WO2019157705A1 - 辅小区组配置方法及相关产品 - Google Patents
辅小区组配置方法及相关产品 Download PDFInfo
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- WO2019157705A1 WO2019157705A1 PCT/CN2018/076830 CN2018076830W WO2019157705A1 WO 2019157705 A1 WO2019157705 A1 WO 2019157705A1 CN 2018076830 W CN2018076830 W CN 2018076830W WO 2019157705 A1 WO2019157705 A1 WO 2019157705A1
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- node
- terminal
- base station
- dual connectivity
- network device
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
Definitions
- the present application relates to the field of communications technologies, and in particular, to a method and a related product for configuring a secondary cell group in a wireless communication system.
- the single-connection handover mechanism requires the handover of the terminal from one serving base station to another, and the handover of the dual-connection mechanism requires switching the connection between the terminal and the MN and the SN to another serving base station.
- the existing measurement configuration method is to configure a frequency point and a physical layer cell identifier PCI list in the measurement configuration.
- the PCI list includes a cell list cell list and a black list black list.
- the former is a cell list configured by the base station to measure the UE, and the latter is The UE is not allowed to go to the list of measurements.
- An embodiment of the present application provides a method for configuring a secondary cell group and related products.
- the enhanced measurement mechanism enables a terminal to preferentially measure and report a cell that belongs to the same base station, so that the base station can quickly configure the secondary cell to the terminal, thereby accelerating the secondary cell. Configure to shorten the handover or configuration delay and improve the utilization of the secondary cell.
- the embodiment of the present application provides a method for configuring a secondary cell group, which is applied to a terminal, where the method includes:
- Measure one or more cells of the first node and obtain a measurement report, where the measurement report includes a correspondence between the one or more cells and a base station identifier of the first node;
- the embodiment of the present application provides a method for configuring a secondary cell group, which is applied to a network device, where the method includes:
- the measurement report is obtained by the terminal measuring one or more cells of the first node, where the measurement report includes the base station identifier of the one or more cells and the first node Correspondence between them;
- an embodiment of the present application provides a terminal, where the terminal has a function of implementing a behavior of a terminal in the foregoing method design.
- the functions may be implemented by hardware or by corresponding software implemented by hardware.
- the hardware or software includes one or more modules corresponding to the functions described above.
- the terminal includes a processor configured to support the terminal in performing the corresponding functions of the above methods.
- the terminal may further include a transceiver for supporting communication between the terminal and the network device.
- the terminal may further include a memory for coupling with the processor, which stores program instructions and data necessary for the terminal.
- an embodiment of the present application provides a network device, where the network device has a function of implementing behavior of a first network device in the foregoing method design.
- the functions may be implemented by hardware or by corresponding software implemented by hardware.
- the hardware or software includes one or more modules corresponding to the functions described above.
- the network device includes a processor configured to support the network device to perform corresponding functions in the methods described above. Further, the network device may further include a transceiver for supporting communication between the network device and the terminal. Further, the network device can also include a memory for coupling with the processor that holds program instructions and data necessary for the network device.
- an embodiment of the present application provides a network device, including a processor, a memory, a transceiver, and one or more programs, where the one or more programs are stored in the memory, and are configured by The processor executes, the program comprising instructions for performing the steps in any of the methods of the first aspect of the embodiments of the present application.
- an embodiment of the present application provides a terminal, including a processor, a memory, a communication interface, and one or more programs, where the one or more programs are stored in the memory, and configured by the The processor executes, the program comprising instructions for performing the steps in any of the methods of the second aspect of the embodiments of the present application.
- the embodiment of the present application provides a computer readable storage medium, wherein the computer readable storage medium stores a computer program for electronic data exchange, wherein the computer program causes the computer to execute as implemented in the present application.
- the embodiment of the present application provides a computer readable storage medium, wherein the computer readable storage medium stores a computer program for electronic data exchange, wherein the computer program causes the computer to execute as implemented in the present application.
- the embodiment of the present application provides a computer program product, where the computer program product includes a non-transitory computer readable storage medium storing a computer program, the computer program being operative to cause the computer to execute Apply some or all of the steps described in any of the methods of the first aspect of the embodiments.
- the computer program product can be a software installation package.
- embodiments of the present application provide a computer program product, where the computer program product includes a non-transitory computer readable storage medium storing a computer program, the computer program being operative to cause a computer to execute Apply some or all of the steps described in any of the methods of the second aspect of the embodiments.
- the computer program product can be a software installation package.
- the terminal first measures one or more cells of the first node, obtains a measurement report, and secondly, sends the measurement report to the network device, where the measurement report includes one or more cells and the first Corresponding relationship between the base station identifiers of a node, so the measurement report can be used by the network device to quickly configure the secondary cell group according to the foregoing correspondence relationship, that is, the enhanced measurement mechanism enables the terminal to preferentially measure and report to belong to the same base station.
- the cell is configured to enable the base station to quickly configure the secondary cell to the terminal, thereby shortening the handover or configuration delay by accelerating the configuration of the secondary cell, and improving the utilization of the secondary cell.
- FIG. 1 is a network architecture diagram of a possible communication system provided by an embodiment of the present application.
- FIG. 2 is a schematic flowchart of a method for configuring a secondary cell group according to an embodiment of the present application
- FIG. 3 is a schematic flowchart of a method for configuring a secondary cell group according to an embodiment of the present application
- FIG. 4 is a schematic flowchart of a method for configuring a secondary cell group according to an embodiment of the present application
- FIG. 5 is a schematic structural diagram of a network device according to an embodiment of the present application.
- FIG. 6 is a schematic structural diagram of a terminal according to an embodiment of the present disclosure.
- FIG. 7 is a schematic structural diagram of a network device according to an embodiment of the present application.
- FIG. 8 is a schematic structural diagram of a terminal according to an embodiment of the present application.
- FIG. 1 illustrates a wireless communication system to which the present application relates.
- the wireless communication system 100 can operate in a high frequency band, is not limited to a Long Term Evolution (LTE) system, and can be a 5th generation (5G) system and a new air interface (NR) in the future.
- System machine to machine (Machine to Machine, M2M) system.
- the wireless communication system 100 can include one or more network devices 101, one or more terminals 103, and a core network device 105.
- the network device 101 can be a base station, and the base station can be used for communicating with one or more terminals, and can also be used for communicating with one or more base stations having partial terminal functions (such as a macro base station and a micro base station).
- the base station may be a Base Transceiver Station (BTS) in a Time Division Synchronous Code Division Multiple Access (TD-SCDMA) system, or may be an evolved base station in an LTE system (Evolutional Node B). , eNB), and base stations in 5G systems, new air interface (NR) systems.
- the base station may also be an Access Point (AP), a TransNode (Trans TRP), a Central Unit (CU), or other network entity, and may include some or all of the functions of the above network entities.
- the core network device 105 includes an Access and Mobility Management Function (AMF) entity, a User Plane Function (UPF) entity, and a Session Management Function (SMF). .
- AMF Access and Mobility Management Function
- UPF User Plane Function
- SMF Session Management Function
- Terminals 103 may be distributed throughout wireless communication system 100, either stationary or mobile.
- the terminal 103 may be a mobile device (such as a smart phone), a mobile station, a mobile unit, an M2M terminal, a wireless unit, a remote unit, a user agent, and a mobile client. and many more.
- the wireless communication system 100 shown in FIG. 1 is only for the purpose of more clearly explaining the technical solutions of the present application, and does not constitute a limitation of the present application.
- Those skilled in the art may know that with the evolution of the network architecture and new services, The appearance of the scenario, the technical solution provided by the present application is equally applicable to similar technical problems.
- the existing dual-connection architecture can only support one master node (MN) and one secondary node (SN). If the terminal wants to configure more secondary cell SCells, the measurement may be based on the fact that the PCI cannot distinguish the cell from the base station. Therefore, the cell configured by the terminal may not be a secondary node, but may be a cell of a different base station in the adjacent area. In this way, even if the cell is reported to the network, the reported cells do not belong to the same base station, and cannot be configured to the terminal. This makes the measurement report less efficient and it is difficult to quickly configure the SCell for the terminal.
- MN master node
- SN secondary node
- FIG. 2 is a schematic diagram of a method for configuring a secondary cell group according to an embodiment of the present application, which is applied to the foregoing example communications system, where the method includes:
- the terminal measures one or more cells of the first node, and obtains a measurement report, where the measurement report includes a correspondence between the one or more cells and a base station identifier of the first node;
- the signal coverage of the serving cell of the first node includes the current location of the terminal, and the node whose signal coverage does not include the location where the terminal is currently located is the second node, and the second node is not in the present application. Within the measurement range of the terminal.
- the terminal may include a millimeter wave terminal supporting a dual transmission link, and the base station identifier includes an evolved node identifier eNB ID or a node identifier gNB ID of the new wireless system, and is not limited herein.
- the terminal sends the measurement report to the network device, where the measurement report is used by the network device to configure a secondary cell group for the terminal according to the corresponding relationship.
- the terminal first measures one or more cells of the first node, obtains a measurement report, and secondly, sends the measurement report to the network device, where the measurement report includes one or more cells and the
- the corresponding relationship between the base station identifiers of the first node, and the measurement report may be used by the network device to quickly configure the secondary cell group according to the foregoing correspondence relationship, that is, the enhanced measurement mechanism enables the terminal to preferentially measure and report to belong to the same base station.
- the cell is configured so that the base station can quickly configure the secondary cell to the terminal, thereby shortening the handover or configuration delay by accelerating the configuration of the secondary cell, and improving the utilization of the secondary cell.
- the method before the terminal measures one or more cells of the first node, the method further includes: autonomously reading system information to obtain a base station identity of the first node.
- the system information may be, for example, a cell global identifier, if an E-UTRAN Cell Global Identifier (E-CGI) or an NR Cell Global Identifier (N-CGI) or other form of cell global identifier.
- E-CGI E-UTRAN Cell Global Identifier
- N-CGI NR Cell Global Identifier
- the terminal may trigger a measurement process in advance, and automatically read system information such as a neighboring cell in advance to obtain a base station identifier. That is, the terminal can measure the cell by itself and analyze the correspondence between the cell and the base station, and perform statistical classification on the measured cell. For example, the terminal detects two cells Cell1 and Cell2 on the node 1, and detects 1 on the node 2. The cell can generate a measurement report, and the measurement report can carry the correspondence between the Cell1, Cell2 and the base station identifier of the node 1, and the correspondence between the cell ID of the cell 3 and the node 2, and send the measurement report to the cell. Network equipment.
- the terminal can read the system information autonomously to obtain the base station identifier of the first node, and measure the cell of the first node, and does not need to be restricted by the network side according to specific base station identification information in the measurement configuration sent by the base station.
- the cell measurement process is more flexible and efficient.
- the terminal supports dual connectivity and is in a dual connectivity state; before the autonomous read system information to obtain the base station identity of the first node, the method further includes: the terminal receiving The first message of the network device, the first message is used to notify the update primary node MN or the secondary node SN.
- the terminal supports the primary node MN to update and the secondary node SN does not change, or the MN does not change the SN.
- the terminal autonomously reads the system information to obtain the identifier of the first node, and measures one or more cells under the first node, and generates the generated
- the measurement report adds a correspondence between the one or more cells and the first node, where the first node station is a node other than the current MN of the terminal.
- the terminal reads the system information autonomously to obtain the identifier of the first node, and measures one or more cells under the first node, and generates The corresponding relationship between the one or more cells and the first node is added to the measurement report, and the first node station is a node other than the current SN of the terminal.
- the terminal can trigger autonomous read system information when receiving the first message from the network device, determining to update the MN or SN. Acquiring the operation of the base station identifier of the first node, thereby implementing the measurement process in advance, facilitating the terminal to preferentially measure and report the cell belonging to the MN or the SN, so that the base station can quickly configure the secondary cell to the terminal, thereby shortening the handover by accelerating the secondary cell configuration. Or configure the delay to improve the utilization of the secondary cell.
- the terminal supports dual connectivity and is in a single connection state; before the terminal autonomously reads system information to obtain the base station identifier of the first node, the method further includes: receiving, by the terminal a second message from the network device, the second message being used to notify establishment of a secondary node SN.
- the network device determines to configure the SN for the terminal, and sends a second message to the terminal. After receiving the second message to determine the configuration SN, the terminal automatically reads the system information to obtain the base station identifier of the first node, and measures the first node. The one or more cells add a corresponding relationship between the measured one or more cells and the corresponding base station identifier in the measurement report.
- the terminal can trigger an operation of autonomously reading system information to obtain a base station identifier of the first node when receiving the second message, thereby implementing early initiation.
- the measurement process is advantageous for the terminal to preferentially measure and report the cells belonging to the same base station, so that the base station can quickly configure the SN base station and its secondary cell to the terminal, thereby shortening the configuration delay and improving the utilization rate of the secondary cell by accelerating the configuration of the secondary cell.
- the method further includes: the terminal establishing an RRC connection; receiving and pre-storing from the RRC connection from the a measurement configuration of the network device, where the measurement configuration is used to determine the base station identifier of the detected node when the terminal performs the cell measurement, and report the correspondence between the base station identifier and the corresponding detected cell when the preset condition is met. Release the RRC connection and switch to the idle state.
- the preset condition includes: reporting the measurement report when the number of measured cells is greater than or equal to a preset number (for example, 3); or reporting when the preset timer timer is completed (for example, 100 seconds) measurement report
- the configuration information of the network side can be saved through the RRC connection before switching to the idle state, so that after switching to the idle state, the self-reading system information can be triggered to acquire the first node.
- the operation of the base station identification is advantageous for the terminal to preferentially measure and report the cells belonging to the same base station, so that the base station can quickly configure the primary and secondary cells of the service to the terminal, thereby shortening the configuration delay and improving the utilization of the secondary cell. rate.
- the method before the terminal measures one or more cells of the first node, the method further includes: the terminal receiving a measurement configuration from a network device, where the measurement configuration includes the first node Base station identification.
- the base station identifier carried in the measurement configuration configured by the network device is used to indicate the base station corresponding to the cell measurement process.
- the network side can measure the selected base station by actively configuring the terminal, thereby implementing a more accurate cell measurement process, and avoiding measurement and reporting cannot be added as a supplement.
- the cell of the cell improves measurement efficiency.
- the terminal supports a dual connectivity DC and is in a dual connectivity state, the first node being the primary node MN and/or the secondary node SN of the terminal.
- the network device determines that the terminal adds one or more cells to the SN, the network device instructs the terminal to add a cell to the SN.
- the terminal measures one or more cells under the SN, and obtains the measurement.
- the report adds a correspondence between the measured one or more cells and the base station identifier of the SN in the measurement report.
- the network device determines that the terminal adds one or more cells to the MN, the network device instructs the terminal to add a cell to the MN, and after obtaining the notification, the terminal measures one or more cells under the MN, and obtains The measurement report adds a correspondence between the measured one or more cells and the base station identifier of the MN in the measurement report.
- the terminal supports a dual connectivity DC, and is in a dual connectivity state, the first node being a node of the terminal other than the primary node MN and the secondary node SN;
- the first node is determined to be the primary node after the terminal performs the primary node update, or is determined to be the secondary node after the secondary node performs the secondary node update.
- the network device determines that the terminal updates the MN, that is, the MN updates the SN
- the base station identifier of the first node is notified to the terminal, and the terminal measures one or more cells under the first node, and adds the one to the measurement report. Or a correspondence between multiple cells and a base station identifier of the first node.
- the network device determines that the terminal updates the SN, that is, the MN does not change the SN
- the base station identifier of the first node is notified to the terminal, and the terminal measures one or more cells under the first node, and adds the measurement report.
- the network side may trigger the cell measurement process of the terminal by sending the node identifier of the first node to the terminal, so that the terminal can preferentially measure and report to belong to the same base station.
- a cell so that the base station can quickly configure a new MN or SN and its secondary cell, thereby shortening handover or configuration delay, and improving utilization of the secondary cell.
- the terminal supports dual connectivity DC, and is in a single connection state
- the first node is a node other than the current primary node MN of the terminal
- the first node is determined to be The secondary node SN of the terminal.
- the configuration of which base station is the secondary node SN needs to be determined by the network device according to the measurement result.
- the network side may trigger the cell measurement process of the terminal by sending the node identifier of the first node to the terminal, thereby
- the terminal can preferentially measure and report the cells belonging to the same base station, so that the base station can quickly configure the SN secondary node and its secondary cell to the terminal, thereby shortening the handover or configuration delay by accelerating the configuration of the secondary cell, and improving the utilization of the secondary cell.
- FIG. 3 is another method for configuring a secondary cell group according to the embodiment of the present application.
- the method is applied to the foregoing example communications system, where the method includes:
- the network device receives a measurement report from the terminal, the measurement report is obtained by the terminal measuring one or more cells of the first node, and the measurement report includes the one or more cells and the Correspondence between base station identifiers of the first node;
- the network device configures a secondary cell group for the terminal according to the corresponding relationship.
- the network device receives the measurement report reported by the terminal, where the measurement report is obtained by the terminal measuring one or more cells of the first node, and the measurement report includes one or more cells and the first node.
- the corresponding relationship between the base station identifiers, and the network device can configure the secondary cell group for the terminal according to the corresponding relationship in the measurement report, that is, the enhanced measurement mechanism enables the terminal to preferentially measure and report the cells belonging to the same base station, so that the base station
- the secondary cell can be quickly configured to the terminal, thereby shortening the handover or configuration delay by accelerating the configuration of the secondary cell, and improving the utilization of the secondary cell.
- the base station identity is obtained by the terminal autonomously reading system information.
- the terminal supports dual connectivity and is in a dual connectivity state; before the network device receives the measurement report from the terminal, the method further includes: the network device sending the first message to the terminal The first message is used to notify the update primary node MN or the secondary node SN.
- the terminal supports dual connectivity and is in a single connection state; before the network device receives the measurement report from the terminal, the method further includes: the network device sending the second message to the terminal The second message is used to notify the establishment of the secondary node SN.
- the method before the network device receives the measurement report from the terminal, the method further includes: the network device establishing an RRC connection with the terminal; sending a measurement configuration to the terminal by using the RRC connection, The measurement configuration is used to determine the base station identifier of the detected node when the terminal performs the cell measurement, and report the correspondence between the base station identifier and the corresponding detected cell when the preset condition is met.
- the method before the network device receives the measurement report from the terminal, the method further includes: the network device sending a measurement configuration to the terminal, the measurement configuration including a base station identifier of the first node .
- the terminal supports a dual connectivity DC and is in a dual connectivity state, the first node being the primary node MN and/or the secondary node SN of the terminal.
- the terminal supports a dual connectivity DC, and is in a dual connectivity state, the first node being a node of the terminal other than the primary node MN and the secondary node SN;
- the first node is determined to be the primary node after the terminal performs the primary node update, or is determined to be the secondary node after the secondary node performs the secondary node update.
- the terminal supports dual connectivity DC, and is in a single connection state
- the first node is a node other than the current primary node MN of the terminal
- the first node is determined to be The secondary node SN of the terminal.
- the terminal supports dual connectivity DC; before the network device receives the measurement report from the terminal, the method further includes the network device determining to release the radio resource control RRC connection with the terminal.
- FIG. 4 is a method for configuring a secondary cell group according to an embodiment of the present application.
- the method is applied to the foregoing example communications system, where the method includes:
- the terminal measures one or more cells of the first node, and obtains a measurement report, where the measurement report includes a correspondence between the one or more cells and a base station identifier of the first node;
- the terminal sends the measurement report to the network device, where the measurement report is used by the network device to configure a secondary cell group for the terminal according to the corresponding relationship.
- the network device receives a measurement report from a terminal, where the measurement report is obtained by the terminal measuring one or more cells of a first node, where the measurement report includes the one or more cells and Corresponding relationship between the base station identifiers of the first node;
- the network device configures the secondary cell group for the terminal according to the corresponding relationship.
- the terminal first measures one or more cells of the first node, obtains a measurement report, and secondly, sends the measurement report to the network device, where the measurement report includes one or more cells and the
- the corresponding relationship between the base station identifiers of the first node, and the measurement report may be used by the network device to quickly configure the secondary cell group according to the foregoing correspondence relationship, that is, the enhanced measurement mechanism enables the terminal to preferentially measure and report to belong to the same base station.
- the cell is configured so that the base station can quickly configure the secondary cell to the terminal, thereby shortening the handover or configuration delay by accelerating the configuration of the secondary cell, and improving the utilization of the secondary cell.
- FIG. 5 is a schematic structural diagram of a terminal according to an embodiment of the present disclosure.
- the terminal is a first terminal.
- the terminal includes a processor, a memory, and a transceiver. And one or more programs, wherein the one or more programs are stored in the memory and configured to be executed by the processor, the program comprising instructions for performing the following steps;
- Measure one or more cells of the first node and obtain a measurement report, where the measurement report includes a correspondence between the one or more cells and a base station identifier of the first node;
- the terminal first measures one or more cells of the first node, obtains a measurement report, and secondly, sends the measurement report to the network device, where the measurement report includes one or more cells and the
- the corresponding relationship between the base station identifiers of the first node, and the measurement report may be used by the network device to quickly configure the secondary cell group according to the foregoing correspondence relationship, that is, the enhanced measurement mechanism enables the terminal to preferentially measure and report to belong to the same base station.
- the cell is configured so that the base station can quickly configure the secondary cell to the terminal, thereby shortening the handover or configuration delay by accelerating the configuration of the secondary cell, and improving the utilization of the secondary cell.
- the program further includes instructions for: autonomously reading system information to obtain a base station identity of the first node prior to the measuring one or more cells of the first node .
- the terminal supports dual connectivity and is in a dual connectivity state; the program further includes instructions for: receiving, prior to the measuring one or more cells of the first node, The first message of the network device, the first message is used to notify the update primary node MN or the secondary node SN.
- the terminal supports dual connectivity and is in a single connection state; the program further includes instructions for: receiving, prior to the measuring one or more cells of the first node, The second message of the network device is used to notify the establishment of the secondary node SN.
- the program further includes instructions for: establishing an RRC connection before the one or more cells of the first node are measured; and for receiving and pre-storing through the RRC connection a measurement configuration from the network device, the measurement configuration is used to indicate that the terminal determines a base station identifier of the detected node when performing cell measurement, and reports the base station identifier and the corresponding detected cell when the preset condition is met.
- the RRC connection is released and switched to the idle state.
- the program further includes instructions for: receiving, before the one or more cells of the first node, a measurement configuration from a network device, the measurement configuration including the The base station identifier of the first node.
- the terminal supports a dual connectivity DC and is in a dual connectivity state, the first node being the primary node MN and/or the secondary node SN of the terminal.
- the terminal supports a dual connectivity DC, and is in a dual connectivity state, the first node being a node of the terminal other than the primary node MN and the secondary node SN;
- the first node is determined to be the primary node after the terminal performs the primary node update, or is determined to be the secondary node after the secondary node performs the secondary node update.
- the terminal supports dual connectivity DC, and is in a single connection state
- the first node is a node other than the current primary node MN of the terminal
- the first node is determined to be The secondary node SN of the terminal.
- the terminal supports dual connectivity DC; the program further comprising instructions for: releasing the radio resource control RRC connection before the one or more cells of the first node are measured; And for switching from the connected state to the idle state.
- FIG. 6 is a schematic structural diagram of a network device according to an embodiment of the present disclosure.
- the network device includes a processor, a memory, a communication interface, and one or more.
- a program wherein the one or more programs are stored in the memory and configured to be executed by the processor, the program comprising instructions for performing the following steps;
- the measurement report is obtained by the terminal measuring one or more cells of the first node, where the measurement report includes the base station identifier of the one or more cells and the first node Correspondence between them;
- the network device receives the measurement report reported by the terminal, where the measurement report is obtained by the terminal measuring one or more cells of the first node, and the measurement report includes one or more cells and the first node.
- the corresponding relationship between the base station identifiers, and the network device can configure the secondary cell group for the terminal according to the corresponding relationship in the measurement report, that is, the enhanced measurement mechanism enables the terminal to preferentially measure and report the cells belonging to the same base station, so that the base station
- the secondary cell can be quickly configured to the terminal, thereby shortening the handover or configuration delay by accelerating the configuration of the secondary cell, and improving the utilization of the secondary cell.
- the base station identity is obtained by the terminal autonomously reading system information.
- the terminal supports dual connectivity and is in a dual connectivity state; the program further includes instructions for: transmitting the first to the terminal before receiving the measurement report from the terminal A message, the first message is used to notify the update primary node MN or the secondary node SN.
- the terminal supports dual connectivity and is in a single connection state; the program further includes instructions for: transmitting the first to the terminal before receiving the measurement report from the terminal The second message is used to notify the establishment of the secondary node SN.
- the program further includes instructions for: establishing an RRC connection with the terminal before receiving the measurement report from the terminal; and for using the RRC connection to the The terminal sends a measurement configuration, where the measurement configuration is used to determine the base station identifier of the detected node when the terminal performs the cell measurement, and reports the correspondence between the base station identifier and the corresponding detected cell when the preset condition is met.
- the program further includes instructions for: transmitting, before the receiving the measurement report from the terminal, a measurement configuration to the terminal, the measurement configuration including the first node Base station identification.
- the terminal supports a dual connectivity DC and is in a dual connectivity state, the first node being the primary node MN and/or the secondary node SN of the terminal.
- the terminal supports a dual connectivity DC, and is in a dual connectivity state, the first node being a node of the terminal other than the primary node MN and the secondary node SN;
- the first node is determined to be the primary node after the terminal performs the primary node update, or is determined to be the secondary node after the secondary node performs the secondary node update.
- the terminal supports dual connectivity DC, and is in a single connection state
- the first node is a node other than the current primary node MN of the terminal
- the first node is determined to be The secondary node SN of the terminal.
- the terminal supports dual connectivity DC; the program further comprising instructions for: determining to release the radio resource control RRC with the terminal before receiving the measurement report from the terminal connection.
- the terminal and the network device include corresponding hardware structures and/or software modules for performing the respective functions in order to implement the above functions.
- the present application can be implemented in a combination of hardware or hardware and computer software in combination with the elements and algorithm steps of the various examples described in the embodiments disclosed herein. Whether a function is implemented in hardware or computer software to drive hardware depends on the specific application and design constraints of the solution. A person skilled in the art can use different methods for each particular application to implement the described functionality, but such implementation should not be considered to be beyond the scope of the application.
- the embodiments of the present application may perform the division of functional units on the terminal and the network device according to the foregoing method.
- each functional unit may be divided according to each function, or two or more functions may be integrated into one processing unit.
- the above integrated unit can be implemented in the form of hardware or in the form of a software program module. It should be noted that the division of the unit in the embodiment of the present application is schematic, and is only a logical function division. In actual implementation, there may be another division manner.
- FIG. 7 shows a block diagram of a possible functional unit composition of the terminal involved in the above embodiment, which is a first terminal.
- the terminal 700 includes a processing unit 702 and a communication unit 703.
- the processing unit 702 is configured to perform control management on the actions of the terminal.
- the processing unit 702 is configured to support the terminal to perform step 201 in FIG. 2, 401 in FIG. 4, and/or other processes for the techniques described herein.
- the communication unit 703 is for supporting communication between the terminal and other devices, such as communication with the network device shown in FIG. 6.
- the terminal may further include a storage unit 701 for storing program codes and data of the terminal.
- the processing unit 702 can be a processor or a controller
- the communication unit 703 can be a transceiver, a transceiver circuit, a radio frequency chip, etc.
- the storage unit 701 can be a memory.
- the processing unit 702 is configured to measure one or more cells of the first node, and obtain a measurement report, where the measurement report includes a correspondence between the one or more cells and a base station identifier of the first node. And transmitting, by the communication unit 703, the measurement report to the network device, where the measurement report is used by the network device to configure a secondary cell group for the terminal according to the correspondence.
- the terminal first measures one or more cells of the first node, obtains a measurement report, and secondly, sends the measurement report to the network device, where the measurement report includes one or more cells and the first node.
- the measurement report can be used by the network device to rapidly configure the secondary cell group according to the foregoing correspondence relationship, that is, the enhanced measurement mechanism enables the terminal to preferentially measure and report the cells belonging to the same base station, so that The base station can quickly configure the secondary cell to the terminal, thereby shortening the handover or configuration delay by accelerating the configuration of the secondary cell, and improving the utilization of the secondary cell.
- the processing unit 702 is further configured to: autonomously read system information by using the communication unit 703 to obtain a base station identifier of the first node. .
- the terminal supports dual connectivity and is in a dual connectivity state; the processing unit 702, before autonomously reading system information through the communication unit 703 to obtain the base station identity of the first node, And configured to: receive, by the communication unit 703, a first message from the network device, where the first message is used to notify an update primary node MN or a secondary node SN.
- the terminal supports dual connectivity and is in a single connection state; the processing unit 702, before autonomously reading system information through the communication unit 703 to obtain the base station identity of the first node, And configured to: receive, by the communication unit 703, a second message from the network device, where the second message is used to notify the establishment of the secondary node SN.
- the processing unit 702 is further configured to: establish a radio resource control RRC connection before using the communication unit 703 to read the system information autonomously to obtain the base station identifier of the first node; Receiving, by the communication unit 703, the measurement configuration from the network device by using the RRC connection, where the measurement configuration is used to indicate that the terminal determines the base station identifier of the detected node when performing cell measurement, and meets the preset And correspondingly reporting the correspondence between the base station identifier and the corresponding detected cell; and releasing the RRC connection and switching to the idle state.
- the processing unit 702 is further configured to: receive, by the communication unit 703, a measurement configuration from a network device, where the measurement configuration includes the The base station identifier of the first node.
- the terminal supports a dual connectivity DC and is in a dual connectivity state, the first node being the primary node MN and/or the secondary node SN of the terminal.
- the terminal supports a dual connectivity DC, and is in a dual connectivity state, the first node being a node of the terminal other than the primary node MN and the secondary node SN;
- the first node is determined to be the primary node after the terminal performs the primary node update, or is determined to be the secondary node after the secondary node performs the secondary node update.
- the terminal supports dual connectivity DC, and is in a single connection state
- the first node is a node other than the current primary node MN of the terminal
- the first node is determined to be The secondary node SN of the terminal.
- the terminal supports dual connectivity DC; the processing unit is also used to measure one or more cells of the first node after receiving the measurement configuration from the network device by the communication unit 703 : releasing the radio resource control RRC connection; and for switching from the connected state to the idle state.
- the terminal involved in the embodiment of the present application may be the terminal shown in FIG. 5.
- FIG. 8 shows a block diagram of one possible functional unit configuration of the network device involved in the above embodiment.
- the network device 800 includes a processing unit 802 and a communication unit 803.
- the processing unit 802 is configured to control and manage the actions of the network device.
- the processing unit 802 is configured to support the network device to perform step 301 in FIG. 3, step 402 in FIG. 4 and/or other techniques for the techniques described herein. process.
- the communication unit 803 is for supporting communication between the network device and other devices, such as communication with the terminal shown in FIG.
- the network device may further include a storage unit 801 for storing program codes and data of the network device.
- the processing unit 802 can be a processor or a controller, and can be, for example, a central processing unit (CPU), a general-purpose processor, a digital signal processor (DSP), and an application-specific integrated circuit (Application-Specific). Integrated Circuit (ASIC), Field Programmable Gate Array (FPGA) or other programmable logic device, transistor logic device, hardware component, or any combination thereof. It is possible to implement or carry out the various illustrative logical blocks, modules and circuits described in connection with the present disclosure.
- the processor may also be a combination of computing functions, for example, including one or more microprocessor combinations, a combination of a DSP and a microprocessor, and the like.
- the communication unit 803 may be a transceiver, a transceiver circuit, or the like, and the storage unit 801 may be a memory.
- the processing unit 802 is used to calculate the processing unit 802 .
- the network device receives the measurement report reported by the terminal, where the measurement report is obtained by the terminal measuring one or more cells of the first node, and the measurement report includes one or more cells and a base station identifier of the first node.
- the corresponding relationship between the network device and the network device can configure the secondary cell group for the terminal according to the corresponding relationship in the measurement report, that is, the enhanced measurement mechanism enables the terminal to preferentially measure and report the cells belonging to the same base station, so that the base station can quickly configure the auxiliary The cell is given to the terminal, thereby shortening the handover or configuration delay by accelerating the configuration of the secondary cell, and improving the utilization rate of the secondary cell.
- the base station identity is obtained by the terminal autonomously reading system information.
- the terminal supports dual connectivity and is in a dual connectivity state; the processing unit 802 is further configured to: pass through the communication unit 803 before receiving the measurement report from the terminal through the communication unit 803 Sending a first message to the terminal, where the first message is used to notify the update primary node MN or the secondary node SN.
- the terminal supports dual connectivity and is in a single connection state; the processing unit 802 is further configured to: pass through the communication unit 803 before receiving the measurement report from the terminal through the communication unit 803 Sending a second message to the terminal, where the second message is used to notify the establishment of the secondary node SN.
- the processing unit 802 is further configured to: establish an RRC connection with the terminal before receiving the measurement report from the terminal by using the communication unit 803; and for passing through the communication unit 803
- the RRC connection sends a measurement configuration to the terminal, where the measurement configuration is used to indicate that the terminal determines the base station identifier of the detected node when performing the cell measurement, and reports the base station identifier and the corresponding detected when the preset condition is met. Correspondence of the cells.
- the processing unit 802 before the processing unit 802 receives the measurement report from the terminal, the processing unit 802 is further configured to: send, by using the communication unit, a measurement configuration to the terminal, where the measurement configuration includes the The base station identifier of the first node.
- the terminal supports a dual connectivity DC and is in a dual connectivity state, the first node being the primary node MN and/or the secondary node SN of the terminal.
- the terminal supports a dual connectivity DC, and is in a dual connectivity state, the first node being a node of the terminal other than the primary node MN and the secondary node SN;
- the first node is determined to be the primary node after the terminal performs the primary node update, or is determined to be the secondary node after the secondary node performs the secondary node update.
- the terminal supports dual connectivity DC, and is in a single connection state
- the first node is a node other than the current primary node MN of the terminal
- the first node is determined to be The secondary node SN of the terminal.
- the terminal supports dual connectivity DC; the processing unit 802 is further configured to determine to release the radio resource control RRC connection with the terminal before receiving the measurement report from the terminal by the communication unit 803. .
- the network device involved in the embodiment of the present application may be the network device shown in FIG. 6.
- the embodiment of the present application further provides a computer readable storage medium, wherein the computer readable storage medium stores a computer program for electronic data exchange, wherein the computer program causes the computer to execute a terminal as in the above method embodiment Some or all of the steps described.
- the embodiment of the present application further provides a computer readable storage medium, wherein the computer readable storage medium stores a computer program for electronic data exchange, wherein the computer program causes the computer to execute a network in the method embodiment as described above Some or all of the steps described by the device.
- the embodiment of the present application further provides a computer program product, wherein the computer program product comprises a non-transitory computer readable storage medium storing a computer program, the computer program being operative to cause a computer to perform the method embodiment as described above Some or all of the steps described in the terminal.
- the computer program product can be a software installation package.
- the embodiment of the present application further provides a computer program product, wherein the computer program product comprises a non-transitory computer readable storage medium storing a computer program, the computer program being operative to cause a computer to perform a network as in the above method Some or all of the steps described by the device.
- the computer program product can be a software installation package.
- the steps of the method or algorithm described in the embodiments of the present application may be implemented in a hardware manner, or may be implemented by a processor executing software instructions.
- the software instructions may be composed of corresponding software modules, which may be stored in a random access memory (RAM), a flash memory, a read only memory (ROM), an erasable programmable read only memory ( Erasable Programmable ROM (EPROM), electrically erasable programmable read only memory (EEPROM), registers, hard disk, removable hard disk, compact disk read only (CD-ROM) or any other form of storage medium known in the art.
- An exemplary storage medium is coupled to the processor to enable the processor to read information from, and write information to, the storage medium.
- the storage medium can also be an integral part of the processor.
- the processor and the storage medium can be located in an ASIC. Additionally, the ASIC can be located in an access network device, a target network device, or a core network device. Of course, the processor and the storage medium may also exist as discrete components in the access network device, the target network device, or the core network device.
- the functions described in the embodiments of the present application may be implemented in whole or in part by software, hardware, firmware, or any combination thereof.
- software it may be implemented in whole or in part in the form of a computer program product.
- the computer program product includes one or more computer instructions.
- the processes or functions described in accordance with embodiments of the present application are generated in whole or in part.
- the computer can be a general purpose computer, a special purpose computer, a computer network, or other programmable device.
- the computer instructions can be stored in a computer readable storage medium or transferred from one computer readable storage medium to another computer readable storage medium, for example, the computer instructions can be from a website site, computer, server or data center Transmission to another website site, computer, server, or data center by wire (eg, coaxial cable, fiber optic, Digital Subscriber Line (DSL)) or wireless (eg, infrared, wireless, microwave, etc.).
- the computer readable storage medium can be any available media that can be accessed by a computer or a data storage device such as a server, data center, or the like that includes 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 digital video disc (DVD)), or a semiconductor medium (for example, a solid state disk (SSD)). )Wait.
- a magnetic medium for example, a floppy disk, a hard disk, a magnetic tape
- an optical medium for example, a digital video disc (DVD)
- DVD digital video disc
- SSD solid state disk
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Abstract
本申请实施例公开了辅小区组配置方法及相关产品,包括:终端测量第一节点的一个或多个小区,得到测量报告,测量报告包括一个或多个测量报告与第一节点的基站标识之间的对应关系;向网络设备发送测量报告,测量报告用于网络设备根据对应关系为终端配置辅小区组。本申请实施例通过增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
Description
本申请涉及通信技术领域,尤其涉及一种无线通信系统中辅小区组配置方法及相关产品。
切换是通信系统的重要机制,对于单连接和双连接机制来说都很重要。单连接的切换机制需要将终端从一个服务基站切换到另一个服务基站,双连接机制的切换,需要把终端与MN和SN上的连接切换到另一个服务基站。
现有的测量配置方法,是在测量配置中配置频点以及物理层小区标识PCI列表,PCI列表包括小区名单cell list和黑名单black list,前者是基站配置UE去测量的小区列表,后者是不允许UE去测量的列表。
发明内容
本申请的实施例提供一种辅小区组配置方法及相关产品,通过增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
第一方面,本申请实施例提供一种辅小区组配置方法,应用于终端,所述方法包括:
测量第一节点的一个或多个小区,得到测量报告,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;
向网络设备发送所述测量报告,所述测量报告用于所述网络设备根据所述对应关系为所述终端配置辅小区组。
第二方面,本申请实施例提供一种辅小区组配置方法,应用于网络设备,所述方法包括:
接收来自终端的测量报告,所述测量报告是所述终端测量第一节点的一个或多个小区而得到的,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;
根据所述对应关系为所述终端配置辅小区组。
第三方面,本申请实施例提供一种终端,该终端具有实现上述方法设计中终端的行为的功能。所述功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。所述硬件或软件包括一个或多个与上述功能相对应的模块。在一个可能的设计中,终端包括处理器,所述处理器被配置为支持终端执行上述方法中相应的功能。进一步的,终端还可以包括收发器,所述收发器用于支持终端与网络设备之间的通信。进一步的,终端还可以包括存储器,所述存储器用于与处理器耦合,其保存终端必要的程序指令和数据。
第四方面,本申请实施例提供一种网络设备,该网络设备具有实现上述方法设计中第一网络设备的行为的功能。所述功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。所述硬件或软件包括一个或多个与上述功能相对应的模块。在一个可能的设计中,网络设备包括处理器,所述处理器被配置为支持网络设备执行上述方法中相应的功能。进一步的,网络设备还可以包括收发器,所述收发器用于支持网络设备与终端之间的通信。 进一步的,网络设备还可以包括存储器,所述存储器用于与处理器耦合,其保存网络设备必要的程序指令和数据。
第五方面,本申请实施例提供一种网络设备,包括处理器、存储器、收发器以及一个或多个程序,其中,所述一个或多个程序被存储在所述存储器中,并且被配置由所述处理器执行,所述程序包括用于执行本申请实施例第一方面任一方法中的步骤的指令。
第六方面,本申请实施例提供一种终端,包括处理器、存储器、通信接口以及一个或多个程序,其中,所述一个或多个程序被存储在所述存储器中,并且被配置由所述处理器执行,所述程序包括用于执行本申请实施例第二方面任一方法中的步骤的指令。
第七方面,本申请实施例提供了一种计算机可读存储介质,其中,所述计算机可读存储介质存储用于电子数据交换的计算机程序,其中,所述计算机程序使得计算机执行如本申请实施例第一方面任一方法中所描述的部分或全部步骤。
第八方面,本申请实施例提供了一种计算机可读存储介质,其中,所述计算机可读存储介质存储用于电子数据交换的计算机程序,其中,所述计算机程序使得计算机执行如本申请实施例第二方面任一方法中所描述的部分或全部步骤。
第九方面,本申请实施例提供了一种计算机程序产品,其中,所述计算机程序产品包括存储了计算机程序的非瞬时性计算机可读存储介质,所述计算机程序可操作来使计算机执行如本申请实施例第一方面任一方法中所描述的部分或全部步骤。该计算机程序产品可以为一个软件安装包。
第十方面,本申请实施例提供了一种计算机程序产品,其中,所述计算机程序产品包括存储了计算机程序的非瞬时性计算机可读存储介质,所述计算机程序可操作来使计算机执行如本申请实施例第二方面任一方法中所描述的部分或全部步骤。该计算机程序产品可以为一个软件安装包。
可以看出,本申请实施例,终端首先测量第一节点的一个或多个小区,得到测量报告,其次,向网络设备发送该测量报告,由于该测量报告包括一个或多个小区与所述第一节点的基站标识之间的对应关系,故而该测量报告可以用于网络设备根据上述对应关系为终端快速配置辅小区组,即通过该增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
下面将对实施例或现有技术描述中所需要使用的附图作简单地介绍。
图1是本申请实施例提供的一种可能的通信系统的网络架构图;
图2是本申请实施例提供的一种辅小区组配置方法的流程示意图;
图3是本申请实施例提供的一种辅小区组配置方法的流程示意图;
图4是本申请实施例提供的一种辅小区组配置方法的流程示意图;
图5是本申请实施例提供的一种网络设备的结构示意图;
图6是本申请实施例提供的一种终端的结构示意图;
图7是本申请实施例提供的一种网络设备的结构示意图;
图8是本申请实施例提供的一种终端的结构示意图。
下面将结合附图对本申请实施例中的技术方案进行描述。
示例的,图1示出了本申请涉及的无线通信系统。该无线通信系统100可以工作在高频 频段上,不限于长期演进(Long Term Evolution,LTE)系统,还可以是未来演进的第五代移动通信(the 5th Generation,5G)系统、新空口(NR)系统,机器与机器通信(Machine to Machine,M2M)系统等。该无线通信系统100可包括:一个或多个网络设备101,一个或多个终端103,以及核心网设备105。其中:网络设备101可以为基站,基站可以用于与一个或多个终端进行通信,也可以用于与一个或多个具有部分终端功能的基站进行通信(比如宏基站与微基站)。基站可以是时分同步码分多址(Time Division Synchronous Code Division Multiple Access,TD-SCDMA)系统中的基站收发台(Base Transceiver Station,BTS),也可以是LTE系统中的演进型基站(Evolutional Node B,eNB),以及5G系统、新空口(NR)系统中的基站。另外,基站也可以为接入点(Access Point,AP)、传输节点(Trans TRP)、中心单元(Central Unit,CU)或其他网络实体,并且可以包括以上网络实体的功能中的一些或所有功能。核心网设备105包括接入和移动管理功能(Access and Mobility Management Function,AMF)实体,用户面功能(User Plane Function,UPF)实体和会话管理功能(Session Management Function,SMF)等核心网侧的设备。终端103可以分布在整个无线通信系统100中,可以是静止的,也可以是移动的。在本申请的一些实施例中,终端103可以是移动设备(如智能手机)、移动台(mobile station)、移动单元(mobile unit)、M2M终端、无线单元,远程单元、用户代理、移动客户端等等。
需要说明的,图1示出的无线通信系统100仅仅是为了更加清楚的说明本申请的技术方案,并不构成对本申请的限定,本领域普通技术人员可知,随着网络架构的演变和新业务场景的出现,本申请提供的技术方案对于类似的技术问题,同样适用。
下面对本申请涉及的相关技术进行介绍。
现有的双连接架构,只能支持一个主节点(master node,MN)和一个辅节点(second node,SN)。如果终端想配置更多的辅小区SCell,测量汇报时,由于PCI无法区分小区与基站的关联,因此终端所配置的小区,可能不是一个辅节点的,而可能是邻近区域的不同基站的小区。这样,即使把小区汇报给了网络,但是所汇报的小区不属于同一个基站,也无法都配置给终端,这使得测量汇报的效率不高,难以为终端快速配置SCell。
针对上述问题,本申请实施例提出以下实施例,下面结合附图进行详细描述。
请参阅图2,图2是本申请实施例提供的一种辅小区组配置方法,应用于上述示例通信系统,该方法包括:
在201部分,终端测量第一节点的一个或多个小区,得到测量报告,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;
其中,第一节点的服务小区的信号覆盖范围包括所述终端当前所处位置,信号覆盖范围不包括所述终端当前所处位置的小区所属的节点为第二节点,该第二节点不在本申请所述终端的测量范围内。
其中,所述终端可以包括支持双发射链路的毫米波终端,所述基站标识包括演进型节点标识eNB ID或者新无线系统的节点标识gNB ID等,此处不做唯一限定。
在202部分,所述终端向网络设备发送所述测量报告,所述测量报告用于所述网络设备根据所述对应关系为所述终端配置辅小区组。
可以看出,本申请实施例中,终端首先测量第一节点的一个或多个小区,得到测量报告,其次,向网络设备发送该测量报告,由于该测量报告包括一个或多个小区与所述第一节点的基站标识之间的对应关系,故而该测量报告可以用于网络设备根据上述对应关系为终端快速配置辅小区组,即通过该增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
在一个可能的示例中,所述终端测量第一节点的一个或多个小区之前,所述方法还包括:自主读取系统信息以获取所述第一节点的基站标识。
其中,所述系统信息例如可以是小区全局标识,如果E-UTRAN Cell Global Identifier(E-CGI)或者NR Cell Global Identifier(N-CGI)或者其他形式的小区全局标识。
具体实现中,所述终端可以提前触发测量过程,提前自主读取如邻小区的系统信息以获知基站标识。也就是说,终端能够自己自主测量小区并分析小区与基站的对应关系,将测量到的小区进行统计分类,如终端在节点1上检测到2个小区Cell1和Cell2,在节点2上检测到1个小区Cell3,则终端可以生成测量报告,该测量报告可以携带该Cell1、Cell2与节点1的基站标识的对应关系,以及携带Cell3与节点2的基站标识的对应关系,并将该测量报告发送给网络设备。
可见,本示例中,终端能够自主读取系统信息以获取第一节点的基站标识,并测量该第一节点的小区,无需根据基站发送的测量配置中的具体基站标识信息进行由网络侧限制的小区测量过程,更加灵活高效。
在本可能的示例中,所述终端支持双连接,且处于双连接状态;所述自主读取系统信息以获取所述第一节点的基站标识之前,所述方法还包括:所述终端接收来自所述网络设备的第一消息,所述第一消息用于通知更新主节点MN或者辅节点SN。
其中,终端支持主节点MN更新而辅节点SN不变,或者MN不变SN更新。
举例来说,假设网络设备确定终端更新MN,即MN更新SN不变,则终端自主读取系统信息以获取第一节点的标识,测量第一节点下的一个或多个小区,并在生成的测量报告中增加该一个或多个小区与该第一节点之间的对应关系,第一节点站为所述终端的当前的MN以外的节点。
又举例来说,假设网络设备确定终端更新SN,即MN不变SN更新,则终端自主读取系统信息以获取第一节点的标识,测量第一节点下的一个或多个小区,并在生成的测量报告中增加该一个或多个小区与该第一节点之间的对应关系,第一节点站为所述终端的当前的SN以外的节点。
可见,本示例中,对于支持双连接且处于双连接状态的终端,该终端能够在接收到来自所述网络设备的第一消息、确定更新MN或者SN的情况下,触发自主读取系统信息以获取第一节点的基站标识的操作,从而实现提前发起测量过程,有利于终端优先测量和汇报属于MN或SN的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
在本可能的示例中,所述终端支持双连接,且处于单连接状态;所述终端自主读取系统信息以获取所述第一节点的基站标识之前,所述方法还包括:所述终端接收来自所述网络设备的第二消息,所述第二消息用于通知建立辅节点SN。
其中,终端处于单连接状态时,仅配置有MN,未配置有SN。
举例来说,网络设备确定为终端配置SN,则向终端发送第二消息,终端接收到第二消息确定配置SN后,自主读取系统信息获取第一节点的基站标识,测量第一节点下的一个或多个小区,在测量报告中增加测量到的一个或多个小区与对应的基站标识之间的对应关系。
可见,本示例中,对于支持双连接且处于单连接状态的终端,该终端能够在接收到第二消息时,触发自主读取系统信息以获取第一节点的基站标识的操作,从而实现提前发起测量过程,有利于终端优先测量和汇报属于同一基站的小区,以便基站能够快速配置SN基站及其辅小区给终端,从而通过加速辅小区配置,缩短配置延迟,提高辅小区的利用率。
在本能的示例中,所述终端自主读取系统信息以获取所述第一节点的基站标识之前,所述方法还包括:所述终端建立RRC连接;通过所述RRC连接接收并预存来自所述网络设 备的测量配置,所述测量配置用于指示所述终端进行小区测量时确定被检测节点的基站标识,并在满足预设条件时上报所述基站标识与对应的检测到的小区的对应关系;释放所述RRC连接,并切换至空闲态。
其中,对于空闲态的终端,如果想在开机时配置多个辅小区,可以提前测量。所述预设条件包括:测量到的小区的数量大于或等于预设数量(例如,3),则汇报测量报告;或者,预设的定时器Timer计时(例如,100秒)完成时,则汇报测量报告
可见,本示例中,对于空闲态的终端,可以在切换至空闲态之前通过RRC连接保存网络侧的配置信息,从而在切换至空闲态后,可以触发自主读取系统信息以获取第一节点的基站标识的操作,从而实现提前发起测量过程,有利于终端优先测量和汇报属于同一基站的小区,以便基站能够快速配置服务的主小区和辅小区给终端,从而缩短配置延迟,提高辅小区的利用率。
在一个可能的示例中,所述终端测量第一节点的一个或多个小区之前,所述方法还包括:所述终端接收来自网络设备的测量配置,所述测量配置包括所述第一节点的基站标识。
其中,网络设备为终端配置的测量配置中所携带的基站标识用于指示小区测量过程对应的基站。
可见,本示例中,由于第一节点由网络侧配置,也就说是,网络侧能够通过主动配置终端测量选定的基站,实现更为准确的小区测量过程,避免测量以及汇报无法添加为辅小区的小区,提高测量效率。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的主节点MN和/或辅节点SN。
举例来说,假设网络设备确定终端在SN上增加一个或多个小区,则网络设备指示终端去在SN上增加小区,终端获取该通知后,测量该SN下的一个或多个小区,得到测量报告,在测量报告中增加测量到的一个或多个小区与该SN的基站标识之间的对应关系。
又举例来说,假设网络设备确定终端在MN上增加一个或多个小区,则网络设备指示终端去在MN上增加小区,终端获取该通知后,测量该MN下的一个或多个小区,得到测量报告,在测量报告中增加测量到的一个或多个小区与该MN的基站标识之间的对应关系。
可见,本示例中,对于支持双连接且处于双连接状态的终端,该终端被网络侧通知在MN或SN上增加小区时,触发在需要增加小区的节点下进行小区测量的过程,从而使得终端能够优先测量和汇报属于MN或者SN的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短配置延迟,提高辅小区的利用率。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的除主节点MN和辅节点SN之外的节点;
所述第一节点被确定为所述终端进行主节点更新后的主节点,或者,被确定为所述终端进行辅节点更新后的辅节点。
举例来说,假设网络设备确定终端更新MN,即MN更新SN不变,则通知终端第一节点的基站标识,终端测量该第一节点下的一个或多个小区,在测量报告中增加该一个或多个小区与该第一节点的基站标识之间的对应关系。
又举例来说,假设网络设备确定终端更新SN,即MN不变SN更新,则通知终端第一节点的基站标识,终端测量该第一节点下的一个或多个小区,在测量报告中增加该一个或多个小区与该第一节点的基站标识之间的对应关系。
可见,本示例中,网络侧在确定终端的MN或者SN需要更新后,可以通过向终端发送第一节点的节点标识来触发终端的小区测量过程,从而使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置新的MN或者SN及其辅小区,从而缩短切换或者 配置延迟,提高辅小区的利用率。
在本可能的示例中,所述终端支持双连接DC,且处于单连接状态,所述第一节点为除所述终端当前的主节点MN之外的节点,且所述第一节点被确定为所述终端的辅节点SN。
其中,终端配置哪个基站为辅节点SN需要由网络设备根据测量结果来确定。
可见,本示例中,对于支持双连接且处于单连接状态的终端,网络侧可以在确定该终端需要设置SN后,通过向终端发送第一节点的节点标识来触发终端的小区测量过程,从而使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置SN辅节点及其辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
与图2所示实施例一致的,请参阅图3,图3是本申请实施例提供的另一种辅小区组配置方法,应用于上述示例通信系统,该方法包括:
在301部分,网络设备接收来自终端的测量报告,所述测量报告是所述终端测量第一节点的一个或多个小区而得到的,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;
在302部分,所述网络设备根据所述对应关系为所述终端配置辅小区组。
可以看出,本申请实施例中,网络设备接收终端上报的测量报告,该测量报告是终端测量第一节点的一个或多个小区而得到的,测量报告包括一个或多个小区与第一节点的基站标识之间的对应关系,故而网络设备能够根据该测量报告中的对应关系为终端配置辅小区组,即通过该增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
在一个可能的示例中,所述基站标识是所述终端自主读取系统信息而获取到的。
在本可能的示例中,所述终端支持双连接,且处于双连接状态;所述网络设备接收来自终端的测量报告之前,所述方法还包括:所述网络设备向所述终端发送第一消息,所述第一消息用于通知更新主节点MN或者辅节点SN。
在本可能的示例中,所述终端支持双连接,且处于单连接状态;所述网络设备接收来自终端的测量报告之前,所述方法还包括:所述网络设备向所述终端发送第二消息,所述第二消息用于通知建立辅节点SN。
在本可能的示例中,所述网络设备接收来自终端的测量报告之前,所述方法还包括:所述网络设备与所述终端建立RRC连接;通过所述RRC连接向所述终端发送测量配置,所述测量配置用于指示所述终端进行小区测量时确定被检测节点的基站标识,并在满足预设条件时上报所述基站标识与对应的检测到的小区的对应关系。
在一个可能的示例中,所述网络设备接收来自终端的测量报告之前,所述方法还包括:所述网络设备向所述终端发送测量配置,所述测量配置包括所述第一节点的基站标识。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的主节点MN和/或辅节点SN。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的除主节点MN和辅节点SN之外的节点;
所述第一节点被确定为所述终端进行主节点更新后的主节点,或者,被确定为所述终端进行辅节点更新后的辅节点。
在本可能的示例中,所述终端支持双连接DC,且处于单连接状态,所述第一节点为除所述终端当前的主节点MN之外的节点,且所述第一节点被确定为所述终端的辅节点SN。
在本可能的示例中,所述终端支持双连接DC;所述网络设备接收来自终端的测量报 告之前,所述方法还包括:所述网络设备确定释放与所述终端的无线资源控制RRC连接。
与图2和图3实施例一致的,请参阅图4,图4是本申请实施例提供的一种辅小区组配置方法,应用于上述示例通信系统,该方法包括:
在401部分,终端测量第一节点的一个或多个小区,得到测量报告,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;
在402部分,所述终端向网络设备发送所述测量报告,所述测量报告用于所述网络设备根据所述对应关系为所述终端配置辅小区组。
在403部分,所述网络设备接收来自终端的测量报告,所述测量报告是所述终端测量第一节点的一个或多个小区而得到的,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;
在404部分,所述网络设备根据所述对应关系为所述终端配置辅小区组。
可以看出,本申请实施例中,终端首先测量第一节点的一个或多个小区,得到测量报告,其次,向网络设备发送该测量报告,由于该测量报告包括一个或多个小区与所述第一节点的基站标识之间的对应关系,故而该测量报告可以用于网络设备根据上述对应关系为终端快速配置辅小区组,即通过该增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
与上述实施例一致的,请参阅图5,图5是本申请实施例提供的一种终端的结构示意图,该终端为第一终端,如图所示,该终端包括处理器、存储器、收发器以及一个或多个程序,其中,所述一个或多个程序被存储在所述存储器中,并且被配置由所述处理器执行,所述程序包括用于执行以下步骤的指令;
测量第一节点的一个或多个小区,得到测量报告,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;
向网络设备发送所述测量报告,所述测量报告用于所述网络设备根据所述对应关系为所述终端配置辅小区组。
可以看出,本申请实施例中,终端首先测量第一节点的一个或多个小区,得到测量报告,其次,向网络设备发送该测量报告,由于该测量报告包括一个或多个小区与所述第一节点的基站标识之间的对应关系,故而该测量报告可以用于网络设备根据上述对应关系为终端快速配置辅小区组,即通过该增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
在一个可能的示例中,所述程序还包括用于执行以下操作的指令:在所述测量第一节点的一个或多个小区之前,自主读取系统信息以获取所述第一节点的基站标识。
在本可能的示例中,所述终端支持双连接,且处于双连接状态;所述程序还包括用于执行以下操作的指令:在所述测量第一节点的一个或多个小区之前,接收来自所述网络设备的第一消息,所述第一消息用于通知更新主节点MN或者辅节点SN。
在本可能的示例中,所述终端支持双连接,且处于单连接状态;所述程序还包括用于执行以下操作的指令:在所述测量第一节点的一个或多个小区之前,接收来自所述网络设备的第二消息,所述第二消息用于通知建立辅节点SN。
在本可能的示例中,所述程序还包括用于执行以下操作的指令:在所述测量第一节点的一个或多个小区之前,建立RRC连接;以及用于通过所述RRC连接接收并预存来自所述 网络设备的测量配置,所述测量配置用于指示所述终端进行小区测量时确定被检测节点的基站标识,并在满足预设条件时上报所述基站标识与对应的检测到的小区的对应关系;
释放所述RRC连接,并切换至空闲态。
在一个可能的示例中,所述程序还包括用于执行以下操作的指令:在所述测量第一节点的一个或多个小区之前,接收来自网络设备的测量配置,所述测量配置包括所述第一节点的基站标识。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的主节点MN和/或辅节点SN。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的除主节点MN和辅节点SN之外的节点;
所述第一节点被确定为所述终端进行主节点更新后的主节点,或者,被确定为所述终端进行辅节点更新后的辅节点。
在本可能的示例中,所述终端支持双连接DC,且处于单连接状态,所述第一节点为除所述终端当前的主节点MN之外的节点,且所述第一节点被确定为所述终端的辅节点SN。
在本可能的示例中,所述终端支持双连接DC;所述程序还包括用于执行以下操作的指令:在所述测量第一节点的一个或多个小区之前,释放无线资源控制RRC连接;以及用于由连接态切换至空闲态。
与上述实施例一致的,请参阅图6,图6是本申请实施例提供的一种网络设备的结构示意图,如图所示,该网络设备包括处理器、存储器、通信接口以及一个或多个程序,其中,所述一个或多个程序被存储在所述存储器中,并且被配置由所述处理器执行,所述程序包括用于执行以下步骤的指令;
接收来自终端的测量报告,所述测量报告是所述终端测量第一节点的一个或多个小区而得到的,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;
根据所述对应关系为所述终端配置辅小区组。
可以看出,本申请实施例中,网络设备接收终端上报的测量报告,该测量报告是终端测量第一节点的一个或多个小区而得到的,测量报告包括一个或多个小区与第一节点的基站标识之间的对应关系,故而网络设备能够根据该测量报告中的对应关系为终端配置辅小区组,即通过该增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
在一个可能的示例中,所述基站标识是所述终端自主读取系统信息而获取到的。
在本可能的示例中,所述终端支持双连接,且处于双连接状态;所述程序还包括用于执行以下操作的指令:在所述接收来自终端的测量报告之前,向所述终端发送第一消息,所述第一消息用于通知更新主节点MN或者辅节点SN。
在本可能的示例中,所述终端支持双连接,且处于单连接状态;所述程序还包括用于执行以下操作的指令:在所述接收来自终端的测量报告之前,向所述终端发送第二消息,所述第二消息用于通知建立辅节点SN。
在本可能的示例中,所述程序还包括用于执行以下操作的指令:在所述接收来自终端的测量报告之前,与所述终端建立RRC连接;以及用于通过所述RRC连接向所述终端发送测量配置,所述测量配置用于指示所述终端进行小区测量时确定被检测节点的基站标识,并在满足预设条件时上报所述基站标识与对应的检测到的小区的对应关系。
在一个可能的示例中,所述程序还包括用于执行以下操作的指令:在所述接收来自终端的测量报告之前,向所述终端发送测量配置,所述测量配置包括所述第一节点的基站标识。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的主节点MN和/或辅节点SN。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的除主节点MN和辅节点SN之外的节点;
所述第一节点被确定为所述终端进行主节点更新后的主节点,或者,被确定为所述终端进行辅节点更新后的辅节点。
在本可能的示例中,所述终端支持双连接DC,且处于单连接状态,所述第一节点为除所述终端当前的主节点MN之外的节点,且所述第一节点被确定为所述终端的辅节点SN。
在本可能的示例中,所述终端支持双连接DC;所述程序还包括用于执行以下操作的指令:在所述接收来自终端的测量报告之前,确定释放与所述终端的无线资源控制RRC连接。
上述主要从各个网元之间交互的角度对本申请实施例的方案进行了介绍。可以理解的是,终端和网络设备为了实现上述功能,其包含了执行各个功能相应的硬件结构和/或软件模块。本领域技术人员应该很容易意识到,结合本文中所公开的实施例描述的各示例的单元及算法步骤,本申请能够以硬件或硬件和计算机软件的结合形式来实现。某个功能究竟以硬件还是计算机软件驱动硬件的方式来执行,取决于技术方案的特定应用和设计约束条件。专业技术人员可以对每个特定的应用使用不同方法来实现所描述的功能,但是这种实现不应认为超出本申请的范围。
本申请实施例可以根据上述方法示例对终端和网络设备进行功能单元的划分,例如,可以对应各个功能划分各个功能单元,也可以将两个或两个以上的功能集成在一个处理单元中。上述集成的单元既可以采用硬件的形式实现,也可以采用软件程序模块的形式实现。需要说明的是,本申请实施例中对单元的划分是示意性的,仅仅为一种逻辑功能划分,实际实现时可以有另外的划分方式。
在采用集成的单元的情况下,图7示出了上述实施例中所涉及的终端的一种可能的功能单元组成框图,该终端为第一终端。终端700包括:处理单元702和通信单元703。处理单元702用于对终端的动作进行控制管理,例如,处理单元702用于支持终端执行图2中的步骤201、图4中的401和/或用于本文所描述的技术的其它过程。通信单元703用于支持终端与其他设备的通信,例如与图6中示出的网络设备之间的通信。终端还可以包括存储单元701,用于存储终端的程序代码和数据。
其中,处理单元702可以是处理器或控制器,通信单元703可以是收发器、收发电路、射频芯片等,存储单元701可以是存储器。
其中,所述处理单元702用于测量第一节点的一个或多个小区,得到测量报告,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;以及用于通过所述通信单元703向网络设备发送所述测量报告,所述测量报告用于所述网络设备根据所述对应关系为所述终端配置辅小区组。
可见,本示例中,终端首先测量第一节点的一个或多个小区,得到测量报告,其次,向网络设备发送该测量报告,由于该测量报告包括一个或多个小区与所述第一节点的基站标识之间的对应关系,故而该测量报告可以用于网络设备根据上述对应关系为终端快速配置辅小区组,即通过该增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区, 以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
在一个可能的示例中,所述处理单元702在测量第一节点的一个或多个小区之前,还用于:通过所述通信单元703自主读取系统信息以获取所述第一节点的基站标识。
在本可能的示例中,所述终端支持双连接,且处于双连接状态;所述处理单元702在通过所述通信单元703自主读取系统信息以获取所述第一节点的基站标识之前,还用于:通过所述通信单元703接收来自所述网络设备的第一消息,所述第一消息用于通知更新主节点MN或者辅节点SN。
在本可能的示例中,所述终端支持双连接,且处于单连接状态;所述处理单元702在通过所述通信单元703自主读取系统信息以获取所述第一节点的基站标识之前,还用于:通过所述通信单元703接收来自所述网络设备的第二消息,所述第二消息用于通知建立辅节点SN。
在本可能的示例中,所述处理单元702在通过所述通信单元703自主读取系统信息以获取所述第一节点的基站标识之前,还用于:建立无线资源控制RRC连接;以及用于通过所述通信单元703通过所述RRC连接接收并预存来自所述网络设备的测量配置,所述测量配置用于指示所述终端进行小区测量时确定被检测节点的基站标识,并在满足预设条件时上报所述基站标识与对应的检测到的小区的对应关系;以及用于释放所述RRC连接,并切换至空闲态。
在一个可能的示例中,所述处理单元702在测量第一节点的一个或多个小区之前,还用于:通过所述通信单元703接收来自网络设备的测量配置,所述测量配置包括所述第一节点的基站标识。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的主节点MN和/或辅节点SN。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的除主节点MN和辅节点SN之外的节点;
所述第一节点被确定为所述终端进行主节点更新后的主节点,或者,被确定为所述终端进行辅节点更新后的辅节点。
在本可能的示例中,所述终端支持双连接DC,且处于单连接状态,所述第一节点为除所述终端当前的主节点MN之外的节点,且所述第一节点被确定为所述终端的辅节点SN。
在本可能的示例中,所述终端支持双连接DC;所述处理单元在通过所述通信单元703接收来自网络设备的测量配置之后,测量第一节点的一个或多个小区之前,还用于:释放无线资源控制RRC连接;以及用于由连接态切换至空闲态。
当处理单元702为处理器,通信单元703为通信接口,存储单元701为存储器时,本申请实施例所涉及的终端可以为图5所示的终端。
在采用集成的单元的情况下,图8示出了上述实施例中所涉及的网络设备的一种可能的功能单元组成框图。网络设备800包括:处理单元802和通信单元803。处理单元802用于对网络设备的动作进行控制管理,例如,处理单元802用于支持网络设备执行图3中的步骤301,图4中的步骤402和/或用于本文所描述的技术的其它过程。通信单元803用于支持网络设备与其他设备的通信,例如与图5中示出的终端之间的通信。网络设备还可以包括存储单元801,用于存储网络设备的程序代码和数据。
其中,处理单元802可以是处理器或控制器,例如可以是中央处理器(Central Processing Unit,CPU),通用处理器,数字信号处理器(Digital Signal Processor,DSP),专用集成电 路(Application-Specific Integrated Circuit,ASIC),现场可编程门阵列(Field Programmable Gate Array,FPGA)或者其他可编程逻辑器件、晶体管逻辑器件、硬件部件或者其任意组合。其可以实现或执行结合本申请公开内容所描述的各种示例性的逻辑方框,模块和电路。所述处理器也可以是实现计算功能的组合,例如包含一个或多个微处理器组合,DSP和微处理器的组合等等。通信单元803可以是收发器、收发电路等,存储单元801可以是存储器。
其中,所述处理单元802用于
可见,本示例中,网络设备接收终端上报的测量报告,该测量报告是终端测量第一节点的一个或多个小区而得到的,测量报告包括一个或多个小区与第一节点的基站标识之间的对应关系,故而网络设备能够根据该测量报告中的对应关系为终端配置辅小区组,即通过该增强测量机制,使得终端能够优先测量和汇报属于同一基站的小区,以便基站能够快速配置辅小区给终端,从而通过加速辅小区配置,缩短切换或者配置延迟,提高辅小区的利用率。
在一个可能的示例中,所述基站标识是所述终端自主读取系统信息而获取到的。
在本可能的示例中,所述终端支持双连接,且处于双连接状态;所述处理单元802在通过所述通信单元803接收来自终端的测量报告之前,还用于:通过所述通信单元803向所述终端发送第一消息,所述第一消息用于通知更新主节点MN或者辅节点SN。
在本可能的示例中,所述终端支持双连接,且处于单连接状态;所述处理单元802在通过所述通信单元803接收来自终端的测量报告之前,还用于:通过所述通信单元803向所述终端发送第二消息,所述第二消息用于通知建立辅节点SN。
在本可能的示例中,所述处理单元802在通过所述通信单元803接收来自终端的测量报告之前,还用于:与所述终端建立RRC连接;以及用于通过所述通信单元803通过所述RRC连接向所述终端发送测量配置,所述测量配置用于指示所述终端进行小区测量时确定被检测节点的基站标识,并在满足预设条件时上报所述基站标识与对应的检测到的小区的对应关系。
在一个可能的示例中,所述处理单元802通过所述通信单元803接收来自终端的测量报告之前,还用于:通过所述通信单元向所述终端发送测量配置,所述测量配置包括所述第一节点的基站标识。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的主节点MN和/或辅节点SN。
在本可能的示例中,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的除主节点MN和辅节点SN之外的节点;
所述第一节点被确定为所述终端进行主节点更新后的主节点,或者,被确定为所述终端进行辅节点更新后的辅节点。
在本可能的示例中,所述终端支持双连接DC,且处于单连接状态,所述第一节点为除所述终端当前的主节点MN之外的节点,且所述第一节点被确定为所述终端的辅节点SN。
在本可能的示例中,所述终端支持双连接DC;所述处理单元802在通过所述通信单元803接收来自终端的测量报告之前,还用于确定释放与所述终端的无线资源控制RRC连接。
当处理单元802为处理器,通信单元803为通信接口,存储单元801为存储器时,本申请实施例所涉及的网络设备可以为图6所示的网络设备。
本申请实施例还提供了一种计算机可读存储介质,其中,所述计算机可读存储介质存储用于电子数据交换的计算机程序,其中,所述计算机程序使得计算机执行如上述方法实 施例中终端所描述的部分或全部步骤。
本申请实施例还提供了一种计算机可读存储介质,其中,所述计算机可读存储介质存储用于电子数据交换的计算机程序,其中,所述计算机程序使得计算机执行如上述方法实施例中网络设备所描述的部分或全部步骤。
本申请实施例还提供了一种计算机程序产品,其中,所述计算机程序产品包括存储了计算机程序的非瞬时性计算机可读存储介质,所述计算机程序可操作来使计算机执行如上述方法实施例中终端所描述的部分或全部步骤。该计算机程序产品可以为一个软件安装包。
本申请实施例还提供了一种计算机程序产品,其中,所述计算机程序产品包括存储了计算机程序的非瞬时性计算机可读存储介质,所述计算机程序可操作来使计算机执行如上述方法中网络设备所描述的部分或全部步骤。该计算机程序产品可以为一个软件安装包。
本申请实施例所描述的方法或者算法的步骤可以以硬件的方式来实现,也可以是由处理器执行软件指令的方式来实现。软件指令可以由相应的软件模块组成,软件模块可以被存放于随机存取存储器(Random Access Memory,RAM)、闪存、只读存储器(Read Only Memory,ROM)、可擦除可编程只读存储器(Erasable Programmable ROM,EPROM)、电可擦可编程只读存储器(Electrically EPROM,EEPROM)、寄存器、硬盘、移动硬盘、只读光盘(CD-ROM)或者本领域熟知的任何其它形式的存储介质中。一种示例性的存储介质耦合至处理器,从而使处理器能够从该存储介质读取信息,且可向该存储介质写入信息。当然,存储介质也可以是处理器的组成部分。处理器和存储介质可以位于ASIC中。另外,该ASIC可以位于接入网设备、目标网络设备或核心网设备中。当然,处理器和存储介质也可以作为分立组件存在于接入网设备、目标网络设备或核心网设备中。
本领域技术人员应该可以意识到,在上述一个或多个示例中,本申请实施例所描述的功能可以全部或部分地通过软件、硬件、固件或者其任意组合来实现。当使用软件实现时,可以全部或部分地以计算机程序产品的形式实现。所述计算机程序产品包括一个或多个计算机指令。在计算机上加载和执行所述计算机程序指令时,全部或部分地产生按照本申请实施例所述的流程或功能。所述计算机可以是通用计算机、专用计算机、计算机网络、或者其他可编程装置。所述计算机指令可以存储在计算机可读存储介质中,或者从一个计算机可读存储介质向另一个计算机可读存储介质传输,例如,所述计算机指令可以从一个网站站点、计算机、服务器或数据中心通过有线(例如同轴电缆、光纤、数字用户线(Digital Subscriber Line,DSL))或无线(例如红外、无线、微波等)方式向另一个网站站点、计算机、服务器或数据中心进行传输。所述计算机可读存储介质可以是计算机能够存取的任何可用介质或者是包含一个或多个可用介质集成的服务器、数据中心等数据存储设备。所述可用介质可以是磁性介质(例如,软盘、硬盘、磁带)、光介质(例如,数字视频光盘(Digital Video Disc,DVD))、或者半导体介质(例如,固态硬盘(Solid State Disk,SSD))等。
以上所述的具体实施方式,对本申请实施例的目的、技术方案和有益效果进行了进一步详细说明,所应理解的是,以上所述仅为本申请实施例的具体实施方式而已,并不用于限定本申请实施例的保护范围,凡在本申请实施例的技术方案的基础之上,所做的任何修改、等同替换、改进等,均应包括在本申请实施例的保护范围之内。
Claims (24)
- 一种辅小区组配置方法,其特征在于,应用于终端,所述方法包括:测量第一节点的一个或多个小区,得到测量报告,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应关系;向网络设备发送所述测量报告,所述测量报告用于所述网络设备根据所述对应关系为所述终端配置辅小区组。
- 根据权利要求1所述的方法,其特征在于,所述测量第一节点的一个或多个小区之前,所述方法还包括:自主读取系统信息以获取所述第一节点的基站标识。
- 根据权利要求2所述的方法,其特征在于,所述终端支持双连接,且处于双连接状态;所述自主读取系统信息以获取所述第一节点的基站标识之前,所述方法还包括:接收来自所述网络设备的第一消息,所述第一消息用于通知更新主节点MN或者辅节点SN。
- 根据权利要求2所述的方法,其特征在于,所述终端支持双连接,且处于单连接状态;所述自主读取系统信息以获取所述第一节点的基站标识之前,所述方法还包括:接收来自所述网络设备的第二消息,所述第二消息用于通知建立辅节点SN。
- 根据权利要求2所述的方法,其特征在于,所述自主读取系统信息以获取所述第一节点的基站标识之前,所述方法还包括:建立无线资源控制RRC连接;通过所述RRC连接接收并预存来自所述网络设备的测量配置,所述测量配置用于指示所述终端进行小区测量时确定被检测节点的基站标识,并在满足预设条件时上报所述基站标识与对应的检测到的小区的对应关系;释放所述RRC连接,并切换至空闲态。
- 根据权利要求1所述的方法,其特征在于,所述测量第一节点的一个或多个小区之前,所述方法还包括:接收来自网络设备的测量配置,所述测量配置包括所述第一节点的基站标识。
- 根据权利要求6所述的方法,其特征在于,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的主节点MN和/或辅节点SN。
- 根据权利要求6所述的方法,其特征在于,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的除主节点MN和辅节点SN之外的节点;所述第一节点被确定为所述终端进行主节点更新后的主节点,或者,被确定为所述终端进行辅节点更新后的辅节点。
- 根据权利要求6所述的方法,其特征在于,所述终端支持双连接DC,且处于单连接状态,所述第一节点为除所述终端当前的主节点MN之外的节点,且所述第一节点被确定为所述终端的辅节点SN。
- 根据权利要求6所述的方法,其特征在于,所述终端支持双连接DC;所述接收来自网络设备的测量配置之后,所述测量第一节点的一个或多个小区之前,所述方法还包括:释放无线资源控制RRC连接;由连接态切换至空闲态。
- 一种辅小区组配置方法,其特征在于,应用于网络设备,所述方法包括:接收来自终端的测量报告,所述测量报告是所述终端测量第一节点的一个或多个小区而得到的,所述测量报告包括所述一个或多个小区与所述第一节点的基站标识之间的对应 关系;根据所述对应关系为所述终端配置辅小区组。
- 根据权利要求11所述的方法,其特征在于,所述基站标识是所述终端自主读取系统信息而获取到的。
- 根据权利要求12所述的方法,其特征在于,所述终端支持双连接,且处于双连接状态;所述接收来自终端的测量报告之前,所述方法还包括:向所述终端发送第一消息,所述第一消息用于通知更新主节点MN或者辅节点SN。
- 根据权利要求12所述的方法,其特征在于,所述终端支持双连接,且处于单连接状态;所述接收来自终端的测量报告之前,所述方法还包括:向所述终端发送第二消息,所述第二消息用于通知建立辅节点SN。
- 根据权利要求12所述的方法,其特征在于,所述接收来自终端的测量报告之前,所述方法还包括:与所述终端建立RRC连接;通过所述RRC连接向所述终端发送测量配置,所述测量配置用于指示所述终端进行小区测量时确定被检测节点的基站标识,并在满足预设条件时上报所述基站标识与对应的检测到的小区的对应关系。
- 根据权利要求11所述的方法,其特征在于,所述接收来自终端的测量报告之前,所述方法还包括:向所述终端发送测量配置,所述测量配置包括所述第一节点的基站标识。
- 根据权利要求16所述的方法,其特征在于,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的主节点MN和/或辅节点SN。
- 根据权利要求16所述的方法,其特征在于,所述终端支持双连接DC,且处于双连接状态,所述第一节点为所述终端的除主节点MN和辅节点SN之外的节点;所述第一节点被确定为所述终端进行主节点更新后的主节点,或者,被确定为所述终端进行辅节点更新后的辅节点。
- 根据权利要求16所述的方法,其特征在于,所述终端支持双连接DC,且处于单连接状态,所述第一节点为除所述终端当前的主节点MN之外的节点,且所述第一节点被确定为所述终端的辅节点SN。
- 根据权利要求16所述的方法,其特征在于,所述终端支持双连接DC;所述接收来自终端的测量报告之前,所述方法还包括:确定释放与所述终端的无线资源控制RRC连接。
- 一种终端,其特征在于,包括处理器、存储器、通信接口,以及一个或多个程序,所述一个或多个程序被存储在所述存储器中,并且被配置由所述处理器执行,所述程序包括用于执行如权利要求1-10任一项所述的方法中的步骤的指令。
- 一种网络设备,其特征在于,包括处理器、存储器、收发器,以及一个或多个程序,所述一个或多个程序被存储在所述存储器中,并且被配置由所述处理器执行,所述程序包括用于执行如权利要求11-20任一项所述的方法中的步骤的指令。
- 一种计算机可读存储介质,其特征在于,其存储用于电子数据交换的计算机程序,其中,所述计算机程序使得计算机执行如权利要求1-10任一项所述的方法。
- 一种计算机可读存储介质,其特征在于,其存储用于电子数据交换的计算机程序,其中,所述计算机程序使得计算机执行如权利要求11-20任一项所述的方法。
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