Communication method and communication device
The method and device address the issue of unclear reconfiguration timing in MR-DC by providing indication information for sequencing reconfiguration messages, ensuring smooth CPC procedures and reducing signaling overhead.
Patent Information
- Application Number
- JP2024524007
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-10-22
- Filing Date
- 2022-10-11
- Publication Date
- 2025-09-10
- Estimated Expiration
- 2042-10-11
AI Technical Summary
In the MR-DC scenario, some conditional primary-secondary cell change (CPC) procedures cannot be performed as usual due to uncertainty about when to send reconfiguration messages during UE mobility.
A communication method and device that provides indication information to access network devices on when to send reconfiguration messages relative to candidate cell information, allowing for clear sequencing and reducing signaling overhead.
Enables normal execution of CPC procedures by clarifying the sequence of sending reconfiguration messages, thereby improving network efficiency and reducing signaling overhead.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present application relates to the field of communications, and in particular to communication methods and devices. [Background technology]
[0002] This application claims priority to Chinese Patent Application No. 202111235026.0, entitled "COMMUNICATION METHOD AND COMMUNICATION APPARATUS," filed with the State Intellectual Property Office of China on October 22, 2021, which is incorporated herein by reference in its entirety.
[0003] In a wireless network, one user equipment (UE) may communicate with multiple base stations, which is called dual-connectivity (DC) or multi-radio dual connectivity (MR-DC). The network side can provide communication services to the same UE by using the resources of multiple base stations to provide the UE with high-rate transmission. In the MR-DC scenario, a base station that exchanges control plane signaling with the core network is called a master node (MN), and another base station is called a secondary node (SN). In the MR-DC scenario, a primary cell (PCell) resides in the master node, and a primary secondary cell (PSCell) resides in the secondary node.
[0004] In the MR-DC scenario, due to the mobility of the UE, the network side triggers a PSCell change (i.e., the network side indicates to the UE that it should handover from one PSCell to another). For example, the UE may complete the PSCell change by performing a conditional primary-secondary cell change (conditional PSCell change, CPC) procedure. However, in the MR-DC scenario, some CPC procedures cannot be performed as usual. Summary of the Invention
[0005] The embodiments of the present application disclose a communication method and a communication device, so that the CPC procedure can be carried out normally.
[0006] According to a first aspect, an embodiment of the present application provides a communication method, the method including: a first access network device receiving first indication information from a second access network device, the first indication information indicating to the first access network device that a first reconfiguration message should be sent after or before the first access network device sends first candidate primary / secondary cell information to the second access network device, the first candidate primary / secondary cell information indicating one or more first candidate primary / secondary cells accepted by the third access network device among candidate primary / secondary cells that the second access network device requests the third access network device to add; and the first access network device sending a first reconfiguration message to a terminal device based on the first indication information, the first reconfiguration message including configuration information corresponding to the one or more first candidate primary / secondary cells.
[0007] In this embodiment of the present application, the first indication information indicates to the first access network device that it should send a first reconfiguration message after or before sending the first candidate primary / secondary cell information to the second access network device. The first access network device sends the first reconfiguration message to the terminal device based on the first indication information. This solves the problem that the first access network device does not know whether to send the first reconfiguration message before sending the first candidate primary / secondary cell information or after sending the first candidate primary / secondary cell information, and therefore the CPC procedure can be performed normally.
[0008] According to a second aspect, an embodiment of the present application provides another communication method, the method including: a second access network device sending first indication information to a first access network device, the first indication information indicating to the first access network device that a first reconfiguration message should be sent after or before the first access network device sends first candidate primary / secondary cell information to the second access network device, the first candidate primary / secondary cell information indicating one or more first candidate primary / secondary cells accepted by the third access network device among candidate primary / secondary cells that the second access network device requests the third access network device to add, and the second access network device receiving the first candidate primary / secondary cell information from the first access network device.
[0009] In this embodiment of the present application, the first access network device sends first indication information to the first access network device, and the first indication information indicates to the first access network device that the first access network device should send a first reconfiguration message after or before sending the first candidate primary / secondary cell information to the second access network device, thereby solving the problem that the first access network device does not know whether to send the first reconfiguration message before sending the first candidate primary / secondary cell information or after sending the first candidate primary / secondary cell information, and therefore the CPC procedure can be performed normally.
[0010] In a possible implementation of the first or second aspect, the first indication information includes an indication field.
[0011] The indication field indicates to the first access network device that it should send a first reconfiguration message after sending first candidate primary / secondary cell information to the second access network device, and the indication field further indicates to the first access network device that it should send a second reconfiguration message after sending second candidate primary / secondary cell information to the second access network device, the second candidate primary / secondary cell information indicating one or more second candidate primary / secondary cells that the second access network device requests the fourth access network device to add and that have been accepted by the fourth access network device, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells. Alternatively, the indication field indicates to the first access network device that it should send a first reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device, the indication field further indicates to the first access network device that it should send a second reconfiguration message before sending the second candidate primary / secondary cell information to the second access network device, the second candidate primary / secondary cell information indicating one or more second candidate primary / secondary cells that have been accepted by the fourth access network device from among the candidate primary / secondary cells that the second access network device requests the fourth access network device to add, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells.
[0012] In this implementation, the indication field can indicate to the first access network device that it should send the first Reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device, and can also indicate to the first access network device that it should send the second Reconfiguration message after sending the second candidate primary / secondary cell information to the second access network device. Alternatively, the indication field can indicate to the first access network device that it should send the first Reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device, and can also indicate to the first access network device that it should send the second Reconfiguration message before sending the second candidate primary / secondary cell information to the second access network device, thereby reducing signaling overhead.
[0013] In a possible implementation of the first or second aspect, the first indication information includes an identification of the third access network device and / or an identification of one or more first candidate primary / secondary cells.
[0014] In this implementation, the first indication information includes an identification of the third access network device and / or an identification of one or more first candidate primary / secondary cells, and indicates a sequence in which the first access network device sends the first reconfiguration message and the first candidate primary / secondary cell information.
[0015] In a possible implementation of the first or second aspect, the first indication information includes an identification of a third access network device and / or an identification of one or more first candidate primary / secondary cells, and the first indication information includes an identification of a fourth access network device and / or an identification of one or more second candidate primary / secondary cells.
[0016] In this implementation, the first indication information further includes an identification of the fourth access network device and / or an identification of one or more second candidate primary / secondary cells. In this manner, the first indication information can indicate a sequence in which the first access network device sends the first reconfiguration message and the first candidate primary / secondary cell information, and can also indicate a sequence in which the first access network device sends the second reconfiguration message and the second candidate primary / secondary cell information. Therefore, signaling overhead is low.
[0017] In a possible implementation of the first or second aspect, the first indication information includes a first field and a second field. The first field corresponds to an identification of a third access network device and / or an identification of one or more first candidate primary / secondary cells, and the second field corresponds to an identification of a fourth access network device and / or an identification of one or more second candidate primary / secondary cells. The first field indicates to the first access network device that the first access network device should send a first reconfiguration message before or after sending the first candidate primary / secondary cell information to the second access network device. The second field indicates to the first access network device that the first access network device should send a second reconfiguration message before or after sending the second candidate primary / secondary cell information to the second access network device. The second candidate primary / secondary cell information indicates one or more second candidate primary / secondary cells, and the one or more second candidate primary / secondary cells are one or more candidate primary / secondary cells that the second access network device requests the fourth access network device to add and that have been accepted by the fourth access network device. The second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells.
[0018] In this implementation, the first indication information independently indicates a sequence in which the first access network device sends the first reconfiguration message and the first candidate primary / secondary cell information, and a sequence in which the first access network device sends the second reconfiguration message and the second candidate primary / secondary cell information. The sequence in which the first access network device sends the first reconfiguration message and the first candidate primary / secondary cell information, and the sequence in which the first access network device sends the second reconfiguration message and the second candidate primary / secondary cell information may be flexibly configured based on actual requirements so as to reduce signaling overhead.
[0019] In a possible implementation of the first or second aspect, the first indication information further includes an identification of a third access network device and / or an identification of one or more first candidate primary / secondary cells, and an identification of a fourth access network device and / or an identification of one or more second candidate primary / secondary cells.
[0020] In this implementation, the first indication information further includes an identification of a third access network device and / or an identification of one or more first candidate primary / secondary cells, as well as an identification of a fourth access network device and / or an identification of one or more second candidate primary / secondary cells, to accurately and quickly determine the identification of one or more first candidate primary / secondary cells that correspond to the first field and the identification of one or more second candidate primary / secondary cells that correspond to the second field.
[0021] In a possible implementation of the first or second aspect, the first indication information includes an identification of the third access network device.
[0022] In this implementation, the first indication information includes an identification of a third access network device and indicates a sequence in which the first access network device sends first candidate primary / secondary cell information corresponding to the third access network device and a first reconfiguration message.
[0023] In a possible implementation of the first or second aspect, the third access network device is a candidate secondary node for the terminal device, and the first indication information does not include identification of another candidate secondary node for the terminal device.
[0024] In this implementation, the first indication information only includes the identification of one candidate secondary node (i.e., the third access network device) of the terminal device, indicates the sequence in which the first access network device sends the first candidate primary-secondary cell information corresponding to the third access network device and the first reconfiguration message, and occupies a small amount of bits.
[0025] In a possible implementation of the first or second aspect, the first indication information includes a third field and a fourth field, where the third field corresponds to the identification of one or more first candidate primary / secondary cells, and the fourth field corresponds to the identification of one or more third candidate primary / secondary cells. The third field indicates to the first access network device that the first access network device should send a first reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device. The fourth field indicates to the first access network device that the first access network device should send a third reconfiguration message corresponding to one or more third candidate primary / secondary cells before sending the third candidate primary / secondary cell information corresponding to the one or more third candidate primary / secondary cells to the second access network device. The one or more third candidate primary / secondary cells belong to one or more access network devices. The one or more access network devices include the third access network device and / or another access network device.
[0026] Optionally, the first indication information further includes identification of one or more first candidate primary-secondary cells, and identification of one or more third candidate primary-secondary cells.
[0027] In this implementation, the third field indicates to the first access network device that the first access network device should send the first Reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device, and the fourth field indicates to the first access network device that the first access network device should send the third Reconfiguration message corresponding to one or more third candidate primary / secondary cells before sending the third candidate primary / secondary cell information corresponding to one or more third candidate primary / secondary cells to the second access network device. It can be understood that the first indication information may independently indicate the sequence in which the first access network device sends candidate primary / secondary cell information and Reconfiguration messages corresponding to any candidate primary / secondary cells, and signaling overhead is low.
[0028] In a possible implementation of the first or second aspect, the third field further corresponds to identifying one or more fourth candidate primary-secondary cells, and the third field further indicates to the first access network device that after the first access network device sends the fourth candidate primary-secondary cell information corresponding to the one or more fourth candidate primary-secondary cells to the second access network device, the first access network device should send a fourth reconfiguration message corresponding to the one or more fourth candidate primary-secondary cells, and the one or more fourth candidate primary-secondary cells belong to the one or more access network devices. Optionally, the one or more fourth candidate primary-secondary cells belong to an access network device other than the third access network device.
[0029] In this implementation, the third field further indicates to the first access network device that the first access network device should send a fourth reconfiguration message corresponding to one or more fourth candidate primary / secondary cells after sending the fourth candidate primary / secondary cell information corresponding to one or more fourth candidate primary / secondary cells to the second access network device. The third field can be understood to indicate a sequence in which the first access network device sends candidate primary / secondary cell information and reconfiguration messages corresponding to multiple candidate primary / secondary cells belonging to different access network devices. The fourth field can indicate a sequence in which the first access network device sends candidate primary / secondary cell information and reconfiguration messages corresponding to multiple candidate primary / secondary cells belonging to different access network devices. In other words, both the third field and the fourth field in the first indication information indicate a sequence in which the first access network device sends candidate primary / secondary cell information and reconfiguration messages corresponding to multiple candidate primary / secondary cells belonging to different access network devices, and can occupy a small number of bits.
[0030] In a possible implementation of the first or second aspect, the first indication information includes a third field and a fourth field, where the third field corresponds to the identification of one or more first candidate primary / secondary cells, and the fourth field corresponds to the identification of one or more third candidate primary / secondary cells. The third field indicates to the first access network device that the first access network device should send a first reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device. The fourth field indicates to the first access network device that the first access network device should send a third reconfiguration message corresponding to one or more third candidate primary / secondary cells after sending the third candidate primary / secondary cell information corresponding to the one or more third candidate primary / secondary cells to the second access network device. The one or more third candidate primary / secondary cells correspond to one or more access network devices.
[0031] Optionally, the first indication information further includes identification of one or more first candidate primary-secondary cells, and identification of one or more third candidate primary-secondary cells.
[0032] In this implementation, the third field indicates to the first access network device that the first access network device should send the first Reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device, and the fourth field indicates to the first access network device that the first access network device should send the third Reconfiguration message corresponding to one or more third candidate primary / secondary cells after sending the third candidate primary / secondary cell information corresponding to one or more third candidate primary / secondary cells to the second access network device. It can be understood that the first indication information may independently indicate the sequence in which the first access network device sends candidate primary / secondary cell information and Reconfiguration messages corresponding to any candidate primary / secondary cells, and signaling overhead is low.
[0033] In a possible implementation of the first or second aspect, the third field further corresponds to identifying one or more fourth candidate primary-secondary cells, and the third field further indicates to the first access network device that the first access network device should send a fourth reconfiguration message corresponding to the one or more fourth candidate primary-secondary cells before sending the fourth candidate primary-secondary cell information corresponding to the one or more fourth candidate primary-secondary cells to the second access network device, and the one or more fourth candidate primary-secondary cells belong to the one or more access network devices.
[0034] In this implementation, both the third field and the fourth field in the first indication information indicate a sequence in which the first access network device sends candidate primary / secondary cell information and reconfiguration messages corresponding to multiple candidate primary / secondary cells belonging to different access network devices, and can occupy a small amount of bits.
[0035] In a possible implementation of the first or second aspect, the first candidate primary / secondary cell information indicates one first candidate primary / secondary cell accepted by the third access network device among candidate primary / secondary cells that the second access network device requests the third access network device to add. The first reconfiguration message includes configuration information corresponding to the one first candidate primary / secondary cell. The first indication information includes a fifth field and an identification of the one first candidate primary / secondary cell corresponding to the fifth field. The fifth field indicates to the first access network device that the first access network device should send the first reconfiguration message before or after sending the first candidate primary / secondary cell information to the second access network device.
[0036] In this implementation, the fifth field indicates to the first access network device that the first reconfiguration message should be sent before or after the first access network device sends the first candidate primary / secondary cell information to the second access network device, thus providing high flexibility.
[0037] In a possible implementation of the first or second aspect, the first indication information further includes a sixth field, which corresponds to the identification of one sixth candidate primary / secondary cell. The sixth field indicates to the first access network device that a sixth reconfiguration message should be sent before or after the first access network device sends the sixth candidate primary / secondary cell information to the second access network device. The sixth candidate primary / secondary cell information is accepted by the sixth access network device and indicates a candidate primary / secondary cell among the candidate primary / secondary cells that the second access network device requests the sixth access network device to add. The sixth reconfiguration message includes configuration information of the sixth candidate primary / secondary cell.
[0038] In this implementation, the first indication information may independently indicate the sequence in which the first access network device sends a reconfiguration message and candidate primary / secondary cell information corresponding to each of the candidate primary / secondary cells to the second access network device, thus providing high flexibility and low signaling overhead.
[0039] In a possible implementation of the first or second aspect, the first indication information further includes an identification of a third access network device, and the identification of the one or more first candidate primary / secondary cells corresponds to the identification of the third access network device.
[0040] In this implementation, the first indication information further includes an identification of a third access network device, and the identities of the one or more first candidate primary-secondary cells correspond to the identification of the third access network device. In this manner, the first access network device may determine one or more first candidate primary-secondary cells based on the identification of the third access network device and the identities of the one or more first candidate primary-secondary cells, and the identities of the one or more first candidate primary-secondary cells may occupy a small number of bits.
[0041] In a possible implementation of the first or second aspect, the first indication information is included in a secondary node change required message.
[0042] In this implementation, the first indication information is included in the secondary node change required message, and the first indication information does not need to be further conveyed by using other signaling, so the signaling overhead is low.
[0043] In a possible implementation of the first aspect, the method further includes: when not receiving second indication information from the second access network device, the first access network device sends a fifth reconfiguration message to the terminal device based on the received first indication information, the second indication information indicating to the first access network device that the fifth reconfiguration message should be sent after or before the first access network device sends fifth candidate primary / secondary cell information to the second access network device, the fifth candidate primary / secondary cell information indicating one or more fifth candidate primary / secondary cells accepted by the fifth access network device among the candidate primary / secondary cells that the second access network device requests the fifth access network device to add, and the fifth reconfiguration message includes configuration information corresponding to the one or more fifth candidate primary / secondary cells.
[0044] In this implementation, when the first access network device does not receive the second indication information from the second access network device, the first access network device sends a fifth reconfiguration message to the terminal device based on the received first indication information. In other words, when the first access network device does not receive new indication information (second indication information), the first access network device may send a fifth reconfiguration message to the terminal device based on the received first indication information. In this way, the amount of time for sending the indication information can be reduced, and it can be shown that the sequence for sending the fifth reconfiguration information and the fifth candidate primary / secondary cell information can be quickly determined.
[0045] In a possible implementation of the first or second aspect, the first access network device is a master node of the terminal device, the second access network device is a source secondary node of the terminal device, and the third access network device is a candidate secondary node of the terminal device.
[0046] According to a third aspect, an embodiment of the present application provides another communication method, which includes: a terminal device accesses a target primary cell of a first access network device, and when the terminal device does not trigger a conditional primary-secondary cell addition and modification (conditional PSCell addition and modification, CPAC), the terminal device sends first indication information to the first access network device, and the first indication information is used to determine a reason why the terminal device does not trigger the CPAC.
[0047] In this embodiment of the present application, when the terminal device does not trigger CPAC, the terminal device sends first indication information to the first access network device, so that the first access network device determines the reason why the terminal device does not trigger CPAC. The first indication information may enable the first access network device to know more detailed information about why CPAC is not triggered.
[0048] In a possible implementation, the method further includes: the terminal device sends a measurement report to the first access network device, and the measurement report is used by the first access network device to update a CPAC configuration.
[0049] In this implementation, the terminal device sends a measurement report to the first access network device, so that the first access network device updates the CPAC configuration based on the measurement report.
[0050] In a possible implementation, the measurement report relates to each of the candidate primary and secondary cells corresponding to the target primary cell. For example, the measurement report is a measurement report relating to each of the candidate primary and secondary cells corresponding to the target primary cell.
[0051] In this implementation, the measurement report relates to each of the candidate primary and secondary cells corresponding to the target primary cell, and thus the first access network device knows the status of each of the candidate primary and secondary cells corresponding to the target primary cell based on the measurement report.
[0052] In a possible implementation, the measurement report includes target parameters for each of the candidate primary and secondary cells corresponding to the target primary cell, including one or more of a reference signal received power (RSRP), a reference signal received quality (RSRQ), and a signal to interference plus noise ratio (SINR).
[0053] In this implementation, the measurement report includes target parameters of each of the candidate primary and secondary cells corresponding to the target primary cell, and thus the first access network device optimizes the CPAC setting based on the target parameters.
[0054] In a possible implementation, the target parameters are obtained by the terminal device through measurements when the terminal device determines whether the CPAC trigger conditions are met.
[0055] In this implementation, the target parameters are obtained by the terminal device through measurements when the terminal device determines whether the CPAC trigger condition is met, so that the first access network device determines the reason why CPAC is not triggered based on the target parameters.
[0056] According to a fourth aspect, an embodiment of the present application provides another communication method, the method including: a first access network device receives first indication information from a terminal device; and the first access network device determines, based on the first indication information, a reason why the terminal device does not trigger a CPAC.
[0057] In this embodiment of the present application, the first access network device determines the reason why the terminal device does not trigger CPAC based on the first indication information, and further, the first access network device optimizes CPAC settings. The first indication information may enable the first access network device to know more detailed information about why CPAC is not triggered.
[0058] In a possible implementation, the method further includes: the first access network device receives a measurement report from the terminal device, and the measurement report is used by the first access network device to update a CPAC configuration.
[0059] In this implementation, the first access network device updates the CPAC configuration based on the measurement report.
[0060] In a possible implementation, the measurement report relates to each of the candidate primary and secondary cells corresponding to the target primary cell. For example, the measurement report is a measurement report relating to each of the candidate primary and secondary cells corresponding to the target primary cell.
[0061] In this implementation, the measurement report relates to each of the candidate primary and secondary cells corresponding to the target primary cell, and thus the first access network device knows the status of each of the candidate primary and secondary cells corresponding to the target primary cell based on the measurement report.
[0062] In a possible implementation, the measurement report includes target parameters of each of the candidate primary and secondary cells corresponding to the target primary cell: RSRP, RSRQ, and SINR.
[0063] In this implementation, the measurement report includes target parameters of each of the candidate primary and secondary cells corresponding to the target primary cell, and thus the first access network device optimizes the CPAC configuration based on the target parameters.
[0064] In a possible implementation, the target parameters are obtained by the terminal device through measurements when the terminal device determines whether the CPAC trigger conditions are met.
[0065] In this implementation, the target parameters are obtained by the terminal device through measurements when the terminal device determines whether the CPAC trigger condition is met, so that the first access network device determines the reason why CPAC is not triggered based on the target parameters.
[0066] In a possible implementation of the third or fourth aspect, the first indication information indicates that the terminal device has measured all candidate primary and secondary cells corresponding to the target primary cell, and none of the candidate primary and secondary cells corresponding to the target primary cell satisfies the CPAC trigger condition.
[0067] In this implementation, the first indication information may enable the first access network device to know that the reason the terminal device does not trigger CPAC is because the terminal device has measured all candidate primary and secondary cells corresponding to the target primary cell, but none of the candidate primary and secondary cells corresponding to the target primary cell meets the CPAC trigger condition.
[0068] In a possible implementation of the third or fourth aspect, the first indication information indicates that the terminal device cannot measure a candidate primary / secondary cell corresponding to the target primary cell.
[0069] In this implementation, the first indication information may enable the first access network device to know that the reason the terminal device does not trigger CPAC is because the terminal device cannot measure the candidate primary secondary cells corresponding to the target primary cell.
[0070] In a possible implementation of the third or fourth aspect, the first indication information indicates that the terminal device has measured several candidate primary / secondary cells corresponding to the target primary cell, and none of the candidate primary / secondary cells measured by the terminal device satisfies the CPAC trigger condition.
[0071] In this implementation, the first indication information may enable the first access network device to know that the reason the terminal device does not trigger CPAC is because the terminal device has measured several candidate primary-secondary cells corresponding to the target primary cell, but none of the candidate primary-secondary cells measured by the terminal device meets the CPAC trigger condition.
[0072] In a possible implementation of the third or fourth aspect, the first indication information indicates a measurement status of each of the candidate primary secondary cells corresponding to the target primary cell, and indicates that none of the candidate primary secondary cells measured by the terminal device satisfies the CPAC trigger condition.
[0073] In this implementation, the first indication information may enable the first access network device to know about the measurement status of each of the candidate primary and secondary cells corresponding to the target primary cell.
[0074] In a possible implementation of the third or fourth aspect, the first indication information indicates candidate primary / secondary cells measured by the terminal device among candidate primary / secondary cells corresponding to the target primary cell, and indicates that none of the candidate primary / secondary cells measured by the terminal device satisfies the CPAC trigger condition.
[0075] In this implementation, the first indication information may enable the first access network device to learn about candidate primary secondary cells corresponding to the target primary cell that are measured by the terminal device, and to learn that none of the candidate primary secondary cells measured by the terminal device meets the CPAC trigger condition.
[0076] According to a fifth aspect, an embodiment of the present application provides another communication method, the method including: a terminal device accessing a target primary cell of a first access network device, and the terminal device performing a conditional primary-secondary cell addition and change; ( CPAC ) When the terminal device does not trigger the measurement report, the terminal device sends a measurement report to the first access network device, and the measurement report is used by the first access network device to update the CPAC setting.
[0077] In this embodiment of the present application, when the terminal device does not trigger CPAC, the terminal device sends a measurement report to the first access network device, so that the first access network device updates the CPAC setting based on the measurement report.
[0078] In a possible implementation, when the terminal device does not trigger a CPAC, the first indication information is sent by the terminal device to the first access network device.
[0079] In a possible implementation, the measurement report relates to each of the candidate primary and secondary cells corresponding to the target primary cell.
[0080] In a possible implementation, the measurement report includes target parameters of each of the candidate primary and secondary cells corresponding to the target primary cell, the target parameters including one or more of RSRP, RSRQ, and SINR.
[0081] In a possible implementation, the target parameters are obtained by the terminal device through measurements when the terminal device determines whether the CPAC trigger conditions are met.
[0082] According to a sixth aspect, an embodiment of the present application provides another communication method, the method including: a first access network device receives a measurement report from a terminal device, and the first access network device updates a CPAC configuration based on the measurement report.
[0083] In this embodiment of the present application, the first access network device updates the CPAC setting based on the measurement report, and the CPAC setting is updated to better implement the primary-secondary cell handover of the terminal device and improve the communication quality of the terminal device.
[0084] In a possible implementation, the measurement report includes target parameters of each of the candidate primary and secondary cells corresponding to the target primary cell accessed by the terminal device, the target parameters including one or more of RSRP, RSRQ, and SINR.
[0085] In a possible implementation, the target parameters are obtained by the terminal device through measurements when the terminal device determines whether the CPAC trigger conditions are met.
[0086] In a possible implementation, the first access network device updating the CPAC configuration based on the measurement report includes updating each of the candidate primary secondary cells corresponding to the CPAC trigger threshold or the target primary cell based on the measurement report.
[0087] In this implementation, each of the candidate primary and secondary cells corresponding to the CPAC trigger threshold or the target primary cell is updated based on the measurement report, so that the terminal device accesses the primary and secondary cell that can provide better communication services to the terminal device.
[0088] According to a seventh aspect, an embodiment of the present application provides a communication device. The communication device has a function for implementing the actions of the method embodiment in the first aspect. This function may be implemented by hardware or by hardware executing corresponding software. The hardware or software may include one or more modules or units corresponding to the above functions. In a possible implementation, the communication device includes a transceiver module and a processing module. The transceiver module is configured to receive first indication information from a second access network device, the first indication information indicating to the first access network device that the first access network device should send a first reconfiguration message after or before sending first candidate primary / secondary cell information to the second access network device, and the first candidate primary / secondary cell information indicating one or more first candidate primary / secondary cells accepted by the third access network device among the candidate primary / secondary cells that the second access network device requests the third access network device to add. The processing module is configured to control the transceiver module to send a first reconfiguration message to the terminal device based on the first indication information, the first reconfiguration message including configuration information corresponding to one or more first candidate primary / secondary cells.
[0089] In a possible implementation, when second indication information is not received from the second access network device, the processing module is further configured to control the transceiver module to send a fifth reconfiguration message to the terminal device based on the received first indication information, wherein the second indication information indicates to the first access network device that it should send a fifth reconfiguration message after or before the first access network device sends fifth candidate primary / secondary cell information to the second access network device, the fifth candidate primary / secondary cell information indicates one or more fifth candidate primary / secondary cells accepted by the fifth access network device from among the candidate primary / secondary cells that the second access network device requests the fifth access network device to add, and the fifth reconfiguration message includes configuration information corresponding to the one or more fifth candidate primary / secondary cells.
[0090] According to an eighth aspect, an embodiment of the present application provides a communication device. The communication device has a function for implementing the actions of the method embodiment in the second aspect. This function may be implemented by hardware or by hardware executing corresponding software. The hardware or software may include one or more modules or units corresponding to the above function. In a possible implementation, the communication device includes a transceiver module. The transceiver module is configured to send first indication information to a first access network device, the first indication information indicating to the first access network device that the first access network device should send a first reconfiguration message after or before sending first candidate primary / secondary cell information to a second access network device, and the first candidate primary / secondary cell information indicates one or more first candidate primary / secondary cells that the second access network device requests the third access network device to add and that have been accepted by the third access network device. The transceiver module is further configured to receive first candidate primary and secondary cell information from the first access network device.
[0091] For technical effects brought about by possible implementations of the seventh aspect or the eighth aspect, please refer to the description of the technical effects of the first aspect or possible implementations of the first aspect.
[0092] According to a ninth aspect, an embodiment of the present application provides a communication device. The communication device has a function for implementing the actions of the method embodiment of the third aspect. This function may be implemented by hardware or by hardware executing corresponding software. The hardware or software may include one or more modules or units corresponding to the above functions. In a possible implementation, the communication device includes a processing module and a transceiver module. The processing module is configured to control a terminal device to access a target primary cell of a first access network device. The transceiver module is further configured to send first indication information to the first access network device when CPAC is not triggered, and the first indication information is used to determine why the terminal device does not trigger CPAC.
[0093] In a possible implementation, the transceiver module is further configured to send a measurement report to the first access network device, where the measurement report is used by the first access network device to update the CPAC configuration.
[0094] According to a tenth aspect, an embodiment of the present application provides a communication device. The communication device has a function for implementing the actions of the method embodiment of the fourth aspect. This function may be implemented by hardware or by hardware executing corresponding software. The hardware or software may include one or more modules or units corresponding to the above functions. In a possible implementation, the communication device includes a transceiver module and a processing module. The transceiver module is configured to receive first indication information from a terminal device. The processing module is configured to determine, based on the first indication information, why the terminal device does not trigger CPAC.
[0095] In a possible implementation, when the terminal device does not trigger a CPAC, the first indication information is sent by the terminal device to the first access network device.
[0096] In a possible implementation, the transceiver module is further configured to receive a measurement report from the terminal device, the measurement report being used by the first access network device to update the CPAC configuration.
[0097] For technical effects brought about by possible implementations of the ninth or tenth aspect, please refer to the description of the technical effects of the third aspect or possible implementations of the third aspect.
[0098] According to an eleventh aspect, an embodiment of the present application provides a communication device. The communication device has a function for implementing the actions in the method embodiment of the fifth aspect. This function may be implemented by hardware or by hardware executing corresponding software. The hardware or software may include one or more modules or units corresponding to the above functions. In a possible implementation, the communication device includes a processing module and a transceiver module. The processing module is configured to control a terminal device to access a target primary cell of a first access network device. The transceiver module is configured to send a measurement report to the first access network device when the terminal device does not trigger CPAC, and the measurement report is used by the first access network device to update the CPAC setting.
[0099] In a possible implementation, when the terminal device does not trigger a CPAC, the first indication information is sent by the terminal device to the first access network device.
[0100] For technical effects brought about by the eleventh aspect or possible implementations of the eleventh aspect, please refer to the description of the technical effects of the fifth aspect or possible implementations of the fifth aspect.
[0101] According to a twelfth aspect, an embodiment of the present application provides a communication device. The communication device has a function for implementing the actions of the method embodiment in the sixth aspect. This function may be implemented by hardware or by hardware executing corresponding software. The hardware or software may include one or more modules or units corresponding to the above functions. In a possible implementation, the communication device includes a transceiver module and a processing module. The transceiver module is configured to receive a measurement report from a terminal device. The processing module is configured to update a CPAC setting based on the measurement report.
[0102] In a possible implementation, the processing module is specifically configured to update the CPAC trigger threshold or each of the candidate primary secondary cells corresponding to the target primary cell based on the measurement report.
[0103] For technical effects brought about by the twelfth aspect or possible implementations of the twelfth aspect, please refer to the description of the technical effects of the sixth aspect or possible implementations of the sixth aspect.
[0104] According to a thirteenth aspect, the present application provides a communications apparatus, the communications apparatus including a processor, the processor may be configured to execute computer-executable instructions stored in a memory, to thereby perform a method according to the first aspect or any one of its possible implementations, or to perform a method according to the second aspect or any one of its possible implementations, or to perform a method according to the third aspect or any one of its possible implementations, or to perform a method according to the fourth aspect or any one of its possible implementations, or to perform a method according to the fifth aspect or any one of its possible implementations, or to perform a method according to the sixth aspect or any one of its possible implementations.
[0105] In this embodiment of the present application, in the process of implementing the above method, the process of sending information in the above method may be understood as the process of outputting information based on the instruction of a processor. When information is output, the processor outputs the information to the transceiver, which then transmits the information. After the information is output by the processor, the information may further require other processing and then reach the transceiver. Similarly, when the processor receives input information, the transceiver receives the information and inputs the information to the processor. Furthermore, after the transceiver receives the information, other processing may need to be performed on the information before the information is input to the processor.
[0106] Operations such as sending and / or receiving involving a processor may generally be understood as instructions output by the processor unless specifically described otherwise or unless the operations conflict with the actual function or internal logic of the operations in the relevant description.
[0107] In the implementation, the processor may be a processor specially configured to perform these methods, or may be a processor that executes computer instructions in a memory to perform these methods, such as a general-purpose processor. For example, the processor may be further configured to execute a program stored in the memory. When the program is executed, the communication device is enabled to perform the method described in the first aspect or any possible implementation of the first aspect. In a possible implementation, the memory is located outside the communication device. In a possible implementation, the memory is located inside the communication device.
[0108] In this embodiment of the present application, the processor and the memory may alternatively be integrated into one component, in other words, the processor and the memory may alternatively be integrated together.
[0109] In a possible implementation, the communication device further includes a transceiver, the transceiver being configured to receive packets, send packets, and the like.
[0110] According to a fourteenth aspect, the present application provides a data processing device, the data processing device including a processing circuit and an interface circuit. The interface circuit is configured to acquire data or output data. The processing circuit is configured to implement a corresponding method according to the first aspect or any one of its possible implementations, or the processing circuit is configured to implement a corresponding method according to the second aspect or any one of its possible implementations, or the processing circuit is configured to implement a corresponding method according to the third aspect or any one of its possible implementations, or the processing circuit is configured to implement a corresponding method according to the fourth aspect or any one of its possible implementations, or the processing circuit is configured to implement a corresponding method according to the fifth aspect or any one of its possible implementations, or the processing circuit is configured to implement a corresponding method according to the sixth aspect or any one of its possible implementations.
[0111] According to a fifteenth aspect, the present application provides a computer-readable storage medium, the computer-readable storage medium being used to store a computer program, which, when run on a computer, performs a method according to the first aspect or any one of its possible implementations, or a method according to the second aspect or any one of its possible implementations, or a method according to the third aspect or any one of its possible implementations, or a method according to the fourth aspect or any one of its possible implementations, or a method according to the fifth aspect or any one of its possible implementations, or a method according to the sixth aspect or any one of its possible implementations.
[0112] According to a sixteenth aspect, the present application provides a computer program product, the computer program product comprising a computer program or computer code which, when running on a computer, performs a method according to the first aspect or any one of its possible implementations, or performs a method according to the second aspect or any one of its possible implementations, or performs a method according to the third aspect or any one of its possible implementations, or performs a method according to the fourth aspect or any one of its possible implementations, or performs a method according to the fifth aspect or any one of its possible implementations, or performs a method according to the sixth aspect or any one of its possible implementations.
[0113] According to a seventeenth aspect, the present application provides a communication system including a first access network device according to the seventh aspect or any one of the possible implementations of the seventh aspect, and a second access network device according to the eighth aspect or any one of the possible implementations of the eighth aspect. [Brief explanation of the drawings]
[0114] In order to more clearly describe the technical solutions in the embodiments or background art of the present application, the following describes the accompanying drawings required to describe the embodiments or background art of the present application.
[0115] [Figure 1] FIG. 1 is a schematic diagram of the architecture of an MR-DC scenario according to an embodiment of the present application. [Figure 2] FIG. 2 illustrates an example of a base station side protocol stack and network element modules according to an embodiment of the present application. [Figure 3] FIG. 1 is a schematic diagram of the concept of different cells in dual connectivity according to an embodiment of the present application; [Figure 4] 1 is a flowchart of a communication method according to an embodiment of the present application; [Figure 5] FIG. 2 is a diagram illustrating an example of first indication information according to an embodiment of the present application. [Figure 6A] FIG. 10 is a diagram illustrating another example of first indication information according to an embodiment of the present application. [Figure 6B] FIG. 10 is a diagram illustrating another example of first indication information according to an embodiment of the present application. [Figure 7] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 8] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 9] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 10] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 11] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 12] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 13] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 14] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 15] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 16] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 17] 4 is a flowchart of another communication method according to an embodiment of the present application. [Figure 18] FIG. 18 is a schematic diagram of the structure of a communication device 1800. [Figure 19] 1 is a schematic diagram of the structure of another communication device 190 according to an embodiment of the present application. [Figure 20] 2 is a schematic diagram of the structure of another communication device 200 according to an embodiment of the present application. DETAILED DESCRIPTION OF THE INVENTION
[0116] Terms such as "first," "second," and the like in this specification, claims, and accompanying drawings of this application are used merely to distinguish between different objects, not to describe a particular sequence. In addition, terms such as "comprise" and "have," as well as any other variations thereof, are intended to cover a non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the recited steps or units, but instead optionally further includes unrecited steps or units, or optionally further includes other steps or units inherent to the process, method, product, or device.
[0117] An "embodiment" as used herein indicates that a particular feature, structure, or characteristic described with reference to this embodiment may be included in at least one embodiment of the present application. Appearances of this phrase in various places in this specification do not necessarily refer to the same embodiment, nor are they separate or alternative embodiments exclusive of another embodiment. Those skilled in the art may explicitly and implicitly understand that the embodiments described herein may be combined with other embodiments.
[0118] The terms used in the following embodiments of the present application are intended to describe particular embodiments only and are not intended to limit the present application. As used in this specification and the appended claims of the present application, the singular terms "a," "a," "the," "the," "the," and "the one" are also intended to include the plural forms unless the context clearly dictates otherwise. The term "and / or" as used in this application should be further understood to refer to and include any or all possible combinations of one or more of the listed items. For example, "A and / or B" may represent three cases: only A is present, only B is present, and both A and B are present, where A and B can be singular or plural. The term "plurality" as used in this application means two or more.
[0119] The network architecture in this application is described in detail below.
[0120] The technical solutions provided in this application may be applied to various communication systems, such as long term evolution (LTE) systems, LTE frequency division duplex (FDD) systems, LTE time division duplex (TDD) systems, universal mobile telecommunication system (UMTS), worldwide interoperability for microwave access (WiMAX) communication systems, fourth generation (4G) communication systems, non-terrestrial network (NTN) systems, fifth generation (5G) communication systems or new radio (NR) systems, and other future communication systems such as 6G systems. The following describes the technical solutions provided in this application by using an MR-DC scenario in a 5G communication system as an example.
[0121] Figure 1 is a schematic diagram of an architecture of an MR-DC scenario according to an embodiment of the present application. As shown in Figure 1, a communication system includes one or more user equipments. In Figure 1, only one user equipment is used as an example, and one or more access network devices (e.g., base stations) that can provide communication services to the user equipment are used. In Figure 1, only one access network device 1 (master node of the terminal device) and one access network device 2 (secondary node of the terminal device) are used as examples.
[0122] User equipment (UE) is a device with wireless transceiver functionality. User equipment may communicate with one or more core network (CN) devices (also called core devices) through access network devices (also called access devices) in a radio access network (RAN). User equipment may be located on the ground and include indoor user equipment, outdoor user equipment, handheld user equipment, or vehicle-mounted user equipment, or may be located on water (e.g., on a ship), or in the air (e.g., on an airplane, balloon, or satellite). In the embodiments of the present application, the UE may alternatively be referred to as a terminal device, and may be a mobile phone, a tablet computer (pad), a computer with wireless transceiver function, a virtual reality (VR) terminal device, an augmented reality (AR) terminal device, a wireless terminal device in industrial control, a wireless terminal device in self-driving, a wireless terminal device in remote medical applications, a wireless terminal device in a smart grid, a wireless terminal in transportation safety, a wireless terminal device in a smart city, a wireless terminal in a smart home, etc. Optionally, the user equipment may be a handheld device with wireless communication function, a vehicle-mounted device, a wearable device, a terminal in the Internet of Things or the Internet of Vehicles, any form of terminal in a 5G network or a future network, etc. This is not limited in the present application.An access network device may be any device having wireless transceiver functionality and capable of communicating with user equipment, e.g., a radio access network (RAN) node that connects user equipment to a wireless network. Currently, some examples of RAN nodes include gNB, transmission reception point (TRP), evolved NodeB (eNB), radio network controller (RNC), NodeB (NB), base station controller (BSC), base transceiver station (BTS), home base station (e.g., home evolved NodeB or home NodeB (HNB)), base band unit (BBU), wireless fidelity (Wi-Fi) access point (AP), integrated access and backhaul (IAB), etc. In this application, an example in which a base station is used as an access network device is used for illustration.
[0123] FIG. 2 illustrates an example of a protocol stack and network element modules on a base station side according to an embodiment of the present application. As illustrated in FIG. 2, a base station may include a CU and a DU. One CU may be connected to one DU, or multiple DUs may share one CU. CU-DU division may be implemented based on a protocol stack. In a possible manner, a radio resource control (RRC) layer, a service data adaptation protocol (SDAP) layer, and a packet data convergence protocol (PDCP) layer are deployed in the CU, and a radio link control (RLC) layer, a media access control (MAC) layer, and a physical layer (PHY) are deployed in the DU. As illustrated in FIG. 2, in a possible network structure, a central unit (CU) node may be divided into a control plane (CU-CP) and a user plane (CU-UP). The CU-CP is responsible for control plane functions and mainly includes radio resource control (RRC) and packet data convergence protocol (PDCP)-C. PDCP-C is mainly responsible for data encryption and decryption, integrity protection, data transmission, etc. in the control plane. The CU-UP is responsible for user plane functions and mainly includes service data adaptation protocol (SDAP) and PDCP-U. SDAP is mainly responsible for processing core network data and mapping flows to bearers. PDCP-U is mainly responsible for data plane encryption and decryption, integrity protection, header compression, sequence number maintenance, data transmission, etc. The CU-CP and CU-UP are connected via an E1 interface.CU-CP indicates that the CU is connected to the core network through the Ng interface. The CU-CP is connected to the DU through F1-C (control plane). The CU-UP is connected to the DU through F1-U (user plane). Of course, in another possible implementation, the PDCP-C is instead in the CU-UP.
[0124] In order to more clearly describe the technical solutions provided in the embodiments of the present application, the following will first describe some technical features in the embodiments of the present application.
[0125] MR-DC:
[0126] MR-DC comes in various forms, such as evolved universal terrestrial radio access and new radio dual connectivity (E-UTRA NR dual connectivity, EN-DC), next generation radio access technology and evolved universal terrestrial radio access dual connectivity (next generation RAN E-UTRA dual connectivity, NGEN-DC), new radio and evolved universal terrestrial radio access dual connectivity (NR E-UTRA dual connectivity, NE-DC), and new radio dual connectivity (NR dual connectivity, NR-DC). In EN-DC, the master node is a long term evolution (LTE) base station connected to an evolved packet core (EPC) network of 4th generation (4G) mobile communications technology, and the secondary node is an NR base station. In NGEN-DC, the master node is an LTE base station ng-eNB connected to a fifth generation core (5GC) network of fifth generation (5G) mobile communications technology, and the secondary node is an NR base station. In NE-DC, the master node is an NR base station connected to 5GC, and the secondary node is an LTE base station. In NR-DC, the master node is an NR base station connected to 5GC, and the secondary node is an NR base station.
[0127] For a UE in MR-DC, the SN may have a user plane connection to the core network connected to the MN. In other words, in the downlink direction, the core network connected to the MN may send data directly to the UE by using a secondary node, and in the uplink direction, the UE may send data directly to the core network connected to the MN by using the SN. In addition, in addition to establishing a control plane connection, there may be a user plane connection between the MN and the core network.
[0128] A UE may simultaneously receive services from multiple cells served by one base station. Therefore, a serving cell group provided to a UE by an MN is sometimes called a master cell group (MCG) for short. Similarly, a serving cell group provided to a UE by an SN is called a secondary cell group (SCG) for short. Each of the MCG and SCG includes at least one cell. When there is only one cell in the MCG, the cell is the UE's PCell. When there is only one cell in the SCG, the cell is the UE's PSCell. A primary cell is deployed on a dominant frequency and is a cell from which a UE initiates an initial connection establishment or connection re-establishment process, or is designated as a primary cell in a handover process. A primary / secondary cell is a cell from which a UE initiates a random access process at a secondary node, or a cell from which a UE initiates data transmission in a secondary node change process without performing a random access process, or a cell from which random access is initiated in a synchronization reconfiguration process. To normalize various nouns in NR, PCells and PSCells are collectively referred to as special cells, i.e., SpCells. When there are multiple cells in an MCG or SCG, cells other than SpCells are called secondary cells, i.e., SCells. In this case, SCells and SpCells in each cell group implement carrier aggregation (CA) to jointly provide transmission resources to a UE. A UE may implement uplink and downlink communications by simultaneously using multiple cells (carriers) to support high-speed data communications. Figure 3 is a schematic diagram of the concept of various cells in dual connectivity according to an embodiment of the present application. As shown in Figure 3, SCells and SpCells implement carrier aggregation.
[0129] Conditional handover (CHO):
[0130] The source base station sends CHO configuration information to the UE when the source link quality is good. In particular, the source base station may send the CHO configuration information by using radio resource control (RRC) reconfiguration signaling. The CHO configuration information may include information about the CHO trigger condition and one or more candidate cells (e.g., the cell global identifier (CGI) of the candidate cell or the physical cell identifier (PCI) of the candidate cell and frequency information corresponding to the candidate cell). After receiving the CHO configuration information for conditional handover, the UE measures whether the cell quality of the candidate cell satisfies the handover trigger condition based on the CHO configuration information and uses the specific candidate cell that satisfies the handover trigger condition as the target cell. Then, the UE performs a random access process with the determined target cell. When the random access is successfully completed, the UE sends an RRC reconfiguration complete message to the base station to which the target cell belongs (i.e., the target base station) to notify the target base station that the conditional handover is completed.
[0131] CPC:
[0132] In an MR-DC scenario, to improve the communication performance of a moving UE, the UE may complete a PSCell change in a manner similar to CHO, or in other words, apply CHO to the PSCell change procedure. The PSCell change method is called CPC. Either the MN or the SN can trigger CPC. The MN or SN currently connected to the UE provides the UE with a candidate PSCell, where the SN is the UE's source secondary node (source SN, S-SN). Finally, the UE selects a candidate PSCell for changing the current PSCell. The UE accesses the target SN (target SN, T-SN) to which the candidate PSCell belongs and communicates with the target SN through the candidate PSCell to complete the PSCell change. An implementation of SN-triggered CPC includes the following: Before sending candidate primary and secondary cell information to the S-SN, the MN sends a reconfiguration message corresponding to the candidate primary and secondary cell to the UE. Another implementation of SN-triggered CPC includes the following: After sending the candidate primary and secondary cell information to the S-SN, the MN sends a reconfiguration message to the UE.
[0133] Since the SN-triggered CPC has various implementations, the MN cannot know the specific implementation used to perform the corresponding operation. As a result, the CPC procedure may not be performed normally. The communication solution provided in this application will be described below with reference to the accompanying drawings.
[0134] 4 is a flowchart of a communication method according to an embodiment of the present application. As shown in FIG. 4, the method procedure includes the following steps:
[0135] 401: A first access network device receives first indication information from a second access network device.
[0136] The first indication information (indication information 1) indicates to a first access network device (hereinafter referred to as access network device 1) that it should send a first reconfiguration message after or before sending first candidate primary / secondary cell information to a second access network device. The first candidate primary / secondary cell information indicates one or more first candidate primary / secondary cells accepted by the third access network device among candidate primary / secondary cells that the second access network device requests the third access network device to add. The multiple first candidate primary / secondary cells are candidate primary / secondary cells accepted by the third access network device. Access network device 1 may be an MN of the UE, the second access network device may be an S-SN of the UE, and the third access network device may be a candidate T-SN of the UE.
[0137] In some implementations, the first access network device determines a first reconfiguration message, which is used by the terminal to perform CPC. The first reconfiguration message may be an RRC Reconfiguration (RRCReconfiguration) message. The first reconfiguration message may include a Source-Secondary-Node RRC Reconfiguration (S-SN-RRCReconfiguration) message sent by the second access network device to the MN, where the S-SN-RRCReconfiguration message may include a measurement ID. The first reconfiguration message may further include conditional primary / secondary cell information (conditional PSCell information). The conditional primary / secondary cell information may include one or more PSCell IDs (i.e., IDs of one or more first candidate primary / secondary cells), as well as an execution condition ID corresponding to the one or more PSCell IDs, a Target-Secondary-Node RRC Reconfiguration (T-SN-RRCReconfiguration) message corresponding to the one or more PSCell IDs, and an MN-RRCReconfiguration message corresponding to the one or more PSCell IDs. The MN-RRCReconfiguration message is new configuration information corresponding to the MN when the UE accesses a new PSCell. The one-to-one correspondence between the execution condition ID and the measurement ID may be understood as follows: The execution condition ID and the measurement ID represent the same content. The measurement ID corresponds to several measurement configurations, and the measurement configuration may include information such as a CPAC trigger event and a measurement gap. Each of the measurement IDs corresponds to a different measurement configuration. In some implementations, the first indication information is included in a secondary node change required (SN change required) message.
[0138] S402: The first access network device sends a first reconfiguration message to the UE based on the first indication information.
[0139] The first reconfiguration message includes configuration information corresponding to one or more first candidate primary and secondary cells.
[0140] Optionally, the method further includes the following step S403: the access network device 1 sends first candidate primary / secondary cell information to the second access network device. It may be understood that step S403 may be performed before step S402 or after step S403. The access network device 1 determines the execution sequence of step S402 and step S403 based on the first indication information.
[0141] In this embodiment of the present application, the first indication information indicates to the access network device 1 that it should send a first reconfiguration message after or before sending the first candidate primary / secondary cell information to the second access network device. The first access network device sends the first reconfiguration message to the UE based on the first indication information, so that the first access network device can clearly determine the sequence of sending the first reconfiguration information to the UE and sending the first candidate primary / secondary cell information to the second access network device, and perform the subsequent CPC procedure normally.
[0142] In the present application, the granularity of the first indication information may be configured based on actual requirements. It should be understood that when the first indication information has different granularities, the first indication information includes different information, and therefore has different functions. Some possible implementations and possible granularities of the first indication information are described below.
[0143] In a possible implementation, the first indication information includes an indication field, which indicates to the access network device 1 that it should send a first reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device, the indication field further indicates to the access network device 1 that it should send a second reconfiguration message after sending the second candidate primary / secondary cell information to the second access network device, the second candidate primary / secondary cell information indicating one or more second candidate primary / secondary cells that have been accepted by the fourth access network device among the candidate primary / secondary cells that the second access network device requests the fourth access network device to add, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells. Alternatively, the indication field indicates to the access network device 1 that it should send a first reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device, and the indication field further indicates to the access network device 1 that it should send a second reconfiguration message before sending the second candidate primary / secondary cell information to the second access network device, the second candidate primary / secondary cell information indicating one or more second candidate primary / secondary cells that have been accepted by the fourth access network device from among the candidate primary / secondary cells that the second access network device requests the fourth access network device to add, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells.
[0144] For example, the indication field included in the first indication information occupies 1 bit. When the indication field is "1", it is indicated that the access network device 1 should send a first reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device, and it is further indicated that the access network device 1 should send a second reconfiguration message after sending the second candidate primary / secondary cell information to the second access network device. Alternatively, when the indication field is "0", it is indicated that the access network device 1 should send a first reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device, and it is further indicated that the access network device 1 should send a second reconfiguration message before sending the second candidate primary / secondary cell information to the second access network device.
[0145] The fourth access network device is a candidate T-SN and may be the third access network device or another access network device. It should be understood that if the fourth access network device is the third access network device, the first reconfiguration message and the first candidate primary / secondary cell information are sent by the MN in one SN-triggered CPC procedure, and the second reconfiguration message and the second candidate primary / secondary cell information are sent by the MN in another SN-triggered CPC procedure.
[0146] The first candidate primary / secondary cell information and the second candidate primary / secondary cell information may be considered as two types of candidate primary / secondary cell information corresponding to a second access network device (i.e., the S-SN of the UE). Each type of candidate primary / secondary cell information separately corresponds to one or more candidate primary / secondary cells of different candidate T-SNs. The first reconfiguration message and the second reconfiguration message may be considered as two reconfiguration messages (e.g., RRCReconfiguration messages) corresponding to the second access network device. The granularity of the first indication information may relate to each pair of candidate primary / secondary cell information and reconfiguration message corresponding to the second access network device. For example, both the first candidate primary / secondary cell information and the first reconfiguration message correspond to the first candidate primary / secondary cell, or both the second candidate primary / secondary cell information and the second reconfiguration message correspond to the second candidate primary / secondary cell. In other words, the granularity of the first indication information may be per source secondary node, i.e., per S-SN. In other words, for each pair of candidate primary / secondary cell information and a reconfiguration message corresponding to a different candidate T-SN and determined by the second access network device, the first indication information indicates to the access network device 1 that the access network device 1 should send a reconfiguration message after (or before) sending the candidate primary / secondary cell information to the second access network device. In some implementations, the first indication information includes an indication field. The indication field indicates a sequence in which the first access network device sends all pairs of candidate primary / secondary cell information and a reconfiguration message corresponding to all candidate target secondary nodes and determined by the second access network device.For example, if the first indication information includes an indication field 1, the indication information indicates to the access network device 1 that after the access network device 1 sends any candidate primary / secondary cell information to the second access network device, it should send a reconfiguration message corresponding to any candidate primary / secondary cell information. In another example, if the first indication information includes an indication field 0, the indication information indicates to the access network device 1 that it should send a reconfiguration message corresponding to any candidate primary / secondary cell information before it sends any candidate primary / secondary cell information to the second access network device.
[0147] In some implementations, the first indication information may include an identification of the second access network device, whereby, for any pair of candidate primary / secondary cell information and reconfiguration message corresponding to the second access network device, the first indication information indicates to access network device 1 that it should send a reconfiguration message to the UE after (or before) sending the candidate primary / secondary cell information to the second access network device.
[0148] In this implementation, the granularity of the first indication information is each of the source secondary nodes. In this way, the second access network device can indicate the sequence in which the access network device 1 sends any pair of candidate primary-secondary cell information and reconfiguration message by sending the first indication information to the access network device 1. Therefore, the signaling overhead is low, and the CPC procedure can be performed as usual.
[0149] It may be understood that the third access network device and the fourth access network device used as T-SNs are merely examples, and the second access network device used as S-SN may determine N (where N≧1) candidate T-SNs. The indication field in the first indication information may be used to indicate the sequence in which the candidate primary and secondary cell information and the reconfiguration message corresponding to each of the N candidate T-SNs are sent. In other words, the candidate primary and secondary cell information and the reconfiguration message corresponding to the N candidate T-SNs are sent in the same sequence.
[0150] In a possible implementation, the first indication information indicates to the access network device 1 that it should send a first reconfiguration message to the UE after (or before) sending the first candidate primary / secondary cell information to the second access network device. The first indication information further indicates to the access network device 1 that it should send a second reconfiguration message to the UE before (or after) sending the second candidate primary / secondary cell information to the second access network device. The second candidate primary / secondary cell information indicates one or more second candidate primary / secondary cells that have been accepted by the fourth access network device among the candidate primary / secondary cells that the second access network device requests the fourth access network device to add. The second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells.
[0151] It can be understood that the first indication information may independently indicate a sequence in which the access network device 1 sends the first reconfiguration message and the first candidate primary / secondary cell information and a sequence in which the access network device 1 sends the second reconfiguration message and the second candidate primary / secondary cell information. The first candidate primary / secondary cell information and the first reconfiguration message may be regarded as a pair of candidate primary / secondary cell information and a reconfiguration message corresponding to a third access network device (one T-SN of the UE). The second candidate primary / secondary cell information and the second reconfiguration message may be regarded as a pair of candidate primary / secondary cell information and a reconfiguration message corresponding to a fourth access network device (another T-SN of the UE). It should be understood that the first indication information may independently indicate a sequence in which the access network device 1 sends each pair of candidate primary / secondary cell information and a reconfiguration message corresponding to a third access network device (e.g., first candidate primary / secondary cell information and a first reconfiguration message) and a sequence in which the access network device 1 sends each pair of candidate primary / secondary cell information and a reconfiguration message corresponding to a fourth access network device (e.g., second candidate primary / secondary cell information and a second reconfiguration message). It can be understood that the granularity of the first indication information may relate to each pair of candidate primary / secondary cell information and a reconfiguration message corresponding to each T-SN (e.g., the third access network device and the fourth access network device). In other words, the granularity of the first indication information may be per target secondary node (T-SN), i.e., per candidate SN.
[0152] In some implementations, the first indication information includes a first field and a second field. The first field corresponds to an identification of the third access network device and / or an identification of one or more first candidate primary / secondary cells, and the second field corresponds to an identification of the fourth access network device and / or an identification of one or more second candidate primary / secondary cells. The first field indicates to the first access network device that the first access network device should send a first reconfiguration message before or after sending the first candidate primary / secondary cell information to the second access network device. The second field indicates to the first access network device that the first access network device should send a second reconfiguration message before or after sending the second candidate primary / secondary cell information to the second access network device. The second candidate primary / secondary cell information indicates one or more second candidate primary / secondary cells, and the one or more second candidate primary / secondary cells are one or more candidate primary / secondary cells that the second access network device requests the fourth access network device to add and that have been accepted by the fourth access network device. The second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells.
[0153] In these embodiments, the identities of the one or more first candidate primary / secondary cells may be the identities of all candidate primary / secondary cells that the second access network device requests the third access network device to add and that have been accepted by the third access network device. The identities of the one or more second candidate primary / secondary cells may be the identities of all candidate primary / secondary cells that the second access network device requests the fourth access network device to add and that have been accepted by the fourth access network device. Thus, the first field corresponds to the identity of the third access network device, i.e., the identities of the one or more first candidate primary / secondary cells, and the second field corresponds to the identity of the fourth access network device, i.e., the identities of the one or more second candidate primary / secondary cells.
[0154] In some implementations, the first indication information may further include an identification of a third access network device and / or an identification of one or more first candidate primary / secondary cells, as well as an identification of a fourth access network device and / or an identification of one or more second candidate primary / secondary cells. Optionally, the first indication information includes an identification of one or more candidate primary / secondary cells of the third access network device but does not include an identification of the third access network device; the first indication information may include an identification of one or more candidate primary / secondary cells of the fourth access network device but does not include an identification of the fourth access network device. Optionally, the first indication information includes an identification of the third access network device but does not include an identification of one or more candidate primary / secondary cells; the first indication information may include an identification of the fourth access network device but does not include an identification of one or more candidate primary / secondary cells of the fourth access network device.
[0155] FIG. 5 shows an example of first indication information according to an embodiment of the present application. As shown in FIG. 5, the first indication information includes an identification of a third access network device, an identification of a fourth access network device, a first field, and a second field. The first field may be one or more bits, and the second field may also be one or more bits. For example, the first field is “0” and the second field is “1.” The first field being “0” indicates that the first reconfiguration message is sent before the first candidate primary / secondary cell information is sent. The second field being “1” indicates that the second reconfiguration message is sent after the second candidate primary / secondary cell information is sent. In another example, the first field is “00” and the second field is “11.” The first field being “00” indicates that the first reconfiguration message is sent before the first candidate primary / secondary cell information is sent. The second field being "11" indicates that the second reconfiguration message is sent after the second candidate primary / secondary cell information is sent. In FIG. 5, the first field corresponds to the identification of the third access network device, and the second field corresponds to the identification of the fourth access network device. It should be understood that the first indication information may include the identification of two or more T-SNs (e.g., the third access network device and the fourth access network device) and fields corresponding to the T-SNs (e.g., the first field and the second field). Table 1 shows an example of each identification of the T-SN and a field corresponding to the identification, where the identification and field are included in the first indication information.
[0156] [Table 1]
[0157] In some implementations, the first field may correspond to the identification of one or more access network devices, and the second field may correspond to the identification of one or more access network devices. For example, the first field corresponds to the identification of access network device 3 and the identification of access network device 4. The first field indicates the sequence in which the first access network device sends candidate primary / secondary cell information and reconfiguration messages corresponding to access network device 3 (one T-SN of the UE), and further indicates the sequence in which the first access network device sends candidate primary / secondary cell information and reconfiguration messages corresponding to access network device 4 (another T-SN of the UE). In other words, one field may be used to indicate pairs of candidate primary / secondary cell information and reconfiguration messages corresponding to multiple T-SNs that should be sent in the same sequence. In these embodiments, multiple fields corresponding to multiple T-SNs do not need to be used, and therefore fewer bits are occupied.
[0158] In some implementations, the first indication information includes two or more fields, each corresponding to an identification of one access network device, and each of the fields may independently indicate candidate primary / secondary cell information and a sequence of reconfiguration messages corresponding to one access network device.
[0159] In this implementation, the granularity of the first indication information is per candidate SN, and the first indication information may independently indicate a sequence in which the access network device 1 sends each of the pairs of candidate primary and secondary cell information and reconfiguration messages corresponding to each T-SN of the UE (e.g., the third access network device and the fourth access network device), thus providing high flexibility. In addition, it is not required to use two or more pieces of indication information to respectively indicate the sequences of the pairs of candidate primary and secondary cell information and reconfiguration messages corresponding to two or more T-SNs, thereby reducing signaling overhead.
[0160] In a possible implementation, the third access network device is the T-SN of the UE, and the first indication information includes the identification of the third access network device but does not include the identification of another T-SN of the UE. In this implementation, the first indication information includes only the identification of one T-SN of the UE (i.e., the third access network device) and indicates the sequence in which the access network device 1 sends each pair of candidate primary / secondary cell information and reconfiguration message corresponding to the third access network device (e.g., the first candidate primary / secondary cell information and the first reconfiguration message), thereby occupying a small number of bits. The granularity of the first indication information may relate to each pair of candidate primary / secondary cell information and reconfiguration message corresponding to each T-SN (e.g., the third access network device). In other words, the granularity of the first indication information may be per target secondary node (T-SN), i.e., per T-SN. It should be understood that in this implementation, each of the indication information corresponds to one T-SN of the UE. For example, the first access network device sends indication information 1 (i.e., first indication information) to the access network device 1, where the first indication information only indicates to the access network device 1 that the access network device 1 should send a first reconfiguration message before (or after) sending the first candidate primary / secondary cell information to the second access network device. The first access network device sends indication information 2 to the access network device 1, where the first indication information only indicates to the access network device 1 that the access network device 1 should send a second reconfiguration message before (or after) sending the second candidate primary / secondary cell information to the second access network device.
[0161] In a possible implementation, the first indication information includes a third field and a fourth field, the third field corresponding to the identification of one or more first candidate primary-secondary cells, and the fourth field corresponding to the identification of one or more third candidate primary-secondary cells.
[0162] Optionally, the third field indicates to the first access network device that the first access network device should send the first Reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device. The fourth field indicates to the first access network device that the first access network device should send the third Reconfiguration message corresponding to one or more third candidate primary / secondary cells before sending the third candidate primary / secondary cell information corresponding to the one or more third candidate primary / secondary cells to the second access network device. The one or more third candidate primary / secondary cells belong to one or more access network devices, and the one or more access network devices include the third access network device and / or another access network device. In some implementations, the third field further corresponds to the identification of one or more fourth candidate primary / secondary cells. The third field further indicates to the first access network device that after the first access network device sends the fourth candidate primary / secondary cell information corresponding to the one or more fourth candidate primary / secondary cells to the second access network device, the first access network device should send a fourth reconfiguration message corresponding to the one or more fourth candidate primary / secondary cells.
[0163] Optionally, the third field indicates to the first access network device that the first access network device should send the first Reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device. The fourth field indicates to the first access network device that the first access network device should send the third Reconfiguration message corresponding to the one or more third candidate primary / secondary cells after sending the third candidate primary / secondary cell information corresponding to the one or more third candidate primary / secondary cells to the second access network device. The one or more third candidate primary / secondary cells correspond to one or more access network devices. In some implementations, the first indication information further includes an identification of one or more fourth candidate primary / secondary cells corresponding to the third field. The third field further indicates to the first access network device that the first access network device should send a fourth reconfiguration message corresponding to the one or more fourth candidate primary-secondary cells before sending the fourth candidate primary-secondary cell information corresponding to the one or more fourth candidate primary-secondary cells to the second access network device.
[0164] The one or more fourth candidate primary / secondary cells belong to one or more access network devices, including a third access network device and / or another access network device used as a candidate T-SN.
[0165] Optionally, the first indication information further includes identification of one or more first candidate primary-secondary cells, and identification of one or more third candidate primary-secondary cells.
[0166] It should be understood that the one or more third candidate primary / secondary cells corresponding to the fourth field may belong to the same access network device or different access network devices. The third field may correspond to candidate primary / secondary cells belonging to different access network devices. The identification of one or more first candidate primary / secondary cells corresponding to the third field may be the identification of some candidate primary / secondary cells accepted by the third access network device, or the identification of all candidate primary / secondary cells accepted by the third access network device. For example, the third access network device accepts first candidate primary / secondary cell 1 to first candidate primary / secondary cell 10 that the second access network device requests the third access network device to add. First candidate primary / secondary cell 1 to first candidate primary / secondary cell 4 correspond to the third field, and first candidate primary / secondary cell 5 to first candidate primary / secondary cell 10 correspond to the fourth field. In this example, the third field may indicate to the first access network device that the first access network device should send a Reconfiguration message corresponding to the first candidate primary secondary cell 1 to the first candidate primary secondary cell 4 after sending the candidate primary secondary cell information corresponding to the first candidate primary secondary cell 1 to the first candidate primary secondary cell 4 to the second access network device. The fourth field may indicate to the first access network device that the first access network device should send a Reconfiguration message corresponding to the first candidate primary secondary cell 5 to the first candidate primary secondary cell 10 before sending the candidate primary secondary cell information corresponding to the first candidate primary secondary cell 5 to the first candidate primary secondary cell 10 to the second access network device. For an access network device, the candidate primary secondary cells received or rejected by the access network device may be divided into two parts. One part corresponds to the third field, and the other part corresponds to the fourth field.Alternatively, for an access network device, all candidate primary / secondary cells received or rejected by the access network device may correspond to the third field or the fourth field. The third field may correspond to the identification of candidate primary / secondary cells belonging to different access network devices, or may simply correspond to the identification of one or more candidate primary / secondary cells belonging to the same access network device. Similarly, the fourth field may correspond to the identification of candidate primary / secondary cells belonging to different access network devices, or may simply correspond to the identification of one or more candidate primary / secondary cells belonging to the same access network device.
[0167] It can be understood that the first indication information may independently indicate a sequence in which the access network device 1 sends a reconfiguration message and candidate primary / secondary cell information corresponding to each of the candidate primary / secondary cells. The granularity of the first indication information may relate to the candidate primary / secondary cell information and the reconfiguration message corresponding to each of the candidate primary / secondary cells. In other words, the granularity of the first indication information may be per candidate primary / secondary cell, i.e., per PSCell. FIG. 6A shows an example of another first indication information according to an embodiment of the present application. As shown in FIG. 6A, the first indication information includes a third field, identifications 1 to K corresponding to the third field (including identities of one or more first candidate primary / secondary cells and identities of candidate primary / secondary cells belonging to another access network device), a fourth field, and identifications M to P corresponding to the fourth field (identities of one or more third candidate primary / secondary cells). K, M, and P are all integers greater than 1, and P is greater than M. The third field may be one or more bits, and the fourth field may also be one or more bits. For example, the third field is "0" and the fourth field is "1." In another example, the third field is "00" and the fourth field is "11." It should be understood that the first indication information may include identifications of two or more candidate primary-secondary cells and fields corresponding to the identifications of each of the candidate primary-secondary cells (e.g., the third field or the fourth field). Table 2 shows an example of the identifications of each of the candidate primary-secondary cells and fields corresponding to the identifications of the candidate primary-secondary cells, where the identifications and fields are included in the first indication information.
[0168] [Table 2]
[0169] It can be understood from Table 2 that different candidate primary / secondary cells belonging to the same access network device may correspond to different fields. For example, the first candidate primary / secondary cell 2 (identification 2) corresponds to the third field, and the first candidate primary / secondary cell 3 (identification N+1) corresponds to the fourth field. In other words, one field can be used for multiple candidate primary / secondary cells belonging to different access network devices. candidate 1st 2 Next It can correspond to the rule.
[0170] In some implementations, the identities of the candidate primary / secondary cells may be Cell Global Identifiers (CGIs) or PCIs. In some implementations, the first indication information further includes an identification of a third access network device, and the identities of the one or more first candidate primary / secondary cells correspond to the identification of the third access network device. The identities of the one or more first candidate primary / secondary cells may be temporary numbers. In this manner, the access network device 1 may determine one or more first candidate primary / secondary cells based on the identification of the third access network device and the identities of the one or more first candidate primary / secondary cells, and the identities of the one or more first candidate primary / secondary cells may occupy a small number of bits. For example, the identities of the one or more third candidate primary / secondary cells include number 1, number 2, number 3, number 4, and number 5. Access network device 1 may determine one or more first candidate primary / secondary cells based on the identification of the third access network device and numbers 1, 2, 3, 4, and 5 (the numbers of the candidate primary / secondary cells of the third access network device).
[0171] In this implementation, the granularity of the first indication information is per PSCell, and the first indication information may independently indicate the sequence in which the access network device 1 sends a reconfiguration message and candidate primary / secondary cell information corresponding to each of the candidate primary / secondary cells to the second access network device, thus providing high flexibility and low signaling overhead.
[0172] In another possible implementation, the first candidate primary / secondary cell information indicates one first candidate primary / secondary cell accepted by the third access network device among the candidate primary / secondary cells that the second access network device requests the third access network device to add. The first reconfiguration message includes configuration information corresponding to the one first candidate primary / secondary cell. The first indication information includes a fifth field and an identification of the one first candidate primary / secondary cell corresponding to the fifth field. The fifth field indicates to the first access network device that the first access network device should send the first reconfiguration message before or after sending the first candidate primary / secondary cell information to the second access network device. In this implementation, the fifth field corresponds to the identification of only one candidate primary / secondary cell.
[0173] In some implementations, the first indication information may include two or more fields (including a fifth field) and identification of two or more candidate primary and secondary cells, where the identification corresponds to one of the two or more fields. Each of the fields corresponds to one candidate primary and secondary cell, and indicates a sequence in which the first access network device sends the candidate primary and secondary cell information and reconfiguration message indicated by the field. Figure 6B shows another example of the first indication information according to an embodiment of the present application.
[0174] As shown in FIG. 6B , the first indication information includes: Identification 1, Field 1 corresponding to Identification 1, Identification 2, Field 2 corresponding to Identification 2, ..., Identification H, and Field H corresponding to Identification H. Each of the Identifications is the identity of a candidate primary / secondary cell for the UE. Identifications 1 to H may belong to the same access network device or different access network devices. Each of the fields indicates a sequence in which the first access network device sends the candidate primary / secondary cell information and the reconfiguration message corresponding to the field. Each of Fields 1 to H is one of two different fields. For example, each of Fields 1 to H is either "0" or "1." For example, if Field 1 is "0," Field 1 indicates to the second access network device that the first access network device should send the reconfiguration message corresponding to Identification 1 before sending the candidate primary / secondary cell information corresponding to Identification 1. If field 2 is "1", field 2 indicates to the second access network device that the first access network device should send a reconfiguration message corresponding to identity 2 after sending the candidate primary-secondary cell information corresponding to identity 2.
[0175] It may be understood that for multiple candidate primary and secondary cells, for which the first indication information indicates that the candidate primary and secondary cell information and the reconfiguration message are sent in the same sequence, the reconfiguration messages corresponding to the candidate primary and secondary cells respectively may be sent to the UE in one message, and the candidate primary and secondary cell information corresponding to the candidate primary and secondary cells respectively may also be sent to the second access network device in the same message.
[0176] In this implementation, each of the candidate primary and secondary cells corresponds to one field, so the reliability is high and the configuration can be flexibly implemented.
[0177] 7 is a flowchart of another communication method according to an embodiment of the present application. The method steps in FIG. 7 are possible implementations of the method steps in FIG. 4. As shown in FIG. 7, the method steps include the following steps:
[0178] 701: An access network device 1 receives first indication information from a second access network device.
[0179] For step 701, please refer to step 401.
[0180] The first indication information indicates to the access network device 1 that it should send a first reconfiguration message to the UE after sending first candidate primary / secondary cell information to the second access network device. The first candidate primary / secondary cell information indicates one or more first candidate primary / secondary cells that have been accepted by the third access network device among candidate primary / secondary cells that the second access network device requests the third access network device to add. The first reconfiguration message includes configuration information corresponding to the one or more first candidate primary / secondary cells.
[0181] The first indication information further indicates to the access network device 1 that it should send a second reconfiguration message after sending the second candidate primary / secondary cell information to the second access network device. The second candidate primary / secondary cell information indicates one or more second candidate primary / secondary cells that have been accepted by the fourth access network device among the candidate primary / secondary cells that the second access network device requests the fourth access network device to add. The second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells.
[0182] The first indication information may include an identification of the second access network device. The granularity of the first indication information is per S-SN.
[0183] 702: After the access network device 1 sends the first candidate primary and secondary cell information to the second access network device, it sends a first reconfiguration message to the UE based on the first indication information.
[0184] 703: The access network device 1 sends second candidate primary and secondary cell information to the second access network device, and then sends a second reconfiguration message to the UE based on the first indication information.
[0185] In some implementations, the first indication information indicates to the access network device 1 that it should send a first reconfiguration message to the UE before sending the first candidate primary / secondary cell information to the second access network device, and further indicates to the access network device 1 that it should send a second reconfiguration message before sending the second candidate primary / secondary cell information to the second access network device. Step 702 may be replaced with: the access network device 1 sends the first reconfiguration message to the UE based on the first indication information before sending the first candidate primary / secondary cell information to the second access network device. Step 703 may be replaced with: the access network device 1 sends the second reconfiguration message to the UE based on the first indication information before sending the second candidate primary / secondary cell information to the second access network device.
[0186] In some implementations, the first reconfiguration message and the second reconfiguration message may be included in the same reconfiguration information (e.g., an RRC reconfiguration message). In other words, the access network device 1 sends a reconfiguration message including the first reconfiguration message and the second reconfiguration message to the UE, i.e., the first reconfiguration message and the second reconfiguration message are sent together. In these embodiments, the first reconfiguration message and the second reconfiguration message are sent by using one reconfiguration message, which can reduce signaling overhead.
[0187] In some implementations, the first Reconfiguration message and the second Reconfiguration message are two different messages, i.e., the first Reconfiguration message and the second Reconfiguration message are not sent together. In these embodiments, the access network device 1 may send the first Reconfiguration message first and then the second Reconfiguration message, or may send the second Reconfiguration message first and then the first Reconfiguration message. For example, the access network device 1 sends the second Reconfiguration message after receiving a Secondary Node Addition Request Acknowledgement message from the fourth access network device. The Secondary Node Addition Request Acknowledgement message indicates one or more second candidate primary / secondary cells that the second access network device requests the fourth access network device to add and that have been accepted by the fourth access network device. In these embodiments, the first Reconfiguration message and the second Reconfiguration message are sent separately, which allows the UE to receive parts of the Reconfiguration message more quickly and provides greater flexibility.
[0188] In this embodiment of the present application, it is not limited whether the access network device 1 sends the first reconfiguration message and the second reconfiguration message by using one message or by using multiple messages.
[0189] In this embodiment of the present application, the granularity of the first indication information is per S-SN. The first indication information can indicate to the access network device 1 that it should send a first reconfiguration message after the access network device 1 sends the first candidate primary / secondary cell information to the second access network device, and can also indicate to the access network device 1 that it should send a second reconfiguration message after the access network device 1 sends the second candidate primary / secondary cell information to the second access network device. In this way, the second access network device does not need to further send indication information to indicate to the access network device 1 that it should send a first reconfiguration message after the access network device 1 sends the first candidate primary / secondary cell information to the second access network device, thereby reducing signaling overhead.
[0190] Figure 8 is a flowchart of another communication method according to an embodiment of the present application. The method procedure in Figure 8 is a possible implementation of the method described in Figure 4. As shown in Figure 8, the method procedure includes the following steps:
[0191] 801: An access network device 1 receives first indication information from a second access network device.
[0192] For step 801, please refer to step 401.
[0193] The first indication information indicates to the access network device 1 that it should send a first reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device. The first indication information further indicates to the access network device 1 that it should send a second reconfiguration message before sending the second candidate primary / secondary cell information to the second access network device. In a possible implementation, the first indication information includes a first field, a second field, an identification of a third access network device corresponding to the first field, and an identification of a fourth access network device corresponding to the second field. The first field indicates to the access network device 1 that it should send the first reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device. The second field indicates to the access network device 1 that it should send the second reconfiguration message before sending the second candidate primary / secondary cell information to the second access network device. The granularity of the first indication information is per candidate SN.
[0194] 802: After the access network device 1 sends the first candidate primary / secondary cell information to the second access network device, it sends a first reconfiguration message to the UE based on the first field.
[0195] 803: The access network device 1 sends a second reconfiguration message to the UE based on the second field before sending the second candidate primary / secondary cell information to the second access network device.
[0196] In some implementations, step 802 may be replaced with: access network device 1 sends a first reconfiguration message to the UE based on the first field before sending the first candidate primary / secondary cell information to the second access network device; and step 803 may be replaced with: access network device 1 sends a second reconfiguration message to the UE based on the second field after sending the second candidate primary / secondary cell information to the second access network device.
[0197] The sequence of steps 802 and 803 is not limited in this application.
[0198] In this embodiment of the present application, the first indication information may independently indicate the sequence in which the access network device 1 sends the first reconfiguration message and the first candidate primary / secondary cell information and the sequence in which the access network device 1 sends the second reconfiguration message and the second candidate primary / secondary cell information, and thus the signaling overhead is low.
[0199] Figure 9 is a flowchart of another communication method according to an embodiment of the present application. The method procedure in Figure 9 is a possible implementation of the method described in Figure 4. As shown in Figure 9, the method procedure includes the following steps:
[0200] 901: An access network device 1 receives first indication information from a second access network device.
[0201] For step 901, please refer to step 401.
[0202] The first indication information indicates to the access network device 1 that it should send a first reconfiguration message to the UE after or before sending the first candidate primary / secondary cell information to the second access network device. The third access network device is the T-SN of the UE, and the first indication information may include an identification of the third access network device and a first field, where the first field indicates to the access network device 1 that it should send the first reconfiguration message after or before sending the first candidate primary / secondary cell information to the second access network device.
[0203] 902: After or before the access network device 1 sends the first candidate primary / secondary cell information to the second access network device, it sends a first reconfiguration message to the UE based on the first indication information.
[0204] 903: The access network device 1 receives third indication information from the second access network device.
[0205] The third indication information indicates to the access network device 1 that the access network device 1 should send a second reconfiguration message to the UE after or before sending the second candidate primary / secondary cell information to the second access network device. The fourth access network device is another T-SN of the UE, and the third indication information may include an identification of the fourth access network device and a second field, where the second field indicates to the access network device 1 that the access network device 1 should send a second reconfiguration message after or before sending the second candidate primary / secondary cell information to the second access network device.
[0206] Both the granularity of the first indication information and the granularity of the third indication information are per candidate SN.
[0207] 904: After or before sending the second candidate primary / secondary cell information to the second access network device, the access network device 1 sends a second reconfiguration message to the UE based on the third indication information.
[0208] In this embodiment of the present application, all granularity of the indication information is per candidate SN, and each of the indication information independently indicates the sequence in which the access network device 1 sends the candidate primary and secondary cell information and reconfiguration message corresponding to one T-SN of the UE, thus providing high flexibility.
[0209] Figure 10 is a flowchart of another communication method according to an embodiment of the present application. The method procedure in Figure 10 is a possible implementation of the method described in Figure 4. As shown in Figure 10, the method procedure includes the following steps:
[0210] 1001: An access network device 1 receives first indication information from a second access network device.
[0211] For step 1001, please refer to step 401.
[0212] In some implementations, the first indication information includes a third field, identifications of one or more first candidate primary / secondary cells corresponding to the third field, a fourth field, and identifications of one or more third candidate primary / secondary cells corresponding to the fourth field. The third field indicates to the first access network device that the first access network device should send a first reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device. The fourth field indicates to the first access network device that the first access network device should send a third reconfiguration message corresponding to one or more third candidate primary / secondary cells before sending the third candidate primary / secondary cell information corresponding to the one or more third candidate primary / secondary cells to the second access network device. The one or more third candidate primary / secondary cells belong to one or more access network devices. The granularity of the first indication information is per PSCell. It is assumed that the second access network device determines that cell 1 and cell 2 managed by the third access network device are to be used as candidate PSCells for the UE, where the identity of cell 1 corresponds to the third field and the identity of cell 2 corresponds to the fourth field.
[0213] 1002: After the access network device 1 sends the first candidate primary / secondary cell information to the second access network device, it sends a first reconfiguration message to the UE based on the third field.
[0214] 1003: The access network device 1 sends a third reconfiguration message to the UE based on the fourth field before sending the third candidate primary / secondary cell information to the second access network device.
[0215] Therefore, although both cell 1 and cell 2 belong to the third access network device, the reconfiguration information corresponding to cell 1 and cell 2 respectively is sent independently.
[0216] In some implementations, step 1002 may be replaced with: access network device 1 sends a first reconfiguration message to the UE based on the third field before sending the first candidate primary / secondary cell information to the second access network device; and step 1003 may be replaced with: access network device 1 sends a third reconfiguration message to the UE based on the fourth field after sending the third candidate primary / secondary cell information to the second access network device.
[0217] The sequence of steps 1002 and 1003 above is not limited in this application.
[0218] In this embodiment of the present application, the granularity of the first indication information is per PSCell. The first indication information may independently indicate a sequence in which the access network device 1 sends a first reconfiguration message and first candidate primary / secondary cell information and a sequence in which the access network device 1 sends a third reconfiguration message and third candidate primary / secondary cell information, thereby reducing signaling overhead.
[0219] Figure 11 is a flowchart of another communication method according to an embodiment of the present application. The method procedure of Figure 11 is a possible implementation of the method described in Figure 4. In Figure 11, S-SN may be the above-mentioned second access network device, i.e., the current secondary node of the UE, MN may be the above-mentioned access network device 1, i.e., the master node of the UE, and candidate-SN (candidate-SN), which may alternatively be referred to as candidate target SN, may be the above-mentioned third access network device, i.e., the T-SN of the UE. As shown in Figure 11, the method procedure includes the following steps:
[0220] 1101: The S-SN sends a secondary node change required message to the MN.
[0221] The secondary node change required (SN change required) message may include the identity (ID) of the candidate SN, a candidate primary secondary cell list (candidate PSCell list), and S-SN-RRCReconfiguration. . weather The co-SN may be an SN corresponding to one or more PSCells that the S-SN expects to add. The candidate PSCell list includes one or more PSCell IDs (i.e., identification of one or more PSCells that the S-SN expects to add) and an execution condition ID corresponding to each of the PSCell IDs. The S-SN-RRCReconfiguration includes measurement-related information, such as a measurement ID. The measurement ID corresponds to the execution condition ID.
[0222] In some implementations, the secondary node change required message includes first indication information. The first indication information indicates to the MN (i.e., access network device 1) that it should send a first reconfiguration message before sending the first candidate primary / secondary cell information to the S-SN (i.e., second access network device). In this embodiment of the present application, the first indication information may be sent to the MN through the S-SN during the change preparation period or may be sent to the MN through the S-SN before the change preparation period. The first indication information is sent to the MN through the S-SN during the change preparation period. The first indication information may be included in the SN change required message. Alternatively, the first indication information may be sent in other signaling or separately. In addition, this information may not be carried in each CPC procedure initiated by the S-SN. If new indication information (e.g., second indication information) is not received, the received first indication information may be used by default. The first indication information may be for granularity per S-SN, per candidate SN, or per PSCell.
[0223] 1102: The MN sends a secondary node addition request to the candidate SN.
[0224] The MN may send a secondary node addition request to the candidate SN indicated by the MN based on the candidate SN ID. The secondary node addition request (SN addition request) may include a CAPA indicator field and a candidate PSCell list, and the CAPA indicator field indicates that the message is a CPAC request rather than a PAC request.
[0225] 1103: The candidate SN determines one or more first candidate primary and secondary cells accepted by the candidate SN among the candidate primary and secondary cells that the S-SN requests the candidate SN to add.
[0226] The secondary node addition request includes a candidate PSCell list, which includes candidate primary and secondary cells that the S-SN requests the candidate SN to add. Before receiving the secondary node addition request, the candidate SN may determine one or more first candidate primary and secondary cells accepted by the candidate SN. The S-SN determines one or more PSCells corresponding to the candidate SN. However, because some PSCells are overloaded or have insufficient resources, the candidate SN may not accept all PSCells requested by the S-SN and may reject some PSCells, and the candidate SN receives the remaining PSCells. Step 1103 may be understood as follows: The candidate SN performs a PSCell determination operation.
[0227] 1104: The candidate SN sends a secondary node addition request acknowledgement message to the MN.
[0228] The Secondary Node Addition Request Acknowledge (SN Addition Request ACK) message may include one or more PSCell IDs accepted by the candidate SN (i.e., IDs of one or more first candidate primary-secondary cells) and a T-SN-RRCReconfiguration message corresponding to the one or more PSCell IDs. The T-SN-RRCReconfiguration message includes information such as random access information, which is delivered to the UE so that the UE knows the necessary configuration information to access the PSCell. In some implementations, each PSCell ID corresponds to one T-SN-RRCReconfiguration message, i.e., each PSCell corresponds to one T-SN-RRCReconfiguration message.
[0229] 1105: The MN generates an RRC reconfiguration message.
[0230] The MN may generate an RRC reconfiguration message (RRCReconfiguration message, i.e., a first reconfiguration message) as follows: The MN generates a CPC message based on a Secondary Node Change Required message sent by the S-SN to the MN and a Secondary Node Addition Request Acknowledge message sent by the Candidate SN to the MN, where the CPC message is an RRCReconfiguration message. The CPC message may include an S-SN-RRCReconfiguration message sent by the S-SN to the MN. The S-SN-RRCReconfiguration message includes a measurement ID. The CPC message also includes conditional primary and secondary cell information (conditional PSCell information). The conditional primary and secondary cell information may include one or more PSCell IDs (i.e., the IDs of one or more first candidate primary and secondary cells accepted by the Candidate SN), as well as execution condition IDs corresponding to the one or more PSCell IDs, a T-SN-RRCReconfiguration message corresponding to the PSCell IDs, and an MN-RRCReconfiguration message corresponding to the one or more PSCell IDs. The MN-RRCReconfiguration message is new configuration information corresponding to the MN when the UE accesses a new PSCell. In this step, the execution condition ID corresponds to the measurement ID, which may be understood as follows: The execution condition ID and the measurement ID represent the same content. Corresponding to the granularity of the first indication information, the granularity of the RRC reconfiguration message generated by the MN may also be per S-SN, per candidate SN, or per PSCell.
[0231] 1106: The MN sends an RRC reconfiguration message to the UE.
[0232] 1107: The UE sends an RRC reconfiguration complete message to the MN.
[0233] The RRCReconfiguration complete message is used by the MN to confirm that the UE has successfully received the RRCReconfiguration message.
[0234] 1108: The MN sends the first candidate primary and secondary cell information to the S-SN.
[0235] The first candidate primary / secondary cell information indicates one or more first candidate primary / secondary cells that have been accepted by the candidate SN among the candidate primary / secondary cells that the S-SN requests the candidate SN to add. The one or more first candidate primary / secondary cells may be candidate primary / secondary cells accepted by the candidate SN, i.e., accepted candidates. It can be understood that the first candidate primary / secondary cell information may indicate a specific PSCell that has been accepted by the candidate SN and a specific PSCell that has been rejected by the candidate SN.
[0236] 1109: The S-SN sends an updated source secondary node RRC reconfiguration message to the MN.
[0237] Step 1109 is optional and not mandatory. If all PSCells that the S-SN requests the candidate SN to add have been accepted and configured by the candidate SN, this step is not performed. If some of the PSCells that the S-SN requests the candidate SN to add have been configured, the S-SN sends an updated S-SN-RRCReconfiguration message to the MN. For example, initially, the S-SN configures PSCell1, PSCell2, and PSCell3 as candidate primary and secondary cells, with PSCell1 and PSCell2 being intra-frequency cells and PSCell3, PSCell1, and PSCell2 being inter-frequency cells. In this case, measurement gaps need to be configured for the S-SN-RRCReconfiguration message in step 1101. However, if the candidate SN rejects PSCell3 and accepts PSCell1 and PSCell2, measurement gaps are not required for the intra-frequency cells and measurement gaps are no longer configured for the S-SN-RRCReconfiguration message in step 1109.
[0238] 1110: The MN sends an updated source secondary node RRC reconfiguration message to the UE.
[0239] 1111: The UE sends an RRC reconfiguration complete message to the MN.
[0240] After successfully receiving the updated source secondary node RRC reconfiguration message from the MN, the UE sends RRCReconfigurationComplete to the MN.
[0241] 1112: The MN sends an update confirmation message to the S-SN.
[0242] The update confirm message informs the S-SN that the new S-SN-RRCReconfiguration message has been successfully received by the UE.
[0243] In this embodiment of the present application, the first indication information indicates to the MN that it should send a first reconfiguration message before sending the first candidate primary and secondary cell information to the S-SN. Based on the first indication information, the MN may first send the first reconfiguration message and then send the first candidate primary and secondary cell information, so that the CPC procedure can be performed normally. In addition, the MN may first send the first reconfiguration message and then send the first candidate primary and secondary cell information, so that the candidate primary and secondary cells can be updated for the UE more quickly.
[0244] Figure 12 is a flowchart of another communication method according to an embodiment of the present application. The method procedure of Figure 12 is a possible implementation of the method procedure of Figure 4. In Figure 12, S-SN (source SN) may be the above-mentioned second access network device, i.e., the current secondary node of the UE, MN may be the above-mentioned access network device 1, i.e., the master node of the UE, and candidate SN may be the above-mentioned third access network device, i.e., the T-SN of the UE. As shown in Figure 12, the method procedure includes the following steps:
[0245] 1201: The S-SN sends a secondary node change required message to the MN.
[0246] For step 1201, please refer to step 1101.
[0247] In some implementations, the secondary node change required message includes first indication information, which indicates to the MN (i.e., access network device 1) that it should send a first reconfiguration message after sending the first candidate primary-secondary cell information to the S-SN (i.e., second access network device).
[0248] 1202: The MN sends a secondary node addition request to the candidate SN indicated by the MN based on the candidate SN ID.
[0249] For step 1202, please refer to step 1102.
[0250] 1203: The candidate SN determines one or more first candidate primary or secondary cells accepted by the candidate SN among the candidate primary or secondary cells that the S-SN requests the candidate SN to add.
[0251] For step 1203, please refer to step 1103.
[0252] 1204: The candidate SN sends a secondary node addition request acknowledgement message to the MN.
[0253] For step 1204, please refer to step 1104.
[0254] 1205: The MN sends the first candidate primary and secondary cell information to the S-SN.
[0255] For step 1205, see step 1108.
[0256] 1206: The S-SN sends an updated source secondary node RRC reconfiguration message to the MN.
[0257] Step 1206 is optional and not required. For step 1206, see step 1109.
[0258] 1207: The MN generates an RRC reconfiguration message.
[0259] For step 1207, please refer to step 1105.
[0260] 1208: The MN sends an RRC reconfiguration message to the UE.
[0261] For step 1208, see step 1106.
[0262] 1209: The UE sends an RRC reconfiguration complete message to the MN.
[0263] For step 1209, please refer to step 1107.
[0264] 1210: The MN sends an update confirmation message to the S-SN.
[0265] For step 1210, see step 1112.
[0266] In this embodiment of the present application, the first indication information indicates to the MN that it should send the first reconfiguration message after sending the first candidate primary / secondary cell information to the S-SN. Based on the first indication information, the MN may first send the first candidate primary / secondary cell information and then send the first reconfiguration message, so that the CPC procedure can be performed normally. Compared with the method procedure of Figure 11, in the method procedure of Figure 12, the MN needs to send the reconfiguration message to the UE only once, so the signaling overhead is low.
[0267] This application describes how the UE triggers CHO and performs conditional primary and secondary cell addition and modification (conditional PSCell addition and modification, CPAC )of In a non-triggering scenario, a solution is further provided to enable the network side to know the reason why CPAC is not triggered. When CPAC is used, the UE may add a PSCell and / or change the currently accessed PSCell based on candidate PSCells provided by the MN or SN.
[0268] The following describes, with reference to the accompanying drawings, the solution provided in this application, which allows the network side to know the reason why CPAC is not triggered.
[0269] 13 is a flowchart of another communication method according to an embodiment of the present application. As shown in FIG. 13, the method includes the following steps:
[0270] 1301: A UE accesses a target primary cell of a first access network device.
[0271] A possible implementation of step 1301 is as follows: When the UE triggers CHO, it accesses the target primary cell of the first access network device (hereinafter referred to as access network device 2). In other words, when the UE fulfills the primary cell handover (i.e., triggers CHO), it accesses the target primary cell of the first access network device.
[0272] 1302: When the UE does not trigger a CPAC, the UE sends first indication information to a first access network device.
[0273] The first indication information (Indication Information 2) is used to determine the reason why the UE does not trigger CPAC.
[0274] The UE may be configured with CHO trigger conditions, as well as configuration information and trigger conditions (ie, CPAC configuration information) for one or more candidate PSCells.
[0275] In some implementations, when a source PCell (corresponding to a source master node) delivers CHO configuration information (used for CHO configuration) to a UE, each of the candidate PCells may include configuration information and a trigger condition (i.e., CPAC configuration information) of at least one candidate PSCell that forms a DC together with a cell in at least one candidate PCell. CHO relates to handover of a PCell served by an MN, and CPAC relates to change of a PSCell served by an SN. The CHO configuration information may be used to configure one or more CHOs (each of the CHOs corresponds to one or more candidate PCells), and the CPAC configuration information may be used to configure one or more CPACs (each of the CPACs corresponds to one or more candidate PSCells). In addition, there is a correspondence between one or more CHOs and one or more CPACs. Each of the CHOs corresponding to one or more candidate PCells means that the CHO is a trigger condition for switching one or more candidate PCells to one or more PCells of the UE.
[0276] For example, the CHO configuration information is used to configure CHO1 (corresponding to candidate PCell1) and CHO2 (corresponding to candidate PCell2), and the CPAC configuration information is used to configure CPAC1 (corresponding to candidate PSCell1), CPAC2 (corresponding to candidate PSCell2), CPAC3 (corresponding to candidate PSCell3), and CPAC4 (corresponding to candidate PSCell4). CHO1 corresponds to CPAC1 and CPAC2, and CHO2 corresponds to CPAC3 and CPAC4. It should be understood that one PCell may correspond to one or more candidate PSCells, and therefore one CHO may correspond to one or more CPACs.
[0277] During CHO configuration, for multiple candidate PCells, configuration of PSCell relationships corresponding to the candidate PCells may be provided. In this way, if a candidate PCell triggers CHO, the UE attempts to access a target PCell (i.e., a target primary cell). In addition, if the PSCell associated with the target PCell also satisfies the CPAC trigger condition, the UE further attempts to perform a PSCell change (PCell handover as random access and PSCell change may be performed simultaneously or sequentially).
[0278] In some implementations, upon completing the CHO, the UE sends RRC signaling to the target PCell, which may include cell information (such as cell ID) and measurement information (such as cell signal strength and signal quality) of the candidate PSCells that meet the CPAC trigger conditions, and is used for subsequent addition or modification of the candidate PSCells.
[0279] In a possible implementation, the UE may further perform the following operations: The UE sends a measurement report to the access network device 2, which uses the measurement report to update the CPAC configuration. The measurement report is determined by the UE based on the latest received measurement configuration and may include not only measurement results of the candidate PSCell, but also measurement results of neighboring cells or other cells. The purpose of the UE reporting the measurement report is to enable the target MN (i.e., the access network device 2) to update the CPAC configuration, e.g., the candidate PSCell and handover threshold. A relatively long period of time may pass between the moment the MN initially delivers the CHO configuration information and the CPAC configuration information to the UE and the moment the CHO is successful. Therefore, the target MN needs to use a new measurement report to update the CPAC configuration. For example, the UE measures all candidate PSCells, but none of the candidate PSCells meet the CPAC trigger condition. This indicates that the trigger condition set for CPAC is too strict. Therefore, CPACTo make it easier to trigger the CPAC, some CPAC trigger thresholds may be reduced, thereby achieving an optimization effect. In another example, if the access network device 2 finds, based on the measurement report, that the signal quality of some neighboring cells is good, for example, higher than a preset threshold, the access network device 2 may add these neighboring cells to the CPAC configuration. In another example, if the access network device 2 finds, based on the measurement report, that the cell signal quality of configured candidate PSCells is poor, for example, lower than a preset threshold, the access network device 2 may delete these candidate PSCells. When accessing the target MN, the UE directly reports the current measurement report to the target MN, which may shorten the time it takes for the target MN to configure CPAC. Of course, the target MN may alternatively optimize the CPAC configuration based on the measurement report. The UE may report a complete measurement report to the MN, or may report only a measurement report related to a PSCell associated with the PCell that triggers CHO to the MN. For example, the measurement report includes target parameters of each of the candidate primary and secondary cells corresponding to the target primary cell. The target parameters include one or more of RSRP, RSRQ, and SINR. The target parameters may be obtained by the UE through measurements when the UE determines whether a CPAC trigger condition is met.
[0280] In this embodiment of the present application, when the UE does not trigger CPAC, the UE sends first indication information (hereinafter referred to as indication information 2) to the access network device 2, so that the access network device 2 determines the reason why the UE does not trigger CPAC. The indication information 2 may enable the access network device 2 to know more detailed information about why CPAC is not triggered.
[0281] Below, some possible implementations of the indication information 2 are described.
[0282] In a possible implementation, the indication information 2 indicates that the UE has measured all candidate primary and secondary cells corresponding to the target primary cell, and none of the candidate primary and secondary cells corresponding to the target primary cell meet the CPAC trigger condition. In this implementation, the indication information 2 is an explicit indication, and the indication information 2 may include a pre-agreed field, for example, 111. In this implementation, the indication information 2 may enable the access network device 2 to know that the reason the UE does not trigger CPAC is because the UE has measured all candidate primary and secondary cells corresponding to the target primary cell, but none of the candidate primary and secondary cells corresponding to the target primary cell meet the CPAC trigger condition. Then, based on the indication information 2, the access network device 2 may know that the CPAC trigger condition may be configured high, and therefore, the access network device 2 optimizes the handover threshold.
[0283] In a possible implementation, the indication information 2 indicates that the UE cannot measure the candidate primary / secondary cells corresponding to the target primary cell. In this implementation, the indication information 2 is an explicit indication, and the indication information 2 may include a preset field, for example, 000. In this implementation, the indication information 2 may enable the access network device 2 to know that the reason the UE does not trigger CPAC is because the UE cannot measure the candidate primary / secondary cells corresponding to the target primary cell. Then, based on the indication information 2, the access network device 2 may know that the configured candidate PSCells have failed, and the access network device 2 may need to add a new PSCell or delete some or all of the configured PSCells.
[0284] In a possible implementation, the indication information 2 indicates that the UE has measured several candidate primary and secondary cells corresponding to the target primary cell, and none of the candidate primary and secondary cells measured by the UE meets the CPAC trigger condition. In this implementation, the indication information 2 is an explicit indication, and the indication information 2 may include a pre-agreed field, for example, 010. In this implementation, the indication information 2 may enable the access network device 2 to know that the reason the UE does not trigger CPAC is because the UE has measured several candidate primary and secondary cells corresponding to the target primary cell, but none of the candidate primary and secondary cells measured by the UE meets the CPAC trigger condition. The access network device 2 may then infer, based on the indication information 2, that the CPAC trigger condition may be configured high (e.g., a high handover threshold). In this way, the handover threshold may be optimized. Alternatively, the UE may not complete the measurements, and the existing configuration may not be updated.
[0285] In a possible implementation, the indication information 2 indicates a measurement status of each of the candidate primary and secondary cells corresponding to the target primary cell, and indicates that none of the candidate primary and secondary cells measured by the UE meets the CPAC trigger condition. For example, four candidate PSCells, i.e., PSCells 1, 2, 3, and 4, associated with the PCell are configured, and the indication information 2 reported by the UE includes {PSCell 1, measured, does not meet CPAC}, {PSCell 2, measured, does not meet CPAC}, {PSCell 3, measured, does not meet CPAC}, and {PSCell 4, measured, does not meet CPAC}. In another example, four candidate PSCells, i.e., PSCells 1, 2, 3, and 4, associated with the PCell are configured, and the indication information 2 reported by the UE includes {PSCell 1, not measured}, {PSCell 2, not measured}, {PSCell 3, not measured}, and {PSCell 4, not measured}. In another example, four candidate PSCells, namely, PSCell1, 2, 3, and 4, associated with a PCell are configured, and the indication information 2 reported by the UE includes {PSCell1, measured, does not satisfy CPAC}, {PSCell2, measured, does not satisfy CPAC}, {PSCell3, not measured}, and {PSCell4, not measured}. In this implementation, the indication information 2 may enable the access network device 2 to learn about the measurement status of each of the candidate primary and secondary cells corresponding to the target primary cell.
[0286] In a possible implementation, the indication information 2 indicates candidate primary and secondary cells among candidate primary and secondary cells corresponding to the target primary cell that have been measured by the UE, and indicates that none of the candidate primary and secondary cells measured by the UE meets the CPAC trigger condition. In this implementation, the UE reports only information related to the measured PSCells by using the indication information 2. However, the reported PSCells are all PSCells configured by the network side for the PCell, which indicates that none of the reported PSCells meets the CPAC trigger condition, which is an implicit indication. For example, four candidate PSCells, i.e., PSCells 1, 2, 3, and 4, associated with the PCell are configured, and the indication information 2 reported by the UE includes {PSCell 1, measured, does not meet CPAC}, {PSCell 2, measured, does not meet CPAC}, {PSCell 3, measured, does not meet CPAC}, and {PSCell 4, measured, does not meet CPAC}. Four PSCells are configured on the network side, and the UE also reports the four PSCells. This implicitly indicates that all PSCells are measured, but none of the PSCells meet the CPAC condition. In another example, four candidate PSCells, i.e., PSCells 1, 2, 3, and 4, are configured for the PCell. However, the UE does not report PSCell information related to the four configured candidate cells by using indication information 2. This implicitly indicates that all PSCells are measured, but none of the PSCells meet the CPAC condition. In another example, four candidate PSCells, i.e., PSCells 1, 2, 3, and 4, are configured for the PCell. However, the indication information 2 reported by the UE includes {PSCell 1, measured, does not meet CPAC} and {PSCell 2, measured, does not meet CPAC}, and information related to PSCells 3 and 4 is not reported. This indicates that PSCells 3 and 4 are not measured.
[0287] Figure 14 is a flowchart of another communication method according to an embodiment of the present application. The method steps of Figure 14 correspond to the method steps of Figure 13. Figure 13 describes the method steps performed by a UE, and Figure 14 describes the method steps performed by an access network device. As shown in Figure 14, the method includes the following steps:
[0288] 1401: Access network device 2 receives indication information 2 from the UE.
[0289] Step 1401 corresponds to step 1301 in FIG.
[0290] 1402: The access network device 2 determines, based on the indication information 2, the reason why the UE does not trigger CPAC.
[0291] In a possible implementation, the UE may further perform the following operations: The access network device 2 receives a measurement report from the UE, and the measurement report is used by the access network device 2 to update a CPAC configuration.
[0292] In this embodiment of the present application, the access network device 2 determines the reason why the UE does not trigger CPAC based on the indication information 2, and further, the access network device 2 optimizes the CPAC configuration. To optimize the CPAC configuration, a candidate PSCell may be deleted or added. The indication information 2 may enable the access network device 2 to know more detailed information about why CPAC is not triggered.
[0293] 15 is a flowchart of another communication method according to an embodiment of the present application. As shown in FIG. 15, the method includes the following steps:
[0294] 1501: A UE accesses a target primary cell of an access network device 2.
[0295] For step 1501, please refer to step 1301.
[0296] 1502: When the UE does not trigger CPAC, the UE sends a measurement report to the access network device 2.
[0297] The measurement report is used by the access network device 2 to update the CPAC configuration. The measurement report in Figure 15 is the same as the measurement report in the above embodiment.
[0298] In this embodiment of the present application, when the UE does not trigger CPAC, the UE sends a measurement report to the access network device 2, so that the access network device 2 updates the CPAC configuration based on the measurement report.
[0299] Figure 16 is a flowchart of another communication method according to an embodiment of the present application. The method steps of Figure 16 correspond to the method steps of Figure 15. Figure 15 describes the method steps performed by a UE, and Figure 16 describes the method steps performed by an access network device. As shown in Figure 16, the method includes the following steps:
[0300] 1601: Access network device 2 receives a measurement report from a UE.
[0301] Step 1601 corresponds to step 1501.
[0302] 1602: Access network device 2 updates the CPAC configuration based on the measurement report.
[0303] Possible implementations of step 1602 are as follows: Update trigger thresholds (or handover thresholds) of each of the candidate primary and secondary cells corresponding to the target primary cell or CPAC based on the measurement report. Updating the CPAC configuration by the access network device 2 based on the measurement report may include one or more of deleting a PSCell, adding a candidate PSCell, and updating a handover threshold.
[0304] In this embodiment of the present application, the access network device 2 updates the CPAC setting based on the measurement report, and the CPAC setting is updated to better implement the primary-secondary cell handover of the UE and improve the communication quality of the UE.
[0305] Figure 17 is a flowchart of another communication method according to an embodiment of the present application. The method procedure of Figure 17 is the method described in Figure 13 and Figure 14. In Figure 17, the source base station may be the master node currently connected to the UE, and the candidate base station 1 may be the above-mentioned access network device 2. As shown in Figure 17, the method includes the following steps:
[0306] 1701: A source base station sends an RRC reconfiguration message to a UE in a connected state.
[0307] The source base station may be an access network device currently connected to the UE, and the UE in the connected state may be the above-mentioned UE, and the RRC reconfiguration message may include parameters such as measurement object, reporting configuration, and measurement identification.
[0308] 1702: The UE sends a measurement report to the source base station.
[0309] A possible implementation of step 1702 is as follows: After measuring a series of cells based on the RRC reconfiguration message, the UE reports the formed measurement report to the currently connected source base station, for example, the signal strength of the current serving cell is lower than a threshold and the signal strength of the target cell is higher than a threshold.
[0310] 1703: The source base station sends a CHO request message to the candidate base station 1.
[0311] The CHO request message is used to initiate the handover procedure and may carry information required by some candidate base stations (such as candidate base station 1) to prepare for handover.
[0312] 1704: Candidate base station 1 sends a CHO request acknowledgement message to the source base station.
[0313] The CHO request acknowledgement message (CHO request ACK) notifies the source base station that the candidate base station 1 has prepared handover configuration information. The source base station only needs to forward the RRC reconfiguration message in the CHO request acknowledgement message directly to the UE. The CHO request acknowledgement message may include information indicating that the prepared UE can perform handover.
[0314] 1705: The source base station sends a CHO request message to the candidate base station 2.
[0315] 1706: Candidate base station 2 sends a CHO request acknowledgement message to the source base station.
[0316] 17 shows the operation of the source base station sending a CHO request message to candidate base station 1 and candidate base station 2, the operation of candidate base station 1 sending a CHO request acknowledgment message to the source base station, and the operation of candidate base station 2 sending a CHO request acknowledgment message to the source base station. It should be understood that the source base station may send the CHO request message to one or more candidate base stations, and each of the candidate base stations may feed back a CHO request acknowledgment message after receiving the CHO request message. The present application does not limit the source base station from sending a CHO request message to multiple candidate base stations.
[0317] 1707: The source base station sends CHO configuration information and CPAC configuration information to the UE.
[0318] The source base station may send one message to carry the CHO configuration information and the CPAC configuration information, or may send multiple messages to carry the CHO configuration information and the CPAC configuration information. For example, the source base station sends one message to the UE to carry the CHO configuration information and another message to carry the CPAC configuration information. The CHO configuration information may include a CHO trigger condition and information about one or more candidate cells (e.g., the CGI of the candidate cell, or the PCI of the candidate cell and frequency information corresponding to the candidate cell). The CPAC configuration information may be sent to the source base station by any candidate base station, or by a candidate base station corresponding to a candidate PSCell, or may be sent in another manner. This is not limited in this embodiment of the present application.
[0319] In some implementations, when delivering CHO configuration information to a UE, the source base station may deliver configuration information and trigger conditions (i.e., CPAC configuration information) of at least one candidate PSCell that forms a DC together with a cell in at least one candidate PCell.
[0320] 1708: The UE determines whether a CHO trigger condition is met, and determines a target cell.
[0321] The target cell is a primary cell that satisfies the CHO trigger condition. The UE will be handed over to the target cell (the cell of the candidate base station 1). After receiving the CHO configuration information, the UE can measure whether the cell quality of the candidate cell satisfies the CHO trigger condition based on the CHO configuration information. The UE uses a specific candidate cell that satisfies the CHO trigger condition as the target cell.
[0322] 1709: The UE initiates random access to the candidate base station 1.
[0323] 1710: The UE sends a CHO complete message to the candidate base station 1.
[0324] The CHO complete message notifies the candidate base station 1 that the CHO is complete. The UE may send the CHO complete message to the candidate base station 1 after the random access is successfully completed.
[0325] 1711: When the UE does not trigger CPAC, the UE sends indication information 2 to the candidate base station 1.
[0326] Indication information 2 is used to determine the reason why the UE does not trigger CPAC.
[0327] If the PCell triggers CHO, the UE attempts to access the target PCell (i.e., the target cell). If the PSCell associated with the PCell also satisfies the CPAC trigger condition, the UE further attempts to perform a PSCell change (PCell handover as random access and PSCell change may be performed simultaneously or successively, without limitation). If none of the PSCells associated with the PCell satisfy the CPAC trigger condition (i.e., CPAC is not triggered), indication information 2 is sent to the candidate base station 1.
[0328] 1712: Candidate base station 1 determines, based on the indication information 2, the reason why the UE does not trigger CPAC.
[0329] The candidate base station 1 may further update the CPAC setting based on the indication information 2.
[0330] In some implementations, when the UE does not trigger CPAC, the UE may further send a measurement report to the candidate base station 1. The measurement report is used by the access network device 2 to update the CPAC configuration.
[0331] In this embodiment of the present application, when the UE does not trigger CPAC, the UE sends indication information 2 to the access network device 2, so that the access network device 2 determines the reason why the UE does not trigger CPAC. The first indication information may enable the access network device 2 to know more detailed information about why CPAC is not triggered.
[0332] FIG. 18 is a schematic diagram of the structure of a communication device 1800. The communication device 1800 may correspondingly implement functions or steps implemented by an access network device (e.g., a first access network device or a second access network device) in the above-mentioned method embodiments. The communication device may include a processing module 1810 and a transceiver module 1820. Optionally, a storage unit may be further included. The storage unit may be configured to store instructions (codes or programs) and / or data. The processing module 1810 and the transceiver module 1820 may be coupled to the storage unit. For example, the processing module 1810 may read the instructions (codes or programs) and / or data in the storage unit to implement the corresponding method. The above units may be independently disposed or partially or fully integrated. For example, the transceiver module 1820 may include a sending module and a receiving module.
[0333] In some possible implementations, the communication device 1800 may correspondingly implement the behavior and functions of the access network device 1 in the above method embodiments. For example, the communication device 1800 may be the access network device 1 or a component (e.g., a chip or circuit) used in the access network device 1. For example, the transceiver module 1820 may be configured to perform all receiving or sending operations performed by the access network device 1 (MN in FIGS. 11 and 12) in the embodiments of FIG. 4, 7, 8, 9, 10, 11, or 12. For example, the transceiver module 1820 is configured to perform steps 401 and 402 in the embodiment shown in FIG. 4 and steps 701, 702, and 703 in the embodiment shown in FIG. 7, and / or to support other processing of the techniques described herein. The processing module 1810 is configured to perform all operations except for receiving and sending operations performed by the access network device 1 in the embodiment of Figure 4, Figure 7, Figure 8, Figure 9, Figure 10, Figure 11, or Figure 12.
[0334] In some possible implementations, the communication device 1800 may correspondingly implement the behavior and functionality of the second access network device in the above method embodiments. For example, the communication device 1800 may be the second access network device or a component (e.g., a chip or circuit) used in the second access network device. For example, the transceiver module 1820 may be configured to perform all receiving or sending operations performed by the second access network device (S-ST in FIGS. 11 and 12) in the embodiments of FIG. 4, 7, 8, 9, 10, 11, or 12. For example, the transceiver module 1820 may be configured to perform step 401 in the embodiment shown in FIG. 4 and steps 701 and 702 in the embodiment shown in FIG. 7, and / or to support other processing of the techniques described herein. The processing module 1810 is configured to perform all operations except for receiving and sending operations performed by the second access network device in the embodiments of Figure 4, Figure 7, Figure 8, Figure 9, Figure 10, Figure 11, or Figure 12.
[0335] In some possible implementations, the communication device 1800 may correspondingly implement the behavior and functionality of the terminal device in the above method embodiments. For example, the communication device 1800 may be a terminal device or a component (e.g., a chip or circuit) used in a terminal device. For example, the transceiver module 1820 may be configured to perform all receiving or sending operations performed by the terminal device (UE of FIG. 17) in the embodiments of FIG. 13, FIG. 14, FIG. 15, FIG. 16, or FIG. 17. For example, the transceiver module 1820 is configured to perform step 1302 in the embodiment shown in FIG. 13 and step 1401 in the embodiment shown in FIG. 14, and / or to support other processing of the techniques described herein. The processing module 1810 is configured to perform all operations, except for receiving and sending operations, performed by the terminal device in the embodiments of FIG. 13, FIG. 14, FIG. 15, FIG. 16, or FIG. 17.
[0336] In some possible implementations, the communication device 1800 may correspondingly implement the behavior and functions of the access network device 2 in the above method embodiments. For example, the communication device 1800 may be the access network device 2 or a component (e.g., a chip or circuit) used in the access network device 2. For example, the transceiver module 1820 may be configured to perform all receiving or sending operations performed by the access network device 2 (the first access network device in FIG. 13 and the candidate base station 1 in FIG. 17) in the embodiment of FIG. 13, FIG. 14, FIG. 15, FIG. 16, or FIG. 17. For example, the transceiver module 1820 is configured to perform step 1302 in the embodiment shown in FIG. 13 and step 1401 in the embodiment shown in FIG. 14, and / or to support other processing of the techniques described herein. The processing module 1810 is configured to perform all operations, except for receiving and sending operations, performed by the access network device 2 in the embodiment of FIG. 13, FIG. 14, FIG. 15, FIG. 16, or FIG. 17.
[0337] Figure 19 is a schematic diagram of the structure of another communication device 190 according to an embodiment of the present application. The communication device in Figure 19 may be the above-mentioned terminal device. The communication device in Figure 19 may be the above-mentioned access network device 1. The communication device in Figure 19 may be the above-mentioned access network device 2. The communication device in Figure 19 may be the above-mentioned second access network device.
[0338] As shown in FIG. 19, the communications device 190 includes at least one processor 1920 and a transceiver 1910 .
[0339] In some other embodiments of the present application, the processor 1920 and the transceiver 1910 may be configured to perform the functions, operations, etc. performed by the above-described access network device 1. For example, the processor 1920 may perform one or more of the operations of step 1105 of FIG. 11 and step 1207 of FIG. 12. For example, the transceiver 1910 may perform one or more of the following operations: steps 401 and 402 of FIG. 4; steps 701, 702, and 703 of FIG. 7; steps 801, 802, and 803 of FIG. 8; steps 901, 902, 903, and 904 of FIG. 9; steps 1001, 1002, and 1003 of FIG. 10; steps 1101, 1102, 1104, 1106, 1107, 1108, 1109, 1110, 1111, and 1112 of FIG. 11; and steps 1201, 1202, 1204, 1205, 1206, 1208, 1209, and 1210 of FIG. 12.
[0340] In some embodiments of the present application, the processor 1920 and the transceiver 1910 may be configured to perform functions, operations, etc. performed by the second access network device described above. For example, the transceiver 1910 may perform one or more of the following operations: step 401 of Figure 4, step 701 of Figure 7, step 801 of Figure 8, step 901 and step 903 of Figure 9, step 1001 of Figure 10, step 1101, step 1108, step 1109, and step 1112 of Figure 11, and step 1201, step 1205, step 1206, and step 1210 of Figure 12.
[0341] In some embodiments of the present application, the processor 1920 and the transceiver 1910 may be configured to perform functions, operations, etc. performed by the above-mentioned terminal devices. For example, the processor 1920 may perform one or more of the operations of step 1301 of Figure 13, step 1501 of Figure 15, and steps 1708 and 1709 of Figure 17. The transceiver 1910 may perform one or more of the operations of step 1302 of Figure 13, step 1401 of Figure 14, step 1502 of Figure 15, step 1601 of Figure 16, and steps 1701, 1702, 1707, 1710, and 1711 of Figure 17.
[0342] In some other embodiments of the present application, the processor 1920 and the transceiver 1910 may be configured to perform functions, operations, etc. performed by the access network device 2 described above. For example, the processor 1920 may perform step 1301 of Figure 13, step 1402 of Figure 14, step 1501 of Figure 15, step 1602 of Figure 16, and steps 1709 and 1712 of Figure 17. The transceiver 1910 may perform one or more of the operations of step 1302 of Figure 13, step 1401 of Figure 14, step 1502 of Figure 15, step 1601 of Figure 16, and steps 1703, 1704, 1710, and 1711 of Figure 17.
[0343] The transceiver 1910 is configured to communicate with another device / apparatus through a transmission medium. The processor 1920 is configured to receive and send data and / or signaling by using the transceiver 1910 and to implement the method in the above method embodiments. The processor 1920 may implement the functionality of the processing module 1810, and the transceiver 1910 may implement the functionality of the transceiver module 1820.
[0344] Optionally, the communication device 190 may further include at least one memory 1930 configured to store program instructions and / or data. The memory 1930 is coupled to the processor 1920. A coupling in this embodiment of the present application may be an indirect coupling or communication connection between devices, units, or modules in an electrical, mechanical, or other form, and is used for information exchange between the devices, units, or modules. The processor 1920 may cooperate with the memory 1930. The processor 1920 may execute program instructions stored in the memory 1930. At least one of the at least one memory may be included in the processor.
[0345] The specific connection medium between the transceiver 1910, the processor 1920, and the memory 1930 is not limited in this embodiment of the present application. In this embodiment of the present application, in FIG. 19, the memory 1930, the processor 1920, and the transceiver 1910 are connected through a bus 1940. The bus is represented by a bold line in FIG. 19. The connection manner between other components is only a schematic illustration and is not limited thereto. The bus may be categorized as an address bus, a data bus, a control bus, etc. For ease of representation, only one bold line is used for representation in FIG. 19, but this does not mean that there is only one bus or only one type of bus.
[0346] In the embodiments of the present application, the processor may be a general-purpose processor, a digital signal processor, an application-specific integrated circuit, a field programmable gate array or other programmable logic device, a discrete gate or transistor logic device, or a discrete hardware component, so that the methods, steps, and logic block diagrams disclosed in the embodiments of the present application can be implemented or performed. The general-purpose processor may be a microprocessor or any conventional processor, etc. The steps of the methods disclosed in the embodiments of the present application may be performed directly by a hardware processor, or may be performed by using a combination of hardware and software modules in the processor.
[0347] FIG. 20 is a schematic diagram of the structure of another communication device 200 according to an embodiment of the present application. As shown in FIG. 20, the communication device shown in FIG. 20 includes a logic circuit 2001 and an interface 2002. The processing module 1810 of FIG. 18 may be implemented via the logic circuit 2001, and the transceiver module 1820 of FIG. 18 may be implemented via the interface 2002. The logic circuit 2001 may be a chip, a processing circuit, an integrated circuit, a system-on-a-chip (SoC), etc., and the interface 2002 may be a communication interface, an input / output interface, etc. In this embodiment of the present application, the logic circuit and the interface may be further coupled to each other. The specific manner of connection between the logic circuit and the interface is not limited in this embodiment of the present application.
[0348] In some embodiments of the present application, the logic circuits and interfaces may be configured to perform the functions, operations, etc. performed by the access network device 1 described above.
[0349] In some other embodiments of the present application, the logic circuitry and interfaces may be configured to perform the functions, operations, etc. performed by the second access network device described above.
[0350] In some other embodiments of the present application, the logic circuits and interfaces may be configured to perform the functions, operations, etc. performed by the terminal devices described above.
[0351] In some embodiments of the present application, the logic circuits and interfaces may be configured to perform the functions, operations, etc. performed by the access network device 2 described above.
[0352] The present application further provides a computer-readable storage medium, which stores computer code, and when the computer code is run on a computer, enables the computer to perform the method in the above embodiments.
[0353] The present application further provides a computer program product, which includes a computer code or a computer program, which, when run on a computer, implements the authentication method in the above embodiments.
[0354] The present application further provides a communication system, including a terminal device, an access network device 1, a second access network device, and a third access network device.
[0355] The present application further provides a communication system, including a terminal device and an access network device 2.
[0356] The above description is merely a specific implementation of the present application, and the scope of protection of the present application is not limited thereto. Any modifications or replacements that can be easily conceived by those skilled in the art within the technical scope disclosed in the present application shall fall within the scope of protection of the present application. Therefore, the scope of protection of the present application should be in accordance with the scope of protection of the claims.
Claims
1. receiving, by a first access network device, first indication information from a second access network device, the first indication information indicating to the first access network device that the first access network device should send a first reconfiguration message after or before sending first candidate primary / secondary cell information to the second access network device, the first candidate primary / secondary cell information indicating one or more first candidate primary / secondary cells accepted by the third access network device among candidate primary / secondary cells that the second access network device requests the third access network device to add; sending, by the first access network device, the first reconfiguration message to a terminal device based on the first indication information, the first reconfiguration message including configuration information corresponding to the one or more first candidate primary / secondary cells; Including, the first indication information includes an indication field, and the indication field indicates to the first access network device that the first reconfiguration message should be sent after the first access network device sends the first candidate primary / secondary cell information to the second access network device; or The communication method, wherein the indication field indicates to the first access network device that the first access network device should send the first reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device.
2. The indication field further indicates to the first access network device that a second reconfiguration message should be sent after the first access network device has sent second candidate primary / secondary cell information to the second access network device, the second candidate primary / secondary cell information indicating one or more second candidate primary / secondary cells that the second access network device requests the fourth access network device to add and that have been accepted by the fourth access network device, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells, or The indication field further indicates to the first access network device that the first access network device should send a second reconfiguration message before sending second candidate primary / secondary cell information to the second access network device, the second candidate primary / secondary cell information indicating one or more second candidate primary / secondary cells accepted by the fourth access network device among candidate primary / secondary cells that the second access network device requests the fourth access network device to add, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells. The method of claim 1.
3. The method of claim 1 , wherein the first indication information includes an identification of the third access network device and / or an identification of the one or more first candidate primary / secondary cells.
4. the first indication information includes an identification of the third access network device and / or an identification of the one or more first candidate primary / secondary cells; The first indication information includes an identification of the fourth access network device and / or an identification of the one or more second candidate primary / secondary cells. The method of claim 2.
5. the first indication information includes a first field and a second field, the first field corresponds to an identification of the third access network device and / or an identification of the one or more first candidate primary / secondary cells, the second field corresponds to an identification of a fourth access network device and / or an identification of one or more second candidate primary / secondary cells, the first field indicates to the first access network device that the first access network device should send the first reconfiguration message before or after sending the first candidate primary / secondary cell information to the second access network device, and the second field indicates to the first access network device that the first access network device should send a second reconfiguration message before or after sending the second candidate primary / secondary cell information to the second access network device; The second candidate primary / secondary cell information indicates the one or more second candidate primary / secondary cells, and the one or more second candidate primary / secondary cells are one or more candidate primary / secondary cells that the second access network device requests the fourth access network device to add and that have been accepted by the fourth access network device, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells. The method of claim 1.
6. the first indication information includes a third field and a fourth field, the third field corresponding to identities of the one or more first candidate primary / secondary cells, and the fourth field corresponding to identities of one or more third candidate primary / secondary cells; The third field indicates to the first access network device that the first access network device should send the first reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device, and the fourth field indicates to the first access network device that the first access network device should send a third reconfiguration message corresponding to the one or more third candidate primary / secondary cells before sending third candidate primary / secondary cell information corresponding to the one or more third candidate primary / secondary cells to the second access network device, wherein the one or more third candidate primary / secondary cells belong to one or more access network devices. The method of claim 1.
7. 7. The method of claim 6, wherein the third field further corresponds to identification of one or more fourth candidate primary / secondary cells, and the third field further indicates to the first access network device that the first access network device should send a fourth reconfiguration message corresponding to the one or more fourth candidate primary / secondary cells after sending fourth candidate primary / secondary cell information corresponding to the one or more fourth candidate primary / secondary cells to the second access network device, and the one or more fourth candidate primary / secondary cells belong to one or more access network devices.
8. the first indication information includes a third field and a fourth field, the third field corresponding to identities of the one or more first candidate primary / secondary cells, and the fourth field corresponding to identities of one or more third candidate primary / secondary cells; The third field indicates to the first access network device that the first access network device should send the first reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device, and the fourth field indicates to the first access network device that the first access network device should send a third reconfiguration message corresponding to the one or more third candidate primary / secondary cells after sending third candidate primary / secondary cell information corresponding to the one or more third candidate primary / secondary cells to the second access network device, and the one or more third candidate primary / secondary cells correspond to one or more access network devices. The method of claim 1.
9. 9. The method of claim 8, wherein the third field further corresponds to an identification of one or more fourth candidate primary / secondary cells, and the third field further indicates to the first access network device that the first access network device should send a fourth reconfiguration message corresponding to the one or more fourth candidate primary / secondary cells before sending fourth candidate primary / secondary cell information corresponding to the one or more fourth candidate primary / secondary cells to the second access network device, and the one or more fourth candidate primary / secondary cells belong to one or more access network devices.
10. 2. The method of claim 1, wherein the first candidate primary / secondary cell information indicates one first candidate primary / secondary cell accepted by the third access network device among the candidate primary / secondary cells that the second access network device requests the third access network device to add, the first reconfiguration message includes configuration information corresponding to the one first candidate primary / secondary cell, and the first indication information includes a fifth field, the fifth field corresponds to an identification of the one first candidate primary / secondary cell, and the fifth field indicates to the first access network device that the first access network device should send the first reconfiguration message before or after sending the first candidate primary / secondary cell information to the second access network device.
11. 7. The method of claim 6, wherein the first indication information further includes an identification of the third access network device, and the identification of the one or more first candidate primary / secondary cells corresponds to the identification of the third access network device.
12. The method of claim 1 , wherein the first indication information is included in a secondary node change required message.
13. The method comprises: The method further includes a step of, when the first access network device does not receive second indication information indicating new indication information from the second access network device, sending a fifth reconfiguration message to the terminal device based on the received first indication information, wherein the second indication information indicates to the first access network device that the first access network device should send the fifth reconfiguration message after or before sending fifth candidate primary / secondary cell information to the second access network device, the fifth candidate primary / secondary cell information indicating one or more fifth candidate primary / secondary cells accepted by the fifth access network device among candidate primary / secondary cells that the second access network device requests the fifth access network device to add, and the fifth reconfiguration message includes configuration information corresponding to the one or more fifth candidate primary / secondary cells. The method of claim 1.
14. sending, by a second access network device, first indication information to a first access network device, the first indication information indicating to the first access network device that the first access network device should send a first reconfiguration message after or before sending first candidate primary / secondary cell information to the second access network device, the first candidate primary / secondary cell information indicating one or more first candidate primary / secondary cells accepted by the third access network device among candidate primary / secondary cells that the second access network device requests the third access network device to add; receiving, by the second access network device, the first candidate primary / secondary cell information from the first access network device; Including, the first indication information includes an indication field, and the indication field indicates to the first access network device that the first reconfiguration message should be sent after the first access network device sends the first candidate primary / secondary cell information to the second access network device; or The communication method, wherein the indication field indicates to the first access network device that the first access network device should send the first reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device.
15. The indication field further indicates to the first access network device that a second reconfiguration message should be sent after the first access network device has sent second candidate primary / secondary cell information to the second access network device, the second candidate primary / secondary cell information indicating one or more second candidate primary / secondary cells that the second access network device requests the fourth access network device to add and that have been accepted by the fourth access network device, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells, or The indication field further indicates to the first access network device that the first access network device should send a second reconfiguration message before sending second candidate primary / secondary cell information to the second access network device, the second candidate primary / secondary cell information indicating one or more second candidate primary / secondary cells accepted by the fourth access network device among candidate primary / secondary cells that the second access network device requests the fourth access network device to add, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells.
15. The method of claim 14.
16. The method of claim 14 , wherein the first indication information includes an identification of the third access network device and / or an identification of the one or more first candidate primary / secondary cells.
17. the first indication information includes an identification of the third access network device and / or an identification of the one or more first candidate primary / secondary cells; The first indication information includes an identification of the fourth access network device and / or an identification of the one or more second candidate primary / secondary cells.
16. The method of claim 15.
18. the first indication information includes a first field and a second field, the first field corresponds to an identification of the third access network device and / or an identification of the one or more first candidate primary / secondary cells, the second field corresponds to an identification of a fourth access network device and / or an identification of one or more second candidate primary / secondary cells, the first field indicates to the first access network device that the first access network device should send the first reconfiguration message before or after sending the first candidate primary / secondary cell information to the second access network device, and the second field indicates to the first access network device that the first access network device should send a second reconfiguration message before or after sending the second candidate primary / secondary cell information to the second access network device; The second candidate primary / secondary cell information indicates the one or more second candidate primary / secondary cells, and the one or more second candidate primary / secondary cells are one or more candidate primary / secondary cells that the second access network device requests the fourth access network device to add and that have been accepted by the fourth access network device, and the second reconfiguration message includes configuration information corresponding to the one or more second candidate primary / secondary cells.
15. The method of claim 14.
19. the first indication information includes a third field and a fourth field, the third field corresponding to identities of the one or more first candidate primary / secondary cells, and the fourth field corresponding to identities of one or more third candidate primary / secondary cells; The third field indicates to the first access network device that the first access network device should send the first reconfiguration message after sending the first candidate primary / secondary cell information to the second access network device, and the fourth field indicates to the first access network device that the first access network device should send a third reconfiguration message corresponding to the one or more third candidate primary / secondary cells before sending third candidate primary / secondary cell information corresponding to the one or more third candidate primary / secondary cells to the second access network device, wherein the one or more third candidate primary / secondary cells belong to one or more access network devices.
15. The method of claim 14.
20. 20. The method of claim 19, wherein the third field further corresponds to an identification of one or more fourth candidate primary / secondary cells, and the third field further indicates to the first access network device that the first access network device should send a fourth reconfiguration message corresponding to the one or more fourth candidate primary / secondary cells after sending fourth candidate primary / secondary cell information corresponding to the one or more fourth candidate primary / secondary cells to the second access network device, and the one or more fourth candidate primary / secondary cells belong to one or more access network devices.
21. the first indication information includes a third field and a fourth field, the third field corresponding to identities of the one or more first candidate primary / secondary cells, and the fourth field corresponding to identities of one or more third candidate primary / secondary cells; The third field indicates to the first access network device that the first access network device should send the first reconfiguration message before sending the first candidate primary / secondary cell information to the second access network device, and the fourth field indicates to the first access network device that the first access network device should send a third reconfiguration message corresponding to the one or more third candidate primary / secondary cells after sending third candidate primary / secondary cell information corresponding to the one or more third candidate primary / secondary cells to the second access network device, and the one or more third candidate primary / secondary cells correspond to one or more access network devices.
15. The method of claim 14.
22. 22. The method of claim 21 , wherein the third field further corresponds to an identification of one or more fourth candidate primary / secondary cells, and the third field further indicates to the first access network device that the first access network device should send a fourth reconfiguration message corresponding to the one or more fourth candidate primary / secondary cells before sending fourth candidate primary / secondary cell information corresponding to the one or more fourth candidate primary / secondary cells to the second access network device, and the one or more fourth candidate primary / secondary cells belong to one or more access network devices.
23. 15. The method of claim 14, wherein the first candidate primary / secondary cell information indicates one first candidate primary / secondary cell accepted by the third access network device among the candidate primary / secondary cells that the second access network device requests the third access network device to add, the first reconfiguration message includes configuration information corresponding to the one first candidate primary / secondary cell, and the first indication information includes a fifth field, the fifth field corresponds to an identification of the one first candidate primary / secondary cell, and the fifth field indicates to the first access network device that the first access network device should send the first reconfiguration message before or after sending the first candidate primary / secondary cell information to the second access network device.
24. 20. The method of claim 19, wherein the first indication information further includes an identification of the third access network device, and the identification of the one or more first candidate primary / secondary cells corresponds to the identification of the third access network device.
25. The method of claim 14, wherein the first indication information is included in a secondary node change required message.
26. A communication device comprising a module configured to implement a method according to any one of claims 1 to 25.
27. 1. A communications device comprising a processor and a transceiver, The transceiver is configured to receive or send signals, and the processor is configured to execute computer-executable instructions stored in a memory to enable the communication device to perform the method of any one of claims 1 to 25. Communication equipment.
28. 26. A computer-readable storage medium storing a computer program, the computer program including program instructions that, when executed by a processor, enable the processor to perform the method of any one of claims 1 to 25.
29. A communication system comprising a communication device configured to implement a method according to any one of claims 1 to 13 and a communication device configured to implement a method according to any one of claims 14 to 25.