Further, the UE is registered in the TA, and as long as the UE remains within the registered TA, it receives paging messages from the network.
[0089] Furthermore, the UE may periodically determine its current location and compare the TAC derived using that location with the TA to which it is registered. If the UE leaves the TAC, it may perform a TAU procedure so that it is registered to a new TA by the AMF.
[0090] The above concept, in which a UE uses its current location to determine its current TAC, requires the UE to be aware of the current definition of its stationary tracking area relative to geographic locations on the Earth's surface, i.e., the mapping relationship between location and TAC. However, signaling the tracking area definition (e.g., the location, shape, and / or size of the tracking area) can be complex and costly. Furthermore, adjusting the size of the area used to page the UE can incur a significant amount of signaling overhead, making the TA-based paging procedure inflexible.
[0091] Furthermore, any adjustments to the size, shape, etc. of the tracking area (i.e., redefinition of the tracking area) must be signaled to all UEs, which also incurs signaling overhead.
[0092] Furthermore, since radio cells may not be stationary, when paging a UE, the AMF needs to determine which base station to send a paging request message to, and the base station needs to determine which radio cell or beam to use when receiving a paging request message from the AMF.
[0093] The following describes UEs, base stations, and procedures that address the above challenges for new radio access technologies envisioned in 5G mobile communication systems (although also usable in LTE mobile communication systems). Several different implementations and variations are also described. The following disclosure is facilitated by, and may be based, for example, at least in part on, the discussion and findings above.
[0094] In general, it should be noted that many assumptions have been made herein to explain the principles underlying the present disclosure in a clear and understandable manner. However, it should be understood that these assumptions are merely examples made herein for illustrative purposes and are not intended to limit the scope of the present disclosure. Those skilled in the art will understand that the principles described in the following disclosure and claims can be applied to different scenarios and in ways not explicitly described herein.
[0095] Furthermore, although specific terminology used in the context of new radio access technologies for upcoming 3GPP 5G communication systems has not yet been fully determined or may ultimately change, some of the terms used below, such as procedures, entities, and layers, are closely related to the terms used in LTE / LTE-A systems or in current 3GPP 5G standardization. Therefore, the terms may change in the future without affecting the functionality of the embodiments. Therefore, those skilled in the art will recognize that the embodiments and their scope of protection are not limited to the specific terms illustratively used herein due to the absence of newer or ultimately agreed-upon terms, but should be understood more broadly in terms of the functions and concepts underlying the functions and principles of the present disclosure.
[0096] For example, a "mobile station," "mobile node," "user terminal," or "user equipment (UE)" is a physical entity (physical node) in a communication network. A node may have several functional entities. A functional entity refers to a software or hardware module that performs a predetermined set of functions and / or provides a predetermined set of functions to another functional entity of the same node or another node or network. A node may have one or more interfaces that attach it to a communication device or medium through which it can communicate. Similarly, a network entity may have logical interfaces that attach a functional entity to a communication device or medium through which it can communicate with another functional entity or correspondent node.
[0097] The term "base station" or "radio base station" as used herein refers to a physical entity in a communication network. A base station, like a mobile station, may have several functional entities. A functional entity refers to a software or hardware module that performs a predetermined set of functions and / or provides a predetermined set of functions to another functional entity of the same node or another node or network. A physical entity performs several control tasks related to communication devices, including one or more of scheduling and configuration. It should be noted that the base station functionality and the communication device functionality may be integrated into one device. For example, a mobile terminal may also perform the base station functionality for another terminal. In LTE, the terminology used is eNB (or eNodeB), while in 5G NR the terminology currently used is gNB.
[0098] The present disclosure provides apparatus and techniques that can facilitate reducing signaling overhead.
[0099] For purposes of this disclosure, a tracking area may be considered to be composed of multiple geographic cells. These geographic cells may be defined to be stationary regions on the Earth's surface. The geographic cells may be non-overlapping; that is, each location on the Earth's surface is associated with at most one geographic cell. In other words, the geographic cells are defined such that no location on the Earth's surface is associated with more than one geographic cell.
[0100] The totality of the geographic cells may cover the entire surface of the Earth or only a portion of the Earth's surface. The geographic cells do not correspond to the actual coverage of a base station and are defined independently of the coverage area or location of the base station.
[0101] In other words, a geographic cell may be a non-overlapping stationary region defined on the Earth's surface relative to at least one geographic location on the Earth's surface.
[0102] The geographic cells may form a regular pattern and are also called location-based cells, geographic-based cells, or virtual cells.
[0103] Figure 8A shows a possible implementation of geographic cells forming a regular rectangular pattern. As an example, the border between two countries, A and B, is shown in bold. Each geographic cell has a rectangular shape. The geographic areas are arranged so that they do not overlap each other, but are adjacent to each other to cover the entire service area.
[0104] Figure 8B shows a possible implementation of geographic cells forming a regular hexagonal pattern. As an example, the border between two countries, A and B, is shown in bold. Each geographic cell is hexagonal in shape. The geographic areas are arranged so that they do not overlap each other, but are adjacent to each other to cover the entire service area.
[0105] 8A and 8B show examples of geographic cells that are equal in size and shape, the present disclosure is not limited thereto, and for example, the geographic cells may be of different sizes and shapes.
[0106] For example, a geographic cell may be defined relative to one reference location on the Earth's surface or relative to multiple reference locations. For example, in the case of uniformly or non-uniformly shaped geographic areas that do not form a regular grid, multiple geographic cells may be defined by corresponding multiple reference locations. In this case, each reference location may define a geographic cell as an area that includes locations that are not near another reference location that defines another geographic cell.
[0107] For example, a regular pattern of geographic cells can be defined by the initial position, size, and shape of one geographic cell. The reference positions of the other geographic cells are set relative to this single geographic cell. For example, in the example shown in Figure 8A, the position, size, shape, and orientation of one rectangular geographic cell determines the positions of the remaining geographic cells.
[0108] Furthermore, each geographic cell may be associated with a dedicated identifier, which may be unique, i.e., each geographic cell may be uniquely identified by its identifier.
[0109] For example, for secondary geographical cells, the identifiers can be defined in a similar way to the sidelink communication described in section 5.8.11 of 3GPP TS 23.100, 2011. Specifically, for a given location (specified by coordinates x and y), the following values can be defined:
number
[0110] The identifiers (IDs) of the geographic cells within this particular region can be defined as follows:
number
[0111] However, the present disclosure is not limited in this respect, and the definition of a geographic cell (i.e., the mapping relationship between a geographic location on the Earth's surface and a geographic cell) may be implemented differently, so long as no location on the Earth's surface is associated with multiple geographic cells.
[0112] Furthermore, in one embodiment, the pattern of geographic cells may be regular, for example, as shown in Figures 8A and 8B, with certain geographic cells further subdivided into smaller geographic cells. The further subdivided geographic cells may be located, for example, near country boundaries. This may allow for finer spatial definition of geographic cells, for example, within a threshold distance from country boundaries. The subdivided geographic cells may be further subdivided into smaller geographic cells, as exemplarily shown in Figure 8C. However, each geographic cell may be associated with a unique identifier.
[0113] The present disclosure provides a network entity, a base station, and a transceiver apparatus, as exemplarily shown in FIG.
[0114] The transceiver device 100 includes a transceiver 110 and a circuit 120. In operation, the circuit 120 determines a current geographic cell using a current geographic location of the transceiver device 100 and a mapping relationship between geographic locations and geographic cells. In operation, the transceiver transmits a current identifier indicating the current geographic cell in a registration request message and receives a plurality of first identifiers indicating a plurality of first geographic cells in a registration accept message. The transceiver 110 is controlled by the circuit 120.
[0115] For example, the transceiver apparatus 100 is a UE in an NR network. Therefore, the transceiver 110 and the circuitry 120 may also be referred to as a "UE transceiver" and a "UE circuitry," respectively. However, these terms are used merely to distinguish the transceiver 110 and the circuitry 120 from circuits and transceivers included in other devices, such as a base station 300 or a network entity 200. The transceiver apparatus 100 may also be a terminal service, a relay device, or a communication device of a similar communication system.
[0116] The present disclosure further provides a network entity 200. The network entity 200 includes a transceiver 210 and a circuit 220. The transceiver 210, in operation, receives a current identifier indicating a current geographic cell of the transceiver device 100 in a registration request message. The circuit 220, in operation, determines a plurality of first geographic cells using at least the current geographic cell of the transceiver device 100 and a mapping relationship between the geographic location and the geographic cell. Furthermore, the transceiver, in operation, transmits a plurality of first identifiers indicating the plurality of first geographic cells in a registration accept message. The transceiver 210 is controlled by the circuit 220.
[0117] The transceiver 210 and circuitry 220 are also referred to as a network entity transceiver and network entity circuitry, respectively, to distinguish these units from the transceiver 110 and circuitry 120 of a transceiver device, or the transceiver 310 and circuitry 320 of a base station 300.
[0118] For example, the network entity 200 may be an access and mobility management device in a core network device that implements an access and mobility management function AMF, however, the present disclosure is not limited thereto and the network entity may comprise multiple devices, such as, for example, an access and mobility management device in a core network device and a base station 300.
[0119] Further provided is a base station 300. The base station 300 comprises a transceiver 310 that, in operation, receives a registration request message including a current identifier indicating a current geographical cell of the transceiver apparatus 100. Further, the transceiver 310 is capable of transmitting the registration request message to the network entity 200 and receiving a registration accept message including a plurality of first identifiers indicating a plurality of first geographical cells. Further, the transceiver 310, in operation, transmits the registration accept message to the transceiver apparatus 100. The transceiver 310 is controlled by a circuit 320.
[0120] For example, the base station 300 is a network node (gNB) in an NR network system or a network node in a similar communication system. The transceiver 310 and circuitry 320 are also referred to as a gNB transceiver and gNB circuitry, respectively, to distinguish these units from other transceivers and circuitry, such as the UE transceiver 110 and UE circuitry 120.
[0121] 9 illustrates the network entity and the base station as separate devices, the present disclosure is not limited thereto, and the network entity 200 may be implemented by the base station 300 itself. In other words, the base station 300 may be the network entity.
[0122] 10 illustrates steps of a method performed by the transceiver device 100 according to one embodiment. In step S10, a current geographical cell is determined using a current geographical location and a mapping relationship between the geographical location and the geographical cell. In step S11, a current identifier indicating the current geographical cell is sent in a registration request message. Further, in step S12, a plurality of first identifiers are received, where the plurality of first identifiers indicate a plurality of first geographical cells.
[0123] 11 illustrates method steps performed by network entity 200 according to one embodiment. In step S20, a current identifier indicating a current geographical cell of transceiver device 100 is received in a registration request message. In step S21, a plurality of first geographical cells are determined using at least the current geographical cell of transceiver device 100 and a mapping relationship between geographical locations and geographical cells. In step S22, a plurality of first identifiers indicating the plurality of first geographical cells are sent in a registration accept message.
[0124] In one embodiment, the definitions of geographical cells may be pre-installed in the transceiver apparatus 100. That is, the mapping relationship between the geographical locations and the geographical cells may be installed within the transceiver apparatus 100. For example, if the transceiver apparatus is a user equipment such as a mobile phone, the mapping relationship may be installed in a memory device such as a SIM (Subscriber Identity Module) or other memory such as a flash memory. In this case, the UE circuitry 120 may access the SIM / memory for the purpose of using the mapping relationship between the geographical locations and the geographical cells.
[0125] In one embodiment, the definition of the geographical cells, i.e., the mapping relationship between the geographical locations and the geographical cells, may be provided to the transceiver apparatus 100 upon initial registration with the network entity 200 (e.g., AMF). In such an embodiment, the transceiver apparatus 100 may need to perform the registration procedure with the network entity 200 twice to complete the registration process.
[0126] The geographical cell definition may be signaled to the transceiver apparatus 100, for example, via RRC signaling (eg, through a SIB1 message).
[0127] The transceiver device 100 may determine its current position on the Earth's surface during a tracking area update procedure (triggered by an event or performed periodically). For this purpose, the transceiver device 100 may use a Global Navigation Satellite System (GNSS) unit, such as a GPS, GLONASS, or Galileo unit. However, the present disclosure is not limited thereto, and the transceiver device may obtain its current position from, for example, a Wi-Fi positioning system.
[0128] Using the obtained location, the transceiver device 100 looks up a mapping relationship between geographical locations and geographical cells and compares its current location with the mapping relationship, thereby determining the current geographical cell of the transceiver device 100. Furthermore, an identifier of the current geographical cell is transmitted to the network entity 200 in a registration request message. This transmission can be performed directly, for example if the network entity 200 is implemented by the base station 300 serving the transceiver device 100, or can be performed indirectly, i.e., the registration request message is transmitted to the network entity 200 via the base station 300 serving the transceiver device 100.
[0129] If the transceiver device 100 cannot obtain its current location information, or can only obtain low-accuracy current location information, or the mapping relationship between the geographical location and the geographical cell is unavailable, the transceiver device 100 shall attempt to obtain the TAC broadcasted by the base station 300 and use the broadcasted TAC to determine the current geographical cell of the transceiver device 100. Note that if the estimated uncertainty of the current location is greater than a threshold, it can be determined that the accuracy of the current location is low.
[0130] 12 shows a transceiver device 100 (UE) located in a geographical cell with identifier "70". That is, the transceiver device 100 has identifier GC 70and further transmits the identifier "70" to the network entity 200.
[0131] The network entity 200 receives the identifier GC 70 12 , the network entity 200 receives a registration request message including the identifier GC , and the network entity 200 uses the received identifier and the mapping relationship between the geographic location and the geographic cell to determine a plurality of geographic cells. In the example shown in FIG. 12 , the network entity 200 receives the identifier GC , and the network entity 200 uses the received identifier and the mapping relationship between the geographic location and the geographic cell to determine a plurality of geographic cells. 61 , G.C. 62 , G.C. 69 , G.C. 70 , G.C. 71 , G.C. 77 , G.C. 78 , G.C. 79 Determine the geographic cell having
[0132] For example, the network entity 200 may determine geographical cells located within a threshold distance from the current geographical cell as the plurality of first geographical cells. In another example, the network entity 200 may determine the current geographical cell and geographical cells adjacent to the current geographical cell as the plurality of first geographical cells. In yet another example, the network entity 200 may refer to a correspondence table indicating a correspondence relationship between the current geographical cell and the associated plurality of first geographical cells.
[0133] For example, the plurality of first geographic cells may include the current geographic cell. In another example, the plurality of first geographic cells may include only geographic cells located within a single country.
[0134] The network entity 200 transmits a plurality of first identifiers indicating a plurality of first geographical cells to the transceiver apparatus 100. For example, in the example shown in FIG. 12, the network entity transmits a list {GC 61 , G.C. 62 , G.C. 69 , G.C. 70 , G.C. 71, G.C. 77 , G.C. 78 , G.C. 79} can be transmitted to the transceiver device 100.
[0135] The plurality of first geographical cells form a tracking area (TA) registered for the transceiver apparatus 100. In other words, the tracking area registered for the transceiver apparatus 100 can be represented by a plurality of first identifiers, each of which indicates a particular geographical cell. That is, instead of a tracking area identifier (TAI), a plurality of first identifiers can be transmitted to the transceiver apparatus 200. The shape and size of the tracking area are therefore determined by the selection of the plurality of geographical cells.
[0136] The tracking area itself can be considered to represent a concept used by the network entity 200, since indicators such as the TAI or TAC are not necessarily broadcast or transmitted by the network entity 200 and / or the base station 300.
[0137] As long as the transceiver device 100 remains within the area indicated by the plurality of first identifiers, it does not need to perform the TAU procedure. In other words, when the transceiver device determines its location, it can determine whether the current identifier indicating the current geographical cell is included in the plurality of first geographical identifiers. Furthermore, if the (newly determined) current identifier is included in the plurality of first identifiers, the TAU procedure is not performed. However, if the (newly determined) current identifier is not included in the plurality of first identifiers, the transceiver device performs the TAU procedure, i.e., the transceiver device transmits the current identifier indicating the current geographical cell in a registration request message. Thereafter, the network entity 200 can determine another set of first identifiers and transmit this updated plurality of first identifiers to the transceiver device 100.
[0138] In the example shown in FIG. 12, the UE receives a plurality of first identifiers {GC61 , G.C. 62 , G.C. 69 , G.C. 70 , G.C. 71 , G.C. 77 , G.C. 78 , G.C. 79 If it is determined that it is not included in the shaded area indicated by}, it sends a registration request message.
[0139] Additionally or alternatively, the transceiver apparatus 100 may transmit the current identifier when the current identifier is changed. In other words, the transceiver apparatus 100 may determine its own current identifier, and if the newly determined current identifier is different from the previous current identifier, the transceiver apparatus 100 may transmit the new current identifier to the network entity 200. That is, even if the new current identifier is included in the plurality of first identifiers, the transceiver apparatus informs the network entity of its new current geographical cell.
[0140] When the current geographical cell has changed but the new current geographical cell is among the plurality of first geographical cells, whether the transceiver apparatus 100 transmits a registration request message indicating the new current geographical cell can be determined based on an indicator signaled to the transceiver apparatus 100. This indicator can be included in the registration accept message. This indicator can be referred to as a "TAU trigger event indicator (TA or GC)." If the indicator indicates "TA," the UE performs a TAU procedure when leaving an area indicated by the plurality of first identifiers. If the indicator indicates "GC," the UE performs a TAU procedure when the current geographical cell has changed. The indicator can be implemented, for example, by a single bit value. Alternatively, the presence of the indicator can indicate that a TAU procedure should be performed when the current cell has changed, and the absence of the indicator can indicate that a TAU procedure should be performed when leaving an area defined by the plurality of first identifiers.
[0141] According to the above, a mapping relationship between geographic cells and geographic locations on the Earth's surface is used to configure a TA for the transceiver device 100. This mapping relationship can be common to multiple transceiver devices or all transceiver devices in a network system. This may enable configuring and / or adjusting a TA for each transceiver device in a manner that requires less signaling overhead, since the definition of a geographic cell may either be hard-coded into the transceiver device or signaled only once.
[0142] During a paging procedure, a network entity 200 implementing an Access and Mobility Management Function (AMF) can determine to which base station 300 (e.g., gNB) a paging message should be sent. For this purpose, the network entity 200 can send the paging message to all base stations 300 connected to the network entity 200. In this way, the base station 300 itself can decide whether to send a paging message.
[0143] Network entity 200 may determine one or more base stations from among a plurality of base stations connected to network entity 200. For example, network entity 200 may determine base stations responsible for serving an area defined by a plurality of first identifiers (i.e., a tracking area including a plurality of first geographic cells). Network entity 200 may then transmit a paging message to the determined one or more base stations.
[0144] For this purpose, the network entity 200 can utilize a mapping relationship between the coverage areas of the base stations and the geographical cells. This mapping relationship can be notified to the network entity only once for base stations with stationary, i.e. non-moving, coverage areas. In case of moving coverage areas / radio cells (as can happen when base stations are located on satellites), the network entity 200 can be notified of the current coverage area of the respective base station, for example periodically or by pre-calculated coverage area behavior over time.
[0145] In the case of a stationary base station transparent relay satellite that does not move, the mapping relationship may be fixed.
[0146] In the above framework, in one embodiment, the network entity is capable of determining a geographical cell from among a plurality of first geographical cells, a subset of these geographical cells being intended to be used for paging the transceiver device, and further transmitting a second identifier indicating the determined geographical cell to the base station.
[0147] The list of transmitted second identifiers may, for example, be equal to the list of first identifiers. In other words, the network entity 200 may determine that the entire configured tracking area (plurality of first geographical cells) should be used to page the transceiver device. Alternatively, the second identifiers may not include all of the first identifiers, but only a subset of the first identifiers. In other words, the network entity 200 may determine one or more second identifiers from among the plurality of first identifiers, and the second geographical cells corresponding to the second identifiers should be used for paging.
[0148] To enable the network entity 200 to determine the second geographic cell as a subset of the plurality of first geographic cells, the transceiver apparatus 100 may be configured to transmit a location indicator, e.g., obtained from a GNSS unit, indicating the current location of the transceiver apparatus 200. This transmission may be performed, for example, periodically. Additionally or alternatively, the transceiver apparatus 200 may be configured to report a current identifier of the current geographic cell, for example, as soon as it is detected that the transceiver apparatus 200 has changed its current geographic cell, as further described above.
[0149] To determine the second geographical cell, the network entity 200 may use the current geographical cell of the transceiver device 100 or the current geographical location of the transceiver device 100 .
[0150] For example, when using the current geographical cell of the transceiver device 100, the network entity 200 may determine only the current geographical cell, the current geographical cell and adjacent geographical cells, or the current geographical cell and geographical cells within a threshold distance from the current geographical cell as the second geographical cell indicated by one or more second identifiers. However, the network entity 200 may determine the second geographical cell in a different manner.
[0151] For example, when using the current geographic location of the transceiver device 100, the network entity 200 may determine only the geographic cell that includes the current geographic location of the transceiver device, this geographic cell and adjacent geographic cells, or this geographic cell and geographic cells within a threshold distance from the current geographic location of the transceiver device as the second geographic cell indicated by one or more second identifiers. However, the network entity 200 may determine the second geographic cell in a different manner.
[0152] The network entity 200 can inform the base station of the TAI list when delivering the paging message, in which case the TAI and the definition of the TA (the correspondence between the geographical cell and the TA) can be signaled to the base station in advance.
[0153] During a paging procedure for paging a UE (transceiver device), a gNB (base station) receives a paging message from a network entity 200 including a list of geographical cells to be used for paging, i.e., one or more second identifiers indicating one or more second geographical cells, and then maps the geographical cells to its current physical radio beams and / or cells served by the gNB. The gNB then broadcasts the paging message using the determined beams / cells. For this purpose, the gNB can use the mapping relationship between the second geographical cells and the coverage areas of the served radio beams and / or radio cells.
[0154] Below, three examples for determining a radio beam / radio cell using this mapping relationship and the list of second identifiers will be described with reference to FIG.
[0155] 13 shows the coverage areas of a satellite-based base station that overlap the geographical cells that make up the tracking area assigned to a UE (an example of a transceiver unit 100). Similar to the example shown in FIG. 12, the UE is currently located in geographical cell GC 70 Located within the list {GC 61 , G.C. 62 , G.C. 69 , G.C. 70 , G.C. 71 , G.C. 77 , G.C. 78 , G.C. 79} is assigned to the UE. The AMF (an example of a network entity 200) is connected to four base stations gNB1, gNB2, gNB3, and gNB4 (an example of a base station 300).
[0156] Coverage areas that overlap with the list of geographic cells above are shown with dashed lines. For clarity, the figure does not show the coverage areas of other radio beams / radio cells provided by the gNB. Each gNB may provide one or more radio beams / radio cells. For example, in the example shown in the figure, gNB1 provides at least the two radio beams / radio cells shown.
[0157] In the first example, when AMF tries to page the UE, it checks whether gNB1 is currently 61 , G.C. 69 , G.C. 77 , G.C. 78 , G.C. 79}, and gNB2 is currently 62 , G.C. 70 , G.C. 71}. Therefore, the AMF determines that only gNB1 and gNB2 are serving beams / cells that overlap the first geographical cell. Furthermore, the AMF determines that a second identifier {GC 61 , G.C. 62 , G.C. 69 , G.C. 70 , G.C. 71 , G.C. 77 , G.C. 78 , G.C. 79}. After receiving the paging message from the AMF, gNB1 and gNB2 determine their own radio beams / radio cells that overlap the indicated geographical cell, and broadcast a paging message for paging the UE using the determined radio beams / radio cells. Specifically, gNB1 broadcasts a paging message using only the two radio beams / radio cells shown to page the UE. gNB2 broadcasts a paging message using the radio beams / radio cells shown by the dotted lines to page the UE.
[0158] In the second example, when the AMF attempts to page the UE, a paging message is sent to gNB1, gNB2, gNB3, and gNB4, i.e., all gNBs connected to the AMF. The paging message includes one or more second identifiers, as shown in the first example above. Each gNB determines its own radio beam / radio cell that overlaps the indicated geographical cell and broadcasts a paging message using the determined radio beam / radio cell to page the UE. Specifically, gNB1 broadcasts a paging message using only the two radio beams / radio cells shown to page the UE. gNB2 broadcasts a paging message using the radio beams / radio cells shown by the dotted lines to page the UE. After determining that they do not provide radio beams / radio cells that overlap any of the indicated second geographical cells, gNB3 and gNB4 do not broadcast a paging message to page the UE.
[0159] In a third example, when attempting to page a UE, the AMF determines a second set of geographical cells using either the UE's current location or the UE's current geographical cells. The current location and / or current geographical cells may be transmitted in advance from the UE to the AMF by a location indicator. This transmission may be performed by the UE periodically, repeatedly, and / or upon detecting a change in the current geographical cell. For example, the AMF may transmit a second set of geographical cells using {GC 70} as one or more second geographic identifiers and send a paging message to gNB1, gNB2, gNB3, and gNB4. The paging message includes the second identifier {GC 70}. Upon receiving the paging message, each gNB determines its own radio cell / radio beam corresponding to the geographical cell indicated in the paging message and pages the UE using the determined radio beam / radio cell. Specifically, in the illustrated example, gNB2 broadcasts the paging message using the indicated radio beam / radio cell for the purpose of paging the UE. gNB1, gNB3, and gNB4 broadcast the paging message using the indicated second geographical cell (i.e., GC 70 ) and therefore does not broadcast paging messages.
[0160] FIG. 14 illustrates steps of a method performed by a base station according to one embodiment. In step S30, the base station serves a radio cell using multiple beams. In step S31, a first paging message is received. The paging message includes one or more second identifiers indicating one or more second geographical cells. In step S32, one or more beams are determined using the indicated second geographical identifiers / second geographical cells and a mapping relationship between the one or more second geographical cells and the coverage areas of the multiple beams. Further, in step S33, a second paging message is transmitted using the determined one or more beams. For example, the second paging message is transmitted using only the determined one or more beams.
[0161] FIG. 15 illustrates method steps performed by a transceiver device (eg, a UE) according to one embodiment.
[0162] As shown in step S100, the UE is in CM_CONNECTED and is provided with definitions of geographical cells. For example, the UE may be pre-configured with definitions of geographical cells (i.e., mapping relationships between geographical cells and geographical locations on the Earth's surface), or the definitions of geographical cells may be signaled by RRC. In step S110, the UE determines its current geographical cell using its current geographical location. For example, the UE may obtain its current location from a GNSS unit and determine its current geographical cell using the mapping relationships between geographical cells and geographical locations.
[0163] In step S120, the UE sends a registration request message to a network entity (e.g., AMF). The registration request message includes a current identifier indicating a current geographical cell. Further, in step S130, the UE receives a registration accept message from the AMF, the registration request message including a list of first identifiers indicating a plurality of first geographical cells.
[0164] In step S140, it is determined whether the UE is in CM_IDLE. If it is determined that the UE is not in / has not transitioned to CM_IDLE ("NO" in step S140), the UE determines in step S150 whether it has left the area defined by the plurality of first identifiers (i.e., the plurality of first geographical cells). If the UE has not left this area ("NO" in step S150), the method proceeds again to step S140 because the UE may be instructed by the network to transition to RRC_IDLE / CM_IDLE at any time. On the other hand, if the UE has left the area defined by the plurality of first geographical cells ("YES" in step S150), the method proceeds to step S120.
[0165] If it is determined that the UE is in CM_IDLE ("YES" in step S140), in step S160, the UE monitors paging occasions to receive a paging message from the AMF. In step S170, it is determined whether the UE is being paged by the AMF. If the UE is not being paged by the AMF ("NO" in step S170), it is determined in step S180 whether the UE has left the area defined by a plurality of first geographical cells. If the UE has not left this area ("NO" in step S180), the method proceeds to step S140 because the UE may have uplink traffic at any time and will attempt to transition to RRC_CONNECTED / CM_CONNECTED. On the other hand, if the UE has left this area ("YES" in step S180), in step S120, the UE sends a registration request to the AMF.
[0166] If the UE is paged in step S170 ("YES" in step S170), the UE sends a service request message to the AMF to receive downlink (DL) data from the network in step S190. For example, the UE may receive scheduling information for scheduling resources for data transmission. After receiving the DL data, the method again proceeds to step S140.
[0167] FIG. 16 illustrates method steps performed by a network entity (e.g., AMF) according to one embodiment.
[0168] In step S200, the AMF is provided with a definition of a geographical cell. For example, the AMF may be pre-configured with a definition of a geographical cell (i.e., a mapping relationship between a geographical cell and a geographical location on the Earth's surface). Further, in step S210, the AMF receives a registration request message from a transceiver device (e.g., a UE) including a current identifier indicating the UE's current geographical cell.
[0169] In step S220, the AMF determines a list of first identifiers indicating multiple geographical cells. In other words, the AMF determines a tracking area consisting of multiple first geographical cells to be registered for the UE. The multiple first geographical cells include the UE's current geographical cell. In step S230, the AMF sends a registration accept message to the UE, where the registration accept message includes multiple first identifiers indicating the multiple first geographical cells.
[0170] In step S240, it is determined whether the UE has been instructed by the AMF to enter CM_IDLE. If the UE has not been instructed to enter CM_IDLE ("NO" in step S240), it is determined in step S250 whether a registration request message has been received from the UE. If the AMF has not received a registration request message from the UE ("NO" in step S250), the method proceeds to step S240. However, if the AMF has received a registration request message from the UE ("YES" in step S250), the method proceeds to step S210.
[0171] If the AMF instructs the UE to enter CM_IDL ("YES" in step S240), it is determined in step S260 whether there is downlink data to be transmitted to the UE. If there is no data to be transmitted to the UE ("NO" in step S260), it is determined in step S270 whether a registration request message has been received from the UE. If a registration request message has not been received ("NO" in step S270), the method proceeds to step S260. If a registration request message has been received from the UE ("YES" in step S270), the method proceeds to step S210.
[0172] On the other hand, if it is determined in step S260 that there is data to be transmitted to the UE ("YES" in step S260), the AMF transmits a paging message to a gNB having a coverage area currently mapped to any one of the first geographical cells that constitute the tracking area assigned to the UE. The paging message includes a list of identifiers indicating the geographical cells to be used to page the UE. For example, the list of identifiers can be a list of first identifiers or a list of second identifiers, as further described above.
[0173] After sending the paging message, the AMF receives a service request message from the UE and responds with a service accept message in step S290. After step S290, the method proceeds to step S240.
[0174] FIG. 17 illustrates method steps performed by a base station (e.g., a gNB) according to one embodiment.
[0175] In step S300, the gNB is provided with a definition of a geographical cell. For example, the gNB may be pre-configured with the definition of the geographical cell (i.e., the mapping relationship between the geographical cell and a geographical location on the Earth's surface) or the definition of the geographical cell may be signaled.
[0176] In step S310, it is determined whether a paging message is received from the AMF. The paging message may include one or more second identifiers indicating one or more second geographical cells used to page the UE. If a paging message is not received from the AMF ("NO" in step S310), step S310 is repeatedly performed. However, if a paging message is received by the base station from the AMF ("YES" in step S310), the method proceeds to step S320.
[0177] In step S320, the gNB selects a physical radio beam / radio cell that currently covers any one of the geographical cells indicated in the paging message.
[0178] In step S330, the gNB broadcasts the paging message using the physical radio beam / radio cell selected in step S320, after which the method again proceeds to step S310.
[0179] Table 1 below shows an excerpt of the contents of a registration request message defined in Section 8.2.6 of Non-Patent Document 19, modified according to an embodiment of the present disclosure. [Table 1] [Table 2]
[0180] Changes to the registration requirements in Non-Patent Document 19 are shown in bold in Table 1. References in the table are to sections in Non-Patent Document 19.
[0181] Unlike the registration request described in Non-Patent Document 19, the registration request message according to this embodiment does not include the last visited registered TAI. Instead, the last visited GCI, i.e., the identifier of the last visited geographical cell, is included. Furthermore, in one embodiment, the registration request message may include a GNSS report container, which may include a location indicator indicating the current location of the transceiver device.
[0182] Table 2 below shows an excerpt of the contents of the registration acceptance message defined in Section 8.2.7 of Non-Patent Document 19, modified according to an embodiment of the present disclosure. [Table 3] [Table 4]
[0183] The changes to the registration consent in Non-Patent Document 19 are shown in bold in Table 2. The references in the table are to sections in Non-Patent Document 19.
[0184] Unlike the registration accept described in Non-Patent Document 19, the registration accept message according to this embodiment includes a "GCI list" indicating a plurality of first identifiers indicating a plurality of first geographical cells. Furthermore, the registration accept message may include a "TAU trigger event indication information (TA or GC)" (indicator) indicating whether the transceiver device should send a registration request message when the current geographical cell is changed. Furthermore, in one embodiment, the registration accept message may include a "GNSS reporting indication information" indicating whether the transceiver device should report its GNSS location information to the AMF.
[0185] Table 3 below shows an excerpt from the content of the paging message for transmission from AMF to gNB, as defined in Section 9.2.4.1 of Non-Patent Document 20, modified according to an embodiment of the present disclosure.
[0186] The changes to the paging messages in Non-Patent Document 20 are shown in bold in Table 3. The references in the table are to sections in Non-Patent Document 20.
[0187] Unlike the paging message described in non-patent document 20, the paging message according to this embodiment does not include a TAI list for paging, but a list of geographical cells to be used for paging the UE ("GCI list for paging", "GCI list for paging items", "GCI"). [Table 5]
[0188] While the TAI may be individually assigned to a UE, the GCI (Geographical Cell Identifier) may be common to all transceiver devices. Furthermore, while the TAI is composed of a PLMN ID and a TAC, the GCI may be valid globally alone. That is, the Geographical Cell Identifier may be uniquely assigned to a geographical cell. Furthermore, while TAs may overlap with each other, the geographical cells according to the present disclosure do not overlap with each other according to an embodiment. For example, the geographical cells may be statically configured.
[0189] The above description of the embodiments or examples is also applicable to a UE in RRC_INACTIVE state, in which case the Tracking Area (TA) is replaced by a RAN-Based Notification Area (RNA), the Network Entity (AMF) is replaced by a base station (gNB), the Registration Request message is replaced by a RRCResumeRequest, and the Registration Accept message is replaced by a RRCRelease message.
[0190] The following summarizes embodiments of the present disclosure.
[0191] Provided is a transceiver device comprising: a circuit that, during operation, determines a current geographic cell using a current geographic location of the transceiver device and a mapping relationship between the geographic location and the geographic cell; and a transceiver that, during operation, sends a current identifier indicating the current geographic cell in a registration request message and receives a plurality of first identifiers indicating a plurality of first geographic cells in a registration accept message.
[0192] In some embodiments, a geographic cell is a non-overlapping, stationary region defined on the Earth's surface relative to at least one geographic location on the Earth's surface.
[0193] In some embodiments, the circuitry, during operation, obtains its current position using a Global Navigation Satellite System (GNSS) unit.
[0194] For example, during operation, the circuit repeatedly obtains its current position using the GNSS unit.
[0195] In some embodiments, the transceiver device comprises a GNSS unit.
[0196] In some embodiments, the plurality of first identifiers indicating the plurality of first geographic cells includes a current identifier indicating a current geographic cell.
[0197] In some embodiments, a mapping relationship between a geographic location and a geographic cell associates a geographic location on the Earth's surface with one geographic cell.
[0198] In some embodiments, the circuitry repeatedly determines the current geographic cell during operation.
[0199] In some embodiments, the circuitry, in operation, determines whether the current geographic cell is still included in the plurality of first geographic cells, and controls the transceiver to transmit a registration request message when the current geographic cell is no longer included in the plurality of first geographic cells.
[0200] In some embodiments, the registration accept message includes an indicator that a registration request message should be transmitted by the transceiver device when the current geographic cell changes, and the circuitry, in operation, controls the transceiver to transmit a registration request message when the current geographic cell changes.
[0201] In some embodiments, the registration accept message includes an indicator indicating whether a registration request message should be transmitted by the transceiver device when the current geographic cell is changed under circumstances where the current geographic cell is still included in the plurality of first geographic cells, and the circuitry, in operation, controls the transceiver to transmit a registration request message when the current geographic cell is changed if the indicator indicates that a registration request message should be transmitted by the transceiver device when the current geographic cell is changed under circumstances where the current geographic cell is still included in the plurality of first geographic cells.
[0202] In some embodiments, the transceiver, when operational, transmits a current identifier indicating the current geographic cell or a location indicator indicating the current geographic location of the transceiver device.
[0203] For example, during operation, the transceiver repeatedly transmits a current identifier indicating the current geographic cell or a location indicator indicating the current geographic location of the transceiver device.
[0204] The present invention further provides a method including the steps of: determining a current geographical cell using a current geographical location of the transceiver device and a mapping relationship between the geographical location and the geographical cell; sending a current identifier indicating the current geographical cell in a registration request message; and receiving a plurality of first identifiers indicating a plurality of first geographical cells in a registration accept message.
[0205] In some embodiments, the method is performed by a transceiver device.
[0206] In some embodiments, a geographic cell is a non-overlapping, stationary region defined on the Earth's surface relative to at least one geographic location on the Earth's surface.
[0207] In some embodiments, the method includes obtaining the current position using a Global Navigation Satellite System (GNSS) unit.
[0208] For example, the current position is repeatedly obtained using a GNSS unit.
[0209] In some embodiments, the plurality of first identifiers indicating the plurality of first geographic cells includes a current identifier indicating a current geographic cell.
[0210] In some embodiments, a mapping relationship between a geographic location and a geographic cell associates a geographic location on the Earth's surface with one geographic cell.
[0211] In some embodiments, the current geographic cell is determined iteratively.
[0212] In some embodiments, the method includes determining whether the current geographic cell is still included in the plurality of first geographic cells, and transmitting a registration request message when the current geographic cell is no longer included in the plurality of first geographic cells.
[0213] In some embodiments, the registration accept message includes an indicator that a registration request message should be sent when the current geographic cell changes, and the method includes sending a registration request message when the current geographic cell changes.
[0214] In some embodiments, the registration accept message includes an indicator indicating whether a registration request message should be sent when the current geographic cell is changed in a situation where the current geographic cell is still included in the plurality of first geographic cells, and the method includes sending a registration request message when the current geographic cell is changed if the indicator indicates that a registration request message should be sent when the current geographic cell is changed in a situation where the current geographic cell is still included in the plurality of first geographic cells.
[0215] In some embodiments, the method includes transmitting a current identifier indicating a current geographic cell or a location indicator indicating a current geographic location.
[0216] For example, a current identifier indicating the current geographical cell or a location indicator indicating the current geographical location is repeatedly transmitted.
[0217] The present invention further provides a network entity including: a transceiver that, when operated, receives a current identifier indicating a current geographic cell of the transceiver device in a registration request message and sends a plurality of first identifiers indicating the plurality of first geographic cells in a registration accept message; and circuitry that, when operated, determines the plurality of first geographic cells using at least the current geographic cell of the transceiver device and a mapping relationship between the geographic location and the geographic cells.
[0218] For example, a network entity may be implemented by a network system including one or more devices, by an access and mobility management device, or by a base station.
[0219] In some embodiments, the registration accept message includes an indicator that a registration request message should be sent by the transceiver device when the current geographic cell changes.
[0220] In some embodiments, the registration accept message includes an indicator indicating whether a registration request message should be sent by the transceiver device when the current geographic cell is changed in a situation where the current geographic cell is still included in the plurality of first geographic cells.
[0221] In some embodiments, in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among a plurality of first geographic cells, and the transceiver, in operation, transmits one or more second identifiers in a first paging message that indicate the one or more second geographic cells.
[0222] In some embodiments, the transceiver, in operation, receives a current identifier indicating a current geographic cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among the plurality of first geographic cells using the current geographic cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographic location and the geographic cell.
[0223] In some embodiments, the transceiver, in operation, repeatedly receives a current identifier indicating a current geographic cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among the plurality of first geographic cells using the current geographic cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographic location and the geographic cell.
[0224] In some embodiments, the transceiver, in operation, transmits a registration accept message including an indicator indicating that a registration request message should be transmitted by the transceiver device when the current geographic cell is changed, and then does not receive a registration request message, and in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among the plurality of first geographic cells.
[0225] In some embodiments, in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more base stations from among the plurality of base stations using one or more second geographical cells and a mapping relationship between coverage areas of the plurality of base stations and the one or more second geographical cells, and the transceiver, in operation, transmits a first paging message to the determined one or more base stations.
[0226] The method further includes receiving a current identifier indicating a current geographical cell of the transceiver device in a registration request message; determining a plurality of first geographical cells using at least the current geographical cell of the transceiver device and a mapping relationship between the geographical location and the geographical cells; and transmitting a plurality of first identifiers indicating the plurality of first geographical cells in a registration accept message.
[0227] In some embodiments, the method is performed by a network entity.
[0228] For example, a network entity may be implemented by a network system including one or more devices, by an access and mobility management device, or by a base station.
[0229] In some embodiments, the registration accept message includes an indicator that a registration request message should be sent by the transceiver device when the current geographic cell changes.
[0230] In some embodiments, the registration accept message includes an indicator indicating whether a registration request message should be sent by the transceiver device when the current geographic cell is changed in a situation where the current geographic cell is still included in the plurality of first geographic cells.
[0231] In some embodiments, the method includes, in a paging procedure for paging the transceiver device, determining one or more second geographical cells from among a plurality of first geographical cells, and transmitting one or more second identifiers indicating the one or more second geographical cells in a first paging message.
[0232] In some embodiments, the method includes receiving a current identifier indicating a current geographical cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and determining one or more second geographical cells from among a plurality of first geographical cells using the current geographical cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographical location and the geographical cell in a paging procedure for paging the transceiver device.
[0233] In some embodiments, the method includes repeatedly receiving a current identifier indicating a current geographical cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and determining one or more second geographical cells from among a plurality of first geographical cells using the current geographical cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographical location and the geographical cell in a paging procedure for paging the transceiver device.
[0234] In some embodiments, the method includes the steps of: sending a registration accept message including an indicator indicating that a registration request message should be sent by the transceiver device when the current geographic cell is changed, and then not receiving a registration request message; and determining one or more second geographic cells from among the plurality of first geographic cells in a paging procedure for paging the transceiver device.
[0235] In some embodiments, the method includes, in a paging procedure for paging the transceiver device, determining one or more base stations from among the plurality of base stations using one or more second geographical cells and a mapping relationship between coverage areas of the plurality of base stations and the one or more second geographical cells, and transmitting a first paging message to the determined one or more base stations.
[0236] Further provided is a base station comprising: a transceiver that, in operation, serves a wireless cell using a plurality of beams and receives a first paging message including one or more second identifiers indicating one or more second geographic cells; and circuitry that, in operation, controls the transceiver to determine one or more beams using the one or more second geographic cells and a mapping relationship between the one or more second geographic cells and the coverage areas of the plurality of beams, and to transmit the second paging message using the determined one or more beams.
[0237] In some embodiments, the base station is configured to operate on a satellite.
[0238] The present invention further provides a method including the steps of: serving a radio cell using a plurality of beams; receiving a first paging message including one or more second identifiers indicating one or more second geographical cells; determining one or more beams using the one or more second geographical cells and a mapping relationship between the one or more second geographical cells and the coverage areas of the plurality of beams; and transmitting the second paging message using the determined one or more beams.
[0239] In some embodiments, the method is performed by a base station.
[0240] In some embodiments, the base station is configured to operate on a satellite.
[0241] The present invention further provides a method performed by a network system including a transceiver device and a network entity, the method including: determining, by the transceiver device, a current geographical cell using a current geographical location of the transceiver device and a mapping relationship between the geographical location and the geographical cells; transmitting, from the transceiver device to the network entity, a current identifier indicating the current geographical cell in a registration request message; determining, by the network entity, a plurality of first geographical cells using at least the current geographical cell of the transceiver device and the mapping relationship between the geographical location and the geographical cells; and transmitting, from the network entity to the transceiver device, a plurality of first identifiers indicating the plurality of first geographical cells in a registration accept message.
[0242] For example, the network entity is any one of the network entities described above or embodiments thereof.
[0243] For example, the transceiver device is any one of the transceiver devices described above or the embodiments thereof.
[0244] Further provided is a transceiver device comprising: a circuit that, during operation, determines a current geographical cell using a current geographical location of the transceiver device and a mapping relationship between the geographical location and the geographical cell; and a transceiver that, during operation, sends a current identifier indicating the current geographical cell in an RRC resumption request message and receives a plurality of first identifiers indicating a plurality of first geographical cells in an RRC release message.
[0245] In some embodiments, a geographic cell is a non-overlapping, stationary region defined on the Earth's surface relative to at least one geographic location on the Earth's surface.
[0246] In some embodiments, the circuitry, during operation, obtains its current position using a Global Navigation Satellite System (GNSS) unit.
[0247] For example, during operation, the circuit repeatedly obtains its current position using the GNSS unit.
[0248] In some embodiments, the transceiver device comprises a GNSS unit.
[0249] In some embodiments, the plurality of first identifiers indicating the plurality of first geographic cells includes a current identifier indicating a current geographic cell.
[0250] In some embodiments, a mapping relationship between a geographic location and a geographic cell associates a geographic location on the Earth's surface with one geographic cell.
[0251] In some embodiments, the circuitry repeatedly determines the current geographic cell during operation.
[0252] In some embodiments, the circuitry, in operation, determines whether the current geographical cell is still included in the plurality of first geographical cells, and controls the transceiver to transmit an RRC resume request message when the current geographical cell is no longer included in the plurality of first geographical cells.
[0253] In some embodiments, the RRC release message includes an indicator indicating that an RRC resume request message should be transmitted by the transceiver apparatus when the current geographical cell is changed, and the circuitry, in operation, controls the transceiver apparatus to transmit an RRC resume request message when the current geographical cell is changed.
[0254] In some embodiments, the RRC release message includes an indicator indicating whether an RRC resume request message should be transmitted by the transceiver apparatus when the current geographical cell is changed under circumstances where the current geographical cell is still included in the plurality of first geographical cells, and the circuitry, in operation, controls the transceiver to transmit an RRC resume request message when the current geographical cell is changed if the indicator indicates that an RRC resume request message should be transmitted by the transceiver apparatus when the current geographical cell is changed under circumstances where the current geographical cell is still included in the plurality of first geographical cells.
[0255] In some embodiments, the transceiver, when operational, transmits a current identifier indicating the current geographic cell or a location indicator indicating the current geographic location of the transceiver device.
[0256] For example, during operation, the transceiver repeatedly transmits a current identifier indicating the current geographic cell or a location indicator indicating the current geographic location of the transceiver device.
[0257] The present invention further provides a method including the steps of: determining a current geographical cell using a current geographical location of the transceiver device and a mapping relationship between the geographical location and the geographical cell; sending a current identifier indicating the current geographical cell in an RRC resumption request message; and receiving a plurality of first identifiers indicating a plurality of first geographical cells in an RRC release message.
[0258] In some embodiments, the method is performed by a transceiver device.
[0259] In some embodiments, a geographic cell is a non-overlapping, stationary region defined on the Earth's surface relative to at least one geographic location on the Earth's surface.
[0260] In some embodiments, the method includes obtaining the current position using a Global Navigation Satellite System (GNSS) unit.
[0261] For example, the current position is repeatedly obtained using a GNSS unit.
[0262] In some embodiments, the plurality of first identifiers indicating the plurality of first geographic cells includes a current identifier indicating a current geographic cell.
[0263] In some embodiments, a mapping relationship between a geographic location and a geographic cell associates a geographic location on the Earth's surface with one geographic cell.
[0264] In some embodiments, the current geographic cell is determined iteratively.
[0265] In some embodiments, the method includes determining whether the current geographical cell is still included in the plurality of first geographical cells, and transmitting an RRC resume request message when the current geographical cell is no longer included in the plurality of first geographical cells.
[0266] In some embodiments, the RRC release message includes an indicator indicating that an RRC resume request message should be sent when the current geographical cell is changed, and the method includes sending an RRC resume request message when the current geographical cell is changed.
[0267] In some embodiments, the RRC release message includes an indicator indicating whether an RRC resumption request message should be sent when the current geographical cell is changed in a situation where the current geographical cell is still included in the plurality of first geographical cells, and the method includes the step of sending a registration request message when the current geographical cell is changed if the indicator indicates that a registration request message should be sent when the current geographical cell is changed in a situation where the current geographical cell is still included in the plurality of first geographical cells.
[0268] In some embodiments, the method includes transmitting a current identifier indicating a current geographic cell or a location indicator indicating a current geographic location.
[0269] For example, a current identifier indicating the current geographical cell or a location indicator indicating the current geographical location is repeatedly transmitted.
[0270] Further provided is a base station comprising: a transceiver that, during operation, receives a current identifier indicating a current geographical cell of the transceiver device in an RRC Resume Request message and sends a plurality of first identifiers indicating a plurality of first geographical cells in an RRC Release message; and circuitry that, during operation, determines the plurality of first geographical cells using at least the current geographical cell of the transceiver device and a mapping relationship between the geographical location and the geographical cells.
[0271] In some embodiments, the RRC release message includes an indicator that indicates that an RRC resume request message should be sent by the transceiver device when the current geographical cell is changed.
[0272] In some embodiments, the RRC release message includes an indicator indicating whether an RRC resume request message should be sent by the transceiver apparatus when the current geographical cell is changed in a situation where the current geographical cell is still included in the plurality of first geographical cells.
[0273] In some embodiments, in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among a plurality of first geographic cells, and the transceiver, in operation, transmits one or more second identifiers in a first paging message that indicate the one or more second geographic cells.
[0274] In some embodiments, the transceiver, in operation, receives a current identifier indicating a current geographic cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among the plurality of first geographic cells using the current geographic cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographic location and the geographic cell.
[0275] In some embodiments, the transceiver, in operation, repeatedly receives a current identifier indicating a current geographic cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among the plurality of first geographic cells using the current geographic cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographic location and the geographic cell.
[0276] In some embodiments, the transceiver, in operation, transmits an RRC release message including an indicator indicating that an RRC resumption request message should be transmitted by the transceiver device when the current geographic cell is changed, and then does not receive an RRC resumption request message, and in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among the plurality of first geographic cells.
[0277] In some embodiments, in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more base stations from among the plurality of base stations using one or more second geographical cells and a mapping relationship between coverage areas of the plurality of base stations and the one or more second geographical cells, and the transceiver, in operation, transmits a first paging message to the determined one or more base stations.
[0278] In some embodiments, the transceiver, during operation, serves a wireless cell using multiple beams, and the circuitry, during operation, controls the transceiver to determine the one or more beams using one or more second geographic cells and a mapping relationship between the one or more second geographic cells and the coverage areas of the multiple beams, and to transmit a paging message using the determined one or more beams.
[0279] In some embodiments, the base station is configured to operate on a satellite.
[0280] The present invention further provides a method including the steps of: receiving a current identifier indicating a current geographical cell of the transceiver device in an RRC resumption request message; determining a plurality of first geographical cells using at least the current geographical cell of the transceiver device and a mapping relationship between the geographical location and the geographical cell; and transmitting a plurality of first identifiers indicating the plurality of first geographical cells in an RRC release message.
[0281] In some embodiments, the method is performed by a base station.
[0282] In some embodiments, the RRC release message includes an indicator that indicates that an RRC resume request message should be sent by the transceiver device when the current geographical cell is changed.
[0283] In some embodiments, the RRC release message includes an indicator indicating whether an RRC resume request message should be sent by the transceiver apparatus when the current geographical cell is changed in a situation where the current geographical cell is still included in the plurality of first geographical cells.
[0284] In some embodiments, in a paging procedure for paging a transceiver device, the method includes determining one or more second geographical cells from among a plurality of first geographical cells, and transmitting one or more second identifiers indicating the one or more second geographical cells in a first paging message.
[0285] In some embodiments, the method includes receiving a current identifier indicating a current geographical cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and determining one or more second geographical cells from among a plurality of first geographical cells using the current geographical cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographical location and the geographical cell in a paging procedure for paging the transceiver device.
[0286] In some embodiments, the method includes repeatedly receiving a current identifier indicating a current geographical cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and determining one or more second geographical cells from among a plurality of first geographical cells using the current geographical cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographical location and the geographical cell in a paging procedure for paging the transceiver device.
[0287] In some embodiments, the method includes the steps of: sending an RRC release message including an indicator indicating that an RRC resumption request message should be sent by the transceiver device when the current geographical cell is changed, and then not receiving an RRC resumption request message; and determining one or more second geographical cells from among the plurality of first geographical cells in a paging procedure for paging the transceiver device.
[0288] In some embodiments, the method includes, in a paging procedure for paging the transceiver device, determining one or more base stations from among the plurality of base stations using one or more second geographical cells and a mapping relationship between coverage areas of the plurality of base stations and the one or more second geographical cells, and transmitting a first paging message to the determined one or more base stations.
[0289] In some embodiments, the method includes serving a radio cell using a plurality of beams; determining the one or more beams using one or more second geographical cells and a mapping relationship between the one or more second geographical cells and coverage areas of the plurality of beams; and transmitting a paging message using the determined one or more beams.
[0290] In some embodiments, the base station is configured to operate on a satellite.
[0291] Further provided is a transceiver apparatus comprising: a transceiver that, in operation, receives a plurality of first identifiers in an RRC release message, the first identifiers indicating a plurality of first geographic cells; and circuitry that, in operation, controls the transceiver apparatus to enter an RRC INACTIVE state.
[0292] In some embodiments, the circuitry, in operation, determines the current geographic cell using the current geographic location of the transceiver device and a mapping relationship between the geographic location and the geographic cell.
[0293] In some embodiments, a geographic cell is a non-overlapping, stationary region defined on the Earth's surface relative to at least one geographic location on the Earth's surface.
[0294] In some embodiments, the circuitry, during operation, obtains its current position using a Global Navigation Satellite System (GNSS) unit.
[0295] For example, during operation, the circuit repeatedly obtains its current position using the GNSS unit.
[0296] In some embodiments, the transceiver device comprises a GNSS unit.
[0297] In some embodiments, the plurality of first identifiers indicating the plurality of first geographic cells includes a current identifier indicating a current geographic cell.
[0298] In some embodiments, a mapping relationship between a geographic location and a geographic cell associates a geographic location on the Earth's surface with one geographic cell.
[0299] In some embodiments, the circuitry repeatedly determines the current geographic cell during operation.
[0300] In some embodiments, the circuitry, in operation, determines whether the current geographical cell is still included in the plurality of first geographical cells, and controls the transceiver to transmit an RRC resume request message when the current geographical cell is no longer included in the plurality of first geographical cells.
[0301] In some embodiments, the RRC release message includes an indicator indicating that an RRC resume request message should be transmitted by the transceiver apparatus when the current geographical cell is changed, and the circuitry, in operation, controls the transceiver apparatus to transmit an RRC resume request message when the current geographical cell is changed.
[0302] In some embodiments, the RRC release message includes an indicator indicating whether an RRC resume request message should be transmitted by the transceiver apparatus when the current geographical cell is changed under circumstances where the current geographical cell is still included in the plurality of first geographical cells, and the circuitry, in operation, controls the transceiver to transmit an RRC resume request message when the current geographical cell is changed if the indicator indicates that an RRC resume request message should be transmitted by the transceiver apparatus when the current geographical cell is changed under circumstances where the current geographical cell is still included in the plurality of first geographical cells.
[0303] In some embodiments, the transceiver, when operational, transmits a current identifier indicating the current geographic cell or a location indicator indicating the current geographic location of the transceiver device.
[0304] For example, during operation, the transceiver repeatedly transmits a current identifier indicating the current geographic cell or a location indicator indicating the current geographic location of the transceiver device.
[0305] The method further includes receiving a plurality of first identifiers in an RRC release message, the first identifiers indicating a plurality of first geographic cells, and entering an RRC inactive state.
[0306] In some embodiments, the method is performed by a transceiver device.
[0307] In some embodiments, the method includes determining the current geographic cell using a current geographic location of the transceiver device and a mapping relationship between geographic locations and geographic cells.
[0308] In some embodiments, a geographic cell is a non-overlapping, stationary region defined on the Earth's surface relative to at least one geographic location on the Earth's surface.
[0309] In some embodiments, the method includes obtaining the current position using a Global Navigation Satellite System (GNSS) unit.
[0310] For example, the current position is repeatedly obtained using a GNSS unit.
[0311] In some embodiments, the plurality of first identifiers indicating the plurality of first geographic cells includes a current identifier indicating a current geographic cell.
[0312] In some embodiments, a mapping relationship between a geographic location and a geographic cell associates a geographic location on the Earth's surface with one geographic cell.
[0313] In some embodiments, the current geographic cell is determined iteratively.
[0314] In some embodiments, the method includes determining whether the current geographical cell is still included in the plurality of first geographical cells, and transmitting an RRC resume request message when the current geographical cell is no longer included in the plurality of first geographical cells.
[0315] In some embodiments, the RRC release message includes an indicator indicating that an RRC resume request message should be sent when the current geographical cell is changed, and the method includes sending an RRC resume request message when the current geographical cell is changed.
[0316] In some embodiments, the RRC release message includes an indicator indicating whether an RRC resumption request message should be sent when the current geographical cell is changed in a situation where the current geographical cell is still included in the plurality of first geographical cells, and the method includes the step of sending a registration request message when the current geographical cell is changed if the indicator indicates that a registration request message should be sent when the current geographical cell is changed in a situation where the current geographical cell is still included in the plurality of first geographical cells.
[0317] In some embodiments, the method includes transmitting a current identifier indicating a current geographic cell or a location indicator indicating a current geographic location.
[0318] For example, a current identifier indicating the current geographical cell or a location indicator indicating the current geographical location is repeatedly transmitted.
[0319] Further provided is a base station comprising: a transceiver; and circuitry that, in operation, controls the transceiver to serve transceiver devices in a radio cell served by the base station and determines a plurality of first geographical cells, wherein the transceiver, in operation, transmits a plurality of first identifiers in an RRC release message indicating the plurality of first geographical cells.
[0320] For example, the plurality of first geographic cells covers an area including a coverage area of a base station.
[0321] In some embodiments, the RRC release message includes an indicator that indicates that an RRC resume request message should be sent by the transceiver device when the current geographical cell is changed.
[0322] In some embodiments, the RRC release message includes an indicator indicating whether an RRC resume request message should be sent by the transceiver apparatus when the current geographical cell is changed in a situation where the current geographical cell is still included in the plurality of first geographical cells.
[0323] In some embodiments, in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among a plurality of first geographic cells, and the transceiver, in operation, transmits one or more second identifiers in a first paging message that indicate the one or more second geographic cells.
[0324] In some embodiments, the transceiver, in operation, receives a current identifier indicating a current geographic cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among the plurality of first geographic cells using the current geographic cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographic location and the geographic cell.
[0325] In some embodiments, the transceiver, in operation, repeatedly receives a current identifier indicating a current geographic cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more second geographic cells from among the plurality of first geographic cells using the current geographic cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographic location and the geographic cell.
[0326] In some embodiments, in a paging procedure for paging the transceiver device, the circuitry, in operation, determines one or more base stations from among the plurality of base stations using one or more second geographical cells and a mapping relationship between coverage areas of the plurality of base stations and the one or more second geographical cells, and the transceiver, in operation, transmits a first paging message to the determined one or more base stations.
[0327] In some embodiments, the transceiver, during operation, serves a wireless cell using multiple beams, and the circuitry, during operation, controls the transceiver to determine the one or more beams using one or more second geographic cells and a mapping relationship between the one or more second geographic cells and the coverage areas of the multiple beams, and to transmit a paging message using the determined one or more beams.
[0328] In some embodiments, the base station is configured to operate on a satellite.
[0329] The present invention further provides a method comprising the steps of: serving a transceiver device in a served radio cell; determining a plurality of first geographical cells; and transmitting a plurality of first identifiers indicating the plurality of first geographical cells in an RRC release message.
[0330] For example, the plurality of first geographic cells covers an area including a coverage area of a base station.
[0331] In some embodiments, the method is performed by a base station.
[0332] In some embodiments, the RRC release message includes an indicator that indicates that an RRC resume request message should be sent by the transceiver device when the current geographical cell is changed.
[0333] In some embodiments, the RRC release message includes an indicator indicating whether an RRC resume request message should be sent by the transceiver apparatus when the current geographical cell is changed in a situation where the current geographical cell is still included in the plurality of first geographical cells.
[0334] In some embodiments, in a paging procedure for paging a transceiver device, the method includes determining one or more second geographical cells from among a plurality of first geographical cells, and transmitting one or more second identifiers indicating the one or more second geographical cells in a first paging message.
[0335] In some embodiments, the method includes receiving a current identifier indicating a current geographical cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and determining one or more second geographical cells from among a plurality of first geographical cells using the current geographical cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographical location and the geographical cell in a paging procedure for paging the transceiver device.
[0336] In some embodiments, the method includes repeatedly receiving a current identifier indicating a current geographical cell of the transceiver device or a location indicator indicating a current location of the transceiver device, and determining one or more second geographical cells from among a plurality of first geographical cells using the current geographical cell of the transceiver device or using the current location of the transceiver device and a mapping relationship between the geographical location and the geographical cell in a paging procedure for paging the transceiver device.
[0337] In some embodiments, the method includes, in a paging procedure for paging the transceiver device, determining one or more base stations from among the plurality of base stations using one or more second geographical cells and a mapping relationship between coverage areas of the plurality of base stations and the one or more second geographical cells, and transmitting a first paging message to the determined one or more base stations.
[0338] In some embodiments, the method includes serving a radio cell using a plurality of beams; determining the one or more beams using one or more second geographical cells and a mapping relationship between the one or more second geographical cells and coverage areas of the plurality of beams; and transmitting a paging message using the determined one or more beams.
[0339] In some embodiments, the base station is configured to operate on a satellite.
[0340] There is further provided a network system, comprising: a transceiver device according to any one of the above embodiments; and a network entity according to any one of the above embodiments.
[0341] There is further provided a network system comprising: a transceiver device according to any one of the above embodiments; and a base station according to any one of the above embodiments.
[0342] There is further provided a network system, comprising: a base station according to any one of the above embodiments; and a network entity according to any one of the above embodiments.
[0343] There is further provided a network system, comprising: a transceiver device according to any one of the above embodiments; a base station according to any one of the above embodiments; and a network entity according to any one of the above embodiments.
[0344] The present disclosure can be implemented by software, hardware, or software operating in conjunction with hardware. Each functional block used in the above-described embodiments can be implemented, in whole or in part, by an LSI such as an integrated circuit (IC), and each process described in each embodiment can be controlled, in whole or in part, by the same LSI or a combination of LSIs. The LSI can be formed as an individual chip, or a single chip can be formed to include some or all of the functional blocks. The LSI can include a data input / output unit coupled to it. Depending on the degree of integration, the LSI can also be referred to as an IC, system LSI, super LSI, or ultra LSI. However, the technology for implementing an integrated circuit is not limited to LSI, and can be implemented using dedicated circuits, general-purpose processors, or dedicated processors. Furthermore, FPGAs (field programmable gate arrays), which can be programmed after LSI fabrication, and reconfigurable processors, which can reconfigure the connections and settings of circuit cells arranged within the LSI, can also be used. The present disclosure can be implemented using digital or analog processing. If, as a result of advances in semiconductor technology or other derivative technologies, LSI is replaced by future integrated circuit technologies, these future integrated circuit technologies can be used to integrate functional blocks. Biotechnology can also be applied.
[0345] The present disclosure can be implemented by any kind of apparatus, device, or system having a communication capability (referred to as a communication apparatus).
[0346] Some non-limiting examples of such communications devices include telephones (e.g., mobile phones, smartphones), tablets, personal computers (PCs) (e.g., laptops, desktops, notebooks), cameras (e.g., digital still / video cameras), digital players (digital audio / video players), wearable devices (e.g., wearable cameras, smart watches, tracking devices), game consoles, e-readers, telehealth / telemedicine devices, vehicles (e.g., automobiles, airplanes, ships) that provide communications capabilities, and various combinations thereof.
[0347] Communication devices are not limited to portable or mobile devices, but can also include any type of equipment, device, or system that is non-portable or fixed, such as smart home devices (e.g., appliances, lights, smart meters, control panels), vending machines, and any other "thing" in an "Internet of Things" (IoT) network.
[0348] Communication can include, for example, exchanging data through cellular systems, wireless LAN systems, satellite systems, etc., and various combinations thereof.
[0349] A communications device may include devices such as a controller or a sensor coupled to the communications device to perform the communications functions described in this disclosure. For example, a communications device may include a controller or a sensor that generates control or data signals used by the communications device to perform the communications functions of the communications device.
[0350] The communications apparatus may further include infrastructure facilities, such as base stations, access points, and any other apparatus, device, or system that communicate with or control apparatuses such as the apparatuses in the non-limiting examples above.
Claims
1. 1. A transceiver device comprising: a circuit for determining a current geographic cell (GC) using a current geographic location of the transceiver device and a mapping relationship between geographic locations and GCs; a transceiver configured to transmit a current identifier indicating the current GC in a registration request message and to receive a plurality of first identifiers indicating a plurality of first GCs in a registration accept message; Equipped with the plurality of first GCs constitute a tracking area (TA); the registration accept message includes an indicator; If the indicator indicates a TA, the circuitry determines whether a current GC is still included in the TA, and controls the transceiver to perform a Tracking Area Update (TAU) procedure when the current GC leaves the TA and to send a TAU message indicating an updated TA; If the indicator indicates a GC, the circuitry controls the transceiver to perform the TAU procedure when a current GC is changed and to send a current identifier in a registration request message indicating the updated current GC. Transceiver device.
2. The GC is a non-overlapping, stationary region defined on the Earth's surface with respect to at least one geographic location on the Earth's surface.
2. The transceiver device of claim 1.
3. The plurality of first identifiers includes the current identifier indicating the current GC.
3. A transceiver device according to claim 1 or claim 2.
4. The mapping relationship associates a geographic location on the Earth's surface with one GC. A transceiver device according to any one of claims 1 to 3.
5. A network entity comprising: a transceiver configured to receive a current identifier indicating a current geographic cell (GC) of the transceiver device in a registration request message and to transmit a plurality of first identifiers indicating a plurality of first GCs in a registration accept message; a circuit for determining the plurality of first GCs using at least the current GC of the transceiver device and a mapping relationship between geographic locations and geographic cells; Equipped with the plurality of first GCs constitute a tracking area (TA); the circuitry including an indicator indicating a TA or a GC in the registration accept message; If the indicator indicates a TA, the circuitry controls the transceiver to receive a Tracking Area Update (TAU) message indicating a TA updated by a TAU procedure performed when a current GC of the transceiver device leaves the TA; If the indicator indicates a GC, the circuitry controls the transceiver to receive in a registration request message a current identifier indicating a current GC that was updated by the TAU procedure performed when the current GC of the transceiver device was changed. Network entity.
6. a paging procedure for paging the transceiver device, the circuitry determines one or more second GCs from among the plurality of first GCs; the transceiver transmitting one or more second identifiers in a first paging message indicating the one or more second GCs; The network entity of claim 5 .
7. the transceiver receiving the current identifier indicating the current GC of the transceiver device or a location indicator indicating the current location of the transceiver device; The paging procedure for paging the transceiver device, the circuitry determines the one or more second GCs from among the plurality of first GCs using the current GC of the transceiver device or using the current location of the transceiver device and the mapping relationship between geographic locations and GCs; The network entity of claim 6.
8. The paging procedure for paging the transceiver device, The circuit determines one or more base stations from among the plurality of base stations using the one or more second GCs and a mapping relationship between coverage areas of the plurality of base stations and the one or more second GCs; the transceiver, in operation, transmitting the first paging message to the determined one or more base stations. A network entity according to claim 6 or claim 7.
9. 1. An integrated circuit configured to control a transceiver device, said integrated circuit comprising: a control circuit for determining a current geographic cell (GC) using a current geographic location of the transceiver device and a mapping relationship between geographic locations and GCs; a transceiver circuit for transmitting a current identifier indicating the current geographic cell in a registration request message and receiving a plurality of first identifiers indicating a plurality of first geographic cells in a registration accept message; Equipped with the plurality of first GCs constitute a tracking area (TA); the registration accept message includes an indicator; If the indicator indicates a TA, the control circuitry determines whether a current GC is still included in the TA, and controls the transceiver circuitry to perform a tracking area update (TAU) procedure when the current GC leaves the TA and to transmit a TAU message indicating an updated TA; If the indicator indicates a GC, the control circuitry controls the transceiver circuitry to perform the TAU procedure when a current GC is changed and to transmit a current identifier indicating the updated current GC in a registration request message. Integrated circuit.
10. 1. An integrated circuit configured to control a network entity, said integrated circuit comprising: a transceiver circuit configured to receive a current identifier indicating a current geographic cell (GC) of the transceiver device in a registration request message and to transmit a plurality of first identifiers indicating a plurality of first GCs in a registration accept message; a control circuit for determining the plurality of first GCs using at least the current GC of the transceiver device and a mapping relationship between geographic locations and GCs; Equipped with the plurality of first GCs constitute a tracking area (TA); the control circuit includes an indicator indicating TA or GC in the registration accept message; If the indicator indicates a TA, the control circuitry controls the transceiver circuitry to receive a Tracking Area Update (TAU) message indicating a TA updated by a TAU procedure performed when a current GC of the transceiver device leaves the TA; If the indicator indicates a GC, the control circuitry controls the transceiver circuitry to receive in a registration request message a current identifier indicating a current GC that was updated by the TAU procedure performed when the current GC of the transceiver device was changed. Integrated circuit.