WO2021062599A1 - Procédé et appareil de communication, procédé de mesure de cellule - Google Patents
Procédé et appareil de communication, procédé de mesure de cellule Download PDFInfo
- Publication number
- WO2021062599A1 WO2021062599A1 PCT/CN2019/109374 CN2019109374W WO2021062599A1 WO 2021062599 A1 WO2021062599 A1 WO 2021062599A1 CN 2019109374 W CN2019109374 W CN 2019109374W WO 2021062599 A1 WO2021062599 A1 WO 2021062599A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- frequency point
- cell
- frequency
- satellite
- terminal device
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Images
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
- G01S19/00—Satellite radio beacon positioning systems; Determining position, velocity or attitude using signals transmitted by such systems
- G01S19/01—Satellite radio beacon positioning systems transmitting time-stamped messages, e.g. GPS [Global Positioning System], GLONASS [Global Orbiting Navigation Satellite System] or GALILEO
- G01S19/03—Cooperating elements; Interaction or communication between different cooperating elements or between cooperating elements and receivers
- G01S19/08—Cooperating elements; Interaction or communication between different cooperating elements or between cooperating elements and receivers providing integrity information, e.g. health of satellites or quality of ephemeris data
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02D—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
- Y02D30/00—Reducing energy consumption in communication networks
- Y02D30/70—Reducing energy consumption in communication networks in wireless communication networks
Definitions
- This application relates to the field of communication, and specifically to a communication method, a cell measurement method, and a communication device.
- the ground communication system cannot achieve true "seamless coverage". For example, in rural areas with low population density, there are usually not enough cellular networks. For example, it is impossible to achieve communication through terrestrial networks in the maritime or aviation fields.
- satellite communications technology Due to the "ubiquitous" and “direct-to-user" characteristics of satellite communications, satellite communications technology has developed rapidly in areas such as satellite TV live broadcast services, mobile satellite services, Internet access, private networks, and military communications. Therefore, in the discussion of the fifth generation (5th generation, 5G) system in the 3rd generation partnership project (3GPP) agreement, satellites will be used as a new access method.
- 5G fifth generation
- 3GPP 3rd generation partnership project
- This application provides a communication method, a cell measurement method, and a communication device, in order to use the characteristics of satellite communication to determine a cell in satellite communication, and further reduce the signaling overhead caused by multiple requests for broadcast cell information by terminal equipment.
- a communication method is provided.
- the method may be executed by a terminal device, or may also be executed by a chip or circuit configured in the terminal device, which is not limited in this application.
- the method may include: receiving time information corresponding to at least one frequency point on the satellite ephemeris of the satellite; and determining at least one frequency point corresponding to the satellite according to the first time and the time information corresponding to the at least one frequency point.
- the terminal device is in an idle state or an inactive state.
- the time information corresponding to at least one frequency point may include time information corresponding to one frequency point or multiple frequency points.
- the time information corresponding to at least one frequency point may be included in a radio resource control (radio resource control, RRC) message (for example, when a terminal device enters an idle state or inactive from a connected state) Status, received RRC release (release) message) or broadcast message.
- RRC radio resource control
- the time information corresponding to the at least one frequency point may be time information at which the terminal device measures the at least one frequency point.
- the terminal equipment measures the time information of each frequency point.
- the time information corresponding to at least one frequency point can also be understood as the neighbor cell information required for cell reselection acquired by the terminal device in the serving cell, including not only the neighbor cell that the current serving cell of the terminal device needs to measure, but also the terminal The neighbor cell information that needs to be measured after the device selects other cells as the serving cell.
- the time information corresponding to the at least one frequency point is valid in an area specific.
- each cell in the area can broadcast the time information corresponding to the at least one frequency point.
- the frequency point corresponding to the satellite may indicate the frequency point on the satellite ephemeris of the satellite, or the frequency point distributed or deployed in the satellite network, or the frequency point distributed or deployed under the satellite. point.
- the terminal device determines at least one frequency point, and the at least one frequency point may be a frequency point used for measurement. That is, the terminal device determines at least one frequency point to be measured according to the first moment and the time information corresponding to the at least one frequency point.
- the first moment may be any moment, for example, the first moment may be the current moment.
- the frequency point distribution on the satellite ephemeris also has a certain law, therefore, the characteristics of satellite communication can be used to determine at least one frequency point corresponding to the satellite. Determining the frequency point can also be understood as determining the cell under the frequency point. For example, the terminal device can determine one or more cells based on the time information corresponding to at least one frequency point.
- a terminal device wants to determine a cell, for example, when determining a cell for measurement, it does not need to request broadcast cell information from the network device every time, and it can further save the signaling overhead caused by multiple requests for broadcast cell information. And it can also help terminal equipment to save power.
- the method further includes: receiving the satellite ephemeris, where the satellite ephemeris is used to indicate information about the orbit of the satellite; Time and time information corresponding to the at least one frequency point, determining at least one frequency point corresponding to the satellite, including: according to the satellite ephemeris, the first time, and time information corresponding to the at least one frequency point To determine at least one frequency point corresponding to the satellite.
- the terminal device can calculate the satellite's trajectory and time information based on satellite ephemeris (ephemeris information).
- the time information corresponding to the at least one frequency point includes: the time period corresponding to each frequency point in the at least one frequency point, or N groups of frequency points The time period corresponding to each group of frequency points in the points; wherein the at least one frequency point includes the N groups of frequency points, the N groups of frequency points include at least one frequency point corresponding to the satellite, and N is greater than 1 or An integer equal to 1.
- the time information corresponding to the at least one frequency point includes: a time period corresponding to each frequency point in the at least one frequency point.
- the terminal device can determine the time period for measuring each frequency point according to the time information corresponding to each frequency point.
- the terminal device determines the frequency point that needs to be measured at the current time according to the current time and one or at least one frequency point corresponding to the time period in which the current time is located.
- the time information corresponding to at least one frequency point includes: a time period corresponding to each group of frequency points in the N groups of frequency points.
- the terminal device can determine the time for measuring each group of frequency points according to the time information corresponding to each group of frequency points.
- the terminal device determines the frequency points that need to be measured at the current time according to the current time and one or more sets of frequency points corresponding to the time period in which the current time is located.
- the time information corresponding to the at least one frequency point includes: information about measuring the time of each frequency point in the at least one frequency point.
- the frequency of the serving cell or camping cell of the terminal device may be different. Measuring the time information of each frequency point in at least one frequency point can also be understood as that the frequency point information obtained by the terminal equipment not only includes the neighboring cell information that the current serving cell needs to measure, but also includes the terminal equipment reselecting to other cells Neighbor cell information that needs to be measured at the time.
- the neighboring cell information required for cell reselection obtained by the terminal equipment in the serving cell not only includes the neighboring cells that the terminal equipment needs to measure in the serving cell, but also includes the information that the terminal equipment needs to measure after reselecting to another cell. Neighborhood. Therefore, based on the time information corresponding to at least one frequency point and the first moment (such as the current moment), the terminal device can determine the frequency points that need to be measured at different times. In this way, through the broadcast message of the serving cell (or the camping cell), the time information corresponding to at least one frequency point required for cell reselection can be obtained, and the information caused by the terminal device's multiple requests for system messages can be further reduced. Make the cost, help the terminal equipment to save power.
- the at least one frequency point corresponding to the satellite includes: one or at least one frequency point corresponding to the first moment, and/or, the M groups of frequency points corresponding to M time periods after the first time, wherein each time period of the M time periods corresponds to a group of frequency points, and M is an integer greater than or equal to 1.
- the neighbor cell information required for cell reselection acquired by the terminal device in the serving cell includes not only the neighbor cell that the terminal device needs to measure in the current serving cell, but also the neighbor cell that the terminal device needs to measure when the serving cell of the terminal device is another cell. Neighborhood information.
- the method further includes: measuring the frequency point corresponding to the first moment; and/or, in each of the M time periods Measure the frequency point corresponding to each time period.
- measuring the frequency points corresponding to each time period in each time period can be understood to mean that when the serving cell of the terminal device is a different cell, the measurement of the neighboring cell required by the terminal device in the cell is measured.
- the M time periods include a first time period and a second time period, and the first time period is before the second time period; the The frequency points corresponding to the second time period include: frequency points that have an association relationship with all frequency points or part of the frequency points corresponding to the first time period.
- the associated frequency points can represent the frequency points that may be included in the trajectory of the terminal device as the satellite runs.
- the frequency points on the running track of the terminal device may include: frequency point 1, frequency point 7, and frequency point 3.
- the frequency points corresponding to the second time period may include: Frequency point, frequency point associated with frequency point 7, and frequency point associated with frequency point 3.
- the frequency points corresponding to the second time period may include any one or both of the following: Items: frequency points associated with frequency point 1, frequency points associated with frequency point 7, and frequency points associated with frequency point 3.
- the frequency point associated with frequency point 1 refers to the frequency points that may be included in the operation trajectory of the terminal equipment when the serving cell of the terminal device is the cell of frequency point 1, as the satellite runs.
- the frequency point associated with frequency point 7 refers to the frequency points that may be included in the operation trajectory of the terminal equipment when the serving cell of the terminal device is the cell of frequency point 7, with the operation of the satellite.
- a communication method is provided.
- the method may be executed by a network device, or may also be executed by a chip or circuit configured in the network device, which is not limited in this application.
- the method may include: generating time information corresponding to at least one frequency point on the satellite ephemeris of the satellite, where the time information corresponding to the at least one frequency point can be used to determine at least one frequency point corresponding to the satellite; and sending the Time information corresponding to at least one frequency point.
- the characteristics of satellite communication can be used to determine at least one frequency point corresponding to the satellite.
- the network device (such as the current serving cell) can notify the terminal device of the time information corresponding to at least one frequency point, so that the terminal device can determine at least one frequency point corresponding to the satellite based on the time information corresponding to the at least one frequency point.
- the method further includes: sending the satellite ephemeris, where the satellite ephemeris is used to indicate information about the orbit of the satellite.
- the time information corresponding to the at least one frequency point includes: the time period corresponding to each frequency point in the at least one frequency point, or N groups of frequency points The time period corresponding to each group of frequency points in the points; wherein the at least one frequency point includes the N groups of frequency points, the N groups of frequency points include at least one frequency point corresponding to the satellite, and N is greater than 1 or An integer equal to 1.
- the time information corresponding to the at least one frequency point includes: information about measuring the time of each frequency point in the at least one frequency point.
- the network device notifies the terminal device of the neighboring cell information, including not only the neighboring cell that the terminal device needs to measure in the serving cell, but also the neighboring cell that the terminal device needs to measure after reselecting to another cell. Therefore, based on the time information corresponding to at least one frequency point and the first moment (such as the current moment), the terminal device can determine the frequency points that need to be measured at different times. In this way, through the broadcast message of the serving cell (or the camping cell), the time information corresponding to at least one frequency point required for cell reselection can be obtained, and the information caused by the terminal device's multiple requests for system messages can be further reduced. Make the cost, help the terminal equipment to save power.
- the at least one frequency point corresponding to the satellite includes: one or at least one frequency point corresponding to the first moment, and/or, the M groups of frequency points corresponding to M time periods after the first time, wherein each time period of the M time periods corresponds to a group of frequency points, and M is an integer greater than or equal to 1.
- the M time periods include a first time period and a second time period, and the first time period is before the second time period;
- the frequency points corresponding to the second time period include: frequency points that have an association relationship with all frequency points or part of the frequency points corresponding to the first time period.
- a method for cell measurement is provided.
- the method may be executed by a terminal device, or may also be executed by a chip or circuit configured in the terminal device, which is not limited in this application.
- the method may include: when the cell quality of the serving cell is less than the first threshold, measuring the neighboring cell; when the cell quality of the neighboring cell is greater than or equal to the second threshold, or the cell quality difference is greater than or equal to the first threshold.
- the cell quality difference is the difference between the cell quality of the neighboring cell and the cell quality of the serving cell, and the serving cell and the serving cell
- the neighboring cell is a satellite cell.
- the first threshold, the second threshold, and the third threshold may be predetermined, such as a protocol or a network device, or may be configured by a network device, which is not limited.
- the terminal equipment can perform simple cell reselection. For example, when the quality of the serving cell measured by the terminal device is less than a certain threshold, the terminal device measures the neighboring cell. For another example, as long as there is a suitable neighboring cell, the terminal device can reselect the neighboring cell, if the quality of the neighboring cell is higher than a certain threshold, or the quality of the neighboring cell is higher than the quality of the serving cell, or The quality of the neighboring cell is higher than the quality of the serving cell by a certain threshold, and so on. It can further reduce unnecessary measurements and help save power for terminal equipment.
- the first threshold is equal to the second threshold.
- the terminal device can reselect the cell.
- a communication device configured to execute the communication method provided in the first aspect or the third aspect.
- the communication device may include a module for executing the communication method provided in the first aspect or the third aspect.
- the communication device may be a terminal device, a chip or a circuit configured in the terminal device, or a device including a terminal device.
- a communication device is provided, and the communication device is configured to execute the method provided in the second aspect.
- the communication device may include a module for executing the method provided in the second aspect.
- the communication device may be a network device, a chip or circuit configured in the network device, or a device including a network device.
- a communication device including a processor.
- the processor is coupled with the memory and can be used to execute instructions in the memory to implement the method in any one of the first aspect or the third aspect described above in the first aspect or the third aspect.
- the communication device further includes a memory.
- the communication device further includes a communication interface, the processor is coupled with the communication interface, and the communication interface is used to input and/or output information.
- the information includes at least one of instructions and data.
- the communication device is a terminal device.
- the communication interface may be a transceiver, or an input/output interface.
- the communication device is a chip or a chip system.
- the communication interface may be an input/output interface, which may be an input/output interface, interface circuit, output circuit, input circuit, pin, or related circuit on the chip or chip system, etc.
- the processor may also be embodied as a processing circuit or a logic circuit.
- the communication device is a chip or a chip system configured in a terminal device.
- the transceiver may be a transceiver circuit.
- the input/output interface may be an input/output circuit.
- a communication device including a processor.
- the processor is coupled to the memory and can be used to execute instructions in the memory to implement the foregoing second aspect and the method in any one of the possible implementation manners of the second aspect.
- the communication device further includes a memory.
- the communication device further includes a communication interface, the processor is coupled with the communication interface, and the communication interface is used to input and/or output information.
- the information includes at least one of instructions and data.
- the communication device is a network device.
- the communication interface may be a transceiver, or an input/output interface.
- the communication device is a chip or a chip system.
- the communication interface may be an input/output interface, interface circuit, output circuit, input circuit, pin or related circuit on the chip or chip system.
- the processor may also be embodied as a processing circuit or a logic circuit.
- the communication device is a chip or a chip system configured in a network device.
- the transceiver may be a transceiver circuit.
- the input/output interface may be an input/output circuit.
- a computer-readable storage medium on which a computer program is stored.
- the communication device realizes the first aspect or the third aspect, and the first or third aspect.
- the method in any possible implementation of the three aspects.
- a computer-readable storage medium on which a computer program is stored.
- the communication device realizes the second aspect and any possible implementation of the second aspect The method in the way.
- a computer program product containing instructions which when executed by a computer causes a communication device to implement the method provided in the first aspect or the third aspect.
- a computer program product containing instructions is provided, which when executed by a computer causes a communication device to implement the method provided in the second aspect.
- a communication system including the aforementioned network equipment and terminal equipment.
- FIGS 1 to 4 are schematic diagrams of satellite communications applicable to embodiments of the present application.
- FIGS 5 and 6 are schematic diagrams of an IAB system applicable to embodiments of the present application.
- Fig. 7 is a schematic diagram of a network architecture applicable to an embodiment of the present application.
- Fig. 8 is a schematic diagram of a communication method applicable to an embodiment of the present application.
- FIG. 9 and FIG. 10 are schematic diagrams of frequency point distribution applicable to the embodiments of the present application.
- FIG. 11 is a schematic diagram of a communication method suitable for another embodiment of the present application.
- FIG. 12 is a schematic diagram of a cell measurement method applicable to another embodiment of the present application.
- Fig. 13 is a schematic diagram of a serving cell and a neighboring cell applicable to another embodiment of the present application.
- FIG. 14 is a schematic block diagram of a communication device provided by an embodiment of the application.
- FIG. 15 is a schematic block diagram of another communication device according to an embodiment of the application.
- FIG. 16 is a schematic block diagram of a terminal device provided by an embodiment of the application.
- FIG. 17 is a schematic block diagram of a network device provided by an embodiment of the application.
- LTE long term evolution
- 5G fifth generation mobile communication
- machine to machine machine to machine
- M2M machine to machine
- NTN non-terrestrial network
- the 5G wireless air interface technology is called a new radio (NR)
- NR new radio
- the NTN system can also be called a satellite communication system.
- the non-ground communication system may also include a high altitude platform (HAPS) communication system.
- HAPS high altitude platform
- Terrestrial communication systems sometimes fail to achieve true "seamless coverage". For example, in rural areas with low population densities, there are usually not enough cellular networks. For another example, in the maritime and aviation fields, it is even more impossible to achieve communication through terrestrial networks. Due to the "ubiquitous" and "direct-to-user" characteristics of satellite communications, satellite communications technology has developed rapidly in areas such as satellite TV live broadcast services, mobile satellite services, Internet access, private networks, and military communications.
- the satellite system can be divided into low earth orbit (LEO), medium earth orbit (MEO), and high orbit satellite (geostationary earth orbit, GEO) (or called For geostationary orbit satellites).
- LEO low earth orbit
- MEO medium earth orbit
- GEO geostationary earth orbit
- the LEO satellite height is about 300 kilometers (km)-1500km.
- the satellite altitude of MEO is between LEO and GEO.
- the speed of the satellite is the same as the rotation speed of the earth and remains stationary relative to the ground; the height of the satellite is about 35768km.
- the embodiment of this application does not limit the division manners of GEO, MEO and LEO.
- FIGS 1 to 4 show several schematic architecture diagrams of satellite communications applicable to embodiments of the present application.
- Figure 1 shows a radio access network (RAN) architecture (RAN architecture with transparent satellite) with transparent satellites.
- RAN radio access network
- UE user equipment
- satellite NTN gateway
- base station such as NR base station (next generation node B, gNB)
- 5G core network core network (CN)
- data network data network
- the data network may be a network used to provide transmission data.
- the network of the operator's business the Internet network
- the business network of a third party the business network of a third party
- the UE may be various mobile terminals, such as a mobile satellite phone, or various fixed terminals, such as a communication ground station.
- the terminal can be a wireless terminal or a wired terminal.
- a wireless terminal may be a device that provides voice and/or data connectivity to a user, a handheld device with a wireless connection function, or other processing devices connected to a wireless modem.
- the wireless terminal can communicate with one or more core networks via the RAN.
- the wireless terminal can be a mobile terminal, such as a mobile phone (or "cellular" phone) and a computer with a mobile terminal. For example, it can be a portable, pocket-sized, handheld, built-in computer or vehicle-mounted mobile device.
- the access network exchanges language and/or data.
- a wireless terminal can also be called a system, a subscriber unit (SU), a subscriber station (SS), a mobile station (MB), a mobile station (Mobile), a remote station (remote station, RS), Access point (access point, AP), remote terminal (remote terminal, RT), access terminal (access terminal, AT), user terminal (user terminal, UT), user agent (user agent, UA), terminal equipment ( user device, UD).
- Terminal equipment represented by satellite phones and vehicle-mounted satellite systems can communicate directly with satellites.
- the fixed terminal represented by the ground communication station needs to be relayed by the ground station before it can communicate with the satellite.
- the terminal equipment realizes the setting and acquisition of the communication state by installing a wireless transceiver antenna, and completes the communication.
- the satellite can be composed of a geostationary satellite (GEO) or a non-geostationary (none-geostationary earth orbit, NGEO) satellite (such as LEO or MEO), or can also be composed of multiple satellite networks composed of both.
- GEO geostationary satellite
- NGEO non-geostationary earth orbit
- the satellite is mainly used as a relay (L1 relay) of layer 1 (layer 1, L1), and the physical layer signal can be regenerated, and the upper layer is not visible.
- the role of satellites may include, but is not limited to: radio frequency filtering, frequency conversion and amplification.
- satellites can transmit downlink data to terminal equipment.
- Satellites and NTN gateways can be used as remote radio units (RRU).
- the satellite and NTN gateway can communicate through Uu interface (such as NR Uu interface).
- the gNB and the core network can communicate through the NG interface.
- the core network and the data network can communicate through the N6 interface.
- Regenerative satellite does not have inter-satellite link (ISL) (Regenerative satellite without ISL).
- it may include: UE, satellite, NTN gateway, 5G core network, and data network.
- satellites can also be called satellite base stations.
- the satellite can be used as a gNB.
- the function of the satellite is similar to an ordinary gNB.
- the satellite acts as a gNB and can handle payloads.
- the satellite and the NTN gateway can communicate through the NG interface on the Satellite Radio Interface (SRI).
- the satellite and the core network can communicate through the NG interface.
- the core network and the data network can communicate through the N6 interface.
- the dotted line refers to the communication signal between the satellite and the terminal.
- the satellite base station can transmit downlink data to terminal equipment. Among them, the downlink data can be transmitted to the terminal device after channel coding and modulation mapping.
- the terminal equipment can also transmit uplink data to the satellite base station. Among them, the uplink data can also be transmitted to the satellite base station after channel coding, modulation and mapping.
- the solid line refers to the communication signal between the satellite and the equipment on the ground segment, and the communication signal between the network elements on the ground segment.
- the regenerative satellite has ISL.
- it may include: UE, satellite, NTN gateway, 5G core network, and data network.
- the satellite can be used as a gNB.
- the function of the satellite is similar to an ordinary gNB.
- the satellite acts as a gNB and can handle payloads.
- satellites can be used as gNB. The difference is that there is no ISL in the scene shown in FIG. 2 and there is ISL in the scene shown in FIG. 3.
- the satellite and the satellite can communicate through the Xn interface on the ISL.
- the satellite and NTN gateway can communicate through the NG interface on the SRI.
- the satellite and the core network can communicate through the NG interface.
- the core network and the data network can communicate through the N6 interface.
- the dotted line refers to the communication signal between the satellite and the terminal.
- the satellite base station can transmit downlink data to the terminal equipment. Among them, the downlink data can be transmitted to the terminal device after channel coding and modulation mapping.
- the terminal equipment can also transmit uplink data to the satellite base station. Among them, the uplink data can also be transmitted to the satellite base station after channel coding, modulation and mapping.
- the solid line refers to the communication signal between the satellite and the equipment on the ground segment, the communication signal between the network elements on the ground segment, and the communication signal between the satellite and the satellite.
- Figure 4 shows a NG-RAN architecture (NG-RAN with a regenerative satellite based on gNB-DU) based on the gNB-DU regenerative satellite.
- this scenario may include: UE, satellite, NTN gateway, centralized unit (CU) (such as gNB-CU), 5G core network, and data network.
- CU centralized unit
- 5G core network 5G core network
- the satellite can be used as a distributed unit (DU) (such as gNB-DU).
- DU distributed unit
- gNB-DU distributed unit
- the function of the satellite is similar to a common distributed unit (DU).
- the satellite and NTN gateway can communicate through the F1 interface on the SRI.
- the satellite and gNB-CU (that is, between gNB-DU and gNB-CU) can communicate through the F1 interface.
- the core network and the data network can communicate through the N6 interface.
- the dashed line refers to the communication signal between the satellite and the terminal.
- the satellite base station can transmit downlink data to the terminal equipment. Among them, the downlink data can be transmitted to the terminal device after channel coding and modulation mapping.
- the terminal equipment can also transmit uplink data to the satellite base station. Among them, the uplink data can also be transmitted to the satellite base station after channel coding, modulation and mapping.
- the solid line refers to the communication signal between the satellite and the equipment on the ground segment, and the communication signal between the network elements on the ground segment.
- FIGS. 1 to 4 are only exemplary illustrations, and the embodiments of the present application are not limited thereto.
- FIG. 1 to FIG. 4 may include a larger number of terminal devices.
- more NTN gateways may be included in FIGS. 1 to 4.
- satellites can also be used as integrated access and backhaul (IAB) nodes.
- IAB integrated access and backhaul
- the IAB node is used to provide a wireless backhaul service for a node (for example, a terminal) that wirelessly accesses the wireless backhaul node.
- the wireless backhaul service refers to the data and/or signaling backhaul service provided through the wireless backhaul link.
- the IAB node is a specific name of a relay node, and does not limit the solution of the application. It may be one of the above-mentioned base stations or terminal devices with a forwarding function, or it may be an independent device form.
- the IAB node can provide wireless access services for the terminal, and is connected to a donor base station (donor gNB) through a wireless backhaul link to transmit user service data.
- donor gNB donor base station
- the IAB node may also be a customer premise equipment (customer premises equipment, CPE), a residential gateway (residential gateway, RG) and other equipment.
- CPE customer premises equipment
- RG residential gateway
- the method provided in the embodiment of the present application can also be applied in a home access scenario.
- the architecture of satellite communications can generally be divided into the following two categories.
- One is transparent, that is, the satellite is used as a relay, which can be used for radio frequency filtering, amplification, etc., to regenerate the signal).
- the second is regenerative, that is, satellites can do gNB, DU, and relay.
- satellites can do gNB, DU, and relay.
- this type of architecture when a satellite is used as a relay, it is not only a relay, but also has signal processing functions, similar to IAB.
- FIGS 5 and 6 show schematic diagrams of an IAB system applicable to embodiments of the present application.
- IAB technology refers to the use of wireless transmission solutions for both the access link and the backhaul link to avoid optical fiber deployment.
- a relay node (RN) or IAB node (IAB node) can provide wireless access services for terminal equipment, and the service data of the terminal equipment can be transmitted back wirelessly by one or more IAB nodes
- the link is connected to a donor node (IAB donor) or a donor base station (donor gNodeB, DgNB) for transmission.
- an IAB system includes at least one base station 500, and one or more terminal devices 501 served by the base station 500, one or more relay nodes (that is, IAB nodes) 510, and the IAB node 510.
- the IAB node 510 is connected to the base station 500 through a wireless backhaul link 513.
- the base station 500 is referred to as a donor base station.
- the donor base station is also referred to as a donor node or an IAB donor (IAB donor) in this application.
- the IAB system may also include one or more intermediate IAB nodes. For example, IAB node 520 and IAB node 530.
- a base station may refer to a device that communicates with a wireless terminal through one or more sectors on an air interface in an access network.
- the base station equipment can also coordinate the attribute management of the air interface.
- the base station equipment may be an evolved base station in LTE or a base station or access point in NR, which is not limited in this application. It should be understood that the base station described in the embodiments of the present application may be not only a base station device, but also a relay device, or other network element devices with base station functions.
- the donor base station can be an access network element with complete base station functions, or a form in which the CU and DU are separated, that is, the donor node is composed of a centralized unit of the donor base station and a distributed unit of the donor base station.
- the centralized unit of the host node is also called IAB donor CU (also called donor CU, or directly called CU).
- the distributed unit of the host node is also called IAB donor DU (or donor DU).
- the donor CU may also be a form where the control plane (CP) (referred to as CU-CP in this article) and the user plane (UP) (referred to in this article as CU-UP) are separated.
- CP control plane
- UP user plane
- a CU may be composed of one CU-CP and one or more CU-UPs.
- the IAB node can be made to support dual connectivity (DC) or multi-connectivity to deal with possible abnormal situations in the backhaul link. For example, abnormalities such as link interruption or blockage and load fluctuations can improve the reliability of transmission. Therefore, the IAB network supports multi-hop networking and can also support multi-connection networking.
- DC dual connectivity
- multi-connectivity to deal with possible abnormal situations in the backhaul link. For example, abnormalities such as link interruption or blockage and load fluctuations can improve the reliability of transmission. Therefore, the IAB network supports multi-hop networking and can also support multi-connection networking.
- Link It can represent the path between two adjacent nodes in a path.
- Access link It can indicate the link between the terminal device and the base station, or between the terminal device and the IAB node, or between the terminal device and the host node, or between the terminal device and the host DU.
- the access link includes a wireless link used when a certain IAB node acts as a common terminal device to communicate with its parent node. When the IAB node acts as an ordinary terminal device, it does not provide backhaul services for any child nodes.
- the access link includes an uplink access link and a downlink access link.
- the access link of the terminal device is a wireless link, so the access link may also be called a wireless access link.
- Backhaul link It can represent the link between the IAB node and the parent node when it is used as a wireless backhaul node.
- the backhaul link includes the uplink backhaul link and the downlink backhaul link.
- the backhaul link between the IAB node and the parent node is a wireless link, so the backhaul link can also be called a wireless backhaul link.
- Each IAB node regards the neighboring node that provides wireless access service and/or wireless backhaul service for it as a parent node.
- each IAB node can be regarded as a child node of its parent node.
- the child node may also be referred to as a lower-level node, and the parent node may also be referred to as an upper-level node.
- the parent node of IAB node 1 is IAB donor
- IAB node 1 is the parent node of IAB node 2 and IAB node 3
- IAB node 2 and IAB node 3 are both the parent nodes of IAB node 4
- IAB node 5 The parent node is IAB node 3.
- the uplink data packet of the UE may be transmitted to the host site IAB donor via one or more IAB nodes, and then sent by the IAB donor to the mobile gateway device (for example, the user plane function unit UPF in the 5G core network).
- the UE's downlink data packet will be received by the IAB donor from the mobile gateway device, and then sent to the UE through the IAB node.
- Path 1 Terminal 1 ⁇ IAB node 4 ⁇ IAB node 3 ⁇ IAB node 1 ⁇ host node, and terminal 1 ⁇ IAB node 4 ⁇ IAB node 2 ⁇ IAB node 1 ⁇ host node.
- There are three available paths for data packet transmission between terminal 2 and host node namely: terminal 2 ⁇ IAB node 4 ⁇ IAB node 3 ⁇ IAB node 1 ⁇ host node, terminal 2 ⁇ IAB node 4 ⁇ IAB node 2 ⁇ IAB Node 1 ⁇ host node, and terminal 2 ⁇ IAB node 5 ⁇ IAB node 2 ⁇ IAB node 1 ⁇ host node.
- IAB networking scenario shown in Figure 6 is only exemplary.
- IAB scenario where multi-hop and multi-connection are combined there are more other possibilities, for example, the IAB donor in Figure 6 and another The IAB node under the IAB donor forms a dual connection to serve terminal equipment, etc., which are not listed here.
- the network equipment involved in the embodiments of this application includes but is not limited to: evolved node B (evolved node base, eNB), radio network controller (RNC), node B (node B, NB), base station Controller (base station controller, BSC), base transceiver station (base transceiver station, BTS), home base station (home evolved NodeB, or home node B, HNB), baseband unit (baseband Unit, BBU), evolved (evolved LTE) , eLTE) base station, base station in RAN (such as NR base station (next generation node B, gNB)), etc.
- eNB evolved node B
- RNC radio network controller
- node B node B
- BSC base station Controller
- base transceiver station base transceiver station
- BTS home base station
- home evolved NodeB home evolved NodeB, or home node B, HNB
- baseband Unit baseband Unit
- evolved LTE evolved LTE
- eLTE base
- the base station may have a centralized unit (centralized unit, CU) and distributed unit (distributed unit, DU) separated architecture.
- the RAN can be connected to a core network (for example, it can be an LTE core network, or a 5G core network, etc.).
- CU and DU can be understood as the division of base stations from the perspective of logical functions.
- CU and DU can be physically separated or deployed together.
- multiple DUs can share one CU.
- One DU can also be connected to multiple CUs (not shown in the figure).
- the CU and the DU can be connected through an interface, for example, an F1 interface.
- CU and DU can be divided according to the protocol layer of the wireless network.
- CU is used to implement the radio resource control (radio resource control, RRC) layer, the service data adaptation protocol (service data adaptation protocol, SDAP) layer, and the packet data convergence layer protocol (packet data convergence) layer.
- RRC radio resource control
- SDAP service data adaptation protocol
- Packet data convergence packet data convergence layer protocol
- Protocol, PDCP packet data convergence layer protocol
- the DU is used to perform functions such as the radio link control (RLC) layer, the media access control (MAC) layer, and the physical layer.
- the division of CU and DU processing functions according to this protocol layer is only an example, and the division may also be performed in other ways, and the embodiment of the present application does not limit it.
- the CU or DU can be divided into functions with more protocol layers.
- the CU or DU can also be divided into part of the processing functions of the protocol layer.
- part of the functions of the RLC layer and the functions of the protocol layer above the RLC layer are set in the CU, and the remaining functions of the RLC layer and the functions of the protocol layer below the RLC layer are set in the DU.
- the functions of the CU or DU can also be divided according to service types or other system requirements.
- the CU may also have one or more functions of the core network.
- One or more CUs can be set centrally or separately.
- the CU can be set on the network side to facilitate centralized management.
- the DU can have multiple radio frequency functions, or the radio frequency functions can be set remotely.
- the functions of the CU can be implemented by one entity or by different entities.
- the functions of the CU can be further divided, for example, the control panel (CP) and the user panel (UP) are separated, that is, the control plane (CU-CP) of the CU and the user plane (CU) are separated.
- CP control panel
- UP user panel
- CU-CP control plane
- CU-UP user plane
- the CU-CP and CU-UP may be implemented by different functional entities, and the CU-CP and CU-UP may be coupled with the DU to jointly complete the function of the base station.
- satellites will be used as a new access method.
- cell selection/reselection is based on the cell selection/reselection mechanism of the terrestrial network (TN).
- TN terrestrial network
- the terminal device When a terminal device is turned on or a radio link failure occurs, the terminal device will perform a cell search process and select a suitable cell to camp on as soon as possible. This process is called "cell selection”.
- the terminal equipment will read the system information of the cell and obtain parameters such as Qrxlevmeas, Qrxlevmin and Qrxlevminoffset.
- the terminal equipment evaluates whether the cell is a suitable cell according to the S criterion. Once a suitable cell is found, that is, it satisfies S Standard cell, the cell selection process is completed. If the cell is not a suitable cell, the terminal device continues to search until it finds a suitable cell and camps on it.
- the calculation formula of S rxlev is:
- Q rxlevmeas the received signal strength value measured by the terminal device, and the value is the measured reference signal receiving power (RSRP);
- Q rxlevmin the minimum received signal strength value required by the cell
- P compensation (PEMAX-PUMAX) or the larger value of 0, where PEMAX is the maximum allowable transmission power set by the system when the terminal device accesses the cell; PUMAX refers to the maximum output power specified by the terminal device level.
- Q rxlevminoffset This parameter can only be used when the terminal device normally resides in a virtual private mobile network (VPMN) and periodically searches for a high-priority public land mobile network (PLMN) for cell selection It is only valid during evaluation. This parameter biases Q rxlevmin to a certain extent.
- VPMN virtual private mobile network
- PLMN public land mobile network
- the terminal device After the terminal device camps in a cell, as the terminal device moves, the terminal device may need to be changed to another cell with a higher priority or better signal to camp on. This is the cell reselection process.
- Cell selection is a process of finding a suitable cell as soon as possible, and cell reselection is a process of selecting a more suitable cell.
- the agreement stipulates measurement criteria:
- the terminal equipment For the frequency layer or system that has a higher priority than the cell where it resides, the terminal equipment always measures it;
- the terminal device starts the measurement of the same priority frequency or low priority frequency and system;
- the terminal equipment After the measurement, the terminal equipment will determine whether to perform cell reselection to a new cell.
- the reselection criteria are as follows:
- High priority frequency or system reselection standard S rxlev > Threshx-high of the target frequency cell, and lasts for a certain period of time, where Threshx-high refers to the reselection from the current service carrier frequency to the higher priority frequency Time threshold;
- Low priority frequency or system reselection standard S rxlev ⁇ T hreshserving-low of the resident cell, and lasts for a certain period of time, where Threshx-low refers to the reselection from the current service carrier frequency to the frequency with lower priority Time threshold;
- Reselection criteria of the same priority frequency or system the reselection of the cell to the same priority frequency is based on the ranking standard of the same frequency cell reselection.
- the ranking criteria for co-frequency cell reselection are defined as follows, R s is the ranking value of the current camping cell, and R n is the ranking value of the neighboring cell:
- R s Q meas_s + Q hyst -Q offset_temp
- R n Q meas_s -Q offset -Q offset_temp
- Q hyst Hysteresis value, used to prevent ping-pong reselection
- Q meas_s the received signal strength value of the camping cell measured by the terminal equipment
- Q offset For the same frequency, when Q offsets_n is valid, the value is Q offsets_n , otherwise the value is 0; for different frequencies, when Q offsets_n is valid, the value is Q offsets_n + Q offsetfrequency , otherwise the value is Q offsetfrequency ,;
- Q offset_temp can indicate the amount of offset.
- the deviation amount may be, for example, a deviation amount added to a cell after a terminal device fails to establish an RRC connection on a cell, which is broadcast by the network.
- the terminal equipment will sort all the cells that meet the cell selection S criterion by the ranking value. When reselecting, it is not simply reselecting to the best ranked cell, but finding the highest ranking value during the ranking, which is within a certain range ( For example, x dB, where x is configurable), the cells are considered to be similar cells. In these similar cells, the terminal device reselects to the cell with the largest number of good beams.
- the system message of the currently camped cell will broadcast the required configuration parameters of the current camped cell and neighboring cells, so that the terminal device can calculate parameters such as R s and R n.
- Q meas is the received signal strength value of the cell measured by the terminal device.
- N beams where the signal strength of each cell is higher than the threshold can be used to generate the cell quality, which is filtered by layer 3 as Q meas .
- the threshold and N are notified to the terminal equipment in the broadcast message, and N is an integer greater than or equal to 1. Among them, beams above the threshold are considered good beams.
- cell selection/reselection is based on the cell selection/reselection mechanism of the ground network, and some characteristics of satellite communication are not considered, which may cause waste of resources and increase energy consumption.
- this application proposes a method for optimizing the cell selection/reselection mechanism in the satellite communication scenario, so that the neighboring cells to be measured can be effectively obtained, the signaling overhead is saved, and the terminal device saves power.
- FIG. 8 is a schematic interaction diagram of a communication method 800 provided by an embodiment of the present application.
- the method 800 may include the following steps.
- the terminal device receives time information corresponding to at least one frequency point on the satellite ephemeris of the satellite.
- the satellite can be made of LEO.
- the satellite can also be composed of GEO and LEO, that is, the terminal device can communicate with the satellite network composed of GEO and LEO; or the satellite can also be composed of multiple satellite networks composed of LEO and MEO, that is, The terminal equipment can communicate with the satellite network formed by LEO and MEO. There is no restriction on this.
- the satellite's trajectory and time information can be calculated.
- the satellite ephemeris can be pre-saved, that is, when the terminal device needs to use the satellite ephemeris, it can directly read the pre-saved or pre-obtained satellite ephemeris. Alternatively, the satellite ephemeris can also be sent by the network device to the terminal device.
- the terminal device receives the satellite ephemeris, and the satellite ephemeris is used to indicate information about the orbit of the satellite.
- the satellite ephemeris of the satellite is fixed for a period of time, and the running direction is also fixed, so the satellite ephemeris can be notified to the terminal equipment.
- the terminal equipment can determine the satellite speed, moving direction, trajectory and other information.
- the moving speed of the satellite is very fast, and the moving speed of the terminal equipment is smaller than that of the satellite. Therefore, when the terminal device determines which neighboring cells to measure, it can mainly consider the moving direction of the satellite, that is, the terminal device can selectively perform neighboring cell measurement.
- Figure 9 shows a schematic diagram of a frequency point distribution. Suppose the frequency distribution is shown in Figure 9.
- the direction of the satellite is from east to west, as shown in Figure 9.
- the terminal device is located in a cell under frequency point 7, that is, the current serving cell of the terminal device is a cell under frequency point 7.
- the inter-frequency frequency points for the cell reselection of the terminal equipment include: frequency point 1, frequency point 2, frequency point 3, frequency point 4, frequency point 5, and frequency point 6.
- the running direction of the terminal device is shown in Figure 9.
- the different frequencies on the operating trajectory of the terminal equipment may include: frequency point 3, frequency point 4, and frequency point 5.
- the terminal device when the terminal device is in the cell under frequency 7, the terminal device can only measure the cell under frequency 3, the cell under frequency 4, and the cell under frequency 5.
- the time information corresponding to at least one frequency point may be included in an RRC release message (for example, when a terminal device enters an idle or inactive state from a connected state) or a broadcast message . That is, a network device (such as a serving cell) can send time information corresponding to at least one frequency point to a terminal device through an RRC release message or a broadcast message.
- a network device such as a serving cell
- the serving cell is a satellite cell.
- Satellite cell refers to the cell deployed in the satellite network, or in other words, the cell located in the satellite communication system.
- the satellite may consist of LEO.
- the satellite may also be composed of GEO and LEO, or a multiple satellite network composed of LEO and MEO, which is not limited.
- the serving cell is a satellite cell, which means that the terminal device communicates with the satellite, or in other words, the terminal device connects to the satellite communication network to communicate.
- the time information corresponding to the at least one frequency point may be time information at which the terminal device measures the at least one frequency point.
- the terminal equipment measures the time information of each frequency point.
- it can also be understood as the neighbor cell information that the terminal device needs to measure when it is in different serving cells.
- the time information corresponding to at least one frequency point is described in detail below.
- the terminal device determines at least one frequency point corresponding to the satellite.
- the frequency point corresponding to the satellite may indicate the frequency point on the satellite ephemeris of the satellite, or the frequency point distributed or deployed in the satellite network, or the frequency point distributed or deployed under the satellite. The following is concise, expressed in frequency points.
- the terminal device determines at least one frequency point, and the at least one frequency point may be a frequency point used for measurement. That is, the terminal device determines at least one frequency point to be measured according to the first moment and the time information corresponding to the at least one frequency point.
- the first moment may be any moment, for example, the first moment may be the current moment.
- the terminal device may determine the at least one frequency point that needs to be measured at the first moment.
- Each frequency point may include one or more cells. Determining the frequency point can also be understood as determining at least one cell under the frequency point. Measuring the frequency point can be understood as measuring at least one cell under the frequency point.
- the terminal device can determine the frequency points that need to be measured at the first time and/or the frequency points that need to be measured after the first time according to the first time and the time information corresponding to at least one frequency point.
- the terminal device can measure the frequency point corresponding to the first moment at the first moment.
- the terminal device can determine the frequency points that need to be measured at the current time according to the current time and the time information corresponding to at least one frequency point. For another example, the terminal device can also determine the frequency points that need to be measured after the current time based on the current time and the time information corresponding to at least one frequency point.
- the terminal device determines the frequency point that needs to be measured at the current moment, and it does not limit the terminal device to only measure the frequency point at the current moment.
- the time when the terminal device actually measures the frequency point may be within a period of time adjacent to the current moment.
- the time information may be a specific time period, or it may be a specific time, or it may also be the start time and duration, or it may be the end time and duration.
- the time period is taken as an example below for exemplification.
- the time information corresponding to at least one frequency point is described in detail below.
- the orbit of the satellite has a certain law, and the frequency point distribution on the satellite ephemeris also has a certain law. Therefore, the frequency point can correspond to the time.
- the terminal device As shown in FIG. 9, it is assumed that at the first moment, the terminal device is in a cell under frequency point 7. Then, according to the satellite's operating direction and the distribution of frequency points, it can be determined that frequency point 3, frequency point 4, and frequency point 5 correspond to a certain period of time after the first moment. That is to say, in this time period, the terminal equipment measures frequency point 3, frequency point 4, and frequency point 5.
- frequency point 3, frequency point 4, and frequency point 5 correspond to the length of the time period after the first moment, for example, it can be determined according to the operating speed of the satellite, which is not limited in the embodiment of the present application.
- the correspondence between frequency and time can be understood as the correspondence between the frequency and the time when the terminal device measures the frequency, or in other words, the correspondence between time and one or more frequency points.
- frequency point 1 corresponds to the first time
- frequency point 2 corresponds to the second time. Then the terminal device measures frequency point 1 at the first time, and measures frequency point 2 at the second time.
- the time information corresponding to at least one frequency point can be understood as the neighbor cell information required for cell reselection acquired by the terminal device in the serving cell, not only includes the information required by the terminal device in the serving cell
- the neighboring cell to be measured also includes the neighboring cell that needs to be measured after the terminal device reselects to another cell.
- the time information corresponding to at least one frequency point can also be understood as the neighboring cell information required for cell reselection acquired by the terminal device in the serving cell, including not only the neighboring cell that the terminal device needs to measure at the current moment, but also the terminal device Neighbor cell information that needs to be measured after the current time.
- the network device (such as the serving cell of the terminal device) can notify the terminal device of the time information corresponding to at least one frequency point.
- the network device can broadcast the time information corresponding to at least one frequency point.
- the time information corresponding to at least one frequency point notified by the network device may be valid in an area specific. That is, each cell in the area broadcasts the time information corresponding to the at least one frequency point.
- the terminal device moves out of the area, the time information corresponding to at least one frequency point can be obtained from the broadcast message again.
- the time information corresponding to at least one frequency point required for cell reselection can be obtained from the serving cell (or camping cell).
- the time information corresponding to at least one frequency point required for cell reselection can be obtained through a broadcast message or an RRC message of the serving cell (or camping cell).
- time information corresponding to at least one frequency point may be expressed in any of the following forms.
- the time information corresponding to at least one frequency point includes: the time period corresponding to each frequency point in the at least one frequency point.
- the terminal device can determine the time to measure each frequency point according to the time information corresponding to each frequency point.
- the terminal device determines the frequency point that needs to be measured at the current time according to the current time and one or more frequency points corresponding to the time period in which the current time is located.
- the frequency points of the serving cell of the terminal device in different time periods may be different.
- the terminal device determines the frequency point that needs to be measured at the current moment according to the current moment and one or more frequency points corresponding to the time period of the current moment. It can also be understood that the terminal device according to the current moment and the time at the current moment One or more frequency points corresponding to the segment determine the frequency points that the terminal device needs to measure in the current serving cell.
- the time information corresponding to at least one frequency point includes the time period corresponding to each group of frequency points in the N groups of frequency points.
- At least one frequency point includes N groups of frequency points, the N groups of frequency points include at least one frequency point corresponding to a satellite, and N is an integer greater than or equal to 1.
- the terminal device can determine the time for measuring each group of frequency points according to the time information corresponding to each group of frequency points.
- the terminal device determines the frequency points that need to be measured at the current time according to the current time and one or more sets of frequency points corresponding to the time period in which the current time is located.
- the frequency points of the serving cell of the terminal device in different time periods may be different.
- the terminal device determines the frequency points that need to be measured at the current time according to the current time and one or more sets of frequency points corresponding to the time period in which the current time is located. It can also be understood that the terminal device determines one or more sets of frequency points that the terminal device needs to measure in the current serving cell according to the current time and one or more frequency points corresponding to the time period in which the current time is located.
- the time information corresponding to at least one frequency point may be sent by a network device (such as a serving cell) to a terminal device, or may be predetermined, such as a protocol or a network device.
- a network device such as a serving cell
- the corresponding relationship between frequency points and time can be saved in advance, and the terminal device can read the corresponding relationship as needed.
- Figure 10 shows a schematic diagram of a frequency point distribution.
- the frequency distribution is shown in Figure 10.
- the direction of the satellite is from east to west, as shown in Figure 10.
- the serving cell of the terminal device is the cell of frequency 2, and the terminal device requests the serving cell to broadcast neighbor cell information required for cell reselection.
- the terminal device requests system information (SI) from the serving cell, which can be used to request to determine whether it can continue to camp in the serving cell or whether it needs to be reselected to another cell.
- SI system information
- the serving cell can send a response message to the terminal device, for example, it can be included in a broadcast message or an RRC message.
- the broadcast message may include time information corresponding to at least one frequency point.
- the broadcast message may also include parameters for the current serving cell, such as parameters used in the cell selection or cell reselection process, to determine whether to choose to camp on the serving cell.
- the broadcast message may also include neighboring cell information, such as parameters for neighboring cells, such as parameters used in the cell selection or cell reselection process, to determine whether to reselect the neighboring cells.
- neighboring cell information such as parameters for neighboring cells, such as parameters used in the cell selection or cell reselection process, to determine whether to reselect the neighboring cells.
- the embodiment of the present application does not limit this.
- the time information corresponding to at least one frequency point is described in detail below.
- the terminal device may request a broadcast message through a special request message, may also request a broadcast message by sending a preamble, or may request a corresponding broadcast message through a preamble and time-frequency resources.
- the embodiment of the present application does not limit the manner in which the terminal device requests the serving cell to broadcast the neighbor cell information required for cell reselection.
- the time information corresponding to at least one frequency point may include: frequency point 1, frequency point 7, and frequency point 3 corresponding to the first time period, frequency point 1, frequency point 3, Frequency point 4, frequency point 5, and frequency point 6 correspond to the second time period, and frequency point 1, frequency point 2, frequency point 3, and frequency point 6 correspond to the third time period.
- the start time of the first time period is before the start time of the second time period
- the start time of the second time period is before the start time of the third time period
- the first time period, the second time period, and the third time period may be determined according to the satellite's orbit, moving speed, etc., which are not limited.
- frequency point 1, frequency point 7, and frequency point 3 correspond to the first time period, which means that frequency point 1, frequency point 7, and frequency point 3 are measured in the first time period.
- Frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6 correspond to the second time period, which means that frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point are measured in the second time period.
- Frequency point 6 Frequency point 1, frequency point 2, frequency point 3, and frequency point 6 correspond to the third time period, which means that frequency point 1, frequency point 2, frequency point 3, and frequency point 6 are measured in the third time period.
- the frequency points determined by the terminal device include: frequency point 1, frequency point 7, and frequency point 3. That is to say, the frequency points that the terminal device determines that the current time needs to be measured include: Point 1, frequency point 7, and frequency point 3.
- the frequency points determined by the terminal equipment include: frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6, that is, the terminal equipment determines that the current time needs to be measured
- Frequency points include: frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6.
- the frequency points determined by the terminal equipment include: frequency point 1, frequency point 2, frequency point 3, and frequency point 6, that is to say, the frequency points that the terminal device determines that the current time needs to be measured include: Frequency point 1, frequency point 2, frequency point 3, and frequency point 6.
- the frequency points on the running track of the terminal equipment may include: frequency point 1, frequency point 7. And frequency point 3.
- frequency point 2 is associated with frequency point 1, frequency point 7, and frequency point 3. That is, in the first time period, the terminal device measures the frequency points associated with frequency point 2: frequency point 1, frequency point 7, and frequency point 3.
- the serving cell of the terminal device may change from the cell of frequency 2 to the cell of frequency 7.
- the frequency points on the running track of the terminal equipment may include: frequency point 1, frequency point 3, frequency point 4, frequency point 5. And frequency point 6.
- frequency point 7 is associated with frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6. That is, in the second time period, the terminal device measures frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6.
- the serving cell of the terminal device may change from a cell at frequency 7 to a cell at frequency 5.
- the frequency points on the running track of the terminal equipment may include: frequency point 1, frequency point 2, frequency point 3, and frequency point Point 6.
- frequency point 5 is associated with frequency point 1, frequency point 2, frequency point 3, and frequency point 6. That is to say, in the third time period, the terminal equipment measures frequency point 1, frequency point 2, frequency point 3, and frequency point 6.
- the time information corresponding to at least one frequency point may include: the first group of frequency points corresponds to the first time period, the second group of frequency points corresponds to the second time period, and the third group The frequency point corresponds to the third time period.
- the first group of frequency points includes: frequency point 1, frequency point 7, and frequency point 3.
- the second group of frequency points includes: frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6.
- the third group of frequency points includes: frequency point 1, frequency point 2, frequency point 3, frequency point 6
- the first group of frequency points corresponds to the first time period, which means that the first group of frequency points is measured in the first time period.
- the second group of frequency points corresponds to the second time period, which means that the second group of frequency points are measured in the second time period.
- the third group of frequency points corresponds to the third time period, which means that the third group of frequency points is measured in the third time period.
- the frequency points determined by the terminal device include: the first group of frequency points, that is, the frequency points that the terminal device determines to be measured at the current time include: the first group of frequency points.
- the frequency points determined by the terminal device include: the second group of frequency points, that is, the frequency points that the terminal device determines to be measured at the current time include: the second group of frequency points.
- the frequency points determined by the terminal device include: the third group of frequency points, that is, the frequency points that the terminal device determines to be measured at the current time include: the third group of frequency points.
- the frequency points on the running track of the terminal device may include: the first group of frequency points.
- frequency point 2 is associated with the first group of frequency points. That is, in the first time period, the terminal device measures the frequency points associated with frequency point 2: the first group of frequency points.
- the serving cell of the terminal device may change from the cell of frequency point 2 to the cell of frequency point 7.
- the frequency points on the operation trajectory of the terminal device may include: a second set of frequency points.
- frequency point 7 is associated with the second group of frequency points. That is, in the second time period, the terminal device measures the frequency points associated with frequency point 7: the second group of frequency points.
- the serving cell of the terminal device may change from a cell at frequency 7 to a cell at frequency 5.
- the frequency points on the running track of the terminal device may include: the third group of frequency points.
- frequency point 5 is associated with the third group of frequency points. That is, in the third time period, the terminal device measures the third group of frequency points.
- the neighboring cell information broadcast by the serving cell to the terminal device may include at least one layer of frequency point information.
- Each layer of frequency points includes one or more frequency points. It can be assumed that each layer of frequency points can correspond to a time period. For example, the time period corresponding to the first layer frequency point is before the time period corresponding to the second layer frequency point, the time period corresponding to the second layer frequency point is before the time period corresponding to the third layer frequency point, and so on.
- the terminal device After receiving the neighbor cell information broadcast by the serving cell, the terminal device first measures the first layer frequency point at a certain time (such as the first time period). After the service cell of the terminal device changes, at a certain time (such as the second time period), measure the second layer frequency point, and so on.
- the neighboring cell information broadcast by the serving cell to the terminal device may also include a time period corresponding to any frequency point of the layer. After receiving the neighbor cell information broadcast by the serving cell, the terminal device determines the frequency point corresponding to the time period close to the current time according to the time interval between the current time and the time period corresponding to any layer frequency point received. For example, the neighboring cell information broadcast by the serving cell to the terminal device may also include the time period corresponding to the first layer frequency point.
- the terminal device After receiving the neighbor cell information broadcast by the serving cell, the terminal device determines that the current time may be within the time period corresponding to the second layer frequency point according to the time interval between the current time and the time period corresponding to the first layer frequency point, so the terminal The device determines that the frequency point to be measured at the current moment is the second layer frequency point. After the serving cell of the terminal device changes, at a certain time (such as the third time period), the terminal device measures the third layer frequency point, and so on.
- the neighboring cell information obtained by the terminal device not only includes the neighboring cell information of the cell of frequency point 2.
- the neighboring cell information of the cell at frequency point 7 and the neighboring cell information of the cell at frequency point 5 may also be included. This can prevent the terminal device from requesting system information (SI) multiple times.
- SI system information
- the terminal device requests to broadcast the neighboring cell information of the cell of frequency point 2; the serving cell of the terminal device When it is the cell of frequency point 7, the terminal device requests to broadcast the neighboring cell information of the cell of frequency point 7.
- SI system information
- the frequency points corresponding to the second time period and the third time period included in the time information corresponding to at least one frequency point are only an exemplary description, and the embodiment of the present application does not Limited to this.
- Example 1 and Example 2 only show one possible situation.
- the frequency points corresponding to the second time period and the third time period may also include other situations.
- the frequency points on the running track of the terminal device may include: frequency point 1, frequency point 7, and frequency point 3. Then, the serving cell of the terminal device may change from the cell of frequency 2 to the cell of frequency 1, the serving cell of the terminal device may also change from the cell of frequency 2 to the cell of frequency 7, and the serving cell of the terminal device may also be Change from the cell of frequency 2 to the cell of frequency 3.
- the frequency points corresponding to the second time period may include one or more of the following: frequency points associated with frequency point 1, frequency points associated with frequency point 7, and frequency points associated with frequency point 3.
- the frequency point associated with frequency point 1 that is, when the serving cell of the terminal device is the cell of frequency point 1, as the satellite runs, the frequency point that may be included in the running track of the terminal device.
- the frequency points associated with frequency point 1 may include: frequency point 6, frequency point 5, and frequency point 4.
- the frequency point associated with frequency point 7 refers to the frequency points that may be included in the operation trajectory of the terminal equipment when the serving cell of the terminal device is the cell of frequency point 7, with the operation of the satellite. Taking the frequency point distribution shown in FIG. 10 as an example, the frequency points associated with frequency point 7 may include: frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6.
- the frequency point associated with frequency point 3 that is, when the serving cell of the terminal equipment is the cell of frequency point 3, as the satellite runs, the frequency points that may be included in the running track of the terminal equipment.
- the frequency points associated with frequency point 3 may include: frequency point 7, frequency point 4, frequency point 5, and frequency point 6.
- the frequency points corresponding to the second time period may include: frequency points that have an association relationship with all or part of the frequency points corresponding to the first time period. Described below separately.
- the frequency points corresponding to the second time period may include: frequency points that have an association relationship with all frequency points corresponding to the first time period.
- the frequency points corresponding to the second time period include: frequency points associated with frequency point 1, frequency points associated with frequency point 7, and frequency points associated with frequency point 3. That is, the frequency points corresponding to the second time period may include: frequency point 6, frequency point 5, frequency point 4, frequency point 1, frequency point 3, and frequency point 7.
- the frequency points corresponding to the second time period may include: frequency points that have an association relationship with part of the frequency points corresponding to the first time period.
- the frequency point corresponding to the second time period may include: a frequency point associated with frequency point 1. That is, the frequency points corresponding to the second time period may include: frequency point 6, frequency point 5, and frequency point 4.
- the frequency point corresponding to the second time period may include: a frequency point associated with frequency point 7. That is, the frequency points corresponding to the second time period may include: frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6.
- the frequency point corresponding to the second time period may include: a frequency point associated with frequency point 3. That is, the frequency points corresponding to the second time period may include: frequency point 7, frequency point 4, frequency point 5, and frequency point 6.
- the frequency points corresponding to the second time period may include: frequency points associated with frequency point 1 and frequency points associated with frequency point 7. That is, the frequency points corresponding to the second time period may include: frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6.
- the frequency points corresponding to the second time period include: frequency points associated with frequency point 1 and frequency points associated with frequency point 3. That is, the frequency points corresponding to the second time period may include: frequency point 7, frequency point 4, frequency point 5, and frequency point 6.
- the frequency points corresponding to the second time period may include: frequency points associated with frequency point 7 and frequency points associated with frequency point 3. That is, the frequency points corresponding to the second time period may include: frequency point 6, frequency point 5, frequency point 4, frequency point 1, frequency point 3, and frequency point 7.
- the frequency points corresponding to the second time period may include any one or more of the following: part of frequency points associated with frequency point 1, part of frequency points associated with frequency point 7, and part of frequency points associated with frequency point 3. .
- the frequency point corresponding to the second time period may include: a frequency point associated with a certain frequency point corresponding to the first time period, and the certain frequency point is: a frequency point associated with the frequency point corresponding to the first time period The frequency point with the most frequency points.
- the certain frequency point is frequency point 7, that is, the frequency point corresponding to the second time period may include the frequency point associated with frequency point 7.
- duration of the first time period, the second time period, and the third time period may be determined according to the satellite's operating direction, moving speed, etc., which is not limited. For example, more time periods can also be included.
- At least one frequency point can also be understood as at least one layer of neighboring cells.
- the first layer of neighboring cells may include: frequency 1 cell, frequency 7 cell, and frequency 3 cell.
- the second layer of neighboring cells may include: frequency 1 cell, frequency 3 cell, frequency 4 cell, frequency 5 cell, and frequency 6 cell.
- the third layer of neighboring cells may include: frequency 1 cell, frequency 2 cell, frequency 3 cell, and frequency 6 cell.
- the time information of at least one frequency point can also be understood as the information of at least one layer of neighboring cells.
- the information of at least one layer of neighboring cells may include:
- the time information corresponding to the neighboring area of the first layer is the first time period, that is, the neighboring area of the first layer is measured in the first time period;
- the time information corresponding to the second-level neighboring area is the second time period, that is, the second-level neighboring area is measured in the first time period;
- the time information corresponding to the third-level neighboring area is the third time period, that is, the third-level neighboring area is measured in the third time period.
- each cell of the terminal device under the satellite can broadcast the time information corresponding to at least one frequency point (or the information of at least one layer of neighboring cells) as described above. That is to say, for the terminal equipment in the idle state or in the deactivated state, the information of at least one layer of neighboring cells required for cell reselection is obtained.
- the terminal device can obtain the information of at least one layer of neighboring cells required for cell reselection through the broadcast message or the RRC message of the serving cell (or the camping cell).
- the network equipment (such as the serving cell of the terminal equipment) can notify the terminal equipment that at least one frequency point corresponds Time information (or at least one layer of neighboring cell information), for example, a network device (such as a serving cell of a terminal device) can broadcast time information corresponding to at least one frequency point.
- time information corresponding to at least one frequency point required for cell reselection can be obtained.
- the terminal device may obtain the time information corresponding to at least one frequency point required for cell reselection by reading the broadcast message or the RRC message of the serving cell.
- the terminal device can not only obtain the information of the current neighboring cell, but also the information of the "neighbor cell of the neighboring cell" (that is, the neighboring cell that the terminal device needs to measure in other serving cells), which can further reduce the number of terminal devices.
- the signaling overhead caused by the system message of the second request helps the terminal equipment to save power.
- FIG. 11 shows a specific process.
- the method 1100 shown in FIG. 11 may include the following steps.
- the network device sends time information corresponding to at least one frequency point through an RRC release message or a broadcast message.
- the network device may send time information corresponding to at least one frequency point to the terminal device through the serving cell.
- the service cell is a satellite cell.
- FIG. 11 takes the interaction between the serving cell and the terminal device as an example for description.
- the serving cell can also send satellite ephemeris to the terminal device.
- the terminal equipment can obtain the satellite speed, moving direction, trajectory and other information.
- Each cell under the satellite can broadcast time information corresponding to at least one frequency point (or at least one layer of neighboring cell information). Take the frequency distribution in Figure 10 as an example.
- the time information corresponding to the at least one frequency point may include: frequency point 1, frequency point 7, and frequency point 3 corresponding to the first time period, frequency point 1, frequency point 3, frequency point 4, frequency point 5, and frequency point 6.
- frequency point 1, frequency point 2, frequency point 3, and frequency point 6 correspond to the third time period.
- the at least one level of neighboring cell relationship is valid in a certain area, and when the terminal device moves out of the area, the neighboring cell relationship can be re-acquired.
- the terminal equipment measures the neighboring area.
- the terminal device determines the neighboring cell to be measured according to the current time and the time information corresponding to at least one frequency point.
- the neighboring cells measured by the terminal device may include: a cell at frequency 1, a cell at frequency 7, and a cell at frequency 3.
- the neighboring cells measured by the terminal device may include: the cell of frequency 1, the cell of frequency 3, the cell of frequency 4, the cell of frequency 5, and the cell of frequency 6. Community.
- the neighboring cells measured by the terminal device may include: a cell at frequency 1, a cell at frequency 2, a cell at frequency 3, and a cell at frequency 6.
- the method 1100 may further include step 1130.
- the terminal device determines whether to perform cell reselection according to the measurement result. For example, when the cell reselection criterion is met, the terminal device performs cell reselection.
- FIG. 12 is a schematic interaction diagram of a communication method 1200 provided by an embodiment of the present application.
- the method 1200 may include the following steps.
- the terminal device measures the serving cell.
- the service cell is a satellite cell.
- the terminal device measures the neighboring cell.
- the quality of the serving cell refers to the signal quality of the cell.
- the signal quality of the cell can be characterized in a variety of ways, which is not limited in the embodiment of the present application.
- the signal quality of a cell can be characterized by any one or more of the following: reference signal receiving power (RSRP), reference signal receiving quality (RSRQ), signal to interference plus noise ratio ( signal to interference plus noise ratio, SINR).
- RSRP reference signal receiving power
- RSRQ reference signal receiving quality
- SINR signal to interference plus noise ratio
- the measurement of the signal quality of the cell may be measured by a reference signal, such as by a secondary synchronization signal (SSS) measurement.
- SSS secondary synchronization signal
- the coverage area of a cell is very wide, especially in the GEO scenario, not only the coverage area is wide, but the cell is stationary relative to the ground. Therefore, when the quality of the serving cell is lower than or equal to a certain threshold (that is, the first threshold), the neighboring cell is measured again. In this way, unnecessary measurements can be reduced and the terminal device can save power.
- a certain threshold that is, the first threshold
- the first threshold may be pre-defined, such as pre-defined by a protocol or a network device; or, it may also be configured by a network device, which is not limited.
- a network device (such as a current serving cell) sends a broadcast message, and the broadcast message may include the first threshold.
- the first threshold is only a naming, and does not limit the protection scope of the embodiments of the present application.
- the embodiment of the present application does not limit this.
- the terminal device may measure the neighboring cell; or, when the quality of the serving cell is equal to the first threshold, the terminal device does not measure the neighboring cell.
- the terminal device After the terminal device measures the neighboring cell, it can determine whether to perform cell reselection according to the measurement result.
- the terminal device performs cell reselection.
- the cell quality difference means: the difference between the cell quality of the neighboring cell and the cell quality of the serving cell.
- the terminal device performs cell reselection, which can mean that the terminal device reselects the neighboring cell, or the terminal device selects the neighboring cell as the serving cell.
- the neighboring cell measured by the terminal device may be a cell adjacent to the current serving cell.
- the neighboring cell measured by the terminal device is a cell that overlaps with the network coverage of the current serving cell.
- the terminal device no longer performs neighboring cell measurement, and the terminal device reselects the neighboring cell.
- the terminal device After the terminal device measures the neighboring cells, it may not need to measure all the neighboring cells on a frequency point. In other words, the terminal device does not need to measure all the neighboring cells and then perform sorting (for example, sorting based on the R criterion). Considering that a cell has a wide coverage area, as long as there is a suitable neighboring cell, the terminal device performs cell reselection, that is, selects the suitable cell as the serving cell. In this way, not only can communication be ensured, but also can help terminal equipment to save power.
- the terminal device selects the neighboring cell as the serving cell.
- the second threshold may be pre-defined, such as a protocol or a network device pre-defined; or, it may also be configured by a network device, which is not limited.
- a network device (such as a current serving cell) sends a broadcast message, and the broadcast message may include the second threshold.
- the second threshold and the first threshold may be included in the same broadcast message.
- the second threshold may be equal to the first threshold.
- the terminal device performs cell reselection, that is, the terminal device selects the neighboring cell as the serving cell.
- the terminal device selects the neighboring cell as the serving cell.
- the third threshold may be pre-defined, such as a protocol or a network device; or, it may also be configured by a network device, which is not limited.
- a network device (such as the current serving cell) sends a broadcast message, and the broadcast message may include the third threshold.
- the third threshold and the first threshold may be included in the same broadcast message.
- the terminal device In satellite communication, the speed of satellites is relatively fast, and the terminal device may need to perform a cell reselection in 1-2 minutes, so there is no need to measure multiple neighboring cells before each reselection, and then select the most suitable neighboring cell as the service Community.
- the terminal device measures the neighboring cell when the quality of the serving cell is less than the first threshold; for another example, when the quality of the neighboring cell is greater than or equal to the second threshold, the terminal device performs cell reconfiguration. Election; For another example, when the cell quality difference is greater than the third threshold, the terminal device performs cell reselection.
- the solution described in the method 1200 can be considered as a simple cell reselection mechanism, which can not only ensure communication, but also reduce unnecessary measurements and help the terminal device to save power.
- the method 1200 may further include step 1201.
- the terminal device receives the instruction information.
- the indication information can be used to instruct the terminal device to perform a simple cell reselection mechanism (that is, the solution described in the method 1200).
- the terminal device may determine according to the instruction information: when the quality of the current serving cell measured by the terminal device is less than the first threshold, the terminal device measures the neighboring cell.
- the terminal device may determine according to the instruction information: when the quality of the neighboring cell measured by the terminal device is greater than or equal to the second threshold, or when the cell quality difference is greater than the third threshold, the terminal device selects the neighboring cell as the serving cell.
- the terminal device can perform simple cell reselection. For example, when the quality of the serving cell measured by the terminal device is less than a certain threshold, the terminal device measures the neighboring cell. For another example, as long as there is a suitable neighboring cell, the terminal device can reselect the neighboring cell, if the quality of the neighboring cell is higher than a certain threshold, or the quality of the neighboring cell is higher than the quality of the serving cell, or The quality of the neighboring cell is higher than the quality of the serving cell by a certain threshold, and so on. Furthermore, unnecessary measurements can be reduced and the terminal equipment can save power.
- the various embodiments described herein may be independent solutions, or may be combined according to internal logic, and these solutions fall within the protection scope of the present application.
- the solution shown in method 1200 can be referred to.
- the terminal device determines which cells to measure it can refer to the solution shown in method 800.
- measurement can be performed according to the solution shown in method 1200.
- the quality of the serving cell is lower than or equal to a certain threshold, measure the serving cell; when the cell quality of the neighboring cell is greater than or equal to the second threshold, or the cell quality difference is greater than or equal to the third threshold , The terminal device performs cell reselection.
- the methods and operations implemented by the terminal device in the foregoing method embodiments can also be implemented by components (such as chips or circuits) that can be used in the terminal device.
- the methods and operations implemented by the network device in the foregoing method embodiments may also be implemented by a network device. Operations can also be implemented by components (such as chips or circuits) that can be used in network devices.
- each network element such as a transmitting end device or a receiving end device, includes hardware structures and/or software modules corresponding to each function in order to realize the above-mentioned functions.
- this application can be implemented in the form of hardware or a combination of hardware and computer software. Whether a certain function is executed by hardware or computer software-driven hardware depends on the specific application and design constraint conditions of the technical solution. Professionals and technicians can use different methods for each specific application to implement the described functions, but such implementation should not be considered as going beyond the scope of protection of this application.
- the embodiments of the present application can divide the transmitting end device or the receiving end device into functional modules based on the foregoing method examples.
- each functional module can be divided corresponding to each function, or two or more functions can be integrated into one process.
- the above-mentioned integrated modules can be implemented in the form of hardware or software function modules. It should be noted that the division of modules in the embodiments of the present application is illustrative, and is only a logical function division, and there may be other feasible division methods in actual implementation. The following is an example of dividing each function module corresponding to each function as an example.
- FIG. 14 is a schematic block diagram of a communication device 1400 according to an embodiment of the application.
- the communication device 1400 includes a transceiver unit 1410 and a processing unit 1420.
- the transceiver unit 1410 can communicate with the outside, and the processing unit 1410 is used for data processing.
- the transceiving unit 1410 may also be referred to as a communication interface or a communication unit.
- the communication device 1400 may further include a storage unit, and the storage unit may be used to store instructions and/or data, and the processing unit 1420 may read the instructions and/or data in the storage unit.
- the communication device 1400 can be used to perform the actions performed by the terminal device in the above method embodiment.
- the communication device 1400 can be a terminal device or a component configurable in the terminal device, and the transceiver unit 1410 is used to perform the above method.
- the processing unit 1420 is configured to perform the processing-related operations on the terminal device side in the above method embodiments for the operations related to receiving and sending on the terminal device side.
- the communication device 1400 may be used to perform the actions performed by the network device (such as a serving cell) in the above method embodiment.
- the communication device 1400 may be a network device or a component that can be configured in a network device, and a transceiver unit 1410 is used to perform operations related to receiving and sending on the network device side in the above method embodiment, and the processing unit 1420 is used to perform processing related operations on the network device side in the above method embodiment.
- the communication device 1400 is used to perform the actions performed by the terminal device in the embodiment shown in FIG. 8 above, and the transceiver unit 1410 is used to: receive time information corresponding to at least one frequency point on the satellite ephemeris of the satellite
- the processing unit 1420 is configured to: determine at least one frequency point corresponding to the satellite according to the first moment and the time information corresponding to the at least one frequency point.
- the transceiver unit 1410 is further configured to: receive satellite ephemeris, which is used to indicate the information of the satellite's orbit; the processing unit 1420 is specifically configured to: according to the satellite ephemeris, the first moment, and at least one frequency point corresponding Time information, at least one frequency point corresponding to the satellite is determined.
- the time information corresponding to at least one frequency point includes: the time period corresponding to each frequency point in at least one frequency point, or the time period corresponding to each group of frequency points in the N groups of frequency points; wherein, at least one frequency point
- the points include N groups of frequency points, the N groups of frequency points include at least one frequency point corresponding to the satellite, and N is an integer greater than or equal to 1.
- the time information corresponding to the at least one frequency point includes: information about measuring the time of each frequency point in the at least one frequency point.
- the at least one frequency point corresponding to the satellite includes: one or more frequency points corresponding to the first moment, and/or, M groups of frequency points corresponding to M time periods after the first moment, of which, M Each time period in the time period corresponds to a set of frequency points, and M is an integer greater than or equal to 1.
- the processing unit 1420 is further configured to: measure the frequency point corresponding to the first moment; and/or, measure the frequency point corresponding to each time period in each of the M time periods.
- the M time periods include a first time period and a second time period, the first time period is before the second time period; the frequency points corresponding to the second time period include: all frequency points corresponding to the first time period Or some frequency points have an association relationship.
- the communication device 1400 is used to perform the actions performed by the network device (such as the serving cell) in the embodiment shown in FIG. 8 above, and the processing unit 1420 is used to generate at least one frequency in the satellite ephemeris of the satellite.
- Time information corresponding to a point, and time information corresponding to at least one frequency point can be used to determine at least one frequency point corresponding to a satellite; the transceiver unit 1410 is configured to send time information corresponding to at least one frequency point.
- the transceiver unit 1410 is further configured to send satellite ephemeris, which is used to indicate information about the satellite's orbit.
- the time information corresponding to at least one frequency point includes: the time period corresponding to each frequency point in at least one frequency point, or the time period corresponding to each group of frequency points in the N groups of frequency points; wherein, at least one frequency point
- the points include N groups of frequency points, the N groups of frequency points include at least one frequency point corresponding to the satellite, and N is an integer greater than or equal to 1.
- the time information corresponding to the at least one frequency point includes: information about measuring the time of each frequency point in the at least one frequency point.
- the communication device 1400 is configured to perform the actions performed by the terminal device in the embodiment shown in FIG. 12 above, and the processing unit 1420 is configured to measure when the cell quality of the serving cell is less than the first threshold Neighboring cell; if the cell quality of the neighboring cell is greater than or equal to the second threshold, or if the cell quality difference is greater than or equal to the third threshold, reselect to the neighboring cell; among them, the cell quality of the neighboring cell is the cell of the neighboring cell The difference between the quality and the cell quality of the serving cell.
- the serving cell and neighboring cells are satellite cells.
- the first threshold is equal to the second threshold.
- the transceiver unit 1410 is further configured to receive information about the first threshold and/or the second threshold.
- the processing unit 1420 in FIG. 14 may be implemented by a processor or processor-related circuits.
- the transceiver unit 1410 may be implemented by a transceiver or transceiver-related circuits.
- the transceiving unit 1410 may also be referred to as a communication unit or a communication interface.
- the storage unit can be realized by a memory.
- an embodiment of the present application also provides a communication device 1500.
- the communication device 1500 includes a processor 1510, which is coupled with a memory 1520, the memory 1520 is used to store computer programs or instructions and/or data, and the processor 1510 is used to execute the computer programs or instructions and/or data stored in the memory 1520, This causes the method in the above method embodiment to be executed.
- the communication device 1500 includes one or more processors 1510.
- the communication device 1500 may further include a memory 1520.
- the communication device 1500 includes one or more memories 1520.
- the memory 1520 may be integrated with the processor 1510 or provided separately.
- the communication device 1500 may further include a transceiver 1530, and the transceiver 1530 is used for receiving and/or sending signals.
- the processor 1510 is configured to control the transceiver 1530 to receive and/or send signals.
- the communication device 1500 is used to implement the operations performed by the terminal device in the above method embodiments.
- the processor 1510 is used to implement the processing-related operations performed by the terminal device in the foregoing method embodiment
- the transceiver 1530 is used to implement the transceiving-related operations performed by the terminal device in the foregoing method embodiment.
- the communication device 1500 is used to implement the operations performed by the network device (serving cell) in the above method embodiment.
- the processor 1510 is used to implement the processing-related operations performed by the network device in the above method embodiment
- the transceiver 1530 is used to implement the transceiving-related operations performed by the network device in the above method embodiment.
- the embodiment of the present application also provides a communication device 1600, and the communication device 1600 may be a terminal device or a chip.
- the communication apparatus 1600 may be used to perform operations performed by the terminal device in the foregoing method embodiments.
- FIG. 16 shows a simplified schematic diagram of the structure of the terminal device. It is easy to understand and easy to illustrate.
- the terminal device uses a mobile phone as an example.
- the terminal equipment includes a processor, a memory, a radio frequency circuit, an antenna, and an input and output device.
- the processor is mainly used to process the communication protocol and communication data, and to control the terminal device, execute the software program, and process the data of the software program.
- the memory is mainly used to store software programs and data.
- the radio frequency circuit is mainly used for the conversion of baseband signal and radio frequency signal and the processing of radio frequency signal.
- the antenna is mainly used to send and receive radio frequency signals in the form of electromagnetic waves.
- Input and output devices such as touch screens, display screens, keyboards, etc., are mainly used to receive data input by users and output data to users. It should be noted that some types of terminal devices may not have input and output devices.
- the processor When data needs to be sent, the processor performs baseband processing on the data to be sent, and then outputs the baseband signal to the radio frequency circuit.
- the radio frequency circuit performs radio frequency processing on the baseband signal and sends the radio frequency signal to the outside in the form of electromagnetic waves through the antenna.
- the radio frequency circuit receives the radio frequency signal through the antenna, converts the radio frequency signal into a baseband signal, and outputs the baseband signal to the processor, and the processor converts the baseband signal into data and processes the data.
- FIG. 16 only one memory and processor are shown in FIG. 16. In an actual terminal device product, there may be one or more processors and one or more memories.
- the memory may also be referred to as a storage medium or storage device.
- the memory may be set independently of the processor, or may be integrated with the processor, which is not limited in the embodiment of the present application.
- the antenna and radio frequency circuit with the transceiving function can be regarded as the transceiving unit of the terminal device, and the processor with the processing function can be regarded as the processing unit of the terminal device.
- the terminal device includes a transceiver unit 1610 and a processing unit 1620.
- the transceiving unit 1610 may also be referred to as a transceiver, a transceiver, a transceiving device, and so on.
- the processing unit 1620 may also be referred to as a processor, a processing board, a processing module, a processing device, and so on.
- the device for implementing the receiving function in the transceiving unit 1610 can be regarded as the receiving unit, and the device for implementing the sending function in the transceiving unit 1610 as the sending unit, that is, the transceiving unit 1610 includes a receiving unit and a sending unit.
- the transceiver unit may sometimes be called a transceiver, a transceiver, or a transceiver circuit.
- the receiving unit may sometimes be called a receiver, a receiver, or a receiving circuit.
- the transmitting unit may sometimes be called a transmitter, a transmitter, or a transmitting circuit.
- the transceiver unit 1610 is configured to perform the receiving operation of the terminal device in FIG. 8. For example, time information corresponding to at least one frequency point on the satellite ephemeris of the receiving satellite.
- the processing unit 1620 is configured to perform processing actions on the terminal device side in FIG. 8, for example, determine at least one frequency point corresponding to the satellite according to the first time and the time information corresponding to the at least one frequency point.
- the processing unit 1620 is used to perform steps 1120 and 1130 in FIG. 11; the transceiving unit 1610 is used to perform the receiving operation in step 1110 in FIG. 11.
- the processing unit 1620 is used to perform steps 1210, 1220, and 1230 in FIG. 12; the transceiver unit 1610 is used to perform the receiving operation of the terminal device in FIG. 12, such as step 1201.
- FIG. 16 is only an example and not a limitation, and the foregoing terminal device including a transceiving unit and a processing unit may not rely on the structure shown in FIG. 16.
- the chip When the communication device 1600 is a chip, the chip includes a transceiver unit and a processing unit.
- the transceiver unit may be an input/output circuit or a communication interface;
- the processing unit may be a processor, microprocessor, or integrated circuit integrated on the chip.
- the embodiment of the present application also provides a communication device 1700, and the communication device 1700 may be a network device or a chip.
- the communication device 1700 may be used to perform operations performed by a network device (serving cell) in the foregoing method embodiment.
- FIG. 17 shows a simplified schematic diagram of the base station structure.
- the base station includes part 1710 and part 1720.
- the 1710 part is mainly used for the transmission and reception of radio frequency signals and the conversion between radio frequency signals and baseband signals; the 1720 part is mainly used for baseband processing and control of base stations.
- the 1710 part can usually be called a transceiver unit, transceiver, transceiver circuit, or transceiver.
- the 1720 part is usually the control center of the base station, and may generally be referred to as a processing unit, which is used to control the base station to execute the processing operations on the network device side in the foregoing method embodiments.
- the transceiver unit of part 1710 can also be called a transceiver or a transceiver, etc. It includes an antenna and a radio frequency circuit, and the radio frequency circuit is mainly used for radio frequency processing.
- the device used for implementing the receiving function in part 1710 can be regarded as the receiving unit, and the device used for implementing the sending function can be regarded as the sending unit, that is, the part 1710 includes the receiving unit and the sending unit.
- the receiving unit may also be called a receiver, a receiver, or a receiving circuit, etc.
- the sending unit may be called a transmitter, a transmitter, or a transmitting circuit, etc.
- the 1720 part may include one or more single boards, and each single board may include one or more processors and one or more memories.
- the processor is used to read and execute programs in the memory to implement baseband processing functions and control the base station. If there are multiple boards, each board can be interconnected to enhance processing capabilities. As an optional implementation, multiple single boards may share one or more processors, or multiple single boards may share one or more memories, or multiple single boards may share one or more processing at the same time. Device.
- the network device is the serving cell
- the transceiver unit of part 1710 is used to perform the steps related to receiving and sending in the embodiment shown in FIG. 8 performed by the serving cell
- part 1720 is used to perform the implementation shown in FIG. 8 The steps related to the processing performed by the serving cell in the example.
- the network device is a serving cell
- the transceiver unit of part 1710 is used to perform the sending operation in step 810 in FIG. 8, and/or the transceiver unit of part 1710 is also used to perform the operation shown in FIG. 8.
- other steps related to sending and receiving are executed by the serving cell; the processing unit of part 1720 is used to execute the steps related to the processing executed by the serving cell in the embodiment shown in FIG. 8.
- the network device is the serving cell
- the transceiver unit of part 1710 is used to perform the sending operation in step 1110 in FIG. 11
- part 1720 is used to perform the sending operation in the embodiment shown in FIG. 11 by the serving cell. Steps related to the processing performed.
- the network device is the serving cell, and part 1710 of the transceiver unit is used to perform the steps related to the sending and receiving performed by the serving cell in the embodiment shown in FIG. 12; and part 1720 is used to perform the steps shown in FIG. 12 The steps related to the processing performed by the serving cell in the embodiment.
- FIG. 17 is only an example and not a limitation, and the foregoing network device including a transceiver unit and a processing unit may not rely on the structure shown in FIG. 17.
- the chip When the communication device 1700 is a chip, the chip includes a transceiver unit and a processing unit.
- the transceiver unit may be an input/output circuit or a communication interface;
- the processing unit is a processor, microprocessor, or integrated circuit integrated on the chip.
- the embodiment of the present application also provides a computer-readable storage medium on which is stored computer instructions for implementing the method executed by the terminal device in the above method embodiment or the method executed by the network device (such as a serving cell).
- the computer when the computer program is executed by a computer, the computer can implement the method executed by the terminal device in the foregoing method embodiments, or the method executed by the network device (such as a serving cell).
- the network device such as a serving cell
- the embodiments of the present application also provide a computer program product containing instructions, which when executed by a computer, cause the computer to implement the method executed by the terminal device in the foregoing method embodiments or the method executed by a network device (such as a serving cell).
- the embodiment of the present application also provides a communication system, which includes the network device and the terminal device in the above embodiment.
- the communication system includes: the network device and the terminal device in the embodiment described above with reference to FIG. 8.
- the communication system includes: the network device and the terminal device in the embodiment described above with reference to FIG. 10.
- the communication system includes: the network device and the terminal device in the embodiment described above with reference to FIG. 12.
- the terminal device or the network device may include a hardware layer, an operating system layer running on the hardware layer, and an application layer running on the operating system layer.
- the hardware layer may include hardware such as a central processing unit (CPU), a memory management unit (MMU), and memory (also referred to as main memory).
- the operating system at the operating system layer can be any one or more computer operating systems that implement business processing through processes, such as Linux operating systems, Unix operating systems, Android operating systems, iOS operating systems, or windows operating systems.
- the application layer can include applications such as browsers, address books, word processing software, and instant messaging software.
- the embodiments of the application do not specifically limit the specific structure of the execution subject of the methods provided in the embodiments of the application, as long as the program that records the codes of the methods provided in the embodiments of the application can be run according to the methods provided in the embodiments of the application.
- the execution subject of the method provided in the embodiments of the present application may be a terminal device or a network device, or a functional module in the terminal device or the network device that can call and execute the program.
- Computer-readable media may include, but are not limited to: magnetic storage devices (for example, hard disks, floppy disks, or tapes, etc.), optical disks (for example, compact discs (CD), digital versatile discs (digital versatile disc, DVD), etc.), etc. ), smart cards and flash memory devices (for example, erasable programmable read-only memory (EPROM), cards, sticks or key drives, etc.).
- magnetic storage devices for example, hard disks, floppy disks, or tapes, etc.
- optical disks for example, compact discs (CD), digital versatile discs (digital versatile disc, DVD), etc.
- smart cards and flash memory devices for example, erasable programmable read-only memory (EPROM), cards, sticks or key drives, etc.
- the various storage media described herein may represent one or more devices and/or other machine-readable media for storing information.
- the term "machine-readable medium” may include, but is not limited to: wireless channels and various other media capable of storing, containing, and/or carrying instructions and/or data.
- processors mentioned in the embodiments of this application may be a central processing unit (CPU), or may also be other general-purpose processors, digital signal processors (digital signal processors, DSP), and application-specific integrated circuits (central processing unit, CPU).
- CPU central processing unit
- ASIC application specific integrated circuit
- FPGA field programmable gate array
- the general-purpose processor may be a microprocessor or the processor may also be any conventional processor or the like.
- the memory mentioned in the embodiments of the present application may be a volatile memory or a non-volatile memory, or may include both volatile and non-volatile memory.
- the non-volatile memory can be read-only memory (ROM), programmable read-only memory (programmable ROM, PROM), erasable programmable read-only memory (erasable PROM, EPROM), and electrically available Erase programmable read-only memory (electrically EPROM, EEPROM) or flash memory.
- the volatile memory may be random access memory (RAM).
- RAM can be used as an external cache.
- RAM can include the following various forms: static random access memory (static RAM, SRAM), dynamic random access memory (dynamic RAM, DRAM), synchronous dynamic random access memory (synchronous DRAM, SDRAM) , Double data rate synchronous dynamic random access memory (double data rate SDRAM, DDR SDRAM), enhanced synchronous dynamic random access memory (enhanced SDRAM, ESDRAM), synchronous connection dynamic random access memory (synchlink DRAM, SLDRAM) and Direct RAM Bus RAM (DR RAM).
- static random access memory static random access memory
- dynamic RAM dynamic random access memory
- DRAM synchronous dynamic random access memory
- SDRAM synchronous DRAM
- Double data rate synchronous dynamic random access memory double data rate SDRAM, DDR SDRAM
- enhanced SDRAM enhanced synchronous dynamic random access memory
- SLDRAM Direct RAM Bus RAM
- the processor is a general-purpose processor, DSP, ASIC, FPGA or other programmable logic device, discrete gate or transistor logic device, or discrete hardware component
- the memory storage module
- memories described herein are intended to include, but are not limited to, these and any other suitable types of memories.
- the disclosed device and method can be implemented in other ways.
- the device embodiments described above are merely illustrative, for example, the division of the units is only a logical function division, and there may be other divisions in actual implementation, for example, multiple units or components may be combined or It can be integrated into another system, or some features can be ignored or not implemented.
- the displayed or discussed mutual coupling or direct coupling or communication connection may be indirect coupling or communication connection through some interfaces, devices or units, and may be in electrical, mechanical or other forms.
- the units described as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in one place, or they may be distributed on multiple network units. Some or all of the units may be selected according to actual needs to achieve the objectives of the solutions of the embodiments.
- the functional units in the various embodiments of the present application may be integrated into one unit, or each unit may exist alone physically, or two or more units may be integrated into one unit.
- the computer program product includes one or more computer instructions.
- the computer may be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices.
- the computer may be a personal computer, a server, or a network device.
- the computer instructions may be stored in a computer-readable storage medium, or transmitted from one computer-readable storage medium to another computer-readable storage medium.
- the computer instructions may be transmitted from a website, computer, server, or data center. Transmission to another website site, computer, server or data center via wired (such as coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.).
- the computer-readable storage medium may be any available medium that can be accessed by a computer or a data storage device such as a server or data center integrated with one or more available media.
- the usable medium may be a magnetic medium, (for example, a floppy disk, a hard disk, a magnetic tape), an optical medium (for example, a DVD), or a semiconductor medium (for example, a solid state disk (SSD)), etc.
- the medium can include but is not limited to: U disk, mobile hard disk, read-only memory (read-only memory, ROM), random access memory (random access memory, RAM), magnetic disk or optical disk and other media that can store program code .
Landscapes
- Engineering & Computer Science (AREA)
- Computer Networks & Wireless Communication (AREA)
- Radar, Positioning & Navigation (AREA)
- Remote Sensing (AREA)
- Signal Processing (AREA)
- Computer Security & Cryptography (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Mobile Radio Communication Systems (AREA)
Abstract
La présente invention concerne un procédé et un appareil de communication. Le procédé peut comprendre les étapes suivantes: la réception par un dispositif terminal d'information de temps correspondant à au moins un point de fréquence sur des éphémérides de satellite d'un satellite, et la détermination par le dispositif terminal, en fonction des éphémérides de satellite, d'une information telle qu'une trajectoire du satellite; la détermination par le dispositif terminal, selon un certain temps, tel que l'instant actuel, et d'information temporelle correspondant à au moins un point de fréquence, d'information de point de fréquence à mesurer actuellement, et la détermination également d'information de point de fréquence à mesurer lorsque le dispositif terminal resélectionne une autre cellule. Le procédé peut réduire le surdébit de signalisation provoqué par un dispositif terminal demandant un message du système de nombreuses fois, permettant une économie d'énergie pour le dispositif terminal.
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201980100706.6A CN114424619B (zh) | 2019-09-30 | 2019-09-30 | 通信方法、小区测量的方法与通信装置 |
| PCT/CN2019/109374 WO2021062599A1 (fr) | 2019-09-30 | 2019-09-30 | Procédé et appareil de communication, procédé de mesure de cellule |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/CN2019/109374 WO2021062599A1 (fr) | 2019-09-30 | 2019-09-30 | Procédé et appareil de communication, procédé de mesure de cellule |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2021062599A1 true WO2021062599A1 (fr) | 2021-04-08 |
Family
ID=75337603
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/CN2019/109374 Ceased WO2021062599A1 (fr) | 2019-09-30 | 2019-09-30 | Procédé et appareil de communication, procédé de mesure de cellule |
Country Status (2)
| Country | Link |
|---|---|
| CN (1) | CN114424619B (fr) |
| WO (1) | WO2021062599A1 (fr) |
Cited By (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2022246829A1 (fr) * | 2021-05-28 | 2022-12-01 | 北京小米移动软件有限公司 | Procédé de configuration de cellule voisine et appareil associé |
| WO2023010498A1 (fr) * | 2021-08-06 | 2023-02-09 | 北京小米移动软件有限公司 | Procédé et appareil de détermination de temps de resélection pour aider à resélectionner des cellules, et dispositif de communication |
| CN115884322A (zh) * | 2021-08-04 | 2023-03-31 | 展讯通信(上海)有限公司 | 启动节能模式的方法、通信装置及可读存储介质 |
| CN116615955A (zh) * | 2021-12-16 | 2023-08-18 | 北京小米移动软件有限公司 | 一种信息获取方法和装置 |
| WO2024007986A1 (fr) * | 2022-07-04 | 2024-01-11 | 华为技术有限公司 | Procédé de communication et appareil de communication |
| WO2024027613A1 (fr) * | 2022-08-01 | 2024-02-08 | 华为技术有限公司 | Procédé et appareil de communication |
| EP4336901A4 (fr) * | 2021-05-07 | 2024-07-10 | Guangdong Oppo Mobile Telecommunications Corp., Ltd. | Procédé et appareil de détermination de cellule, dispositif et support de stockage lisible |
| WO2025098154A1 (fr) * | 2023-11-10 | 2025-05-15 | 华为技术有限公司 | Procédé et appareil de communication |
Families Citing this family (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN116235516B (zh) * | 2022-12-28 | 2025-10-03 | 北京小米移动软件有限公司 | 定位测量方法及装置 |
| EP4645994A1 (fr) * | 2023-01-30 | 2025-11-05 | Huawei Technologies Co., Ltd. | Procédé et appareil de communication |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN102590830A (zh) * | 2011-11-22 | 2012-07-18 | 电子科技大学 | 一种用于估计gps信号源的多普勒频率的方法 |
| CN106231627A (zh) * | 2016-07-25 | 2016-12-14 | 努比亚技术有限公司 | 一种移动终端及小区切换方法 |
| US20180074208A1 (en) * | 2016-09-10 | 2018-03-15 | Hughes Network Systems, Llc | System and method for efficient broadcast of satellite constellation ephemeris information |
| CN108196288A (zh) * | 2018-01-11 | 2018-06-22 | 南京理工大学 | 基于微惯性、芯片原子钟辅助北斗接收机的重定位方法 |
Family Cites Families (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US7436357B2 (en) * | 2006-11-20 | 2008-10-14 | Centrality Communications, Inc. | Background ephemeris download in navigational receivers |
| US8106822B2 (en) * | 2008-02-19 | 2012-01-31 | Honeywell International Inc. | System and method for GNSS position aided signal acquisition |
| CN101770018B (zh) * | 2008-12-29 | 2011-10-26 | 华晶科技股份有限公司 | 当前位置坐标的计算方法 |
| US9900856B2 (en) * | 2015-03-20 | 2018-02-20 | Qualcomm Incorporated | Method and apparatus for time or frequency synchronization in non-geosynchronous satellite communication systems |
| US9888426B2 (en) * | 2015-05-01 | 2018-02-06 | Qualcomm Incorporated | Handoff for satellite communication |
| US11041959B2 (en) * | 2016-02-15 | 2021-06-22 | Qualcomm Incorporated | Ephemeris information management for satellite communication |
| KR102397164B1 (ko) * | 2016-09-13 | 2022-05-11 | 퀄컴 인코포레이티드 | 위성 통신 시스템에서 이웃 셀 리스트 |
| WO2018112502A1 (fr) * | 2016-12-22 | 2018-06-28 | Myriota Pty Ltd | Système et procédé servant à générer des données d'éphémérides de satellites du type étendu |
-
2019
- 2019-09-30 CN CN201980100706.6A patent/CN114424619B/zh active Active
- 2019-09-30 WO PCT/CN2019/109374 patent/WO2021062599A1/fr not_active Ceased
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN102590830A (zh) * | 2011-11-22 | 2012-07-18 | 电子科技大学 | 一种用于估计gps信号源的多普勒频率的方法 |
| CN106231627A (zh) * | 2016-07-25 | 2016-12-14 | 努比亚技术有限公司 | 一种移动终端及小区切换方法 |
| US20180074208A1 (en) * | 2016-09-10 | 2018-03-15 | Hughes Network Systems, Llc | System and method for efficient broadcast of satellite constellation ephemeris information |
| CN108196288A (zh) * | 2018-01-11 | 2018-06-22 | 南京理工大学 | 基于微惯性、芯片原子钟辅助北斗接收机的重定位方法 |
Non-Patent Citations (1)
| Title |
|---|
| ANONYMOUS: "3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Solutions for NR to support non-terrestrial networks (NTN) (Release 16)", 3GPP STANDARD; TECHNICAL REPORT; 3GPP TR 38.821, no. V0.7.0, 13 June 2019 (2019-06-13), pages 1 - 86, XP051754096 * |
Cited By (11)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP4336901A4 (fr) * | 2021-05-07 | 2024-07-10 | Guangdong Oppo Mobile Telecommunications Corp., Ltd. | Procédé et appareil de détermination de cellule, dispositif et support de stockage lisible |
| WO2022246829A1 (fr) * | 2021-05-28 | 2022-12-01 | 北京小米移动软件有限公司 | Procédé de configuration de cellule voisine et appareil associé |
| CN115884322A (zh) * | 2021-08-04 | 2023-03-31 | 展讯通信(上海)有限公司 | 启动节能模式的方法、通信装置及可读存储介质 |
| WO2023010498A1 (fr) * | 2021-08-06 | 2023-02-09 | 北京小米移动软件有限公司 | Procédé et appareil de détermination de temps de resélection pour aider à resélectionner des cellules, et dispositif de communication |
| CN115943670A (zh) * | 2021-08-06 | 2023-04-07 | 北京小米移动软件有限公司 | 用于辅助小区重选的重选时间确定方法、装置及通信设备 |
| CN116615955A (zh) * | 2021-12-16 | 2023-08-18 | 北京小米移动软件有限公司 | 一种信息获取方法和装置 |
| WO2024007986A1 (fr) * | 2022-07-04 | 2024-01-11 | 华为技术有限公司 | Procédé de communication et appareil de communication |
| WO2024027613A1 (fr) * | 2022-08-01 | 2024-02-08 | 华为技术有限公司 | Procédé et appareil de communication |
| CN120186692A (zh) * | 2022-08-01 | 2025-06-20 | 华为技术有限公司 | 一种通信方法和装置 |
| JP2025525890A (ja) * | 2022-08-01 | 2025-08-07 | 華為技術有限公司 | 通信方法および装置 |
| WO2025098154A1 (fr) * | 2023-11-10 | 2025-05-15 | 华为技术有限公司 | Procédé et appareil de communication |
Also Published As
| Publication number | Publication date |
|---|---|
| CN114424619A (zh) | 2022-04-29 |
| CN114424619B (zh) | 2024-10-18 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| CN114424619B (zh) | 通信方法、小区测量的方法与通信装置 | |
| US20220225150A1 (en) | Cell Measurement Method and Communications Apparatus | |
| EP3982668B1 (fr) | Procédé et dispositif de sélection de cellule de ntn | |
| EP4250817A1 (fr) | Procédé et appareil de sélection de cellule | |
| US20190327660A1 (en) | Method and apparatus for reselecting path for iab relaying in wireless communication system | |
| WO2021082009A1 (fr) | Procédé de mesure de cellule, dispositif terminal, et dispositif de réseau | |
| CN114342469B (zh) | 小区选择的方法与通信装置 | |
| RU2523688C2 (ru) | Способ и устройство в беспроводной сети для определения целевого значения принимаемой мощности восходящей линии связи | |
| CN113785629B (zh) | 用于非陆地网络中的ue小区选择控制的装置、方法和计算机程序 | |
| US11012871B2 (en) | Apparatus and method | |
| US12452830B2 (en) | Information processing method based on network slide identity information in access procedure, and terminal device | |
| CN116235536A (zh) | 一种小区选择方法及相关设备 | |
| US20240314882A1 (en) | Communication method, terminal device, and network device | |
| WO2023082191A1 (fr) | Procédé et appareil de communication sans fil, dispositif de communication et support de stockage | |
| WO2022027187A1 (fr) | Procédé et appareil de sélection de réseaux mobiles terrestres publics | |
| WO2023011292A1 (fr) | Procédé, appareil et système de communication à mobilité limitée | |
| CN115767625A (zh) | 拥塞处理方法及装置、终端设备及存储介质 | |
| US20210160764A1 (en) | Method and apparatus for backhaul link selection | |
| US20240064629A1 (en) | Cell determination method and electronic device | |
| WO2023039829A1 (fr) | Procédé de communication sans fil, dispositif terminal et dispositif de réseau | |
| WO2024016238A1 (fr) | Procédés et appareils de communication sans fil | |
| CN116391447A (zh) | 无线通信方法、终端设备和网络设备 | |
| CN116456402A (zh) | 小区重选方法、切片组信息处理方法、终端及网络侧设备 |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 19947508 Country of ref document: EP Kind code of ref document: A1 |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| 122 | Ep: pct application non-entry in european phase |
Ref document number: 19947508 Country of ref document: EP Kind code of ref document: A1 |