WO2022231214A1 - 이동성 제어 방법 및 그 장치 - Google Patents
이동성 제어 방법 및 그 장치 Download PDFInfo
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- WO2022231214A1 WO2022231214A1 PCT/KR2022/005753 KR2022005753W WO2022231214A1 WO 2022231214 A1 WO2022231214 A1 WO 2022231214A1 KR 2022005753 W KR2022005753 W KR 2022005753W WO 2022231214 A1 WO2022231214 A1 WO 2022231214A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/24—Reselection being triggered by specific parameters
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/34—Reselection control
- H04W36/36—Reselection control by user or terminal equipment
- H04W36/362—Conditional handover
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/24—Reselection being triggered by specific parameters
- H04W36/30—Reselection being triggered by specific parameters by measured or perceived connection quality data
- H04W36/304—Reselection being triggered by specific parameters by measured or perceived connection quality data due to measured or perceived resources with higher communication quality
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/24—Reselection being triggered by specific parameters
- H04W36/32—Reselection being triggered by specific parameters by location or mobility data, e.g. speed data
- H04W36/326—Reselection being triggered by specific parameters by location or mobility data, e.g. speed data by proximity to another entity
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W84/00—Network topologies
- H04W84/02—Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
- H04W84/04—Large scale networks; Deep hierarchical networks
- H04W84/06—Airborne or Satellite Networks
Definitions
- the present disclosure relates to a technique for controlling the mobility of a terminal in a non-terrestrial network (Non-Terrestrial Network) situation.
- Non-Terrestrial Network Non-Terrestrial Network
- New RAT next-generation wireless communication technology
- Non-Terrestrial Network refers to a network or a segment of a network used for transmission of airborne vehicles such as HAPS (High Altitude Platform) or spaceborne vehicles such as satellites.
- the non-terrestrial network has a characteristic that the cell moves at a high speed and the coverage is wide. According to the characteristics of the non-terrestrial network, an efficient mobility control operation between the terrestrial network and the non-terrestrial network is required to ensure the mobility of the terminal.
- the present embodiments may provide a method and apparatus for controlling the mobility of a terminal in a non-terrestrial network (Non-Terrestrial Network) situation.
- Non-Terrestrial Network Non-Terrestrial Network
- the present embodiments provide a method for a target base station to control handover of a terminal, the method comprising receiving handover request information for handover of a terminal from a source base station or a core network entity.
- the present embodiments may provide a method comprising, by the target base station, reserving radio resources for handover of the terminal based on the handover request information and the target base station in the method for controlling the handover of the terminal.
- the present embodiments provide a method for a target base station to control handover of a terminal, comprising the step of determining whether to release a reserved radio resource using serving cell available time information included in handover request information. can do.
- the present embodiments may provide a method comprising the step of configuring conditional handover in the terminal in a method for the source base station to control the handover of the terminal.
- the present embodiments may provide a method for a source base station to control handover of a terminal, comprising the step of configuring handover request information including serving cell available time information for the terminal.
- the present embodiments may provide a method for a source base station to control handover of a terminal, including transmitting handover request information to a target base station or a core network entity.
- the target base station may control radio resources for handover of the terminal by using the serving cell available time information included in the handover request information.
- the present embodiments provide, in a target base station for controlling handover of a terminal, a target base station apparatus including a receiving unit for receiving handover request information for handover of a terminal from a source base station or a core network entity can do.
- a target base station for controlling handover of a terminal a radio resource for handover of the terminal is reserved based on handover request information, and serving cell available time information included in the handover request information is used. It is possible to provide a target base station apparatus including a control unit for determining whether to release the reserved radio resource.
- the control unit configures conditional handover to the terminal and configures handover request information including serving cell available time information for the terminal. It is possible to provide a source base station device comprising a.
- the present embodiments may provide a source base station apparatus including a transmitter for transmitting handover request information to a target base station or a core network entity in a source base station for controlling handover of a terminal.
- the target base station may control radio resources for handover of the terminal by using the serving cell available time information included in the handover request information.
- the present embodiments provide the effect of efficiently controlling the mobility of the terminal in a non-terrestrial network (Non-Terrestrial Network) situation.
- Non-Terrestrial Network Non-Terrestrial Network
- FIG. 1 is a diagram schematically illustrating a structure of an NR wireless communication system to which this embodiment can be applied.
- FIG. 2 is a diagram for explaining a frame structure in an NR system to which this embodiment can be applied.
- FIG 3 is a diagram for explaining a resource grid supported by a radio access technology to which this embodiment can be applied.
- FIG. 4 is a diagram for explaining a bandwidth part supported by a radio access technology to which the present embodiment can be applied.
- FIG. 5 is a diagram exemplarily illustrating a synchronization signal block in a radio access technology to which the present embodiment can be applied.
- FIG. 6 is a diagram for explaining a random access procedure in a radio access technology to which this embodiment can be applied.
- FIG 8 is a diagram illustrating an example of an NTN scenario to which this embodiment can be applied.
- FIG. 9 is a diagram for explaining an operation of a target base station according to an embodiment.
- FIG. 10 is a diagram for explaining an operation of a source base station according to an embodiment.
- 11 is a diagram illustrating a fixed geocentric coordinate relationship with respect to latitude and longitude to which the present embodiment can be applied.
- FIG. 12 is a diagram for explaining the configuration of a target base station according to an embodiment.
- FIG. 13 is a diagram for explaining the configuration of a source base station according to an embodiment.
- temporal precedence relationship such as “after”, “after”, “after”, “before”, etc.
- a flow precedence relationship when a flow precedence relationship is described, it may include a case where it is not continuous unless “immediately” or "directly” is used.
- a wireless communication system in the present specification refers to a system for providing various communication services such as voice and data packets using radio resources, and may include a terminal, a base station, or a core network.
- the present embodiments disclosed below may be applied to a wireless communication system using various wireless access technologies.
- the present embodiments are CDMA (code division multiple access), FDMA (frequency division multiple access), TDMA (time division multiple access), OFDMA (orthogonal frequency division multiple access), SC-FDMA (single carrier frequency division multiple access)
- CDMA code division multiple access
- FDMA frequency division multiple access
- TDMA time division multiple access
- OFDMA orthogonal frequency division multiple access
- SC-FDMA single carrier frequency division multiple access
- the wireless access technology may mean not only a specific access technology, but also a communication technology for each generation established by various communication consultation organizations such as 3GPP, 3GPP2, WiFi, Bluetooth, IEEE, and ITU.
- CDMA may be implemented with a radio technology such as universal terrestrial radio access (UTRA) or CDMA2000.
- UTRA universal terrestrial radio access
- CDMA2000 Code Division Multiple Access 2000
- TDMA may be implemented with a radio technology such as global system for mobile communications (GSM)/general packet radio service (GPRS)/enhanced datarates for GSM evolution (EDGE).
- OFDMA may be implemented with a wireless technology such as Institute of Electrical and Electronics Engineers (IEEE) 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802-20, and evolved UTRA (E-UTRA).
- IEEE 802.16m is an evolution of IEEE 802.16e, and provides backward compatibility with a system based on IEEE 802.16e.
- UTRA is part of the universal mobile telecommunications system (UMTS).
- 3rd generation partnership project (3GPP) long term evolution (LTE) is a part of evolved UMTS (E-UMTS) that uses evolved-UMTSterrestrial radio access (E-UTRA), and employs OFDMA in downlink and SC- in uplink FDMA is employed.
- 3GPP 3rd generation partnership project
- LTE long term evolution
- E-UMTS evolved UMTS
- E-UTRA evolved-UMTSterrestrial radio access
- OFDMA OFDMA in downlink
- SC- in uplink FDMA is employed.
- the present embodiments may be applied to currently disclosed or commercialized radio access technologies, or may be applied to radio access technologies currently under development or to be developed in the future.
- a terminal is a comprehensive concept meaning a device including a wireless communication module for performing communication with a base station in a wireless communication system, and in WCDMA, LTE, NR, HSPA, and IMT-2020 (5G or New Radio), etc. It should be interpreted as a concept including all of UE (User Equipment), MS (Mobile Station), UT (User Terminal), SS (Subscriber Station), wireless device, etc. in GSM.
- the terminal may be a user portable device such as a smart phone depending on the type of use, and in a V2X communication system may mean a vehicle, a device including a wireless communication module in the vehicle, and the like.
- a machine type communication (Machine Type Communication) system, it may mean an MTC terminal, an M2M terminal, a URLLC terminal, etc. equipped with a communication module to perform machine type communication.
- a base station or cell of the present specification refers to an end that communicates with a terminal in terms of a network, a Node-B (Node-B), an evolved Node-B (eNB), gNode-B (gNB), a Low Power Node (LPN), Sector, site, various types of antennas, base transceiver system (BTS), access point, point (eg, transmission point, reception point, transmission/reception point), relay node (Relay Node) ), mega cell, macro cell, micro cell, pico cell, femto cell, RRH (Remote Radio Head), RU (Radio Unit), small cell (small cell), etc.
- the cell may mean including a BWP (Bandwidth Part) in the frequency domain.
- the serving cell may mean the Activation BWP of the UE.
- the base station can be interpreted in two ways. 1) in relation to the radio area, it may be the device itself providing a mega cell, a macro cell, a micro cell, a pico cell, a femto cell, or a small cell, or 2) may indicate the radio area itself.
- the devices providing a predetermined radio area are controlled by the same entity, or all devices interacting to form a radio area cooperatively are directed to the base station.
- a point, a transmission/reception point, a transmission point, a reception point, etc. become an embodiment of a base station according to a configuration method of a wireless area.
- the radio area itself in which the signal is received or transmitted from the point of view of the user terminal or the neighboring base station may be indicated to the base station.
- a cell is a component carrier having the coverage of a signal transmitted from a transmission/reception point or a signal transmitted from a transmission/reception point (transmission point or transmission/reception point), and the transmission/reception point itself.
- Uplink refers to a method for transmitting and receiving data by a terminal to a base station
- downlink Downlink (Downlink, DL, or downlink) refers to a method for transmitting and receiving data to and from a terminal by a base station do.
- a downlink may mean a communication or communication path from a multi-transmission/reception point to a terminal
- an uplink may mean a communication or communication path from the terminal to a multi-transmission/reception point.
- the transmitter in the downlink, the transmitter may be a part of multiple transmission/reception points, and the receiver may be a part of the terminal.
- the transmitter in the uplink, the transmitter may be a part of the terminal, and the receiver may be a part of the multi-transmission/reception point.
- the uplink and the downlink transmit and receive control information through a control channel such as a Physical Downlink Control CHannel (PDCCH), a Physical Uplink Control CHannel (PUCCH), etc., and a Physical Downlink Shared CHannel (PDSCH), a Physical Uplink Shared CHannel (PUSCH), etc Data is transmitted and received by configuring the same data channel.
- a situation in which signals are transmitted and received through channels such as PUCCH, PUSCH, PDCCH, and PDSCH may be expressed in the form of 'transmitting and receiving PUCCH, PUSCH, PDCCH and PDSCH'. do.
- 5G (5th-Generation) communication technology is developed to meet the requirements of ITU-R's next-generation wireless access technology.
- 3GPP develops LTE-A pro, which improved LTE-Advanced technology to meet the requirements of ITU-R as a 5G communication technology, and a new NR communication technology separate from 4G communication technology.
- LTE-A pro and NR both refer to 5G communication technology.
- 5G communication technology will be described with a focus on NR unless a specific communication technology is specified.
- NR operation scenario various operation scenarios were defined by adding consideration of satellites, automobiles, and new verticals to the existing 4G LTE scenarios. It supports mMTC (Massive Machine Communication) scenario that requires low data rate and asynchronous access, and URLLC (Ultra Reliability and Low Latency) scenario that requires high responsiveness and reliability and supports high-speed mobility. .
- mMTC Massive Machine Communication
- URLLC Ultra Reliability and Low Latency
- NR discloses a wireless communication system to which a new waveform and frame structure technology, low latency technology, mmWave support technology, and forward compatible technology are applied.
- the NR system presents various technical changes in terms of flexibility to provide forward compatibility. The main technical features of NR will be described with reference to the drawings below.
- FIG. 1 is a diagram schematically illustrating a structure of an NR system to which this embodiment can be applied.
- the NR system is divided into a 5G Core Network (5GC) and an NR-RAN part, and the NG-RAN controls the user plane (SDAP/PDCP/RLC/MAC/PHY) and UE (User Equipment) It consists of gNBs and ng-eNBs that provide planar (RRC) protocol termination.
- the gNB interconnects or gNBs and ng-eNBs are interconnected via an Xn interface.
- gNB and ng-eNB are each connected to 5GC through the NG interface.
- the 5GC may include an Access and Mobility Management Function (AMF) in charge of a control plane such as terminal access and mobility control functions and a User Plane Function (UPF) in charge of a control function for user data.
- NR includes support for both the frequency band below 6 GHz (FR1, Frequency Range 1) and the frequency band above 6 GHz (FR2, Frequency Range 2).
- gNB means a base station that provides NR user plane and control plane protocol termination to a terminal
- ng-eNB means a base station that provides E-UTRA user plane and control plane protocol termination to a terminal.
- the base station described in this specification should be understood as encompassing gNB and ng-eNB, and may be used as a meaning to distinguish gNB or ng-eNB as needed.
- a CP-OFDM waveform using a cyclic prefix is used for downlink transmission, and CP-OFDM or DFT-s-OFDM is used for uplink transmission.
- OFDM technology is easy to combine with MIMO (Multiple Input Multiple Output), and has advantages of using a low-complexity receiver with high frequency efficiency.
- the NR transmission numerology is determined based on sub-carrier spacing and cyclic prefix (CP), and the ⁇ value is used as an exponential value of 2 based on 15 kHz as shown in Table 1 below. is changed to
- NR pneumatology can be divided into five types according to the subcarrier spacing. This is different from the fact that the subcarrier interval of LTE, one of the 4G communication technologies, is fixed at 15 kHz. Specifically, subcarrier intervals used for data transmission in NR are 15, 30, 60, and 120 kHz, and subcarrier intervals used for synchronization signal transmission are 15, 30, 120 and 240 kHz. In addition, the extended CP is applied only to the 60 kHz subcarrier interval. On the other hand, as for the frame structure in NR, a frame having a length of 10 ms is defined, which is composed of 10 subframes having the same length of 1 ms.
- FIG. 2 is a frame in an NR system to which this embodiment can be applied. It is a drawing for explaining the structure.
- a slot is fixedly composed of 14 OFDM symbols in the case of a normal CP, but the length in the time domain of the slot may vary according to a subcarrier interval.
- the slot in the case of a numerology having a 15 kHz subcarrier interval, the slot is 1 ms long and is configured with the same length as the subframe.
- a slot in the case of numerology having a 30 kHz subcarrier interval, a slot consists of 14 OFDM symbols, but two slots may be included in one subframe with a length of 0.5 ms. That is, the subframe and the frame are defined to have a fixed time length, and the slot is defined by the number of symbols, so that the time length may vary according to the subcarrier interval.
- NR defines a basic unit of scheduling as a slot, and also introduces a mini-slot (or a sub-slot or a non-slot based schedule) in order to reduce transmission delay in a radio section.
- a mini-slot or a sub-slot or a non-slot based schedule
- the mini-slot is for efficient support of the URLLC scenario and can be scheduled in units of 2, 4, or 7 symbols.
- NR defines uplink and downlink resource allocation at a symbol level within one slot.
- a slot structure capable of transmitting HARQ ACK/NACK directly within a transmission slot has been defined, and this slot structure will be described as a self-contained structure.
- NR is designed to support a total of 256 slot formats, of which 62 slot formats are used in 3GPP Rel-15.
- a common frame structure constituting an FDD or TDD frame is supported through a combination of various slots.
- a slot structure in which all symbols of a slot are set to downlink a slot structure in which all symbols are set to uplink
- a slot structure in which downlink symbols and uplink symbols are combined are supported.
- NR supports that data transmission is scheduled to be distributed in one or more slots.
- the base station may inform the terminal whether the slot is a downlink slot, an uplink slot, or a flexible slot using a slot format indicator (SFI).
- the base station may indicate the slot format by indicating the index of the table configured through UE-specific RRC signaling using SFI, and may indicate dynamically through DCI (Downlink Control Information) or statically or through RRC. It can also be ordered quasi-statically.
- an antenna port In relation to a physical resource in NR, an antenna port, a resource grid, a resource element, a resource block, a bandwidth part, etc. are considered do.
- An antenna port is defined such that a channel on which a symbol on an antenna port is carried can be inferred from a channel on which another symbol on the same antenna port is carried.
- the two antenna ports are QC/QCL (quasi co-located or QC/QCL) quasi co-location).
- the wide range characteristic includes one or more of delay spread, Doppler spread, frequency shift, average received power, and received timing.
- FIG 3 is a diagram for explaining a resource grid supported by a radio access technology to which this embodiment can be applied.
- a resource grid may exist according to each numerology.
- the resource grid may exist according to an antenna port, a subcarrier interval, and a transmission direction.
- a resource block consists of 12 subcarriers, and is defined only in the frequency domain.
- a resource element is composed of one OFDM symbol and one subcarrier. Accordingly, as in FIG. 3 , the size of one resource block may vary according to the subcarrier interval.
- NR defines "Point A" serving as a common reference point for a resource block grid, a common resource block, a virtual resource block, and the like.
- FIG. 4 is a diagram for explaining a bandwidth part supported by a radio access technology to which the present embodiment can be applied.
- a bandwidth part may be designated within the carrier bandwidth and used by the terminal.
- the bandwidth part is associated with one numerology and is composed of a subset of continuous common resource blocks, and may be dynamically activated according to time.
- a maximum of four bandwidth parts are configured in the terminal, respectively, in uplink and downlink, and data is transmitted/received using the bandwidth part activated at a given time.
- the uplink and downlink bandwidth parts are set independently, and in the case of an unpaired spectrum, to prevent unnecessary frequency re-tunning between downlink and uplink operations
- the downlink and uplink bandwidth parts are set in pairs to share a center frequency.
- the terminal accesses the base station and performs a cell search and random access procedure in order to perform communication.
- Cell search is a procedure in which the UE synchronizes the cell of the corresponding base station using a synchronization signal block (SSB) transmitted by the base station, obtains a physical layer cell ID, and obtains system information.
- SSB synchronization signal block
- FIG. 5 is a diagram exemplarily illustrating a synchronization signal block in a radio access technology to which the present embodiment can be applied.
- the SSB consists of a primary synchronization signal (PSS) and a secondary synchronization signal (SSS) occupying 1 symbol and 127 subcarriers, respectively, and a PBCH spanning 3 OFDM symbols and 240 subcarriers.
- PSS primary synchronization signal
- SSS secondary synchronization signal
- the terminal receives the SSB by monitoring the SSB in the time and frequency domains.
- SSB can be transmitted up to 64 times in 5ms.
- a plurality of SSBs are transmitted using different transmission beams within 5 ms, and the UE performs detection on the assumption that SSBs are transmitted every 20 ms when viewed based on one specific beam used for transmission.
- the number of beams that can be used for SSB transmission within 5 ms time may increase as the frequency band increases.
- up to 4 SSB beams can be transmitted in 3 GHz or less, and SSB can be transmitted using up to 8 different beams in a frequency band of 3 to 6 GHz and up to 64 different beams in a frequency band of 6 GHz or more.
- Two SSBs are included in one slot, and the start symbol and the number of repetitions within the slot are determined according to the subcarrier interval as follows.
- the SSB is not transmitted at the center frequency of the carrier bandwidth, unlike the SS of the conventional LTE. That is, the SSB may be transmitted in a place other than the center of the system band, and a plurality of SSBs may be transmitted in the frequency domain when broadband operation is supported. Accordingly, the UE monitors the SSB using a synchronization raster that is a candidate frequency location for monitoring the SSB.
- the carrier raster and synchronization raster which are the center frequency location information of the channel for initial access, are newly defined in NR, and the synchronization raster has a wider frequency interval than the carrier raster, so that it can support fast SSB search of the terminal.
- the UE may acquire the MIB through the PBCH of the SSB.
- MIB Master Information Block
- MIB includes minimum information for the terminal to receive the remaining system information (RMSI, Remaining Minimum System Information) broadcast by the network.
- the PBCH includes information on the position of the first DM-RS symbol in the time domain, information for the UE to monitor SIB1 (eg, SIB1 neurology information, information related to SIB1 CORESET, search space information, PDCCH related parameter information), offset information between the common resource block and the SSB (the position of the absolute SSB in the carrier is transmitted through SIB1), and the like.
- SIB1 eg, SIB1 neurology information, information related to SIB1 CORESET, search space information, PDCCH related parameter information
- offset information between the common resource block and the SSB the position of the absolute SSB in the carrier is transmitted through SIB1
- the SIB1 neurology information is equally applied to some messages used in the random access procedure for accessing the base station after the UE completes the cell search procedure.
- the neurology information of SIB1 may be applied to at least one of messages 1 to 4 for the random access procedure.
- the aforementioned RMSI may mean System Information Block 1 (SIB1), and SIB1 is periodically broadcast (eg, 160 ms) in the cell.
- SIB1 includes information necessary for the UE to perform an initial random access procedure, and is periodically transmitted through the PDSCH.
- CORESET Control Resource Set
- the UE checks scheduling information for SIB1 by using SI-RNTI in CORESET, and acquires SIB1 on PDSCH according to the scheduling information.
- SIBs other than SIB1 may be transmitted periodically or may be transmitted according to the request of the UE.
- FIG. 6 is a diagram for explaining a random access procedure in a radio access technology to which this embodiment can be applied.
- the terminal transmits a random access preamble for random access to the base station.
- the random access preamble is transmitted through the PRACH.
- the random access preamble is transmitted to the base station through a PRACH consisting of continuous radio resources in a specific slot that is periodically repeated.
- a contention-based random access procedure is performed, and when random access is performed for beam failure recovery (BFR), a contention-free random access procedure is performed.
- BFR beam failure recovery
- the terminal receives a random access response to the transmitted random access preamble.
- the random access response may include a random access preamble identifier (ID), a UL grant (uplink radio resource), a temporary C-RNTI (Temporary Cell - Radio Network Temporary Identifier), and a Time Alignment Command (TAC). Since one random access response may include random access response information for one or more terminals, the random access preamble identifier may be included to inform which terminal the included UL Grant, temporary C-RNTI, and TAC are valid.
- the random access preamble identifier may be an identifier for the random access preamble received by the base station.
- the TAC may be included as information for the UE to adjust uplink synchronization.
- the random access response may be indicated by a random access identifier on the PDCCH, that is, RA-RNTI (Random Access - Radio Network Temporary Identifier).
- the terminal Upon receiving the valid random access response, the terminal processes information included in the random access response and performs scheduled transmission to the base station. For example, the UE applies the TAC and stores the temporary C-RNTI. In addition, data stored in the buffer of the terminal or newly generated data is transmitted to the base station by using the UL grant. In this case, information for identifying the terminal should be included.
- the terminal receives a downlink message for contention resolution.
- the downlink control channel in NR is transmitted in a control resource set (CORESET) having a length of 1 to 3 symbols, and transmits uplink/downlink scheduling information, slot format index (SFI), transmit power control (TPC) information, etc. .
- CORESET control resource set
- SFI slot format index
- TPC transmit power control
- CORESET Control Resource Set
- the UE may decode the control channel candidate using one or more search spaces in the CORESET time-frequency resource.
- QCL Quasi CoLocation
- CORESET may exist in various forms within a carrier bandwidth within one slot, and CORESET may consist of up to three OFDM symbols in the time domain.
- CORESET is defined as a multiple of 6 resource blocks up to the carrier bandwidth in the frequency domain.
- the first CORESET is indicated through the MIB as part of the initial bandwidth part configuration to receive additional configuration information and system information from the network.
- the terminal may receive and configure one or more pieces of CORESET information through RRC signaling.
- frequencies, frames, subframes, resources, resource blocks, regions, bands, subbands, control channels, data channels, synchronization signals, various reference signals, various signals or various messages related to NR can be interpreted in various meanings used in the past or present or used in the future.
- NTN Non-Terrestrial Network
- FIG 8 is a diagram illustrating an example of an NTN scenario to which this embodiment can be applied.
- a non-terrestrial network refers to a network or a segment of a network using an RF resource mounted on a satellite (or unmanned aircraft system platform (UAS)).
- satellite or unmanned aircraft system platform (UAS)
- NTN can be implemented in various ways as follows.
- transparent payload or regenerative payload is defined as follows.
- a transparent payload Radio Frequency filtering, Frequency conversion and amplification. Hence, the waveform signal repeated by the payload is un-changed.
- a regenerative payload Radio Frequency filtering, Frequency conversion and amplification as well as demodulation/decoding, switch and/or routing, coding/modulation. This is effectively equivalent to having all or part of base station functions (e.g. gNB) on board the satellite (or UAS platform).
- base station functions e.g. gNB
- Quasi-Earth-fixed provision by beam(s) covering one geographic area for a finite period and a different geographic area during another period (e.g., the case of NGEO satellites generating steerable beams).
- - Earth-moving provision by beam(s) which foot print slides over the Earth surface (e.g., the case of NGEO satellites generating fixed or non-steerable beams).
- Non-geostationary earth orbits include circular orbits of satellite constellations at altitudes greater than 300 km. This includes the Low-Earth Orbit at altitudes between approximately 300 km and 1500 km and the Medium Earth Orbit between 1500 km and 35786 km.
- the base station gNB
- the base station may provide a Quasi-Earth-fixed cell or an Earth-moving cell. Earth-fixed cells can be provided for geostationary satellites.
- the propagation delay of the NTN network is larger than that of the terrestrial network, which causes additional delay in mobility signaling such as measurement reporting and handover command reception.
- the NTN network has a small difference between RSRP at the cell edge and RSRP at the cell center, so it is difficult to distinguish a better cell through traditional measurement event (e.g. A3 event)-based handover.
- the non-geostationary satellite moves at a high speed for a given location on the earth and causes frequent handovers to the terminal.
- handover occurs every 6-7 seconds when the speed of the LEO satellite is 7.56 km/s and the cell diameter is 50 km. This may cause a handover of a plurality of connected state terminals located within the corresponding cell coverage for a given time, which may cause a large signaling overhead.
- a communication service through a non-terrestrial network may be provided in an area where the terrestrial network communication service is not provided or in an area where the terrestrial network service is not sufficient.
- a communication service through the terrestrial network may be provided in an area within the coverage of the terrestrial network. This allows operators to efficiently extend service coverage.
- services between non-terrestrial networks and terrestrial networks need to be linked effectively. For example, service continuity between the terrestrial network and the non-terrestrial network when the terminal moves when the non-terrestrial network and the terrestrial network are owned by a single operator It is desirable to support Despite these advantages, no specific technology has been provided so far. In addition, a description of a method and apparatus for efficiently providing handover in a non-terrestrial network has not been provided.
- the present embodiment proposes a method and apparatus for providing service continuity in a non-terrestrial network or between a terrestrial network and a non-terrestrial network.
- a method and apparatus for efficiently providing handover in a non-terrestrial network we propose a method and apparatus for efficiently providing handover in a non-terrestrial network.
- NTN non-terrestrial network
- TN terrestrial network
- 5G NR radio access technology a mobility control method between a non-terrestrial network (NTN) based on 5G NR radio access technology and a terrestrial network (TN) based on 5G NR radio access technology.
- NTN non-terrestrial network
- the present embodiment may be applied to a method for controlling mobility between a non-terrestrial network and a terrestrial network based on any radio access technology.
- the present embodiment may be applied for mobility control within a non-terrestrial network or in a terrestrial network based on any radio access technology (e.g. 5G, 6G).
- a technology for providing handover in a non-terrestrial network based on 5G NR radio access technology is also described. However, this is for convenience of description, and the present embodiment may be applied to handover in a non-terrestrial network based on any radio access technology.
- the embodiment described in this specification includes the contents of information elements and operations specified in TS 38.321 of the NR MAC standard and TS 38.331 of the NR RRC standard. Even if the terminal operation content related to the definition of the corresponding information element is not included in the present specification, the corresponding content specified in the relevant standard should be included and interpreted in this embodiment.
- the examples provided below may be practiced individually or in any combination.
- the present disclosure focuses on the target base station and the source base station, the terminal operation and configuration for applying the same contents are also included in this embodiment.
- FIG. 9 is a diagram for explaining an operation of a target base station according to an embodiment.
- the target base station may perform the step of receiving handover request information for handover of the terminal from the source base station or the core network entity (S910).
- the target base station may receive the handover request information of the terminal from the source base station through the Xn interface.
- the handover request information may be included in the handover request message.
- the target base station may receive handover request information from the core network entity. In this case, the handover request information may be included in the handover request message.
- the handover of the terminal may be a handover through a core network entity or a handover between base stations.
- the handover of the terminal may be a conditional handover in which the terminal performs the handover according to a preset condition.
- the conditional handover condition may be set by time, radio quality measurement result, and the like.
- the handover request information may include handover window information for handover of the terminal.
- the handover window information indicates information on a period during which the target base station can service the handover of the terminal.
- the handover window information is information indicating a time period during which the UE can perform a related procedure in order to perform a handover, and there is no limitation on the term.
- the handover window information may include at least one of duration information and service start time information for which the terminal can provide a service through the target base station.
- the handover window information may include window start time information and window end time information.
- the service start time information may correspond to the window start time information.
- service end time information may be recognized by using serviceable duration information for service start time information.
- absolute time information e.g. UTC: Coordinated Universal Time
- the handover request information may include serving cell available time information.
- the handover request information may include information on the remaining serviceable time of the serving cell to which the terminal is currently connected.
- the serving cell available time information may be configured in various forms, such as a duration form or end time information.
- handover request information includes target ID, Global RAN node ID, Selected TAI, target non-terrestrial network base station node ID, target non-terrestrial network cell ID, and transparent container (Source to Target Transparent Container, PDU session IDs) transmitted from the source to the target.
- target ID Global RAN node ID
- Selected TAI target non-terrestrial network base station node ID
- target non-terrestrial network cell ID target non-terrestrial network cell ID
- transparent container Source to Target Transparent Container, PDU session IDs
- Over information request information includes conditional handover trigger (CHO Trigger), estimated arrival probability information, terminal location information, area/region/zone information in which the terminal is located, terminal movement speed information, terminal movement direction information, and terminal It may include one or more information of expected path information and estimated remaining/allowed/available service/access time of the serving cell for the corresponding terminal.
- conditional handover trigger (CHO Trigger)
- estimated arrival probability information estimated arrival probability information
- terminal location information area/region/zone information in which the terminal is located
- terminal movement speed information terminal movement direction information
- terminal It may include one or more information of expected path information and estimated remaining/allowed/available service/access time of the serving cell for the corresponding terminal.
- the target base station may perform a step of reserving radio resources for handover of the terminal based on the handover request information (S920).
- the target base station may reserve radio resources for handover of the terminal.
- the target base station may reserve a specific radio resource for conditional handover to the terminal.
- the reserved radio resource may be preferentially provided for the corresponding terminal, and the use of the radio resource may be restricted until the reservation is released.
- the target base station may perform a step of determining whether to release the reserved radio resource by using the serving cell available time information included in the handover request information (S930).
- the target base station may determine whether to release the reserved radio resource by using the serving cell available time information.
- the target base station may determine to release the reserved radio resource.
- the target base station may determine to release the reserved radio resource when a message instructing to release the reserved radio resource is received from the source base station or the core network entity.
- the target base station may decide to release the reserved radio resource when the serving cell available time expires while the terminal has not successfully completed handover to the target cell of the target base station.
- the target base station may determine to release the reserved radio resource when the serving cell available time expires after the terminal successfully completes handover to another candidate target cell.
- the target base station determines to release the reserved radio resource when the serving cell available time expires even before a handover cancellation message is received after the terminal has successfully completed handover to another candidate target cell.
- the target base station may release the radio resource reserved for the terminal when a specific time elapses by using information included in the handover request information. Through this, it is possible to prevent a long-term reservation of unnecessary radio resources due to frequent handover of the terminal.
- FIG. 10 is a diagram for explaining an operation of a source base station according to an embodiment.
- a source base station may perform the step of configuring a conditional handover in the terminal ( S1010 ).
- the source base station may transmit handover configuration information to the terminal in order to control the handover of the terminal.
- the UE may perform operations such as measuring radio quality for specific cells and reporting radio quality measurement results.
- related information for performing handover may be stored and configured in the terminal.
- the handover of the UE may be a conditional handover in which the UE performs the handover according to a preset condition.
- the conditional handover condition may be set by time, radio quality measurement result, and the like.
- the source base station may perform the step of configuring handover request information including serving cell available time information for the terminal (S1020).
- the handover request information may include necessary information transmitted to the target base station in order to support the handover of the terminal.
- the handover request information may include handover window information for handover of the terminal.
- the handover window information indicates information on a period during which the target base station can service the handover of the terminal.
- the handover window information is information indicating a time period during which the UE can perform a related procedure in order to perform a handover, and there is no limitation on the term.
- the handover window information may include at least one of duration information and service start time information for which the terminal can provide a service through the target base station.
- the handover window information may include window start time information and window end time information.
- the service start time information may correspond to the window start time information.
- service end time information may be recognized by using serviceable duration information for service start time information.
- absolute time information e.g. UTC: Coordinated Universal Time
- the handover request information may include serving cell available time information.
- the handover request information may include information on the remaining serviceable time of the serving cell to which the terminal is currently connected.
- the serving cell available time information may be configured in various forms, such as a duration form or end time information.
- handover request information includes target ID, Global RAN node ID, Selected TAI, target non-terrestrial network base station node ID, target non-terrestrial network cell ID, and transparent container (Source to Target Transparent Container, PDU session IDs) transmitted from the source to the target.
- target ID Global RAN node ID
- Selected TAI target non-terrestrial network base station node ID
- target non-terrestrial network cell ID target non-terrestrial network cell ID
- transparent container Source to Target Transparent Container, PDU session IDs
- Over information request information includes conditional handover trigger (CHO Trigger), estimated arrival probability information, terminal location information, area/region/zone information in which the terminal is located, terminal movement speed information, terminal movement direction information, and terminal It may include one or more information of expected path information and estimated remaining/allowed/available service/access time of the serving cell for the corresponding terminal.
- conditional handover trigger (CHO Trigger)
- estimated arrival probability information estimated arrival probability information
- terminal location information area/region/zone information in which the terminal is located
- terminal movement speed information terminal movement direction information
- terminal It may include one or more information of expected path information and estimated remaining/allowed/available service/access time of the serving cell for the corresponding terminal.
- the source base station may perform the step of transmitting the handover request information to the target base station or the core network entity (S1030).
- the source base station may transmit handover request information of the terminal to the target base station through the Xn interface.
- the handover request information may be included in the handover request message.
- the source base station may transmit handover request information to the core network entity (e.g. AMF or S-AMF) in the case of a handover procedure through the core network entity. Even in this case, the handover request information may be included in the handover request message.
- the core network entity e.g. AMF or S-AMF
- the source base station may receive a handover completion message from the terminal and transmit a handover cancellation message to a target base station to which the terminal has not handed over.
- the target base station may control radio resources for handover of the terminal by using the serving cell available time information included in the handover request information. For example, when the handover request information is received from the source base station or the core network entity, the target base station may reserve radio resources for handover of the terminal. For example, the target base station may reserve a specific radio resource for conditional handover to the terminal. The reserved radio resource may be preferentially provided for the corresponding terminal, and the use of the radio resource may be restricted until the reservation is released.
- the target base station may determine whether to release the reserved radio resource by using the serving cell available time information included in the handover request information. For example, if the serving cell available time information is included in the handover request information, the target base station may determine whether to release the reserved radio resource by using the serving cell available time information.
- the target base station may determine to release the reserved radio resource. For another example, the target base station may determine to release the reserved radio resource when a message instructing to release the reserved radio resource is received from the source base station or the core network entity. As another example, the target base station may decide to release the reserved radio resource when the serving cell available time expires while the terminal has not successfully completed handover to the target cell of the target base station. As another example, the target base station may determine to release the reserved radio resource when the serving cell available time expires after the terminal successfully completes handover to another candidate target cell. For another example, the target base station determines to release the reserved radio resource when the serving cell available time expires even before a handover cancellation message is received after the terminal has successfully completed handover to another candidate target cell. can
- the target base station may release the radio resource reserved for the terminal when a specific time elapses by using information included in the handover request information. Through this, it is possible to prevent a long-term reservation of unnecessary radio resources due to frequent handover of the terminal.
- the source base station may perform efficient network load management.
- the source base station is a terrestrial base station and the target base station is a non-terrestrial base station.
- the source base station is a non-terrestrial base station and the target base station is a terrestrial base station
- the source base station is a terrestrial network base station and the target base station is a non-terrestrial network base station
- the source base station is a terrestrial network base station and the target base station is a non-terrestrial network base station
- the present embodiment can be equally applied.
- individual detailed operations described below may constitute the embodiment individually or in any combination.
- the source base station may recognize whether the terminal supports NTN-related functions.
- the source base station may request the corresponding terminal to transmit NTN radio access capability information and receive related information.
- the source base station may receive any NTN-related terminal capability information through the INITIAL CONTEXT SETUP REQUEST message during the terminal context setup procedure.
- the source base station configures measurements and reporting for the target cell/base station.
- the source terrestrial network base station configures the UE to measure and report on the target non-terrestrial network cell.
- the source base station is sent to the target cell based on at least one of radio measurement result information, terminal location, satellite orbit information, measurement reporting information received from the terminal, arbitrary assistance information received from the terminal, and arbitrary assistance information received from the core network.
- handover or conditional handover may be determined.
- the source terrestrial base station may determine handover to the target non-terrestrial base station.
- the source non-terrestrial base station may determine to use conditional handover to the target terrestrial base station.
- Any help information received from the terminal or any help information received from the core network may include at least one of non-terrestrial network priority/preference and non-terrestrial frequency priority/preference information of the terminal.
- a non-terrestrial-based base station and a terrestrial base station can be linked as follows.
- the non-terrestrial network base station and the terrestrial network base station may be connected through an Xn interface, and in this case, an Xn-based handover may be performed.
- NG-based handover interface-based handover between the base station and the core network, N2-based handover
- N2-based handover may be performed.
- Xn-based handover or NG-based handover can be performed in the same way as when a single operator owns it. .
- the cell coverage provided by a non-terrestrial base station is significantly greater compared to a cell provided by a terrestrial base station.
- the cell diameter of the terrestrial base station may be within several km, but the cell diameter of the non-terrestrial base station may exceed 100 km. Therefore, it may be practically very difficult for the non-terrestrial network base station to have an Xn interface directly connected to all terrestrial network base stations. Considering this point, NG-based handover may be required for interworking between a non-terrestrial base station and a terrestrial base station.
- the NTN network has a small difference between RSRP at the cell edge and RSRP at the cell center, and it is difficult to distinguish a better cell through handover based on a traditional measurement event (e.g. A3 event).
- conditional handover may be required in addition to the received radio quality.
- conditional handover provided in the conventional NR technology based on the terrestrial network
- only received radio quality-based events A3 and A5 events
- conditional handover execution conditions A3 and A5 events
- the conditional handover provided in the conventional NR technology supports only the Xn-based handover for fast handover support
- the operations described below are mainly described with respect to NG interface-based handover, but may be similarly applied to Xn interface-based handover.
- a message transmitted from the source base station to the core network entity may be directly transmitted to the target base station.
- the information included in the corresponding message may be configured identically, or some information may be excluded.
- the source base station may initiate handover preparation and transmit a Handover Required message including handover request information to the core network entity (e.g. AMF, S-AMF).
- the handover request message includes a target ID, Global RAN node ID, Selected TAI, target non-terrestrial network base station node ID, target non-terrestrial network cell ID, and a transparent container (Source to Target Transparent Container, PDU session IDs, corresponding hand) transmitted from the source to the target. It may include one or more of information for indicating that the over is originating from the (5G/NR) terrestrial network and conditional handover information request information.
- Conditional handover information request information includes conditional handover trigger (CHO Trigger), estimated arrival probability (Estimated Arrival Probability) information, terminal location information, area/region/zone information in which the terminal is located, terminal movement speed information, and terminal movement direction. It may include one or more of information, terminal expected path information, and estimated remaining/allowed/available service/access time of the serving cell for the corresponding terminal.
- the target base station may use the above-described information to allocate resources necessary for the incoming conditional handover. That is, the target base station may reserve radio resources for the terminal.
- the conditional handover trigger information is 1-bit information for distinguishing whether the triggered conditional handover is a newly initiated/started conditional handover or a conditional handover replacing the previously prepared conditional handover. indicates
- the core network entity e.g. AMF, T-AMF
- conditional handover information request (Conditional Handover Information Request) information may include one or more of information.
- the LEO-based non-terrestrial network continuously causes handovers of large-scale terminals serviced through the corresponding cell as the satellite moves at a high speed. Accordingly, the load on the network increases. In particular, when using early packet forwarding, the load may be further increased.
- conditional handover is configured, since resources are reserved in the corresponding target cell, the corresponding radio resource consumption may increase according to frequent handovers of multiple terminals. Accordingly, if help information related to conditional handover (execution) of the corresponding terminal is provided, the target base station can efficiently allocate and use the resources of the corresponding cell. For example, the target base station may maintain the radio resource reservation for the handover of the terminal only for a specific time by using the serving cell available time information included in the handover request information. When the time according to the serving cell available time information has elapsed, the target base station may release the reserved radio resource.
- the target base station prepares/creates a conditional handover (candidate) cell configuration.
- the target base station transmits a Handover Request Acknowledgment message to the core network entity (e.g. AMF, T-AMF).
- the message may include one or more information among a transparent container transmitted from the target to the source, a PDU session list to be handed over, a PDU session list that fails to set up, and conditional handover information acknowledgment information.
- the core network entity may transmit a Handover Command message to the source terrestrial base station.
- the message may include one or more information among a transparent container transmitted from the target to the source, a PDU session list to be handed over, a PDU session list that fails to set up, and conditional handover information acknowledgment information.
- the service available time of the target cell for the cell/area/TA/region/area/zone/location in which the UE is located is the time that the service is available for the UE through the cell, the time available for access through the cell, and the cell Time remaining until service start through the cell, service start time through the cell, duration/period/validity period for which the service is available through the cell, time allowed/available/possible to execute conditional handover to the cell, conditional to the cell Time duration/period/cycle during which handover execution is allowed/available/possible, time for which conditional handover execution to the cell is scheduled, time for conditional handover execution to the cell to be valid, start SFN, start subframe number, ( It may include one or more information of slot offset and start absolute time (e.g. UTC: Coordinated Universal Time, timeInfoUTC) information (indicating a delay before starting a corresponding timer within a subframe).
- UTC Coordinated Universal Time, timeInfoUTC
- the start SFN and the start subframe number may be provided on a target cell basis. Alternatively, the start SFN and the start subframe number may be provided on a source cell basis.
- the maximum number of conditional handover preparations indicates the maximum number of conditional handover preparations in the target base station node for the corresponding terminal. If the corresponding information is included in the conditional handover information confirmation information and transmitted to the source base station, the source base station may not initiate the handover preparation procedure for the conditional handover exceeding the number indicated for the corresponding terminal.
- the reference position of the target cell is the cell center position information (on the earth), the position where the cell's radio signal is strongest, the center position of the cell on the earth when the signal is transmitted in the beam direction of the corresponding satellite, and the cell is in the form of a circle or ellipse Assuming that , four points of coverage that provide radio signal quality beyond the allowable/available/accessible/specific threshold of the cell maximum/allowable/handover execution in the direction of movement (straight line) of the satellite on the earth (e.g. up, down, left and right, the starting point and the end point on the moving direction straight line, the starting point and the end point on a straight line perpendicular to the straight line), arbitrary location information for displaying cell coverage, etc. can be indicated.
- the reference position may be indicated by geographic coordinates of latitude and longitude.
- the reference position may be indicated by earth-centered, earth-fixed coordinates as shown in FIG. 11 .
- 11 is a diagram illustrating the geocentric fixed coordinate relationship with respect to latitude and longitude.
- a fixed coordinate value may be transmitted.
- coordinate values according to time a fixed time interval or start time end time
- the distance from the corresponding reference position in the serving cell is greater than a specific threshold and/or when the distance from the corresponding reference position in the neighboring cell is less than another specific threshold, and/or the radio of the candidate target cell
- the signal (RSRP) quality is greater than a certain threshold, it can trigger a conditional handover execution.
- the source base station transmits an RRC reconfiguration message to the terminal.
- the source base station may determine whether or not to apply early data forwarding or an application time using information received from the target base station.
- the source base station may transmit an Uplink RAN Early Status Transfer message to the AMF.
- the AMF may transmit a Downlink RAN Early Status Transfer message to the target base station.
- the Uplink RAN Early Status Transfer message and/or the Downlink RAN Early Status Transfer message may include DRB list information and DL discarding DRB list information for early status transmission during conditional handover.
- Corresponding information may include DRB ID and FIRST DL COUNT Value.
- the source base station can transmit the COUNT (value) of the first downlink SDU to be forwarded to the target base station from the source base station to the target base station through the AMF.
- the target base station transmits a HANDOVER NOTIFY message to the AMF after the successful handover procedure of the terminal is completed, and the AMF transmits a handover success message to the source base station so that the terminal successfully reaches the target cell. You can indicate that you have accessed it.
- the source base station may transmit the UPLINK RAN STATUS TRANSFER message to the AMF.
- the AMF may transmit a DOWNLINK RAN STATUS TRANSFER message to the target base station.
- the source base station instructs the remaining target base station to cancel the handover through the N2 interface.
- the following operation may be performed.
- the radio resources reserved for the target cells may be released when a predetermined time elapses based on the serving cell available time information included in the handover request information.
- the reserved radio resource may be released when the available time information of the serving cell elapses before the cancellation message is received when the handover of the terminal fails or the handover succeeds in another target cell.
- the terminal maintains a connection with the source base station after receiving the conditional handover (CHO) configuration. Then, the evaluation of the CHO execution condition for the candidate cell is started. If the conditional handover candidate cell satisfies the corresponding conditional handover execution condition, the UE disconnects from the source base station, applies the stored configuration for the selected candidate cell, and the UE synchronizes to the candidate cell. And the UE completes the RRC handover procedure by transmitting the RRC reconfiguration complete message to the target base station. The UE releases the stored conditional configuration after successful completion of the RRC handover procedure.
- CHO conditional handover
- the target base station may transmit a HANDOVER NOTIFY message to the core network entity (e.g. AMF, T-AMF).
- the core network entity e.g. AMF, S-AMF
- the core network entity may transmit a Handover Success message to the source base station. Through this, it is possible to inform that the terminal has successfully accessed the target cell.
- the source base station may transmit a Handover Cancel message for instructing the handover cancellation for the terminal to the candidate target base station to the core network entity (e.g. AMF, S-AMF).
- the core network entity e.g. AMF, T-AMF
- the corresponding message is an existing NGAP message transmitted from the AMF to the base station for terminal mobility management (HANDOVER CANCEL ACKNOWLEDGE, DOWNLINK RAN STATUS TRANSFER, HANDOVER SUCCESS, DOWNLINK RAN EARLY STATUS TRANSFER, PATH SWITCH REQUEST FAILURE, PATH SWITCH REQUEST, HANDOVER CANCEL ACKNOWLEDGE, HANDOVER SUCCESS, DOWNLINK RAN EARLY STATUS TRANSFER
- PATH SWITCH REQUEST FAILURE PATH SWITCH REQUEST
- HANDOVER CANCEL ACKNOWLEDGE HANDOVER SUCCESS
- DOWNLINK RAN EARLY STATUS TRANSFER A new message distinguished from PREPARATION FAILURE, HANDOVER REQUEST
- the UE CONTEXT RELEASE message may be used for the corresponding message.
- the target base station can efficiently allocate and use the necessary resources of the corresponding cell. For example, when a conditional handover is configured in the terminal, when the terminal performs handover to a candidate target cell, the terminal may indicate this to the source base station. Through this, the source base station can quickly recognize the handover execution of the terminal.
- the information indicated by the terminal to the source base station may use any one of uplink signaling such as PUCCH/UCI, MAC CE, and uplink RRC message.
- the signaling message may include target cell information that satisfies a conditional handover execution condition. For fast handover execution, the UE may not expect confirmation of the corresponding signaling.
- the source base station may instruct the handover cancellation to the remaining target cells/base stations other than the candidate target cells/base stations that satisfy the conditional handover execution condition through the N2 interface.
- a conditional handover used in the conventional NR technology is defined as a handover executed in a terminal when one or more handover execution conditions are satisfied.
- the execution condition evaluation is started. For example, when one or more candidate target special cells (SpCells) are configured, the UE evaluated each condition (e.g. execution triggering event) of the configured candidate target special cells. If the applicable entry condition for the corresponding conditional handover execution triggering event is satisfied/fulfilled during the indicated/defined trigger time (TimeToTrigger), the conditional handover is executed considering that event is satisfied/fulfilled. . For example, conditional reconstruction execution was initiated. If more than one triggered cell exists, one of the triggered cells is selected for conditional reconfiguration, and the stored conditional handover configuration information (e.g. condRRCReconfig) of the corresponding cell is applied.
- conditional handover configuration information e.g. condRRCReconfig
- the base station can determine/generate/receive order information of cells serving a given location over time in the non-terrestrial network. This can be used to provide mobility control that reduces the signaling load.
- the base station considers/uses the location of the terminal, satellite trajectory, satellite ephemeris information, information received from the core network, and information received by requesting a candidate target cell (according to time) of the terminal.
- Candidate target cell/base station order/time may be determined.
- the satellite orbit information and the candidate target cell/base station order/time for the physical/geographic location/region/region in which the corresponding terminal is located may be received/configured by the base station by OAM.
- the corresponding information may be transmitted to the base station from any core network node/entity providing the corresponding function.
- the above-described information may be transmitted while being included in the INITIAL CONTEXT SETUP REQUEST message during the terminal context setup procedure.
- Candidate target cell/base station order/time information for the physical/geographic location/region/region in which the corresponding terminal is located may be stored in the terminal context information.
- Corresponding information may be included in the handover request message/handover request confirmation message during the mobility procedure and transmitted/received with one or more candidate target cells/base stations.
- the corresponding information may be stored in the base station as common information for mobility support through non-UE associated signaling regardless of terminal context information.
- the source base station may request related information through a handover request message to one or more candidate target cells/base stations, and may receive related information from the candidate target base station through handover request confirmation information.
- the source base station may request including the corresponding area information (e.g. cell information, TA information (e.g. TAC, TA id), terminal location information, arbitrary terminal location area/area/zone and corresponding identifier).
- the source base station may receive service availability information of the corresponding cell for the corresponding area in response to the corresponding request.
- this is hereinafter indicated as the service available time of the corresponding terminal or cell for the corresponding area, but may be replaced with any other name.
- the service available time of the cell for the corresponding terminal or the corresponding area is the time the service is available through the cell, the time available for access through the cell, the remaining time until the service start/end through the cell, and the service start through the cell Time, time when conditional handover execution is allowed/available/possible to the cell, time period/available/possible time for conditional handover execution to the cell Duration/period/period, conditional handover execution to the cell is scheduled It may include one or more pieces of information among the time when the conditional handover to the corresponding cell is valid and the time when the conditional handover to the corresponding cell is valid.
- the speed of the general terminal is relatively negligible compared to the speed of the satellite.
- the base station may determine a candidate target cell/base station of the corresponding terminal based on orbit information of the satellite. Even in the case of a terminal moving at a high speed such as an aircraft, if the terminal reports related help information (e.g. terminal location, terminal route according to time) periodically or by request/instruction/configuration of the network, the network Based on this, it can be used to determine a candidate target cell/base station (or candidate target cell/base station order) of the corresponding terminal.
- related help information e.g. terminal location, terminal route according to time
- the base station may generate an order list of expected candidate target cells/base stations to perform handover after a predetermined time. For example, the terminal in the serving cell coverage at (t0: 00 seconds) is expected to handover to the candidate target cell 1 at (t1: 07 seconds) and the handover to the candidate target cell 2 is performed at (t2: 14 seconds) and handover to the candidate target cell 3 can be expected at (t3: 21 seconds).
- the base station (source base station) may indicate the candidate target cell order to the terminal.
- the base station configures conditional handover for one or more candidate target cells in the terminal
- the expected conditional handover execution order is indicated as (expected/expected/estimated) candidate target cell order.
- this is for convenience of description and may be replaced with any name/phrase meaning this.
- an expected candidate target cell order may be indicated for the conditional handover configuration by specifically utilizing/limiting existing information elements on the conditional handover configuration information.
- the conditional handover configuration information of the conventional NR technology includes a conditional configuration identifier (CondReconfigId), a conditional execution condition (condExecutionCond), and a conditional configuration (condRRCReconfig: RRC applied when the condition is implemented) for identifying the conditional handover configuration. reconfiguration message).
- the dual conditional construct identifier was able to identify the corresponding conditional construct through values from 1 to 8. It is possible to identify the order by indicating/configuring the candidate target cell order in the ascending order of the conditional configuration identifier.
- the conditional configuration identifier of the candidate target cell 1 may be set to 1
- the conditional configuration identifier of the target cell 2 may be set to 2
- the conditional configuration identifier of the target cell 3 may be set to 3 and used.
- Candidate target cell order can be identified.
- new configuration information for indicating the expected candidate target cell order for the conditional handover configuration may be defined. Through this, it is possible to distinguish and use the candidate target cell order through new configuration information without limiting the configuration of existing information elements.
- the information for indicating the candidate target cell order may be configured through parameters associated with one or more timer(s).
- the parameter may include service available time information of the cell for the corresponding area of the target cell 1.
- the service availability information of the cell for the corresponding area is the absolute time (e.g. Coordinated Universal Time, timeInfoUTC), the start SFN, the start subframe number, the slot offset (representing the delay before the start of the corresponding timer within the subframe) may contain information.
- the UE may recognize the candidate target cell order by using the service available time information of the cell for the corresponding area included for each target cell.
- the UE performs evaluation only on the condition for the first candidate target cell CHO configuration
- the UE performs evaluation only on the conditional handover execution condition of the candidate target cell having the highest order, and suspend/stop/not start/stop/skip the evaluation for the conditional handover execution condition of the remaining candidate target cells.
- the UE evaluates only the conditional handover execution condition of the candidate target cell having the next priority order, and the remaining For the conditional handover execution condition of the candidate target cell, evaluation may be suspend/stop/not start/stop/skip.
- the UE performs evaluation only on conditional handover execution conditions of candidate target cells having an order of first to nth (n is a natural number), and evaluates conditional handover execution conditions of the remaining candidate target cells. You can suspend/stop/unstart/suspend/skip. Instruction information for this may be indicated to the terminal.
- conditional handover execution condition of the corresponding candidate target cell may be evaluated.
- conditional handover used in conventional NR technology is that when RRC reconfiguration is applied due to execution of conditional handover, all (saved) conditional handover configuration (e.g. all the entires in VarConditionalReconfig which includes the accumulated configuration of the conditional handover) ) has been removed/released.
- all (saved) conditional handover configuration e.g. all the entires in VarConditionalReconfig which includes the accumulated configuration of the conditional handover
- all (stored) conditional handover configurations are removed/released.
- the base station may determine the candidate target cell/base station order/time of the corresponding terminal (according to time) and may indicate this to the terminal.
- it may be desirable to maintain the stored CHO configuration of the candidate target cell when the UE performs an arbitrary handover.
- the terminal can sequentially perform handover through the candidate target cell while reducing signaling between the serving base station and the candidate target base station or signaling between the terminal and the base station.
- the base station may indicate this through explicit indication information (e.g. 1-bit maintenance/release indication information) so that the UE recognizes this. If the corresponding information is absent or instructed to release, the terminal may release the conditional handover stored in the handover execution as in the prior art. As another example, the base station may implicitly indicate this through arbitrary indication information included in the conditional handover configuration so that the terminal can recognize it.
- explicit indication information e.g. 1-bit maintenance/release indication information
- the terminal transmits the configured/stored CHO configuration to the target base station
- conditional handover used in the conventional NR technology, all (stored) conditional handover configurations are removed/released when RRC reconfiguration is applied due to the execution of conditional handover or after successful completion of the RRC handover procedure.
- the UE If the UE can perform conditional handover by using the expected candidate target cell sequence/time list, the UE transmits the secured CHO configuration to the target eNB during the handover (execution) so that the target eNB sends the target eNB to the UE. It is desirable to recognize and effectively control the stored radio resource configuration.
- the terminal After receiving the conditional handover (CHO) configuration, the terminal maintains a connection with the source base station. And the UE starts evaluating the CHO execution condition for the candidate cell. If the conditional handover candidate cell satisfies the corresponding conditional handover execution condition, the UE disconnects from the source eNB. The terminal applies the stored configuration for the selected candidate cell and synchronizes to the candidate cell. And the UE completes the RRC handover procedure by transmitting the RRC reconfiguration complete message to the target base station.
- the conditional handover (CHO) configuration After receiving the conditional handover (CHO) configuration, the terminal maintains a connection with the source base station. And the UE starts evaluating the CHO execution condition for the candidate cell. If the conditional handover candidate cell satisfies the corresponding conditional handover execution condition, the UE disconnects from the source eNB. The terminal applies the stored configuration for the selected candidate cell and synchronizes to the candidate cell. And the UE completes the RRC handover procedure by transmitting the R
- the UE may maintain the stored conditional configuration even after successful completion of the RRC handover procedure.
- the terminal may transmit one or more pieces of information included in the stored conditional configuration to the base station.
- the terminal may store/transmit the measurement object information of the candidate target cell linked to the conditional configuration identifier and the conditional execution condition included in the stored conditional configuration.
- the measurement object information of the candidate target cell may include one or more pieces of information included in the NR measurement object configuration information, such as ssbFrequency, ssbSubcarrierSpacing, smtc, PCI, and freqBandIndicatorNR.
- the UE may store/transmit a conditional configuration identifier included in the stored conditional configuration and a target cell global ID (NR CGI) of a candidate target cell associated with the conditional execution condition.
- the UE may store/transmit information for indicating a conditional configuration identifier included in the stored conditional configuration and a candidate target cell sequence associated with the conditional execution condition.
- the UE may perform conditional handover by checking whether the conditional handover execution condition corresponding to the stored candidate target cell CHO configuration order/time is satisfied/fulfilled. . If a corresponding arbitrary conditional handover execution condition is not satisfied/implemented within the stored candidate target cell CHO configuration order/time, the UE may prevent the corresponding candidate target cell CHO configuration from being executed. And it may not be reusable. Accordingly, the UE may remove/release the conditional handover configuration of the corresponding candidate target cell when the candidate target cell CHO configuration order/time passes.
- the UE may start/perform CHO execution condition evaluation for the candidate target cell within the stored candidate target cell CHO configuration order/time.
- the UE may start/perform CHO execution condition evaluation for the candidate target cell within the service available time of the candidate target cell for the area in which the UE is located.
- the UE may start a specific timer at a time when conditional handover execution is allowed/available/possible to the corresponding cell.
- the UE may start/perform CHO execution condition evaluation for the corresponding candidate target cell while the corresponding timer is running. If the service availability information of the candidate target cell for starting the corresponding timer is not configured/indicated, the UE may start evaluating the execution condition when receiving the CHO (Conditional Hand Over) configuration. Through this, a terminal operation necessary for performing CHO execution condition evaluation immediately after receiving the RRC reconfiguration command is removed, thereby reducing power consumption of the terminal.
- the UE conditional handover can run If the CHO execution condition is not satisfied during the time duration/period/period in which conditional handover execution is allowed/available/possible to the corresponding cell, when the corresponding timer expires, the UE configures the conditional handover of the corresponding candidate target cell can be removed/unset.
- the CHO execution condition e.g. RSRP is greater than a threshold value, A3/A4/A5 event satisfaction, etc.
- the corresponding candidate target base station may also release the corresponding conditional handover configuration.
- the candidate target base station may transmit a CONDITIONAL HANDOVER CANCEL message to cancel the conditional handover already prepared to the source base station.
- the target base station may transmit including the cause for canceling the conditional handover.
- Random terminal context/resource used between candidate target base station and source base station e.g. NG-RAN node UE XnAP ID, Conditional Handover Information Request (CHO Trigger, Estimated Arrival Probability), DRBs Subject To Early Status Transfer List, Conditional Handover Information Acknowledgment (Requested Target Cell ID, Maximum Number of CHO Preparations) can be released.
- NG-RAN node UE XnAP ID e.g. NG-RAN node UE XnAP ID
- Conditional Handover Information Request CHO Trigger, Estimated Arrival Probability
- DRBs Subject To Early Status Transfer List e.g., DRBs Subject To Early Status Transfer List
- Conditional Handover Information Acknowledgment Requested Target Cell ID, Maximum Number of CHO Preparations
- the source base station may not initiate a handover cancellation procedure to another signaling connection or another candidate target base station node for the terminal. For example, the source base station may skip the handover cancellation procedure. Otherwise, the source base station may initiate a handover cancellation procedure to another signaling connection or another candidate target base station node for the terminal.
- the present disclosure it is possible to effectively control the mobility of a terminal serviced through a non-terrestrial network.
- the present embodiment can efficiently handover a terminal serviced through a non-terrestrial network.
- FIG. 12 is a diagram for explaining the configuration of a target base station according to an embodiment.
- the target base station 1200 controlling the handover of the terminal is based on the receiving unit 1230 receiving handover request information for handover of the terminal from the source base station or the core network entity and the handover request information.
- to reserve a radio resource for handover of the terminal and may include a control unit 1210 for determining whether to release the reserved radio resource using the serving cell available time information included in the handover request information.
- the receiver 1230 may receive the handover request information of the terminal from the source base station through the Xn interface.
- the handover request information may be included in the handover request message.
- the receiver 1230 may receive handover request information from the core network entity. In this case, the handover request information may be included in the handover request message.
- the handover of the terminal may be a handover through a core network entity or a handover between base stations.
- the handover of the terminal may be a conditional handover in which the terminal performs the handover according to a preset condition.
- the conditional handover condition may be set by time, radio quality measurement result, and the like.
- the handover request information may include handover window information for handover of the terminal.
- the handover window information indicates information on a period during which the target base station can service the handover of the terminal.
- the handover window information is information indicating a time period during which the UE can perform a related procedure in order to perform a handover, and there is no limitation on the term.
- the handover window information may include at least one of duration information and service start time information for which the terminal can provide a service through the target base station.
- the handover window information may include window start time information and window end time information.
- the service start time information may correspond to the window start time information.
- service end time information may be recognized by using serviceable duration information for service start time information.
- absolute time information e.g. UTC: Coordinated Universal Time
- the handover request information may include serving cell available time information.
- the handover request information may include information on the remaining serviceable time of the serving cell to which the terminal is currently connected.
- the serving cell available time information may be configured in various forms, such as a duration form or end time information.
- handover request information includes target ID, Global RAN node ID, Selected TAI, target non-terrestrial network base station node ID, target non-terrestrial network cell ID, and transparent container (Source to Target Transparent Container, PDU session IDs) transmitted from the source to the target.
- target ID Global RAN node ID
- Selected TAI target non-terrestrial network base station node ID
- target non-terrestrial network cell ID target non-terrestrial network cell ID
- transparent container Source to Target Transparent Container, PDU session IDs
- Over information request information includes conditional handover trigger (CHO Trigger), estimated arrival probability information, terminal location information, area/region/zone information in which the terminal is located, terminal movement speed information, terminal movement direction information, and terminal It may include one or more information of expected path information and estimated remaining/allowed/available service/access time of the serving cell for the corresponding terminal.
- conditional handover trigger (CHO Trigger)
- estimated arrival probability information estimated arrival probability information
- terminal location information area/region/zone information in which the terminal is located
- terminal movement speed information terminal movement direction information
- terminal It may include one or more information of expected path information and estimated remaining/allowed/available service/access time of the serving cell for the corresponding terminal.
- the controller 1210 may reserve radio resources for handover of the terminal.
- the controller 1210 may reserve a specific radio resource for conditional handover to the terminal.
- the reserved radio resource may be preferentially provided for the corresponding terminal, and the use of the radio resource may be restricted until the reservation is released.
- the controller 1210 may determine whether to release the reserved radio resource using the serving cell available time information.
- the controller 1210 may determine to release the reserved radio resource.
- the controller 1210 may determine to release the reserved radio resource.
- the controller 1210 may determine to release the reserved radio resource when the available time of the serving cell expires while the terminal has not successfully completed handover to the target cell of the target base station.
- the controller 1210 may determine to release the reserved radio resource when the serving cell available time expires after the terminal successfully completes handover to another candidate target cell.
- the controller 1210 releases the reserved radio resource when the available time of the serving cell expires even before a handover cancellation message is received. can decide to
- the controller 1210 may release the radio resource reserved for the terminal when a specific time elapses by using information included in the handover request information. Through this, it is possible to prevent a long-term reservation of unnecessary radio resources due to frequent handover of the terminal.
- the controller 1210 controls the overall operation of the target base station 1200 according to the mobility control operation required to perform the above-described embodiment.
- the transmitter 1220 and the receiver 1230 are used to transmit and receive signals, messages, and data necessary for performing the above-described embodiment with the terminal, the core network entity, and the source base station.
- FIG. 13 is a diagram for explaining the configuration of a source base station according to an embodiment.
- the source base station 1300 controlling the handover of the terminal configures a conditional handover to the terminal, and the controller 1310 configures handover request information including serving cell available time information for the terminal.
- the controller 1310 configures handover request information including serving cell available time information for the terminal.
- a transmitter 1320 for transmitting handover request information to a target base station or a core network entity.
- the target base station may control radio resources for handover of the terminal by using the serving cell available time information included in the handover request information.
- the transmitter 1320 may transmit handover configuration information to the terminal in order to control the handover of the terminal.
- the UE may perform operations such as measuring radio quality for specific cells and reporting radio quality measurement results.
- the transmitter 1320 may store and configure related information for performing handover in the terminal.
- the handover of the UE may be a conditional handover in which the UE performs the handover according to a preset condition.
- the conditional handover condition may be set by time, radio quality measurement result, and the like.
- the handover request information may include necessary information transmitted to the target base station in order to support the handover of the terminal.
- the handover request information may include handover window information for handover of the terminal.
- the handover window information indicates information on a period during which the target base station can service the handover of the terminal.
- the handover window information is information indicating a time period during which the UE can perform a related procedure in order to perform a handover, and there is no limitation on the term.
- the handover window information may include at least one of duration information and service start time information for which the terminal can provide a service through the target base station.
- the handover window information may include window start time information and window end time information.
- the service start time information may correspond to the window start time information.
- service end time information may be recognized by using serviceable duration information for service start time information.
- absolute time information e.g. UTC: Coordinated Universal Time
- the handover request information may include serving cell available time information.
- the handover request information may include information on the remaining serviceable time of the serving cell to which the terminal is currently connected.
- the serving cell available time information may be configured in various forms, such as a duration form or end time information.
- handover request information includes target ID, Global RAN node ID, Selected TAI, target non-terrestrial network base station node ID, target non-terrestrial network cell ID, and transparent container (Source to Target Transparent Container, PDU session IDs) transmitted from the source to the target.
- target ID Global RAN node ID
- Selected TAI target non-terrestrial network base station node ID
- target non-terrestrial network cell ID target non-terrestrial network cell ID
- transparent container Source to Target Transparent Container, PDU session IDs
- Over information request information includes conditional handover trigger (CHO Trigger), estimated arrival probability information, terminal location information, area/region/zone information in which the terminal is located, terminal movement speed information, terminal movement direction information, and terminal It may include one or more information of expected path information and estimated remaining/allowed/available service/access time of the serving cell for the corresponding terminal.
- conditional handover trigger (CHO Trigger)
- estimated arrival probability information estimated arrival probability information
- terminal location information area/region/zone information in which the terminal is located
- terminal movement speed information terminal movement direction information
- terminal It may include one or more information of expected path information and estimated remaining/allowed/available service/access time of the serving cell for the corresponding terminal.
- the transmitter 1320 may transmit handover request information of the terminal to the target base station through the Xn interface.
- the handover request information may be included in the handover request message.
- the transmitter 1320 may transmit handover request information to the core network entity (e.g. AMF or S-AMF) in the case of a handover procedure through the core network entity. Even in this case, the handover request information may be included in the handover request message.
- the core network entity e.g. AMF or S-AMF
- the receiver 1330 may receive a handover completion message from the terminal, and the transmitter 1320 may transmit a handover cancellation message to a target base station to which the terminal has not handed over.
- the target base station may control radio resources for handover of the terminal by using the serving cell available time information included in the handover request information. For example, when the handover request information is received from the source base station or the core network entity, the target base station may reserve radio resources for handover of the terminal. For example, the target base station may reserve a specific radio resource for conditional handover to the terminal. The reserved radio resource may be preferentially provided for the corresponding terminal, and the use of the radio resource may be restricted until the reservation is released.
- the target base station may determine whether to release the reserved radio resource by using the serving cell available time information included in the handover request information. For example, if the serving cell available time information is included in the handover request information, the target base station may determine whether to release the reserved radio resource by using the serving cell available time information.
- the target base station may determine to release the reserved radio resource. For another example, the target base station may determine to release the reserved radio resource when a message instructing to release the reserved radio resource is received from the source base station or the core network entity. As another example, the target base station may decide to release the reserved radio resource when the serving cell available time expires while the terminal has not successfully completed handover to the target cell of the target base station. As another example, the target base station may determine to release the reserved radio resource when the serving cell available time expires after the terminal successfully completes handover to another candidate target cell. For another example, the target base station determines to release the reserved radio resource when the serving cell available time expires even before a handover cancellation message is received after the terminal has successfully completed handover to another candidate target cell. can
- the target base station may release the radio resource reserved for the terminal when a specific time elapses by using information included in the handover request information. Through this, it is possible to prevent a long-term reservation of unnecessary radio resources due to frequent handover of the terminal.
- the source base station 1300 may perform efficient network load management.
- the controller 1310 controls the overall operation of the source base station 1300 according to the mobility control operation required to perform the above-described embodiment.
- the transmitter 1320 and the receiver 1330 are used to transmit and receive signals, messages, and data necessary for performing the above-described embodiment with the terminal, the core network entity, and the target base station.
- the above-described embodiments may be implemented through various means.
- the present embodiments may be implemented by hardware, firmware, software, or a combination thereof.
- the method according to the present embodiments may include one or more ASICs (Application Specific Integrated Circuits), DSPs (Digital Signal Processors), DSPDs (Digital Signal Processing Devices), PLDs (Programmable Logic Devices), FPGAs (Field Programmable Gate Arrays), may be implemented by a processor, a controller, a microcontroller or a microprocessor.
- ASICs Application Specific Integrated Circuits
- DSPs Digital Signal Processors
- DSPDs Digital Signal Processing Devices
- PLDs Programmable Logic Devices
- FPGAs Field Programmable Gate Arrays
- the method according to the present embodiments may be implemented in the form of an apparatus, procedure, or function that performs the functions or operations described above.
- the software code may be stored in the memory unit and driven by the processor.
- the memory unit may be located inside or outside the processor, and may transmit and receive data to and from the processor by various known means.
- terms such as “system”, “processor”, “controller”, “component”, “module”, “interface”, “model”, or “unit” generally refer to computer-related entities hardware, hardware and software. may mean a combination of, software, or running software.
- the aforementioned component may be, but is not limited to, a process run by a processor, a processor, a controller, a controlling processor, an object, a thread of execution, a program, and/or a computer.
- an application running on a controller or processor and a controller or processor can be a component.
- One or more components may reside within a process and/or thread of execution, and the components may be located on one device (eg, a system, computing device, etc.) or distributed across two or more devices.
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Abstract
Description
μ | 서브캐리어 간격 | Cyclic prefix | Supported for data | Supported for synch |
0 | 15 | Normal | Yes | Yes |
1 | 30 | Normal | Yes | Yes |
2 | 60 | Normal, Extended | Yes | No |
3 | 120 | Normal | Yes | Yes |
4 | 240 | Normal | No | Yes |
Claims (15)
- 타켓 기지국이 단말의 핸드오버를 제어하는 방법에 있어서,소스 기지국 또는 코어망 개체로부터 단말의 핸드오버를 위한 핸드오버 요청 정보를 수신하는 단계;상기 핸드오버 요청 정보에 기초하여 상기 단말의 핸드오버를 위한 무선자원을 예약하는 단계; 및상기 핸드오버 요청 정보에 포함되는 서빙셀 가용 시간정보를 이용하여 상기 예약된 무선자원의 해제여부를 결정하는 단계를 포함하는 방법.
- 제 1 항에 있어서,상기 단말의 핸드오버는,미리 설정된 조건에 따라 상기 단말이 핸드오버를 수행하는 조건적 핸드오버인 것을 특징으로 하는 방법.
- 제 1 항에 있어서,상기 핸드오버 요청 정보는,상기 단말의 핸드오버를 위한 핸드오버 윈도우 정보를 포함하는 방법.
- 제 3 항에 있어서,상기 핸드오버 윈도우 정보는,상기 단말이 상기 타켓 기지국을 통해서 서비스가 가능한 듀레이션 정보 및 서비스 시작 시간 정보 중 적어도 하나를 포함하는 방법.
- 제 1 항에 있어서,상기 예약된 무선자원의 해제 여부를 결정하는 단계는,상기 서빙셀 가용 시간정보에 따른 서빙셀 서비스 시간이 종료되었다고 판단되면, 상기 예약된 무선자원을 해제하도록 결정하는 방법.
- 소스 기지국이 단말의 핸드오버를 제어하는 방법에 있어서,단말에 조건적 핸드오버를 구성하는 단계;상기 단말에 대한 서빙셀 가용 시간정보를 포함하는 핸드오버 요청 정보를 구성하는 단계; 및상기 핸드오버 요청 정보를 타켓 기지국 또는 코어망 개체로 전송하는 단계를 포함하되,상기 타켓 기지국은 상기 핸드오버 요청 정보에 포함되는 서빙셀 가용 시간정보를 이용하여 상기 단말의 핸드오버를 위한 무선자원을 제어하는 방법.
- 제 6 항에 있어서,상기 핸드오버 요청 정보는,상기 단말의 핸드오버를 위한 핸드오버 윈도우 정보를 더 포함하는 방법.
- 제 7 항에 있어서,상기 핸드오버 윈도우 정보는,상기 타켓 기지국을 통해서 상기 단말에 서비스가 가능한 듀레이션 정보 및 서비스 시작 시간정보 중 적어도 하나를 포함하는 방법.
- 제 6 항에 있어서,상기 타켓 기지국은,상기 핸드오버 요청 정보에 기초하여 상기 단말의 핸드오버를 위한 무선자원을 예약하는 방법.
- 제 9 항에 있어서,상기 타켓 기지국은,상기 서빙셀 가용 시간정보에 따른 서빙셀 서비스 시간이 종료되었다고 판단되면, 상기 예약된 무선자원을 해제하는 방법.
- 단말의 핸드오버를 제어하는 타켓 기지국에 있어서,소스 기지국 또는 코어망 개체로부터 단말의 핸드오버를 위한 핸드오버 요청 정보를 수신하는 수신부; 및상기 핸드오버 요청 정보에 기초하여 상기 단말의 핸드오버를 위한 무선자원을 예약하고, 상기 핸드오버 요청 정보에 포함되는 서빙셀 가용 시간정보를 이용하여 상기 예약된 무선자원의 해제여부를 결정하는 제어부를 포함하는 타켓 기지국.
- 제 11 항에 있어서,상기 단말의 핸드오버는,미리 설정된 조건에 따라 상기 단말이 핸드오버를 수행하는 조건적 핸드오버인 것을 특징으로 하는 타켓 기지국.
- 제 11 항에 있어서,상기 핸드오버 요청 정보는,상기 단말의 핸드오버를 위한 핸드오버 윈도우 정보를 포함하는 타켓 기지국.
- 제 13 항에 있어서,상기 핸드오버 윈도우 정보는,상기 단말이 상기 타켓 기지국을 통해서 서비스가 가능한 듀레이션 정보 및 서비스 시작 시간 정보 중 적어도 하나를 포함하는 타켓 기지국.
- 제 11 항에 있어서,상기 제어부는,상기 서빙셀 가용 시간정보에 따른 서빙셀 서비스 시간이 종료되었다고 판단되면, 상기 예약된 무선자원을 해제하도록 결정하는 타켓 기지국.
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EP22796047.3A EP4333503A1 (en) | 2021-04-28 | 2022-04-22 | Method and device for controlling mobility |
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KR1020220047442A KR20220148099A (ko) | 2021-04-28 | 2022-04-18 | 이동성 제어 방법 및 그 장치 |
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EP4369633A1 (en) * | 2022-11-10 | 2024-05-15 | Intelsat US LLC | Handover of satellite terminal using access gateway function (agf) |
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