WO2018205387A1 - Procédé de configuration de cellule secondaire, station de base et dispositif terminal - Google Patents
Procédé de configuration de cellule secondaire, station de base et dispositif terminal Download PDFInfo
- Publication number
- WO2018205387A1 WO2018205387A1 PCT/CN2017/091173 CN2017091173W WO2018205387A1 WO 2018205387 A1 WO2018205387 A1 WO 2018205387A1 CN 2017091173 W CN2017091173 W CN 2017091173W WO 2018205387 A1 WO2018205387 A1 WO 2018205387A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- terminal device
- base station
- message
- measurement
- configuration information
- 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
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
Definitions
- the present application relates to the field of communications technologies, and in particular, to a secondary cell configuration method, a base station, and a terminal device.
- CA carrier aggregation
- CCs component carriers
- the terminal device can perform data transmission and reception operations through multiple cells at the same time.
- the plurality of cells include a primary cell (PCell) and a secondary cell (SCell). That is to say, the terminal device can perform data transmission and reception through the primary cell and the secondary cell at the same time, thereby improving data transmission and reception efficiency.
- the PCell is determined when the terminal device establishes an initial Radio Resource Control (RRC) connection with the base station
- RRC Radio Resource Control
- the SCell is the RRC connection reconfiguration message by the base station corresponding to the PCell after the initial security activation process.
- RRC Connection Reconfiguration is configured for the terminal device.
- the process of configuring the SCell may be as shown in FIG. 1.
- the base station of the primary cell After the terminal device enters the connected state, the base station of the primary cell sends measurement configuration information to the terminal device by using an RRC connection reconfiguration message, where the measurement configuration information includes multiple carrier frequencies.
- the terminal device reports the candidate cells corresponding to the measurement signals with better channel quality to the base station.
- the base station configures at least one candidate cell in the candidate cell reported by the terminal device as the SCell of the terminal device.
- the embodiment of the present application provides a secondary cell configuration method, a base station, and a terminal device, which are used to improve the utilization of the SCell.
- an embodiment of the present application provides a secondary cell configuration method, where the method includes the following steps:
- the first base station sends a first message to the terminal device, where the first message is used to indicate that the terminal device is switched from the RRC connected state to the idle state or the INACTIVE state, where the first message carries measurement configuration information, and the measurement configuration information includes multiple carrier frequencies.
- the measurement configuration information is used to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies, and the first base station is a base station corresponding to the primary cell of the terminal device.
- the first base station receives the second message that is sent by the terminal device after being converted from the idle state or the INACTIVE state to the RRC connected state, where the second message carries the measurement report, and the measurement report includes the terminal device pair.
- the indication information of the N candidate cells after the channel quality measurement is performed on the multiple carrier frequencies, N ⁇ 1.
- the first base station sends a third message to the terminal device according to the measurement report, where the third message includes the secondary cell configuration information of the terminal device.
- the first message is sent to the terminal device by the first base station, indicating that the terminal device is switched from the RRC connected state to the idle state or the INACTIVE state, and the measurement configuration information in the first message is passed.
- the base station can quickly configure the secondary cell for the terminal device.
- the first base station can receive the measurement report sent by the terminal device, and the first base station can send the third message in a shorter time to configure the secondary cell for the terminal device.
- the terminal device After the terminal device enters the RRC connection state again, it is not necessary to take a long time to perform channel quality measurement, so that the first base station can be configured for the terminal device.
- the process of the secondary cell Therefore, compared with the prior art, by using the foregoing method, the terminal device can complete the secondary cell configuration in a short time after re-entering the RRC connected state, thereby improving the utilization rate of the secondary cell.
- the multiple carrier frequencies include a carrier frequency under the first base station and/or a carrier frequency under the second base station, the second base station is a base station adjacent to the first base station;
- the method further includes: receiving, by the first base station, a fourth message sent by the second base station or the core network, where the fourth message is used to indicate a carrier frequency under the second base station.
- the first base station can acquire the carrier frequency under the second base station. If the terminal device moves faster in the idle state or the INACTIVE state, and the terminal device enters the coverage of the second base station after entering the RRC connected state, the terminal device has performed the carrier frequency under the second base station by using the foregoing method.
- Channel quality measurement after the terminal device enters the coverage of the second base station, the second base station may also configure the secondary cell for the terminal device based on the channel quality measurement result of the terminal device.
- the N candidate cells are candidate cells under the first base station and/or candidate cells under the second base station.
- the terminal device can select which candidate cells are reported according to different scenarios and different indications of the first base station.
- the method before the first base station sends the first message to the terminal device, the method further includes: the first base station receiving the first indication message sent by the terminal device, where the first indication message is used to indicate that the terminal device is in the idle state Or the ability of the INACTIVE state to perform channel quality measurements.
- the first base station can know in advance whether the terminal device has the capability of performing channel quality measurement in the idle state or the INACTIVE state, thereby helping the first base station to determine whether it is necessary to send the first message to the terminal device, and avoiding the first base station to the terminal device.
- the first message is sent and the terminal device does not have the signaling overhead caused by performing channel quality measurement capability in the idle state or the INACTIVE state.
- the method before the first base station sends the first message to the terminal device, the method further includes: receiving, by the first base station, a second indication message sent by the core network, where the second indication message is used to indicate a service mode of the terminal device / or packet interval.
- the first base station may determine, according to the service model and/or the data packet interval of the terminal device, a time for the terminal device to start channel quality measurement on multiple carrier frequencies, and The measurement time is transmitted to the terminal device in the first message as part of the measurement configuration information, thereby enabling the terminal device to acquire the time at which the channel quality measurement is started.
- the method further includes: receiving, by the first base station, the fifth message sent by the terminal device, The fifth message is used to indicate that the measurement report has been generated; the first base station sends a sixth message to the terminal device, where the sixth message is used to instruct the terminal device to report the measurement report.
- the terminal device can report the measurement report based on the indication of the first base station.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells.
- the first base station may indicate, according to its own requirements, which carrier frequencies (for example, a carrier frequency with a lower load, a carrier frequency under the first base station, and the like) reported by the terminal device.
- the measurement configuration information also includes one or more of the following information:
- a trigger threshold for indicating a threshold of channel quality of the N candidate cells
- the measurement time is used to indicate the start time of the channel quality measurement by the terminal device for multiple carrier frequencies.
- the embodiment of the present application provides a secondary cell configuration method, where the method includes the following steps:
- the terminal device receives the first message sent by the first base station, where the first message is used to indicate that the terminal device is switched from the RRC connected state to the idle state or the INACTIVE state, where the first message carries measurement configuration information, and the measurement configuration information includes multiple carrier frequencies.
- the measurement configuration information is used to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies, where the first base station is a base station corresponding to the primary cell of the terminal device, and the terminal device is converted from the RRC connected state to the idle state or the INACTIVE state according to the first message.
- the terminal device sends the second message to the first base station when converting from the idle state or the INACTIVE state to the RRC connected state, and second The message carries a measurement report, and the measurement report includes indication information of the N candidate cells, where N ⁇ 1; the terminal device receives the third message sent by the first base station, and the third message includes the secondary cell configuration information of the terminal device.
- the first message is sent to the terminal device by the first base station, indicating that the terminal device is switched from the RRC connected state to the idle state or the INACTIVE state, and the measurement configuration information in the first message is passed.
- the base station can quickly configure the secondary cell for the terminal device.
- the first base station can receive the measurement report sent by the terminal device, and the first base station can send the third message in a shorter time to configure the secondary cell for the terminal device.
- the terminal device After the terminal device enters the RRC connection state again, it is not necessary to take a long time to perform channel quality measurement, so that the first base station can be configured for the terminal device.
- the process of the secondary cell Therefore, compared with the prior art, by using the foregoing method, the terminal device can complete the secondary cell configuration in a short time after re-entering the RRC connected state, thereby improving the utilization rate of the secondary cell.
- the multiple carrier frequencies include a carrier frequency under the first base station and/or a carrier frequency under the second base station, and the second base station is a base station adjacent to the first base station.
- the first base station can acquire the carrier frequency under the second base station. If the terminal device moves faster in the idle state or the INACTIVE state, and the terminal device enters the coverage of the second base station after entering the RRC connected state, the terminal device has performed the carrier frequency under the second base station by using the foregoing method.
- Channel quality measurement after the terminal device enters the coverage of the second base station, the second base station may also configure the secondary cell for the terminal device based on the channel quality measurement result of the terminal device.
- the N candidate cells are candidate cells under the first base station and/or candidate cells under the second base station.
- the terminal device can select which candidate cells are reported according to different scenarios and different indications of the first base station.
- the method before the receiving, by the terminal device, the first message sent by the first base station, the method further includes: a first indication message sent by the terminal device to the first base station, where the first indication message is used to indicate that the terminal device is in the idle state.
- State or INACTIVE state The ability to measure channel quality.
- the first base station can know in advance whether the terminal device has the capability of performing channel quality measurement in the idle state or the INACTIVE state, thereby helping the first base station to determine whether it is necessary to send the first message to the terminal device, and avoiding the first base station to the terminal device.
- the first message is sent and the terminal device does not have the signaling overhead caused by performing channel quality measurement capability in the idle state or the INACTIVE state.
- the method before the terminal device sends the second message to the first base station, the method further includes: the terminal device sends a fifth message to the first base station, where the fifth message is used to indicate that the measurement report has been generated; The sixth message sent by the base station is used to instruct the terminal device to report the measurement report.
- the terminal device can report the measurement report based on the indication of the first base station.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells.
- the first base station may indicate, according to its own requirements, which carrier frequencies (for example, a carrier frequency with a lower load, a carrier frequency under the first base station, and the like) reported by the terminal device.
- carrier frequencies for example, a carrier frequency with a lower load, a carrier frequency under the first base station, and the like
- the measurement configuration information further includes one or more of the following information: a filtering threshold, which is used to indicate a threshold of a channel quality of a candidate cell reported by the physical layer of the terminal device to the RRC layer of the terminal device;
- the trigger threshold is used to indicate a threshold of channel quality of the N candidate cells, and the measurement time is used to indicate a start time of the channel quality measurement by the terminal device for multiple carrier frequencies.
- the embodiment of the present application provides a method for configuring a secondary cell, where the method includes the following steps: a first base station corresponding to a primary cell sends a first message to a terminal device that is in an idle state or an INACTIVE state after accessing the primary cell, where A message carries measurement configuration information, where the measurement configuration information includes multiple carrier frequencies, and the measurement configuration information is used to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies.
- the first base station receives a second message that is reported by the terminal device after being converted from the idle state or the INACTIVE state to the RRC connected state, where the second message carries the measurement report, where the measurement report includes the channel device that performs channel quality measurement on the plurality of carrier frequencies.
- the indication information of the N candidate cells N ⁇ 1.
- the first base station sends a third message to the terminal device according to the measurement report, where the third message includes the secondary cell configuration information of the terminal device.
- the first message is sent to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies according to the measurement configuration information in the first message, and After the terminal device enters the RRC connection state, the measurement report is reported to the first base station, so that the first base station can quickly configure the secondary cell for the terminal device. Since the first base station can receive the measurement report sent by the terminal device after the terminal device enters the RRC connected state, the first base station can configure the secondary cell for the terminal device in a shorter time.
- the terminal device can complete the secondary cell configuration in a short time after entering the RRC connected state, thereby improving the utilization rate of the secondary cell.
- the multiple carrier frequencies include a carrier frequency under the first base station and/or a carrier frequency under the second base station, and the second base station is a base station adjacent to the first base station;
- the method further includes: receiving, by the first base station, a fourth message sent by the second base station or the core network, where the fourth message is used to indicate the second message Carrier frequency under the base station.
- the first base station can acquire the carrier frequency under the second base station. If the terminal device moves faster in the idle state or the INACTIVE state, and the terminal device enters the coverage of the second base station after entering the RRC connected state, the terminal device has performed the carrier frequency under the second base station by using the foregoing method.
- Channel quality measurement after the terminal device enters the coverage of the second base station, the second base station may also configure the secondary cell for the terminal device based on the channel quality measurement result of the terminal device.
- the N candidate cells are candidate cells under the first base station and/or candidate cells under the second base station.
- the terminal device can select which candidate cells are reported according to different scenarios and different indications of the first base station.
- the method before the first base station receives the second message that is reported after the terminal device is switched from the idle state or the INACTIVE state to the RRC connected state, the method further includes: receiving, by the first base station, the fifth message sent by the terminal device, where The fifth message is used to indicate that the measurement report has been generated.
- the first base station sends a sixth message to the terminal device, where the sixth message is used to instruct the terminal device to report the measurement report.
- the terminal device can report the measurement report based on the indication of the first base station.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells.
- the first base station may indicate, according to its own requirements, which carrier frequencies (for example, a carrier frequency with a lower load, a carrier frequency under the first base station, and the like) reported by the terminal device.
- carrier frequencies for example, a carrier frequency with a lower load, a carrier frequency under the first base station, and the like
- the measurement configuration information further includes one or more of the following information: a filtering threshold, which is used to indicate a threshold of a channel quality of a candidate cell reported by the physical layer of the terminal device to the RRC layer of the terminal device; A trigger threshold for indicating a threshold of channel quality of the N candidate cells.
- the embodiment of the present application provides a method for configuring a secondary cell, where the method includes the following steps: a terminal device that is in an idle state or an INACTIVE state after accessing a primary cell receives a first message sent by a first base station corresponding to a primary cell,
- the first message carries measurement configuration information, where the measurement configuration information includes multiple carrier frequencies, and the measurement configuration information is used to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies.
- the terminal device performs channel quality measurement on multiple carrier frequencies according to the measurement configuration information to filter out N candidate cells.
- the second device sends a second message to the first base station when the state is switched from the idle state or the INACTIVE state to the RRC connected state.
- the second message carries a measurement report, where the measurement report includes indication information of the N candidate cells, where N ⁇ 1.
- the terminal device receives the third message sent by the first base station, where the third message includes the secondary cell configuration information of the terminal device.
- the first message is sent to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies according to the measurement configuration information in the first message, and After the terminal device enters the RRC connection state, the measurement report is reported to the first base station, so that the first base station can quickly configure the secondary cell for the terminal device. Since the first base station can receive the measurement report sent by the terminal device after the terminal device enters the RRC connected state, the first base station can configure the secondary cell for the terminal device in a shorter time.
- the terminal device can complete the secondary cell configuration in a short time after entering the RRC connected state, thereby improving the utilization rate of the secondary cell.
- the multiple carrier frequencies include a carrier frequency under the first base station and/or a carrier frequency under the second base station, and the second base station is a base station adjacent to the first base station.
- the terminal device moves faster in the idle state or the INACTIVE state, and the terminal device enters the coverage of the second base station after entering the RRC connected state, then, by using the above method, the terminal device has already been under the second base station.
- the carrier frequency is measured by the channel quality.
- the second base station may also configure the secondary cell for the terminal device based on the channel quality measurement result of the terminal device.
- the N candidate cells are candidate cells under the first base station and/or candidate cells under the second base station.
- the terminal device can select which candidate cells are reported according to different scenarios and different indications of the first base station.
- the method before the terminal device sends the second message to the first base station, the method further includes: the terminal device sends a fifth message to the first base station, where the fifth message is used to indicate that the measurement report has been generated; The sixth message sent by the base station is used to instruct the terminal device to report the measurement report.
- the terminal device can report the measurement report based on the indication of the first base station.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells.
- the first base station may indicate, according to its own requirements, which carrier frequencies (for example, a carrier frequency with a lower load, a carrier frequency under the first base station, and the like) reported by the terminal device.
- carrier frequencies for example, a carrier frequency with a lower load, a carrier frequency under the first base station, and the like
- the method before the terminal device performs channel quality measurement on the multiple carrier frequencies according to the measurement configuration information, the method further includes: the terminal device determines that it has the capability of performing channel quality measurement in the idle state or the INACTIVE state.
- the terminal device can determine whether it is necessary to perform channel quality measurement according to its own capabilities.
- the measurement configuration information further includes one or more of the following information: a filtering threshold, which is used to indicate a threshold of a channel quality of a candidate cell reported by the physical layer of the terminal device to the RRC layer of the terminal device; A trigger threshold for indicating a threshold of channel quality of the N candidate cells.
- the embodiment of the present application further provides a first base station, where the first base station has a function of implementing the behavior of the first base station in the secondary cell configuration method provided by the foregoing first aspect and/or the third aspect.
- 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 structure of the first base station includes a sending unit and a receiving unit, and the units may perform the functions of the corresponding behavior in the secondary cell configuration method provided by the first aspect and/or the third aspect.
- the detailed description in the first aspect and/or the secondary cell configuration method provided by the third aspect is not described herein.
- the structure of the first base station includes a transmitter, a receiver, a processor, and a memory, where the transmitter and the receiver are used for communication interaction with a terminal device, and the processor is configured to The first base station is supported to perform the corresponding function in the secondary cell configuration method provided by the above first aspect and/or the third aspect.
- the memory is coupled to the processor, which stores program instructions and data necessary for the first base station.
- the embodiment of the present application further provides a terminal device, where the terminal device has the function of implementing the behavior of the terminal device in the example of the secondary cell configuration method provided by the foregoing second aspect and/or the fourth aspect.
- the function can be through hardware Implementation, you can also implement the corresponding software implementation through hardware.
- the hardware or software includes one or more modules corresponding to the functions described above.
- the structure of the terminal device includes a sending unit, a receiving unit, and a processing unit, and the units may perform corresponding functions in the secondary cell configuration method example provided by the foregoing second aspect and/or the fourth aspect.
- the units may perform corresponding functions in the secondary cell configuration method example provided by the foregoing second aspect and/or the fourth aspect.
- the secondary cell configuration method provided by the second aspect and/or the fourth aspect, and details are not described herein.
- the structure of the terminal device includes a transmitter, a receiver, a processor, and a memory, where the transmitter and the receiver are used for communication interaction with the first base station, and the processor is configured to
- the supporting terminal device performs the corresponding function in the secondary cell configuration method provided by the above second aspect and/or the fourth aspect.
- the memory is coupled to the processor, which stores program instructions and data necessary for the terminal device.
- the embodiment of the present application further provides a communication system, where the communication system includes the first base station provided by the foregoing fifth aspect and the terminal device provided by the foregoing sixth aspect.
- the embodiment of the present application provides a computer program product, where the computer program product includes a computer program stored on the first non-transitory computer storage medium, where the computer program includes program instructions, when When the program instructions are executed by the computer, causing the computer to perform the method provided by any one of the first aspect or the first aspect, or to perform the method provided by any one of the second aspect or the second aspect, or to perform The method provided by the third aspect or any one of the above third aspects, or the method provided by the fourth aspect or any one of the above fourth aspects.
- the embodiment of the present application provides a computer storage medium, where the computer storage medium stores computer executable instructions, when the computer executable instructions are invoked by a computer, causing the computer to perform the first aspect or the foregoing
- FIG. 1 is a schematic flowchart of a secondary cell configuration method provided by the prior art
- FIG. 2 is a schematic diagram of an application scenario of a primary cell and a secondary cell SCell according to an embodiment of the present disclosure
- FIG. 3 is a schematic structural diagram of a communication system according to an embodiment of the present application.
- FIG. 4 is a schematic flowchart of a method for configuring a first secondary cell according to an embodiment of the present application
- FIG. 5 is a schematic flowchart of a method for exchanging carrier frequencies according to an embodiment of the present disclosure
- FIG. 6 is a schematic flowchart of another method for exchanging carrier frequencies according to an embodiment of the present disclosure.
- FIG. 7 is a schematic flowchart diagram of a second secondary cell configuration method according to an embodiment of the present disclosure.
- FIG. 8 is a schematic flowchart of a method for configuring a third secondary cell according to an embodiment of the present application.
- FIG. 9 is a schematic flowchart diagram of a method for configuring a fourth secondary cell according to an embodiment of the present disclosure.
- FIG. 10 is a schematic structural diagram of a first first base station according to an embodiment of the present application.
- FIG. 11 is a schematic structural diagram of a second first base station according to an embodiment of the present application.
- FIG. 12 is a schematic structural diagram of a first terminal device according to an embodiment of the present application.
- FIG. 13 is a schematic structural diagram of a second terminal device according to an embodiment of the present disclosure.
- FIG. 14 is a schematic structural diagram of a third first base station according to an embodiment of the present application.
- FIG. 15 is a schematic structural diagram of a fourth first base station according to an embodiment of the present application.
- FIG. 16 is a schematic structural diagram of a third terminal device according to an embodiment of the present application.
- FIG. 17 is a schematic structural diagram of a fourth terminal device according to an embodiment of the present disclosure.
- CA carrier aggregation
- the PCell may be a cell established when the terminal device performs initial radio resource control (RRC) connection, or may be a cell established when performing RRC connection reestablishment, or may be specified during cell handover.
- the PCell is responsible for RRC communication between the terminal device and the base station.
- the SCell is a cell added during RRC reconfiguration to provide additional radio resources. There is no RRC communication between the SCell and the terminal device.
- An application scenario of the PCell and the SCell may be as shown in FIG. 2: the macro cell PCell is used as a mobility anchor of the terminal device to reduce the handover operation of the terminal device, and the small cell (small cell) is densely deployed as a SCell in different The frequency is used to increase the data rate of the terminal device.
- the use of the CA is often limited by the delay generated by the SCell configuration.
- the large configuration delay of the SCell affects the utilization of the SCell. For example, if the terminal device cannot obtain the Scell configuration for a long time after entering the connected state, when the terminal device needs to send data, the data can only be sent through the PCell, which will undoubtedly reduce the usage rate of the SCell, and it is difficult to reach the PCell.
- User plane load balancing with SCell is often limited by the delay generated by the SCell configuration.
- the embodiment of the present application provides a secondary cell configuration method, a base station, and a terminal device, which are used to improve the utilization of the SCell.
- the method and the device are based on the same inventive concept. Since the principles of the method and the device for solving the problem are similar, the implementation of the device and the method can be referred to each other, and the repeated description is not repeated.
- the base station in the embodiment of the present application may be a global system for mobile communications (GSM) or a base transceiver station (BTS) in code division multiple access (CDMA). It may be a network device (NodeB) in wide-band code division multiple access (WCDMA), or an evolved network device (evolutional node) in a long term evolution (LTE) system. B, eNB or e-NodeB), 5G base station in the 5G network architecture (next generation system), may also be home evolved node B (HeNB), relay node (relay node), home base station (femto), The type of the access network device is not specifically limited in the embodiment of the present application.
- the terminal device in the embodiment of the present application may be a device that provides voice and/or data connectivity to a user, a handheld device corresponding to a wireless connection function, or other processing device connected to a wireless modem.
- the terminal device can communicate with one or more core networks via a radio access network (RAN), and the terminal device can be Mobile terminals, such as mobile telephones (or "cellular" telephones) and computers corresponding to mobile terminals, for example, can be portable, pocket-sized, handheld, computer-integrated or in-vehicle mobile devices that exchange with a wireless access network Language and / or data.
- RAN radio access network
- a terminal device may also be referred to as a system, a subscriber unit, a subscriber station, a mobile station, a mobile station, a remote station, an access point, The remote terminal, the access terminal, the user terminal, the user agent, or the user equipment are not limited in the embodiment of the present application.
- the core network in the embodiment of the present application may be a core network (CN) in LTE, or may be a 5G core network.
- CN core network
- 5G core network 5G core network
- a communication system provided by an embodiment of the present application includes a terminal device, a base station, and a core network.
- the terminal device can access the core network through the base station.
- a plurality refers to two or more.
- the terms "first”, “second” and the like are used for the purpose of distinguishing the description, and are not to be construed as indicating or implying a relative importance, nor as an indication or suggestion.
- a method for configuring a secondary cell includes the following steps:
- the first base station sends a first message to the terminal device.
- the first message is used to indicate that the terminal device is switched from the RRC connected state to the idle state or the INACTIVE state, and the first message carries the measurement configuration information, where the measurement configuration information includes multiple carrier frequencies, and the measurement configuration information is used to indicate The terminal device performs channel quality measurement on multiple carrier frequencies to filter out N candidate cells.
- the first base station is a base station corresponding to the primary cell of the terminal device, and N ⁇ 1.
- the terminal device may perform channel quality measurement on multiple carrier frequencies after being converted to an idle state or an INACTIVE state.
- the purpose of the channel quality measurement by the terminal device in the idle state or the INACTIVE state is to filter out N candidate cells with better channel quality in the idle state or the INACTIVE state, so that the terminal device enters the RRC connection again.
- the first base station can configure the secondary cell for the terminal device faster according to the measurement result of the channel quality.
- the first message may be an RRC connection reconfiguration message or an RRC connection release message.
- the measurement configuration information further includes one or more of the following information:
- a trigger threshold for indicating a threshold of channel quality of the N candidate cells
- the measurement time is used to indicate the start time of the channel quality measurement by the terminal device for multiple carrier frequencies.
- the measurement time may be relative time, for example, how long after the terminal device receives the measurement configuration information or application data is to be sent. How long before the channel quality measurement is started; the measurement time can also be an absolute time, such as a global positioning system (GPS) time or a system frame number (SFN) information.
- GPS global positioning system
- SFN system frame number
- the terminal device may independently select the measurement time after receiving the first message.
- the multiple carrier frequencies may be the carrier frequency under the first base station, or may be the carrier frequency under the second base station adjacent to the first base station, or the carrier frequency and the second base station under the first base station.
- the carrier frequency under the base station (second base station) is subjected to channel quality measurement, and after the terminal device enters the coverage of the base station (second base station), the base station (second base station) may also be based on channel quality measurement of the terminal device.
- the terminal device is configured with a secondary cell. That is, the first base station may determine, according to the moving speed of the terminal device, whether the plurality of carrier frequencies in the measurement configuration information include the carrier frequency under the second base station.
- the second base station refers to the neighboring base station of the first base station, and the number of the second base station may be one or more, and the number of the second base station is not in the embodiment of the present application. Make restrictions.
- the first base station first needs to acquire the carrier frequency under the second base station.
- the manner in which the first base station acquires the carrier frequency under the second base station includes but is not limited to the following three types:
- the first type the first base station receives a fourth message sent by the second base station, where the fourth message is used to indicate a carrier frequency under the second base station.
- eNB1 is a specific example of the first base station
- eNB2 is a specific example of the second base station.
- the eNB1 may directly transmit the carrier frequency under the eNB1 to the eNB2, and the eNB2 may directly transmit the carrier frequency under the eNB2 to the eNB1.
- the first base station can acquire the carrier frequency under the second base station
- the second base station can also acquire the carrier frequency under the first base station.
- the second type the first base station receives the fourth message sent by the core network, where the fourth message is used to indicate the carrier frequency under the second base station.
- eNB1 is a specific example of the first base station
- eNB2 is a specific example of the second base station
- MME is a specific example of the core network.
- the eNB1 may transmit the carrier frequency under eNB1 to the eNB2 through the MME
- the eNB2 may also transmit the carrier frequency under the eNB2 to the eNB1 through the MME.
- the first base station can acquire the carrier frequency under the second base station
- the second base station can also acquire the carrier frequency under the first base station.
- the third type multiplexing neighboring cell information exchange process
- the base stations of adjacent cells exchange their respective carrier frequencies.
- the first base station may multiplex the neighboring cell information exchange process to acquire the carrier frequency under the second base station.
- the carrier frequency of the second base station acquired by the first base station may be all carrier frequencies under the second base station, or may be all carriers under the second base station. Part of the carrier frequency used for channel quality measurement in the frequency. If the third mode is adopted, the carrier frequency of the second base station acquired by the first base station may be all carrier frequencies under the second base station.
- the measurement configuration information includes multiple carrier frequencies.
- the multiple carrier frequencies may be the carrier frequency under the first base station and/or the carrier frequency under the second base station.
- the primary cell to which the first base station belongs may include multiple candidate cells, and the multiple candidate cells may be used to configure the terminal device in the primary cell as the secondary cell of the terminal device, and multiple candidate cells.
- the carrier frequencies are generally different. However, there are cases where multiple candidate cells use the same carrier frequency. For example, both candidate cell 1 and candidate cell 2 communicate with the terminal device at carrier frequency f1. Therefore, in the embodiment of the present application, the carrier frequency and the candidate cell do not necessarily have a one-to-one correspondence.
- the terminal device converts the RRC connected state to the idle state or the INACTIVE state according to the first message, and performs channel quality measurement on the multiple carrier frequencies according to the measurement configuration information, so as to filter out N candidate cells, so that the terminal device enters the RRC again.
- the secondary cell of the terminal device is quickly configured, N ⁇ 1.
- performing channel quality measurement on multiple carrier frequencies means that the terminal device measures channel quality of measurement signals (such as downlink synchronization signals or cell reference signals) at multiple carrier frequencies, and selects N channel quality comparisons therefrom.
- the first base station selects a secondary cell configuration from the N candidate cells that are in one-to-one correspondence with the N measurement signals to the terminal device.
- the downlink synchronization signal of the candidate cell is obtained by the terminal device when measuring each measurement signal, and the downlink synchronization signal of the candidate cell implicitly indicates the corresponding candidate cell information, for example, by a primary synchronization signal (PSS).
- PSS primary synchronization signal
- the secondary cell synchronization signal is used to calculate the physical cell identifier (PCI), so that the terminal device can obtain the PCI of the candidate cell corresponding to the measurement signal after receiving a measurement signal, thereby After the channel quality measurement is performed on the measurement signals of the multiple carrier frequencies, the terminal device may filter out which N candidate cells are selected according to the PCI judgment, and report the selected N candidate cells to the first base station.
- PCI physical cell identifier
- the terminal device sends the second message to the first base station when converting from the idle state or the INACTIVE state to the RRC connected state.
- the second message carries a measurement report, where the measurement report includes indication information of N candidate cells that are filtered by the terminal device.
- the second message may be an RRC connection setup complete message or an RRC connection request message, or may be another uplink RRC message, which is not limited herein.
- the N candidate cells reported by the terminal device may be candidate cells under the first base station and/or candidate cells under the second base station. That is to say, the terminal device can select which candidate cells are reported according to different scenarios and different indications of the first base station.
- the carrier frequency corresponding to the N candidate cells reported by the terminal device belongs to Within the range of some of the above carrier frequencies.
- the first base station instructs the terminal device to report only the measurement results of the carrier frequencies f1, f2, and f3, and the terminal device only reports the indication information of the N candidate cells whose carrier frequencies are f1, f2, and f3, where N ⁇ 3.
- the terminal device may report only the measurement result of the carrier frequency under the base station corresponding to the current serving cell. For example, if the terminal device still resides in the primary cell corresponding to the first base station when reporting the measurement report, the terminal device may only report the measurement result of the carrier frequency under the first base station, that is, the N candidate cells are the first base station. If the terminal device performs cell reselection (ie, handover from the first base station to the second base station) after receiving the first message and reporting the measurement report, the terminal device may report only the second base station. The measurement result of the carrier frequency, that is, the N candidate cells are candidate cells under the second base station.
- the terminal device When the measurement result is reported, it can be reported to the base station after the handover. For example, after the terminal device switches from the first base station to the second base station, the measurement result can be reported to the second base station.
- the indication information of the N candidate cells may include at least one of the following: a carrier frequency of the N candidate cells, a PCI of the N candidate cells, and a channel quality of the N candidate cells.
- the first base station sends a third message to the terminal device according to the measurement report.
- the third message includes the secondary cell configuration information of the terminal device.
- the terminal device can obtain the indication information of the secondary cell configured by the first base station by using the secondary cell configuration information, for example, the PCI of the secondary cell configured by the first base station.
- the third message may be an RRC connection reconfiguration message, or may be another downlink RRC message, which is not limited herein.
- the first indication message sent by the terminal device to the first base station, where the first indication message is used to indicate that the terminal device is configured to perform channel quality measurement in an idle state or an INACTIVE state.
- the first indication message includes, but is not limited to, RRC UE capability information or UE mobility report.
- the terminal device may send a first indication message to the first base station, so that the first base station learns the The terminal device has the capability to perform channel quality measurements (for subsequent secondary cell fast configuration) in the idle state or the INACTIVE state.
- the first base station may send the first message to the terminal device in S401, thereby Instructing the terminal device to perform channel quality measurement on multiple carrier frequencies in an idle state or an INACTIVE state; when the first base station learns that the terminal device does not have the channel quality measurement in the idle state or the INACTIVE state (for subsequent secondary cell fast configuration) After the capability, the first base station does not have to send the first message to the terminal device.
- the first base station may receive a second indication message sent by the core network, where the second indication message is used to indicate a service mode and/or a data packet interval of the terminal device.
- the second indication message may be an initial context setup request message.
- the first base station may determine, according to the service model and/or the data packet interval of the terminal device, the measurement time of the channel quality measurement performed by the terminal device on multiple carrier frequencies, thereby The measurement time is transmitted to the terminal device in S401 as part of the measurement configuration information. For example, if the service mode of the terminal device indicates that the terminal device service is frequent, the measurement time may be set earlier, so that the terminal device can complete the measurement of multiple carrier frequencies in time, and facilitate the first base station to enter the RRC in the terminal device.
- the secondary device After the connection state, the secondary device is configured as soon as possible to support the terminal device to support the frequent service of the terminal device; if the data packet interval of the terminal device is large, the measurement time can be set later. For a terminal device with a large interval of the data packet, the time interval between the time when the first message is received and the time when the next message enters the RRC connected state may be relatively large, and thus the terminal device does not have to perform the channel quality measurement operation prematurely.
- the terminal device may report the measurement report to the first base station after completing the channel quality measurement and re-entering the RRC connected state, or may send the measurement report to the first base station when the first base station requests the terminal device to send the measurement report.
- Send a measurement report In the implementation manner in which the terminal device performs reporting based on the request of the first base station, it takes a certain time for the terminal device to perform channel quality measurement, and the first base station cannot know when the terminal device has completed channel quality measurement. Therefore, before the first base station receives the second message reported by the terminal device, the terminal device may send a fifth message to the first base station, where the fifth message is used to indicate that the measurement report has been generated; and then, the first base station sends the second message to the terminal device. The sixth message is used to instruct the terminal device to report the measurement report.
- the fifth message may be a random access message 1 (ie, a preamble), and the sixth message may be a random access response (RAR) or an RRC connection setup message.
- RAR random access response
- a random access preamble or a random access resource may be used to implicitly indicate that the terminal device has generated a measurement report. Therefore, it is necessary to pre-allocate one or a specific set of preambles, or one or a specific set of randoms. Access resources are allocated, for example, by RRC signaling.
- the terminal device transmits this (or in the group) preamble, or when the terminal device occupies this (or this group) of random access resources, it indicates that the terminal device has generated a measurement report.
- the first base station may instruct the terminal device to report the measurement report by sending a random access response message (RAR) or an RRC connection setup message to the terminal device.
- RAR random access response message
- the fifth message may be an RRC connection request message or an RRC connection resume request message
- the corresponding sixth message may be an RRC connection setup message or an RRC connection.
- RRC connection resume For example, the terminal device carries the 1-bit indication information in the RRC connection request message or the RRC connection resume request message to indicate that the terminal device has generated the measurement report. Then, after receiving the RRC connection request message or the RRC connection resume request message, the first base station may send an RRC connection setup message or an RRC connection setup message to the terminal device. The RRC connection resume is used to instruct the terminal device to report the measurement report.
- the fifth message may be an RRC connection setup complete message or an RRC connection resume complete message.
- the terminal device carries the 1-bit indication information in the RRC connection setup complete message or the RRC connection resume complete message to indicate that the terminal device has generated the measurement report. Then, after receiving the RRC connection setup complete message or the RRC connection resume complete message, the first base station may instruct the terminal device to report the measurement report by sending a downlink RRC message to the terminal device.
- the first base station can know when the terminal device has generated the measurement report, so that the first base station can report the measurement report in time after the first base station sends the sixth message to the terminal device to request the terminal device to report the measurement report. Give the first base station.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells. That is, the first base station may indicate, based on its own needs, which carrier frequencies (eg, carrier frequencies with lower load, carrier frequencies under the first base station, etc.) are reported by the terminal device.
- carrier frequencies eg, carrier frequencies with lower load, carrier frequencies under the first base station, etc.
- the first base station when the terminal device is in the RRC connected state, the first base station sends a first message to the terminal device to indicate that the terminal device changes from the RRC connected state to the idle state or the INACTIVE state. Simultaneously indicating, by using the measurement configuration information in the first message, the terminal device according to the measurement configuration information.
- the indication is to perform channel quality measurement on multiple carrier frequencies in the idle state or the INACTIVE state, and report the measurement report to the first base station after the terminal device enters the RRC connected state again, so that the first base station can be quickly configured for the terminal device.
- the first base station can receive the measurement report sent by the terminal device, and the first base station can send the third message in a shorter time to configure the secondary cell for the terminal device.
- the terminal device After the terminal device enters the RRC connection state again, it is not necessary to take a long time to perform channel quality measurement, so that the first base station can be configured for the terminal device.
- the process of the secondary cell Therefore, compared with the prior art, by using the secondary cell configuration method provided in the first embodiment, the terminal device can complete the secondary cell configuration in a short time after re-entering the RRC connected state, thereby improving the utilization rate of the secondary cell.
- the present application further provides a secondary cell configuration method, which may be regarded as a specific example of the method shown in FIG. 4.
- the method includes the following process:
- the UE mobility report is reported to the eNB.
- the UE is a specific example of the terminal device in the method shown in FIG. 4; the eNB is a specific example of the first base station in the method shown in FIG. 4.
- the UE may include this indication in the reported UE capability information (UE capability).
- the core network may indicate related information such as the service mode/packet interval of the UE through the S1 interface.
- related information such as a service mode/packet interval of the UE may be delivered through an initial context setup request.
- the initial context setup request message is a specific example of the second indication message in the method shown in FIG. 4 .
- the eNB may determine whether to configure the UE to perform channel quality measurement in the IDLE state or the INACTIVE state according to the mobility of the UE, the UE capability, and the service mode/packet interval of the UE.
- the eNB may request the carrier frequency used for channel quality measurement under eNB2 from the neighboring eNB2 according to the moving speed of the UE.
- eNB2 is a specific example of the second base station in the method shown in FIG.
- the eNB2 transmits the carrier frequency used for channel quality measurement under the eNB2 to the eNB.
- the eNB may send an RRC connection release message to enter the IDLE state, or the eNB may send an RRC connection reconfiguration message/RRC connection release message to let the UE enter the INACTIVE state.
- the measurement configuration information is carried in the above message.
- the UE enters an IDLE state or an INACTIVE state, and performs channel quality measurement on multiple carrier frequencies according to measurement configuration information sent by the eNB.
- the UE When the UE enters the RRC connected state again, it indicates that the measurement report has been generated by sending a random access message 1 to the eNB.
- Random access message 1 is a specific example of the fifth message in the method shown in FIG.
- the core network may send an S1 paging message (S1 Paging) to the eNB, and then the eNB sends a paging message (Paging) to the UE for initiating paging for the UE.
- S1 Paging S1 paging message
- Paging paging message
- the eNB sends a random access response message (RAR) or an RRC connection setup message to the UE (RRC connection). Setup) to instruct the terminal device to report the measurement result.
- RAR random access response message
- RRC connection setup message
- the random access response message (RAR) or the RRC connection setup message is a specific example of the sixth message in the method shown in FIG. 4.
- the UE reports the measurement report by using an RRC connection request message or an RRC connection setup complete message.
- the UE is an RRC connection request message or an RRC connection setup complete message (RRC connection setup complete) is a specific example of the second message in the method shown in FIG. 4.
- the eNB determines which secondary cell is configured for the UE according to the measurement report.
- the eNB configures the secondary cell for the UE by sending an RRC message to the UE.
- the RRC message is a specific example of the third message in the method shown in FIG. 8.
- the method shown in FIG. 7 can be regarded as a specific example of the method shown in FIG. 4, and the implementation not described in detail in FIG. 7 can be referred to the related description in FIG.
- FIG. 8 is a schematic diagram of a method for configuring a secondary cell according to an embodiment of the present disclosure, where the method includes the following steps:
- the first base station corresponding to the primary cell sends a first message to the terminal device that is in an idle state or an INACTIVE state after accessing the primary cell.
- the first message carries measurement configuration information, where the measurement configuration information includes multiple carrier frequencies, and the measurement configuration information is used to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies.
- the purpose of performing channel quality measurement on multiple carrier frequencies in the idle state or the INACTIVE state is to: screen out N candidate cells with better channel quality in the idle state or the INACTIVE state, so that the terminal device enters the RRC.
- the first base station In the connected state, the first base station can configure the secondary cell for the terminal device faster according to the measurement result of the channel quality.
- the first message may be a system message or a paging message.
- the measurement configuration information further includes one or more of the following information:
- a trigger threshold for indicating a threshold of channel quality of the N candidate cells
- the measurement configuration information may not include the measurement time, because the measurement time is determined by the first base station according to information such as the service mode/packet interval of the user equipment, and the second embodiment After the terminal device enters the primary cell, it is in an idle state or an INACTIVE state. Therefore, the core network cannot learn information such as the service mode/packet interval of the terminal device, and thus cannot give an indication of when the terminal device performs channel quality measurement.
- the terminal device can independently select the measurement time after receiving the first message.
- the multiple carrier frequencies may be the carrier frequency under the first base station, or may be the carrier frequency under the second base station adjacent to the first base station, or the carrier frequency under the first base station and the second base station.
- a collection of carrier frequencies This is because if the terminal device moves faster in the idle state or the INACTIVE state, the terminal device may enter the coverage of another base station (such as the second base station) after being converted to the connected state. If the terminal device is already in the S801
- the carrier frequency under the base station (second base station) is subjected to channel quality measurement, and after the terminal device enters the coverage of the base station (second base station), the base station (second base station) may also be based on channel quality measurement of the terminal device. As a result, the terminal device is configured with a secondary cell.
- the second base station refers to the neighboring base station of the first base station, and the number of the second base station may be one or more, and the number of the second base station is not in the embodiment of the present application. Make restrictions.
- the first base station first needs to acquire the carrier frequency under the second base station.
- the manner in which the first base station acquires the carrier frequency of the second base station can be referred to the three manners introduced in the first embodiment.
- the first base station receives the fourth message sent by the second base station or the core network, and the fourth message is used by the fourth base station.
- the carrier frequency under the second base station is obtained, or the carrier frequency of the second base station is obtained by the first base station multiplexable neighboring cell information exchange process, and details are not described herein again.
- the measurement configuration information includes multiple carrier frequencies.
- the multiple carrier frequencies may be the carrier frequency under the first base station and/or the carrier frequency under the second base station.
- the primary cell to which the first base station belongs may include multiple candidate cells, and the multiple candidate cells may be used to configure the terminal device in the primary cell as the secondary cell of the terminal device, and multiple candidate cells.
- the carrier frequencies are generally different. However, there are cases where multiple candidate cells use the same carrier frequency. For example, both candidate cell 1 and candidate cell 2 communicate with the terminal device at carrier frequency f1. Therefore, in the embodiment of the present application, the carrier frequency and the candidate cell do not necessarily have a one-to-one correspondence.
- the terminal device performs channel quality measurement on multiple carrier frequencies according to the measurement configuration information, so as to filter out N candidate cells, where N ⁇ 1.
- performing channel quality measurement on multiple carrier frequencies means that the terminal device measures channel quality of measurement signals (such as downlink synchronization signals or cell reference signals) at multiple carrier frequencies, and selects N channel quality comparisons therefrom.
- the first base station selects a secondary cell configuration from the N candidate cells that are in one-to-one correspondence with the N measurement signals to the terminal device.
- the downlink synchronization signal of the candidate cell is obtained by the terminal device when measuring each measurement signal, and the downlink synchronization signal of the candidate cell implicitly indicates the corresponding candidate cell information, for example, the PCI calculated by the PSS and the SSS index.
- the terminal device After receiving the measurement signal, the terminal device can learn the PCI of the candidate cell corresponding to the measurement signal, so that the terminal device can perform the channel quality measurement on the measurement signals of the multiple carrier frequencies, and then select which N to use according to the PCI judgment.
- the candidate cells are reported to the first base station.
- the terminal device may determine its ability to perform channel quality measurement in the idle state or the INACTIVE state before performing channel quality measurement in S802.
- the terminal device sends a second message to the first base station when converting from the idle state or the INACTIVE state to the RRC connected state.
- the second message carries a measurement report, where the measurement report includes indication information of N candidate cells that are filtered by the terminal device, where N ⁇ 1.
- the second message may be an RRC connection setup complete message or an RRC connection request message, or may be another uplink RRC message, which is not limited herein.
- the N candidate cells reported by the terminal device may be candidate cells under the first base station and/or candidate cells under the second base station. That is to say, the terminal device can select which candidate cells are reported according to different scenarios.
- the terminal device may select to report the candidate cell under the first base station and/or the candidate cell under the second base station based on its own moving speed. For example, if the moving speed of the terminal device is slow, the terminal device may decide to report only the candidate cell under the first base station.
- the terminal device may report only the measurement result of the carrier frequency under the base station corresponding to the current serving cell. For example, if the terminal device still resides in the primary cell corresponding to the first base station when reporting the measurement report, the terminal device may The measurement result of the carrier frequency under the first base station is reported, that is, the N candidate cells are candidate cells under the first base station; if the terminal device performs cell reselection after receiving the first message and reporting the measurement report (ie, The terminal device may report only the measurement result of the carrier frequency under the second base station, that is, the N candidate cells are candidate cells under the second base station.
- the terminal device may report the measurement result to the base station after the handover, for example, the terminal device may report the measurement result after switching from the first base station to the second base station. To the second base station.
- the indication information of the N candidate cells may include at least one of the following: a carrier frequency of the N candidate cells, a PCI of the N candidate cells, and a channel quality of the N candidate cells.
- the first base station sends a third message to the terminal device according to the measurement report.
- the third message includes the secondary cell configuration information of the terminal device.
- the terminal device can obtain the indication information of the secondary cell configured by the first base station by using the secondary cell configuration information, for example, the PCI of the secondary cell configured by the first base station.
- the third message may be an RRC connection reconfiguration message, or may be another downlink RRC message, which is not limited herein.
- the terminal device may report the measurement report to the first base station after completing the channel quality measurement and enter the RRC connected state, or may send the measurement to the first base station when the first base station requests the terminal device to send the measurement report. report.
- the terminal device performs reporting based on the request of the first base station, it takes a certain time for the terminal device to perform channel quality measurement, and the first base station cannot know when the terminal device has completed channel quality measurement. Therefore, before the first base station receives the second message reported by the terminal device, the terminal device may send a fifth message to the first base station, where the fifth message is used to indicate that the measurement report has been generated; and then, the first base station sends the second message to the terminal device. The sixth message is used to instruct the terminal device to report the measurement report.
- the fifth message may be a random access message 1 (ie, a preamble)
- the sixth message may be a random access response message (RAR) or an RRC connection setup message.
- RAR random access response message
- the preamble or random access resource of the random access implicitly indicates that the terminal device has generated the measurement report, and therefore, it is necessary to pre-allocate one or a specific preamble, or one or a specific set of random connections.
- Incoming resources for example, through RRC signaling.
- the terminal device transmits this (or in the group) preamble, or when the terminal device occupies this (or this group) of random access resources, it indicates that the terminal device has generated a measurement report.
- the first base station may instruct the terminal device to report the measurement report by sending a random access response message (RAR) or an RRC connection setup message to the terminal device.
- RAR random access response message
- the fifth message may be an RRC connection request message or an RRC connection resume request message
- the corresponding sixth message may be an RRC connection setup message or an RRC connection.
- RRC connection resume For example, the terminal device carries the 1-bit indication information in the RRC connection request message or the RRC connection resume request message to indicate that the terminal device has generated the measurement report. Then, after receiving the RRC connection request message or the RRC connection resume request message, the first base station may send an RRC connection setup message or an RRC connection setup message to the terminal device. RRC connection resume to indicate the terminal The device reports the measurement report.
- the fifth message may be an RRC connection setup complete message or an RRC connection resume complete message.
- the terminal device carries the 1-bit indication information in the RRC connection setup complete message or the RRC connection resume complete message to indicate that the terminal device has generated the measurement report. Then, after receiving the RRC connection setup complete message or the RRC connection resume complete message, the first base station may instruct the terminal device to report the measurement report by sending a downlink RRC message to the terminal device.
- the first base station can know when the terminal device has generated the measurement report, so that the first base station can report the measurement report in time after the first base station sends the sixth message to the terminal device to request the terminal device to report the measurement report. Give the first base station.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells. That is, the first base station may indicate, based on its own needs, which carrier frequencies (eg, carrier frequencies with lower load, carrier frequencies under the first base station, etc.) are reported by the terminal device.
- carrier frequencies eg, carrier frequencies with lower load, carrier frequencies under the first base station, etc.
- the secondary cell configuration method provided by the second embodiment of the present application may be used to notify the terminal device according to the measurement configuration information in the first message by sending the first message when the terminal device is in the idle state or the INACTIVE state after entering the primary cell.
- the carrier frequency is measured by the carrier frequency, and the measurement report is reported to the first base station after the terminal device enters the RRC connected state, so that the first base station can quickly configure the secondary cell for the terminal device. Since the first base station can receive the measurement report sent by the terminal device after the terminal device enters the RRC connected state, the first base station can configure the secondary cell for the terminal device in a shorter time.
- the terminal device can complete the secondary cell configuration in a short time after entering the RRC connected state, thereby improving the utilization rate of the secondary cell.
- the present application further provides a secondary cell configuration method, which may be regarded as a specific example of the method shown in FIG. 8.
- the method includes the following process:
- the eNB requests the adjacent eNB2 for the carrier frequency used for channel quality measurement under eNB2.
- the eNB is a specific example of the first base station in the method shown in FIG. 8; the eNB2 is a specific example of the second base station in the method shown in FIG. 8.
- the eNB2 transmits the carrier frequency used for channel quality measurement under the eNB2 to the eNB.
- the eNB sends a system message or a paging message to the UE, and carries the measurement configuration information in a system message or a paging message.
- the UE is a specific example of the terminal device in the method shown in FIG. 8.
- the UE performs channel quality measurement on multiple carrier frequencies according to the measurement configuration information sent by the eNB.
- the UE When the UE enters the RRC connected state, the UE transmits an RRC connection request message (RRC connection request) or an RRC connection resume request message (RRC connection resume request) to indicate that the measurement report has been generated.
- RRC connection request an RRC connection request message
- RRC connection resume request an RRC connection resume request message
- RRC connection request message RRC connection request
- RRC connection recovery request message RRC The connection resume request
- the eNB sends an RRC connection setup message or an RRC connection resume message to the UE to instruct the terminal device to report the measurement result.
- the RRC connection setup message or the RRC connection resume message is a specific example of the sixth message in the method shown in FIG. 8.
- the UE reports the measurement report by using an RRC connection setup complete message.
- the RRC connection setup complete message is a specific example of the second message in the method shown in FIG. 8.
- the eNB determines which secondary cell is configured for the UE according to the measurement report.
- the eNB configures the secondary cell for the UE by sending an RRC message to the UE.
- the RRC message is a specific example of the third message in the method shown in FIG. 8.
- the method shown in FIG. 9 can be regarded as a specific example of the method shown in FIG. 8.
- the implementation not described in detail in FIG. 9 can be referred to the related description in FIG.
- the present application provides a first base station, which can be used to perform operations performed by a first base station in the method shown in FIG. 4 or 7.
- the first base station 1000 includes a transmitter 1001 and a receiver 1002.
- a transmitter 1001 and a receiver 1002 are included. among them,
- the transmitter 1001 is configured to send, to the terminal device, a first message, where the first message is used to indicate that the terminal device is in an idle state or an INACTIVE state, where the first message carries measurement configuration information, and the measurement configuration information includes multiple The carrier frequency, the measurement configuration information is used to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies, and the first base station is a base station corresponding to the primary cell of the terminal device.
- the receiver 1002 is configured to receive a second message that is sent by the terminal device after being converted from an idle state or an INACTIVE state to an RRC connected state, where the second message carries a measurement report, where the measurement report includes the terminal device performing channel quality measurement on multiple carrier frequencies.
- the indication information of the N candidate cells after filtering is N ⁇ 1.
- the transmitter 1001 is further configured to send, according to the measurement report, a third message to the terminal device, where the third message includes the secondary cell configuration information of the terminal device.
- the receiver and transmitter in FIG. 10 may be two physical components, or may be included in one physical component (such as a transceiver).
- the receiver and transmitter transmit and receive data and signaling through an antenna.
- the base station 1000 shown in FIG. 10 may further include a processor 1003 and a memory 1004.
- the processor 1003 is configured to execute a program stored in the memory 1004 to complete a corresponding function in the secondary cell configuration method shown in FIG. 4 or 7.
- the multiple carrier frequencies include a carrier frequency under the first base station and/or a carrier frequency under the second base station
- the second base station is a base station adjacent to the first base station
- the receiver 1002 is further configured to: at the transmitter Before transmitting the first message to the terminal device, the device 10010 receives a fourth message sent by the second base station or the core network, where the fourth message is used to indicate the carrier frequency under the second base station.
- the N candidate cells are candidate cells under the first base station and/or candidate cells under the second base station.
- the receiver 1002 is further configured to: before the transmitter 1001 sends the first message to the terminal device, receive a first indication message sent by the terminal device, where the first indication message is used to indicate that the terminal device is in an idle state or an INACTIVE state. The ability to perform channel quality measurements.
- the receiver 1002 is further configured to: before the transmitter 1001 sends the first message to the terminal device, receive a second indication message sent by the core network, where the second indication message is used to indicate the service mode and/or data of the terminal device. Packet interval.
- the receiver 1002 is further configured to: after receiving the second message reported by the terminal device after being converted from the idle state or the INACTIVE state to the RRC connected state, receiving the fifth message sent by the terminal device, where the fifth message is used to indicate The measurement report is generated.
- the transmitter 1001 is further configured to: send a sixth message to the terminal device, where the sixth message is used to instruct the terminal device to report the measurement report.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells.
- the measurement configuration information further includes one or more of the following: a filtering threshold, a threshold for indicating a channel quality of the candidate cell reported by the physical layer of the terminal device to the RRC layer of the terminal device; And a measurement time indicating a start time of the channel quality measurement performed by the terminal device on the plurality of carrier frequencies.
- the first message is sent to the terminal device by the first base station, indicating that the terminal device is switched from the RRC connected state to the idle state or the INACTIVE state, and the measurement configuration information in the first message is passed. Instructing the terminal device to perform channel quality measurement on the multiple carrier frequencies in the idle state or the INACTIVE state according to the indication of the measurement configuration information, and reporting the measurement report to the first base station after the terminal device enters the RRC connected state again, for the subsequent first
- the base station can quickly configure the secondary cell for the terminal device.
- the first base station can receive the measurement report sent by the terminal device, and the first base station can send the third message in a shorter time to configure the secondary cell for the terminal device.
- the terminal device performs channel quality measurement in the RRC connection state in the prior art
- the process of the secondary cell Therefore, compared with the prior art, the foregoing solution can complete the secondary cell configuration in a short time after the terminal device enters the RRC connected state again, thereby improving the utilization rate of the secondary cell.
- first base station 1000 shown in FIG. 10 may be used to perform operations performed by the first base station in the secondary cell configuration method shown in FIG. 4 or FIG. 7, and the implementation manner not described in detail in the first base station 1000 may be implemented. See the related description in the method shown in Figure 4 or Figure 7.
- FIG. 11 is a schematic diagram showing another possible structure of the first base station 1000 involved in the above embodiment.
- the first base station 1100 includes a communication unit 1101, a processing unit 1102, and a storage unit 1103.
- the communication unit 1101 is configured to support the transmission and reception of information between the first base station 1100 and the terminal device in the above embodiment.
- Processing unit 1102 also performs the processes involved in the first base station in the method illustrated in FIG. 4 or FIG. 7 and/or other processes for the techniques described herein.
- the storage unit 1103 is configured to store program codes and data of the first base station 1100.
- each functional unit in the embodiment of the present application may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit.
- the first obtaining unit and the second obtaining unit may be the same unit and different units.
- the above integrated unit can be implemented in the form of hardware or in the form of a software functional unit.
- the present application provides a terminal device, which can be used to perform operations performed by a terminal device in the method shown in FIG. 4 or 7.
- the terminal device 1200 includes a receiver 1201, a processor 1202, a memory 1203, and a transmitter 1204.
- a receiver 1201, a processor 1202, a memory 1203, and a transmitter 1204 are included. among them,
- the receiver 1201 is configured to receive a first message sent by the first base station, where the first message is used to indicate that the terminal device is in an idle state or an INACTIVE state, where the first message carries measurement configuration information, and the measurement configuration information includes The plurality of carrier frequencies, the measurement configuration information is used to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies, and the first base station is a base station corresponding to the primary cell of the terminal device.
- the processor 1202 is configured to: perform, by executing, a program stored in the memory 1203, to convert the terminal device from an RRC connected state to an idle state or an INACTIVE state according to the first message, and perform channel on multiple carrier frequencies according to the measurement configuration information. Quality measurement to screen out N candidate cells.
- the transmitter 1204 is configured to send a second message to the first base station when the terminal device is switched from the idle state or the INACTIVE state to the RRC connected state, where the second message carries the measurement report, where the measurement report includes indication information of the N candidate cells, where ⁇ 1.
- the receiver 1201 is further configured to receive a third message sent by the first base station, where the third message includes secondary cell configuration information of the terminal device.
- the receiver and transmitter in FIG. 12 may be two physical components, or may be included in one physical component (such as a transceiver).
- the receiver and transmitter transmit and receive data and signaling through an antenna.
- the multiple carrier frequencies include a carrier frequency under the first base station and/or a carrier frequency under the second base station, and the second base station is a base station adjacent to the first base station.
- the N candidate cells are candidate cells under the first base station and/or candidate cells under the second base station.
- the transmitter 1204 is further configured to: before the receiver 1201 receives the first message sent by the first base station, send a first indication message to the first base station, where the first indication message is used to indicate that the terminal device is in the idle state. Or the ability of the INACTIVE state to perform channel quality measurements.
- the transmitter 1204 is further configured to: before sending the second message to the first base station, send a fifth message to the first base station, where the fifth message is used to indicate that the measurement report has been generated; and the receiver 1201 is further configured to: receive The sixth message sent by the first base station is used to instruct the terminal device to report the measurement report.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells.
- the measurement configuration information further includes one or more of the following: a filtering threshold, a threshold for indicating a channel quality of the candidate cell reported by the physical layer of the terminal device to the RRC layer of the terminal device; And a measurement time indicating a start time of the channel quality measurement performed by the terminal device on the plurality of carrier frequencies.
- the first message is sent to the terminal device by the first base station, indicating that the terminal device is switched from the RRC connected state to the idle state or the INACTIVE state, and the measurement configuration information in the first message is passed. Instructing the terminal device to perform channel quality measurement on the multiple carrier frequencies in the idle state or the INACTIVE state according to the indication of the measurement configuration information, and reporting the measurement report to the first base station after the terminal device enters the RRC connected state again, for the subsequent first
- the base station can quickly configure the secondary cell for the terminal device.
- the first base station can receive the measurement report sent by the terminal device, and the first base station can send the third message in a shorter time to configure the secondary cell for the terminal device.
- the terminal device After the terminal device enters the RRC connection state again, it is not necessary to take a long time to perform channel quality measurement, so that the first base station can be configured for the terminal device. The process of the secondary cell.
- the terminal device can complete the secondary cell configuration in a short time after re-entering the RRC connected state, thereby improving the utilization rate of the secondary cell.
- the terminal device 1200 shown in FIG. 12 can be used to perform the operations performed by the terminal device in the secondary cell configuration method shown in FIG. 4 or FIG. 7.
- the implementation manner not described in detail in the terminal device 1200 can be seen in FIG. 4 .
- FIG. 13 is a schematic diagram showing another possible structure of the terminal device 1200 involved in the above embodiment.
- the terminal device 1300 includes a communication unit 1301, a processing unit 1302, and a storage unit 1303.
- the communication unit 1301 is configured to support the transmission and reception of information between the terminal device 1300 and the first base station in the foregoing embodiment.
- Processing unit 1302 also performs the processing involved in the terminal device in the method illustrated in FIG. 4 or FIG. 7 and/or other processes for the techniques described herein.
- the storage unit 1303 is configured to store program codes and data of the terminal device 1300.
- the present application provides a first base station, which can be used to perform operations performed by a first base station in the method shown in FIG. 8 or 9.
- the first base station 1400 includes a transmitter 1401 and a receiver 1402.
- a transmitter 1401 and a receiver 1402 are included. among them,
- the transmitter 1401 is configured to send a first message to the terminal device that is in an idle state or an INACTIVE state after accessing the primary cell, where the first message carries measurement configuration information, the measurement configuration information includes multiple carrier frequencies, and the measurement configuration information is used.
- the terminal device is instructed to perform channel quality measurement on multiple carrier frequencies, and the first base station is a base station corresponding to the primary cell of the terminal device.
- the receiver 1402 is configured to receive a second message that is sent by the terminal device after being converted from the idle state or the INACTIVE state to the RRC connected state, where the second message carries the measurement report, where the measurement report includes the terminal device performing channel quality measurement on multiple carrier frequencies.
- the transmitter 1401 is further configured to send a third message to the terminal device according to the measurement report, where the third message includes secondary cell configuration information of the terminal device.
- the receiver and transmitter in FIG. 14 may be two physical components, or may be included in one physical component (such as a transceiver).
- the receiver and transmitter transmit and receive data and signaling through an antenna.
- the first base station 1400 shown in FIG. 14 may further include a processor 1403 and a memory 1404, where the processor 1403 is configured to execute a program stored in the memory 1404 to complete a corresponding function in the secondary cell configuration method shown in FIG. 8 or FIG. .
- the multiple carrier frequencies include a carrier frequency under the first base station and/or a carrier frequency under the second base station, and the second base station is a base station adjacent to the first base station; the receiver 1402 is further configured to: the transmitter 1401
- the fourth message sent by the second base station or the core network is received before the first message sent by the terminal device in the idle state or the INACTIVE state after the access to the primary cell, and the fourth message is used to indicate the carrier frequency under the second base station.
- the N candidate cells are candidate cells under the first base station and/or candidate cells under the second base station.
- the receiver 1402 is further configured to: before receiving the second message that is sent after the terminal device is converted from the idle state or the INACTIVE state to the RRC connected state, receive the fifth message sent by the terminal device, where the fifth message is used to indicate the measurement.
- the report is generated.
- the sender 1401 is further configured to: send a sixth message to the terminal device, where the sixth message is used to instruct the terminal device to report the measurement report.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells.
- the measurement configuration information further includes one or more of the following information: a filtering threshold, which is used to indicate the terminal setting.
- the first message is sent to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies according to the measurement configuration information in the first message, and After the terminal device enters the RRC connection state, the measurement report is reported to the first base station, so that the first base station can quickly configure the secondary cell for the terminal device. Since the first base station can receive the measurement report sent by the terminal device after the terminal device enters the RRC connected state, the first base station can configure the secondary cell for the terminal device in a shorter time.
- the terminal device can complete the secondary cell configuration in a short time after entering the RRC connected state, thereby improving the utilization rate of the secondary cell.
- the first base station 1400 shown in FIG. 14 may be used to perform operations performed by the first base station in the secondary cell configuration method shown in FIG. 8 or FIG. 9, and the implementation manner not described in detail in the first base station 1400 may be implemented. See the related description in the method shown in Figure 8 or Figure 9.
- FIG. 15 shows another possible structural diagram of the first base station 1400 involved in the above embodiment.
- the first base station 1500 includes a communication unit 1501, a processing unit 1502, and a storage unit 1503.
- the communication unit 1501 is configured to support the transmission and reception of information between the first base station 1500 and the terminal device in the foregoing embodiment.
- Processing unit 1502 also performs the processes involved in the first base station in the method illustrated in FIG. 8 or FIG. 9 and/or other processes for the techniques described herein.
- the storage unit 1503 is configured to store program codes and data of the first base station 1500.
- the present application provides a terminal device, which can be used to perform operations performed by a terminal device in the method shown in FIG. 8 or 9.
- the terminal device 1600 includes a receiver 1601, a processor 1602, a memory 1603, and a transmitter 1604.
- a receiver 1601, a processor 1602, a memory 1603, and a transmitter 1604 are included. among them,
- the receiver 1601 is configured to receive the first message sent by the first base station corresponding to the primary cell when the terminal device is in the idle state or the INACTIVE state, and the first message carries the measurement configuration information, and the measurement configuration information includes multiple The carrier frequency, the measurement configuration information is used to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies.
- the processor 1602 is configured to perform, by executing the program stored in the memory 1603, performing channel quality measurement on the plurality of carrier frequencies according to the measurement configuration information to filter out N candidate cells.
- the transmitter 1604 is configured to send, by the terminal device, a second message to the first base station when the state is changed from the idle state or the INACTIVE state to the RRC connected state, where the second message carries the measurement report, where the measurement report includes indication information of the N candidate cells, where ⁇ 1.
- the receiver 1601 is further configured to receive a third message sent by the first base station, where the third message includes secondary cell configuration information of the terminal device.
- the receiver and transmitter in FIG. 16 may be two physical components, or may be included in one physical component (such as a transceiver).
- the receiver and transmitter transmit and receive data and signaling through an antenna.
- the multiple carrier frequencies include a carrier frequency under the first base station and/or a carrier frequency under the second base station, and the second base station is a base station adjacent to the first base station.
- the N candidate cells are candidate cells under the first base station and/or candidate cells under the second base station.
- the transmitter 1604 is further configured to: before sending the second message to the first base station, send a fifth message to the first base station, where the fifth message is used to indicate that the measurement report has been generated; and the receiver 1601 is further configured to: receive The sixth message sent by the first base station is used to instruct the terminal device to report the measurement report.
- the sixth message is further used to indicate that the measurement report reported by the terminal device includes indication information of a part of the candidate cells in the N candidate cells.
- the processor 1602 is further configured to: perform, by executing a program stored in the memory 1603, to determine that the terminal device has a channel in an idle state or an INACTIVE state before performing channel quality measurement on the plurality of carrier frequencies according to the measurement configuration information. The ability to measure quality.
- the measurement configuration information further includes one or more of the following: a filtering threshold, a threshold for indicating a channel quality of the candidate cell reported by the physical layer of the terminal device to the RRC layer of the terminal device; A threshold indicating channel quality of N candidate cells.
- the first message is sent to indicate that the terminal device performs channel quality measurement on multiple carrier frequencies according to the measurement configuration information in the first message, and After the terminal device enters the RRC connection state, the measurement report is reported to the first base station, so that the first base station can quickly configure the secondary cell for the terminal device. Since the first base station can receive the measurement report sent by the terminal device after the terminal device enters the RRC connected state, the first base station can configure the secondary cell for the terminal device in a shorter time.
- the terminal device can complete the secondary cell configuration in a short time after entering the RRC connected state, thereby improving the utilization rate of the secondary cell.
- terminal device 1600 shown in FIG. 16 can be used to perform the operations performed by the terminal device in the secondary cell configuration method shown in FIG. 8 or FIG. 9.
- the implementation manner not described in detail in the terminal device 1600 can be seen in FIG. 8. Or a related description in the method shown in FIG.
- FIG. 17 shows another possible structural diagram of the terminal device 1600 involved in the above embodiment.
- the terminal device 1700 includes a communication unit 1701, a processing unit 1702, and a storage unit 1703.
- the communication unit 1701 is configured to support the transmission and reception of information between the terminal device 1700 and the first base station in the above embodiment.
- Processing unit 1702 also performs the processing involved in the terminal device in the method illustrated in FIG. 4 or FIG. 7 and/or other processes for the techniques described herein.
- the storage unit 1703 is used to store program codes and data of the terminal device 1700.
- the embodiment of the present application provides a method for configuring a secondary cell, a base station, and a terminal device. The solution provided by the embodiment of the present application can improve the utilization rate of the secondary cell.
- embodiments of the present application can be provided as a method, system, or computer program product.
- the present application can take the form of an entirely hardware embodiment, an entirely software embodiment, or an embodiment in combination of software and hardware.
- the application can take the form of a computer program product embodied on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) including computer usable program code.
- the computer program instructions can also be stored in a computer readable memory that can direct a computer or other programmable data processing device to operate in a particular manner, such that the instructions stored in the computer readable memory produce an article of manufacture comprising the instruction device.
- the apparatus implements the functions specified in one or more blocks of a flow or a flow and/or block diagram of the flowchart.
- These computer program instructions can also be loaded onto a computer or other programmable data processing device such that a series of operational steps are performed on a computer or other programmable device to produce computer-implemented processing for execution on a computer or other programmable device.
- the instructions provide steps for implementing the functions specified in one or more of the flow or in a block or blocks of a flow diagram.
Landscapes
- Engineering & Computer Science (AREA)
- Signal Processing (AREA)
- Computer Networks & Wireless Communication (AREA)
- Mobile Radio Communication Systems (AREA)
Abstract
La présente invention concerne un procédé de configuration de cellule secondaire, une station de base et un dispositif terminal, qui sont utilisés pour améliorer le taux d'utilisation d'une cellule secondaire. Le procédé comprend les étapes suivantes : une première station de base correspondant à une cellule primaire d'un dispositif terminal envoie, au dispositif terminal, un premier message ordonnant au dispositif terminal de passer d'un état de connexion RRC à un état de veille ou à un état INACTIF, le premier message transportant des informations de configuration de mesure, qui sont utilisées pour ordonner au dispositif terminal d'effectuer une mesure de qualité de canal sur une pluralité de fréquences porteuses; le dispositif terminal convertissant de l'état de connexion RRC à l'état de veille ou à l'état INACTIF, et effectuant une mesure de qualité de canal sur la pluralité de fréquences porteuses de manière à afficher N cellules candidates, N ≥ 1; lors de la conversion de l'état de veille ou de l'état INACTIF à l'état de connexion RRC, le dispositif terminal envoie un second message transportant un rapport de mesure à la première station de base, le rapport de mesure contenant des informations d'indication concernant les N cellules candidates; et la première station de base envoie un troisième message comprenant des informations de configuration de cellule secondaire au dispositif de terminal selon le rapport de mesure.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201780089654.8A CN110521157A (zh) | 2017-05-12 | 2017-06-30 | 一种辅小区配置方法、基站及终端设备 |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201710335265 | 2017-05-12 | ||
| CN201710335265.0 | 2017-05-12 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2018205387A1 true WO2018205387A1 (fr) | 2018-11-15 |
Family
ID=64104273
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/CN2017/091173 Ceased WO2018205387A1 (fr) | 2017-05-12 | 2017-06-30 | Procédé de configuration de cellule secondaire, station de base et dispositif terminal |
Country Status (2)
| Country | Link |
|---|---|
| CN (1) | CN110521157A (fr) |
| WO (1) | WO2018205387A1 (fr) |
Cited By (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2020109651A1 (fr) * | 2018-11-29 | 2020-06-04 | Nokia Technologies Oy | Mesures de porteuses |
| WO2020147163A1 (fr) * | 2019-01-18 | 2020-07-23 | Qualcomm Incorporated | Rapport de mesure précoce |
| CN111800842A (zh) * | 2019-08-15 | 2020-10-20 | 维沃移动通信有限公司 | Rrc空闲或非激活状态下的移动性测量方法及设备 |
| CN113518399A (zh) * | 2019-09-16 | 2021-10-19 | Oppo广东移动通信有限公司 | 测量小区的方法和装置 |
| CN113940138A (zh) * | 2019-06-17 | 2022-01-14 | 鸿颖创新有限公司 | 用于在无线通信系统中处理测量的方法和设备 |
| US12096507B2 (en) | 2017-07-28 | 2024-09-17 | Qualcomm Incorporated | Methods to optimize scell configuration and activation through UE idle mode scell measurements and quick reporting |
Families Citing this family (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11368891B2 (en) * | 2020-02-12 | 2022-06-21 | Apple Inc. | Primary cell switching in non-simultaneous uplink carrier aggregation scenarios |
| WO2021232239A1 (fr) * | 2020-05-19 | 2021-11-25 | Nokia Shanghai Bell Co., Ltd. | État inactif de commande de ressource radio pour équipement utilisateur distant |
| BR112023000685A2 (pt) * | 2020-07-25 | 2023-02-07 | Qualcomm Inc | Transição de estado em sistemas de retransmissão da camada 2 de sidelink |
| CN111885660B (zh) * | 2020-07-30 | 2022-10-11 | 北京神州数码云科信息技术有限公司 | 一种基于融合架构的多路服务器系统的系统信息的传输方法及系统 |
| CN113163329B (zh) * | 2021-02-08 | 2022-07-15 | 几维通信技术(深圳)有限公司 | 基于5g网络的室内定位系统和方法 |
| CN117941406A (zh) * | 2021-10-21 | 2024-04-26 | 华为技术有限公司 | 一种小区测量方法、装置和系统 |
| CN117322045A (zh) * | 2022-04-27 | 2023-12-29 | 北京小米移动软件有限公司 | 一种小区管理方法/装置/设备及存储介质 |
| EP4427391A4 (fr) * | 2022-05-10 | 2025-06-18 | ZTE Corporation | Procédé, dispositif et système de configuration de cellule auxiliaire dans des réseaux sans fil |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN103037431A (zh) * | 2011-09-30 | 2013-04-10 | 中兴通讯股份有限公司 | 一种多载波系统中基于载波分组的测量方法及装置 |
| CN105208593A (zh) * | 2015-08-14 | 2015-12-30 | 宇龙计算机通信科技(深圳)有限公司 | 非授权频谱上的辅服务小区的管理方法、系统及基站 |
| WO2016112588A1 (fr) * | 2015-01-12 | 2016-07-21 | 宇龙计算机通信科技(深圳)有限公司 | Procédé de notification de détection de canal, système et station de base |
| CN105991255A (zh) * | 2015-01-28 | 2016-10-05 | 中国移动通信集团广东有限公司 | 一种载波聚合的配置方法及装置 |
Family Cites Families (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN101547467A (zh) * | 2008-03-24 | 2009-09-30 | 华为技术有限公司 | 一种通信网络中建立连接的方法和用户终端及基站 |
| CN103220704B (zh) * | 2012-01-21 | 2019-02-26 | 华为技术有限公司 | 无线通信系统中测量增强的方法和装置 |
| CN103228015B (zh) * | 2012-01-31 | 2016-06-15 | 鼎桥通信技术有限公司 | 监听终端的小区切换方法、设备及系统 |
| US20160088678A1 (en) * | 2014-09-23 | 2016-03-24 | Telefonaktiebolaget L M Ericsson (Publ) | Network initiated evolved packet core (epc) and ip multimedia subsystem (ims) network usage optimization algorithm for lte capable smartphones connected to wireless lan (wi-fi) network |
| CN106658758A (zh) * | 2017-02-10 | 2017-05-10 | 北京小米移动软件有限公司 | 状态转换方法、状态保持方法、装置及用户设备 |
-
2017
- 2017-06-30 WO PCT/CN2017/091173 patent/WO2018205387A1/fr not_active Ceased
- 2017-06-30 CN CN201780089654.8A patent/CN110521157A/zh active Pending
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN103037431A (zh) * | 2011-09-30 | 2013-04-10 | 中兴通讯股份有限公司 | 一种多载波系统中基于载波分组的测量方法及装置 |
| WO2016112588A1 (fr) * | 2015-01-12 | 2016-07-21 | 宇龙计算机通信科技(深圳)有限公司 | Procédé de notification de détection de canal, système et station de base |
| CN105991255A (zh) * | 2015-01-28 | 2016-10-05 | 中国移动通信集团广东有限公司 | 一种载波聚合的配置方法及装置 |
| CN105208593A (zh) * | 2015-08-14 | 2015-12-30 | 宇龙计算机通信科技(深圳)有限公司 | 非授权频谱上的辅服务小区的管理方法、系统及基站 |
Cited By (20)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US12096507B2 (en) | 2017-07-28 | 2024-09-17 | Qualcomm Incorporated | Methods to optimize scell configuration and activation through UE idle mode scell measurements and quick reporting |
| WO2020109651A1 (fr) * | 2018-11-29 | 2020-06-04 | Nokia Technologies Oy | Mesures de porteuses |
| US12003985B2 (en) | 2018-11-29 | 2024-06-04 | Nokia Technologies Oy | Carrier measurements |
| CN113302978A (zh) * | 2019-01-18 | 2021-08-24 | 高通股份有限公司 | 早期测量报告 |
| WO2020147120A1 (fr) * | 2019-01-18 | 2020-07-23 | Qualcomm Incorporated | Rapport de mesure précoce |
| WO2020147182A1 (fr) * | 2019-01-18 | 2020-07-23 | Qualcomm Incorporated | Rapport de mesure précoce |
| CN113302978B (zh) * | 2019-01-18 | 2024-07-16 | 高通股份有限公司 | 早期测量报告 |
| EP3912397A4 (fr) * | 2019-01-18 | 2022-08-31 | Qualcomm Incorporated | Rapport de mesure précoce |
| WO2020147771A1 (fr) | 2019-01-18 | 2020-07-23 | Qualcomm Incorporated | Rapport de mesure précoce |
| US12069500B2 (en) | 2019-01-18 | 2024-08-20 | Qualcomm Incorporated | Early measurement reporting |
| WO2020147163A1 (fr) * | 2019-01-18 | 2020-07-23 | Qualcomm Incorporated | Rapport de mesure précoce |
| US12096266B2 (en) | 2019-06-17 | 2024-09-17 | FG Innovation Company Limited | Method and apparatus for handling measurement in wireless communication system |
| CN113940138A (zh) * | 2019-06-17 | 2022-01-14 | 鸿颖创新有限公司 | 用于在无线通信系统中处理测量的方法和设备 |
| CN113940138B (zh) * | 2019-06-17 | 2024-05-03 | 鸿颖创新有限公司 | 用于在无线通信系统中处理测量操作的方法和用户设备 |
| CN111800842A (zh) * | 2019-08-15 | 2020-10-20 | 维沃移动通信有限公司 | Rrc空闲或非激活状态下的移动性测量方法及设备 |
| CN111800842B (zh) * | 2019-08-15 | 2023-06-16 | 维沃移动通信有限公司 | Rrc空闲或非激活状态下的移动性测量方法及设备 |
| US12212996B2 (en) | 2019-08-15 | 2025-01-28 | Vivo Mobile Communication Co., Ltd. | Mobility measurement method in RRC idle or inactive state and device |
| CN113518399B (zh) * | 2019-09-16 | 2023-03-14 | Oppo广东移动通信有限公司 | 测量小区的方法和装置 |
| CN113518399A (zh) * | 2019-09-16 | 2021-10-19 | Oppo广东移动通信有限公司 | 测量小区的方法和装置 |
| US12133105B2 (en) | 2019-09-16 | 2024-10-29 | Guangdong Oppo Mobile Telecommunications Corp., Ltd. | Method and apparatus for measuring cell |
Also Published As
| Publication number | Publication date |
|---|---|
| CN110521157A (zh) | 2019-11-29 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| WO2018205387A1 (fr) | Procédé de configuration de cellule secondaire, station de base et dispositif terminal | |
| KR102666360B1 (ko) | 무선 통신 방법, 단말 장치 및 네트워크 장치 | |
| EP3217701B1 (fr) | Dispositif terminal, dispositif de station de base et procédé | |
| CN109151922B (zh) | 测量方法、测量配置方法和相关设备 | |
| WO2018201990A1 (fr) | Procédé de communication, terminal et station de base | |
| JP2015526934A (ja) | キャリアアグリゲーション可能無線通信装置におけるrfチェーン管理 | |
| EP3043588B1 (fr) | Procédé et appareil de prise en charge d'équipement d'utilisateur pour l'exécution d'une tâche | |
| KR20150010434A (ko) | 무선이동통신시스템에서 d2d 통신을 지원/사용하는 단말기의 이동성을 지원하는 방안 | |
| EP2962489B1 (fr) | Fourniture de mesures | |
| WO2020190197A1 (fr) | Rapport de mesure précoce flexible | |
| TWI743386B (zh) | 用於改善多載波利用之傳訊 | |
| CN107852626B (zh) | 用于终端执行wlan测量的方法和装置 | |
| WO2022057520A1 (fr) | Procédé et appareil de configuration de porteuse | |
| WO2013123872A1 (fr) | Procédé, système et dispositif de configuration et de synchronisation de porteuse d'extension | |
| JP6257463B2 (ja) | 基地局および移動通信制御方法 | |
| WO2017166390A1 (fr) | Procédé de communication, terminal et équipement de réseau | |
| WO2021026929A1 (fr) | Procédé et appareil de communication | |
| CN113676922A (zh) | 一种终端设备协作方法及装置 | |
| CN111246591B (zh) | 一种信息传输方法、装置及相关设备 | |
| US20240023068A1 (en) | User equipment, base station, and communication control method | |
| WO2023127638A1 (fr) | Station de base et procédé de communication | |
| US20230422074A1 (en) | User equipment, base station, and communication control method | |
| US20240015835A1 (en) | User equipment, base station, and communication control method | |
| CN115835397B (zh) | 用于无线通信的方法及装置 | |
| WO2025140237A1 (fr) | Procédés de mesure précoce, appareil, et support de stockage lisible par ordinateur |
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: 17909526 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: 17909526 Country of ref document: EP Kind code of ref document: A1 |