Method and apparatus in communication node used for wireless communication
By setting up information blocks containing cell identity and time intervals in the CHO configuration, the adverse CHO execution problem caused by the MCG and SCG conditions satisfying time differences is solved, and more efficient configuration and more reliable link connection are achieved.
Patent Information
- Application Number
- CN202410913415.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-09
- Publication Date
- 2025-06-27
AI Technical Summary
In the CHO configuration carrying CPC, there is a difference in the order of the execution conditions of the MCG and SCG to be met, resulting in unfavorable execution of the CHO, which may cause handover failure or communication interruption.
By receiving the RRC message, the configuration of the MCG and SCG is applied, and the information blocks, including cell identification and time interval domain, are set in the first variable, and the time interval depends on the time when each condition is satisfied.
The CHO configuration is optimized, the rationality and efficiency of the configuration is improved, communication interruptions caused by handover are reduced, and the reliability and flexibility of link connections are enhanced.
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Figure CN120224310A_ABST
Abstract
Description
Technical Field
[0001] This application relates to transmission methods and devices in a wireless communication system, and particularly to methods and devices for reporting mobility information. Background Art
[0002] With the continuous development of wireless communication, the requirements for mobility, transmission delay, and transmission capacity are getting higher and higher. Therefore, technologies such as dual connectivity and carrier aggregation have been introduced in the 3GPP standard to expand the communication bandwidth. In R17, 3GPP allows the configuration information of a CHO candidate cell to include both the target MCG and the target SCG at the same time; in R18, 3GPP further enhanced the dual-connectivity scenario through the "Further NR mobility enhancements" Work Item (WI) in the NR (New Radio) research project, discussed carrying multiple candidate SCGs in a CHO condition configuration to support the simultaneous evaluation of CHO and CPC, and completed the corresponding modification to the protocol standardization.
[0003] Self-Organising Networks (SON) include network self-configuration and self-optimization. To optimize mobility performance, achieve fast handover, and reduce communication interruptions, existing protocols support user equipment (UE) to store relevant handover information beneficial to configuration optimization according to different handover completion situations and report the relevant stored information according to network instructions. Summary of the Invention
[0004] For a CHO carrying CPC, CHO and CPC can only be executed when the execution conditions of both the MCG and the SCG are met; the inventors have found through research that there is a difference in the order of time when the execution conditions of the MCG and the SCG are met. If the time interval between the two being met is too large, it will be unfavorable for the execution of a CHO carrying CPC, and further may cause serious situations such as handover failure or communication interruption; therefore, how to optimize the configuration of a CHO carrying CPC to make it more reasonable and efficient is a problem to be solved in this research.
[0005] In view of the above problems, the present application provides a solution. In the above problem description, the NR system is taken as an example. The present application is also applicable to scenarios such as the LTE (Long-Term Evolution) or LTE-A (Long-Term Evolution Advanced) system or the future 6G system, and can achieve technical effects similar to those of the NR system. Further, although the present application gives specific implementation manners for the mobility in the RRC_CONNECTED state involved in handover, the present application can also be used in scenarios such as the RRC_IDLE state or the RRC_INACTIVE state, and can achieve technical effects similar to the mobility in the RRC connected state. Further, although the present application gives specific implementation manners for the scenarios of CHO and CPC handover, the present application can also be used in scenarios such as LTM and traditional handover, and can achieve technical effects similar to those of CHO and CPC handover. Further, adopting a unified design solution for different scenarios also helps to reduce the hardware complexity and cost. Further, although the original intention of the present application is for the Uu air interface, the present application can also be used for the PC5 interface, and can achieve technical effects similar to those of the Uu air interface. Further, although the original intention of the present application is for the scenario of the terminal and the base station, the present application is also equally applicable to the V2X (Vehicle-to-Everything) scenario, the communication scenarios between the terminal and the relay, and between the relay and the base station, and can achieve technical effects similar to those in the scenario of the terminal and the base station. Further, although the original intention of the present application is for the scenario of the terminal and the base station, the present application is also equally applicable to the communication scenario of IAB (Integrated Access and Backhaul), and can achieve technical effects similar to those in the scenario of the terminal and the base station. Further, although the original intention of the present application is for the terrestrial network (TN) scenario, the present application is also equally applicable to the communication scenario of the non-terrestrial network (NTN), and can achieve technical effects similar to those in the TN scenario.
[0006] As an embodiment, the interpretation of the terms in the present application refers to the definitions in the 3GPP specification protocol series TS38.
[0007] As an embodiment, the interpretation of the terms in the present application refers to the definitions in the 3GPP specification protocol series TS37.
[0008] It should be noted that, without conflict, the embodiments and the features in the embodiments in any node and device of the present application can be applied to any other node and device. Without conflict, the embodiments and the features in the embodiments of the present application can be combined with each other arbitrarily.
[0009] The present application discloses a method applied to a terminal, characterized in that,
[0010] including:
[0011] receiving a first RRC message; wherein, the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG;
[0012] in response to the satisfaction of the first execution condition and the satisfaction of the second execution condition, applying the first configuration and applying the second configuration;
[0013] accompanying the application of the first configuration and the application of the second configuration, setting a first information block in a first variable; wherein, the first information block includes an identifier of the first cell and an identifier of the second cell;
[0014] wherein, the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0015] As an embodiment, the problems to be solved by the present application include: how to configure cell information and trigger conditions.
[0016] As an embodiment, the features of the above method include: receiving a first RRC message; wherein, the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG.
[0017] As an embodiment, the advantages of the above method include: reducing the interaction of configuration signaling.
[0018] As an embodiment, the advantages of the above method include: improving communication capacity.
[0019] As an embodiment, the problems to be solved by the present application include: when to apply the first configuration and apply the second configuration.
[0020] As an embodiment, the features of the above method include: in response to the satisfaction of the first execution condition and the satisfaction of the second execution condition, applying the first configuration and applying the second configuration.
[0021] As an embodiment, the features of the above method include: improving the conditions for applying the configuration and enhancing the robustness of the communication connection.
[0022] As an embodiment, the problems to be solved by the present application include: determining the conditions for storing relevant information in a first variable.
[0023] As an embodiment, the characteristics of the above method include: setting a first information block in the first variable along with applying the first configuration and applying the second configuration; wherein the first information block includes the identifier of the first cell and the identifier of the second cell.
[0024] As an embodiment, the advantages of the above method include: reusing existing protocols.
[0025] As an embodiment, the advantages of the above method include: facilitating the network to be aware of the connection between the first cell and the second cell.
[0026] As an embodiment, the problems to be solved by the present application include: determining the content setting of the first information block.
[0027] As an embodiment, the characteristics of the above method include: the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0028] As an embodiment, the advantages of the above method include: facilitating enhancing the connection between two execution conditions.
[0029] As an embodiment, the advantages of the above method include: facilitating optimizing the execution condition configuration.
[0030] According to one aspect of the present application, it is characterized in that the first information block includes a second field, and the second field includes the first measurement result and the second measurement result of the target cell; the target cell is the cell that first satisfies the execution condition among the first cell and the second cell.
[0031] As an embodiment, the problems to be solved by the present application include: determining the content setting of the first information block.
[0032] As an embodiment, the characteristics of the above method include: the first information block includes a second field, and the second field includes the first measurement result and the second measurement result of the target cell;
[0033] As an embodiment, the advantages of the above method include: storing more effective information.
[0034] As an embodiment, the advantages of the above method include: facilitating optimizing the relevant measurement configuration.
[0035] As an embodiment, the problems to be solved by the present application include: defining the target cell.
[0036] As an embodiment, the characteristics of the above method include: the target cell is the cell that first meets the execution condition among both the first cell and the second cell.
[0037] As an embodiment, the advantages of the above method include: improving UE autonomy.
[0038] As an embodiment, the advantages of the above method include: increasing protocol flexibility.
[0039] As an embodiment, the advantages of the above method include: the target cell can be determined only when the execution conditions of both the first cell and the second cell are met.
[0040] According to one aspect of the present application, it is characterized in that the first information block includes a third field, and the third field includes at least one of the first execution condition or the second execution condition.
[0041] As an embodiment, the problems to be solved by the present application include: determining the content setting of the first information block.
[0042] As an embodiment, the characteristics of the above method include: the first information block includes a third field, and the third field includes at least one of the first execution condition or the second execution condition.
[0043] As an embodiment, the advantages of the above method include: facilitating the optimization of the trigger event configuration.
[0044] According to one aspect of the present application, it is characterized in that the first information block includes that the third field depends on at least one of the first configuration or the second configuration not being successfully completed.
[0045] As an embodiment, the problems to be solved by the present application include: when to set the third field in the first information block.
[0046] As an embodiment, the characteristics of the above method include: the first information block includes that the third field depends on at least one of the first configuration or the second configuration not being successfully completed.
[0047] As an embodiment, the advantages of the above method include: setting storage conditions for setting the third field in the first information block.
[0048] As an embodiment, the advantages of the above method include: being conducive to saving resources.
[0049] According to one aspect of the present application, it is characterized in that the first information block includes a fourth field, and the fourth field indicates a second time interval; the second time interval depends on the time when the first RRC message is received and the time when the first configuration is applied and the second configuration is executed.
[0050] As an embodiment, the problems to be solved by the present application include: defining a second time interval.
[0051] As an embodiment, the characteristics of the above method include: the second time interval depends on the time when the first RRC message is received and the time when the first configuration is applied and the second configuration is executed.
[0052] As an embodiment, the advantages of the above method include: being beneficial to optimizing the configuration of execution conditions.
[0053] According to one aspect of the present application, it is characterized in that the first information block includes a fifth field, and the fifth field indicates a third time interval; the third time interval depends on the time when the first configuration is applied and the second configuration is executed and the time when the application of the second configuration fails; wherein, the application of the second configuration fails.
[0054] As an embodiment, the problems to be solved by the present application include: defining a third time interval.
[0055] As an embodiment, the characteristics of the above method include: the fifth field indicates a third time interval; the third time interval depends on the time when the first configuration is applied and the second configuration is executed and the time when the application of the second configuration fails.
[0056] As an embodiment, the advantages of the above method include: being beneficial to the optimization of the second configuration.
[0057] As an embodiment, the problems to be solved by the present application include: when to set the fifth field in the first information block.
[0058] As an embodiment, the characteristics of the above method include: when the application of the second configuration fails, set the fifth field in the first information block.
[0059] As an embodiment, the advantages of the above method include: being beneficial to saving resources.
[0060] According to one aspect of the present application, it is characterized in that setting the first information block in the first variable depends on the first time interval satisfying a first threshold; the first threshold is configurable.
[0061] As an embodiment, the problems to be solved by the present application include: when to set a first information block in a first variable.
[0062] As an embodiment, the characteristics of the above method include: setting the first information block in the first variable depends on the first time interval satisfying a first threshold; the first threshold is configurable.
[0063] As an embodiment, the benefits of the above method include: improving information storage efficiency.
[0064] According to one aspect of the present application, it is characterized in that
[0065] The method includes:
[0066] Receiving a second RRC message, the second RRC message including a first request indication;
[0067] Sending a third RRC message, the third RRC message including at least a first information block;
[0068] Wherein, the third RRC message including at least the first information block depends on the first request indication.
[0069] The present application discloses a method used in a base station, which is characterized in that
[0070] Including:
[0071] Sending a first RRC message; wherein, the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG;
[0072] Wherein, in response to the first execution condition being satisfied and the second execution condition being satisfied, the receiver of the first RRC message applies the first configuration and applies the second configuration; accompanying the application of the first configuration and the application of the second configuration, the receiver of the first RRC message sets a first information block in a first variable; the first information block includes an identifier of the first cell and an identifier of the second cell; the first information block includes a first field, the first field indicating a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0073] According to one aspect of the present application, it is characterized in that the first information block includes a second field, the second field including a first measurement result and a second measurement result of a target cell; the target cell is the cell among the first cell and the second cell that first satisfies the execution condition.
[0074] According to one aspect of the present application, it is characterized in that the first information block includes a third domain, and the third domain includes at least one of the first execution condition or the second execution condition.
[0075] According to one aspect of the present application, it is characterized in that the first information block includes that the third domain depends on that at least one of applying the first configuration or applying the second configuration is not successfully completed.
[0076] According to one aspect of the present application, it is characterized in that the first information block includes a fourth domain, and the fourth domain indicates a second time interval; the second time interval depends on the time when the first RRC message is received and the time when the first configuration and the second configuration are applied and executed.
[0077] According to one aspect of the present application, it is characterized in that the first information block includes a fifth domain, and the fifth domain indicates a third time interval; the third time interval depends on the time when the first configuration and the second configuration are applied and executed and the time when the application of the second configuration fails; wherein, the application of the second configuration fails.
[0078] According to one aspect of the present application, it is characterized in that setting the first information block in the first variable depends on that the first time interval satisfies a first threshold; the first threshold is configurable.
[0079] According to one aspect of the present application, it is characterized in that
[0080] The method includes:
[0081] Receiving a second RRC message, where the second RRC message includes a first request indication;
[0082] Sending a third RRC message, where the third RRC message includes the first information block in the first variable;
[0083] Wherein, the third RRC message includes that the first information block in the first variable depends on the first request indication.
[0084] The present application discloses a terminal for wireless communication, characterized in that
[0085] Including:
[0086] A first processor, receiving a first RRC message; wherein, the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG;
[0087] In response to the satisfaction of the first execution condition and the satisfaction of the second execution condition, apply the first configuration and apply the second configuration;
[0088] In conjunction with applying the first configuration and applying the second configuration, set a first information block in a first variable; wherein, the first information block includes an identifier of the first cell and an identifier of the second cell;
[0089] Wherein, the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0090] This application discloses a base station for use in wireless communication, characterized in that
[0091] including:
[0092] A second transmitter that sends a first RRC message; wherein, the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG;
[0093] Wherein, in response to the satisfaction of the first execution condition and the satisfaction of the second execution condition, the receiver of the first RRC message applies the first configuration and applies the second configuration; in conjunction with applying the first configuration and applying the second configuration, the receiver of the first RRC message sets a first information block in a first variable; the first information block includes an identifier of the first cell and an identifier of the second cell; the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0094] As an embodiment, compared with traditional solutions, this application has the following advantages:
[0095] -. Facilitate improving the reliability and flexibility of wireless link connections;
[0096] -. Facilitate reducing communication interruptions caused by handovers;
[0097] -. Facilitate saving storage resources;
[0098] -. Facilitate improving cell handover performance;
[0099] -. Facilitate network optimization and big data collection;
[0100] -. Facilitate enhancing transmission capacity;
[0101] - Facilitate configuration optimization for condition configuration. Brief Description of the Drawings
[0102] Other features, objects, and advantages of the present application will become more apparent by reading the detailed description of the non-limiting embodiments with reference to the following drawings:
[0103] Figure 1 A flowchart showing the communication of a terminal according to an embodiment of the present application;
[0104] Figure 2 A schematic diagram showing the network architecture according to an embodiment of the present application;
[0105] Figure 3 A schematic diagram showing an embodiment of the radio protocol architecture of the user plane and the control plane according to an embodiment of the present application;
[0106] Figure 4 A schematic diagram showing a first communication device and a second communication device according to an embodiment of the present application;
[0107] Figure 5 A flowchart showing the wireless signal transmission according to an embodiment of the present application;
[0108] Figure 6 A schematic diagram showing that a first information block includes a second domain according to an embodiment of the present application;
[0109] Figure 7 A schematic diagram showing that a first information block includes a third domain according to an embodiment of the present application;
[0110] Figure 8 A flowchart showing that a first information block includes the third domain depending on at least one of the first configuration or the second configuration not being successfully completed according to an embodiment of the present application;
[0111] Figure 9 A schematic diagram showing that a first information block includes a fourth domain according to an embodiment of the present application;
[0112] Figure 10 A schematic diagram showing that a first information block includes a fifth domain according to an embodiment of the present application;
[0113] Figure 11 A flowchart showing setting a first information block in a first variable depending on a first time interval satisfying a first threshold according to an embodiment of the present application;
[0114] Figure 12Schematic diagram showing that the third RRC message according to an embodiment of the present application includes at least a first information block dependent on the first request indication;
[0115] Figure 13 Structure block diagram of a processing device in a terminal according to an embodiment of the present application;
[0116] Figure 14 Structure block diagram of a processing device in a base station according to an embodiment of the present application. Detailed implementation manners
[0117] The technical solutions of the present application will be further described in detail below with reference to the accompanying drawings. It should be noted that, without conflict, the embodiments and features in the embodiments of the present application can be arbitrarily combined with each other.
[0118] Example 1
[0119] Embodiment 1 exemplifies a flowchart of communication of a terminal according to an embodiment of the present application, as shown in the accompanying Figure 1 drawing. In the accompanying Figure 1 drawing, each block represents a step. It should be particularly emphasized that the order of the blocks in the drawing does not represent the chronological order between the represented steps.
[0120] In Embodiment 1, in step 101, the terminal in the present application receives a first RRC message; wherein, the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG; in step 102, in response to the first execution condition being satisfied and the second execution condition being satisfied, the first configuration and the second configuration are applied; in step 103, in accompaniment with the application of the first configuration and the second configuration, a first information block is set in a first variable; wherein, the first information block includes an identifier of the first cell and an identifier of the second cell; wherein, the target cell is one of the first cell and the second cell; the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0121] As an embodiment, the first RRC message is UE-Specific.
[0122] As an embodiment, the first RRC message is a Cell Common RRC message.
[0123] As an example, the first RRC message is transmitted through a DCCH (Dedicated Control Channel).
[0124] As an example, the first RRC message is transmitted through an SCCH (Sidelink Control Channel).
[0125] As an example, the first RRC message is transmitted through a BCCH (Broadcast Control Channel).
[0126] As an example, the first RRC message is carried by an SRB0 (Signalling Radio Bearer 0).
[0127] As an example, the first RRC message is carried by an SRB1 (Signalling Radio Bearer 1).
[0128] As an example, the first RRC message is carried by an SRB3 (Signalling Radio Bearer 3).
[0129] As an example, the first RRC message is transmitted through a PDSCH (Physical Downlink Shared Channel).
[0130] As an example, the first RRC message includes RRCReconfiguration.
[0131] As an example, the first RRC message is RRCReconfiguration.
[0132] As an example, the first RRC message includes RRCResume.
[0133] As an example, the first RRC message is RRCResume.
[0134] As an example, the first RRC message includes mrdc-SecondaryCellGroupConfig.
[0135] As an example, the first RRC message is mrdc-SecondaryCellGroupConfig.
[0136] As an example, the first RRC message includes a conditionalReconfiguration IE.
[0137] As an example, the first RRC message is a conditionalReconfiguration IE.
[0138] As an example, the first RRC message includes a condReconfigToAddModList-r16.
[0139] As an example, the first RRC message includes at least a condExecutionCond-r16 field and a condExecutionCondPSCell-r18 field.
[0140] As an example, the first RRC message includes an LTM-config message.
[0141] As an example, the first RRC message is an LTM-config message.
[0142] As an example, the first RRC message is an LTM-Candidate message.
[0143] As an example, the first RRC message includes a CellGroupConfig IE.
[0144] As an example, the first RRC message includes a reconfigurationWithSync field.
[0145] As an example, the first RRC message includes a ServingCellConfig IE.
[0146] As an example, the first cell is a CHO candidate cell.
[0147] As an example, the first cell is an LTM candidate cell.
[0148] As an example, the first cell is a CPC candidate cell.
[0149] As an example, the first cell is a CPA candidate cell.
[0150] As an example, the first cell is a subsequent candidate cell.
[0151] As an example, the first cell is a candidate PCell cell.
[0152] As an example, the first configuration is the configuration of the first cell.
[0153] As an example, the first configuration includes the configuration of the first cell.
[0154] As an example, the first configuration belongs to the configuration of the first cell.
[0155] As an example, the first configuration includes condRRCReconfig.
[0156] As an example, the first configuration is condRRCReconfig.
[0157] As an example, the first configuration includes LTM-Config.
[0158] As an example, the first configuration is LTM-Config.
[0159] As an example, the first configuration includes the CellGroupConfig IE.
[0160] As an example, the first configuration includes the masterCellGroup field.
[0161] As an example, the first configuration includes the identifier of the first cell.
[0162] As an example, the first configuration includes at least the identifier of the first cell.
[0163] As an example, the first configuration includes the identifiers of the first cell and the second cell.
[0164] As an example, the first configuration includes a measurement configuration.
[0165] As an example, the measurement configuration includes: measurement objects.
[0166] As an example, the measurement configuration includes: the type of measurement trigger event.
[0167] As an example, the measurement configuration includes: a reporting configuration.
[0168] As an example, the measurement configuration includes: the resource configuration of reference information.
[0169] As an example, the reference signal refers to: SSB.
[0170] As an example, the reference signal refers to: CSI-RS.
[0171] As an embodiment, the reference signal refers to: CSI-RS and SSB.
[0172] As an embodiment, the reference signal refers to: a reference signal other than the CSI-RS and the SSB.
[0173] As an embodiment, the first execution condition is included in the first configuration information.
[0174] As an embodiment, the first execution condition is specific to the first cell.
[0175] As an embodiment, the first execution condition is included in condExecutionCond.
[0176] As an embodiment, the first execution condition is condExecutionCond.
[0177] As an embodiment, the first execution condition is configured with 1 MeasId.
[0178] As an embodiment, the first execution condition is configured with 2 MeasIds.
[0179] As an embodiment, the first execution condition includes MeasId.
[0180] As an embodiment, the first execution condition includes at least MeasId.
[0181] As an embodiment, the second cell is a CHO candidate cell.
[0182] As an embodiment, the second cell is a CPC candidate cell.
[0183] As an embodiment, the second cell is a CPA candidate cell.
[0184] As an embodiment, the second cell is an LTM candidate cell.
[0185] As an embodiment, the second cell is a subsequent candidate cell.
[0186] As an embodiment, the second cell is a candidate PCell.
[0187] As an embodiment, the second cell is a target PCell.
[0188] As an embodiment, the second cell is a candidate PSCell.
[0189] As an example, the second cell is a target PSCell.
[0190] As an example, the second cell is configured for the first cell.
[0191] As an example, the second cell being configured for the first cell means that the second cell is a candidate PSCell of the first cell, and the first cell is a PCell.
[0192] As an example, the second cell being configured for the first cell means that the second cell is a target PSCell of the first cell, and the first cell is a PCell.
[0193] As an example, the second cell being configured for the first cell means that the second cell is a subsequent candidate PSCell of the first cell, and the first cell is a PSCell.
[0194] As an example, the second cell being configured for the first cell means that the second cell is associated with the first cell.
[0195] As an example, the second cell being configured for the first cell means that whether the second configuration for the second cell is applied depends on whether the second configuration for the first cell is applied.
[0196] As an example, the second configuration for the second cell being applied depending on the first configuration for the first cell being applied means that the second configuration for the second cell is applied only when the first configuration for the first cell is applied.
[0197] As an example, the second cell being configured for the first cell means that whether the second configuration for the second cell is applied depends on the first configuration for the first cell being successfully applied.
[0198] As an example, the second configuration for the second cell is applied only when the first configuration for the first cell is successfully applied.
[0199] As an example, the second configuration is the configuration of the second cell.
[0200] As an example, the second configuration includes the configuration of the second cell.
[0201] As an example, the second configuration belongs to the configuration of the second cell.
[0202] As an example, the second configuration includes condRRCReconfig.
[0203] As an example, the second configuration is condRRCReconfig.
[0204] As an example, the second configuration includes LTM-Config.
[0205] As an example, the second configuration is LTM-Config.
[0206] As an example, the second configuration includes the CellGroupConfig IE.
[0207] As an example, the second configuration includes the MRDC-SecondaryCellGroupConfig field.
[0208] As an example, the second configuration includes the secondaryCellGroup field.
[0209] As an example, the second configuration information includes measurement configuration.
[0210] As an example, the second configuration includes the identifier of the cell of the second cell.
[0211] As an example, the second configuration includes at least the identifier of the cell of the second cell.
[0212] As an example, the second execution condition is included in the second configuration.
[0213] As an example, the second execution condition is specific to the second cell.
[0214] As an example, the second execution condition includes condExecutionCondPSCell.
[0215] As an example, the second execution condition is condExecutionCondPSCell.
[0216] As an example, the second execution condition is configured by the second cell.
[0217] As an example, the second execution condition is associated with the first cell.
[0218] As an example, the second execution condition is configured by the first cell.
[0219] As an example, the second execution condition and the first execution condition are configured by the first cell.
[0220] As an example, the first RRC message includes a first configuration and a first execution condition for a first cell, and a second configuration and a second execution condition for a second cell, where the second cell is configured for the first cell.
[0221] As an example, the first RRC message only includes a first configuration and a first execution condition for a first cell, and a second configuration and a second execution condition for a second cell, where the second cell is configured for the first cell.
[0222] As an example, the first RRC message includes two configuration fields; one configuration field includes the first configuration and the first execution condition of the first cell; the other configuration field includes the second configuration and the second execution condition of the second cell.
[0223] As an example, the first RRC message includes two configuration fields; one configuration field includes the first configuration of the first cell and the second configuration of the second cell; the other configuration field includes the first execution condition of the first cell and the second execution condition of the second cell.
[0224] As an example, the first configuration is for the MCG and the second configuration is for the SCG, which means that the first cell is configured for the MCG and the second cell is configured for the SCG.
[0225] As an example, the first configuration is for the MCG and the second configuration is for the SCG, which means that the first cell is a candidate PCell of the MCG and the second cell is a candidate PSCell of the SCG.
[0226] As an example, the first configuration is for the MCG and the second configuration is for the SCG, which means that the first configuration includes the configuration of the candidate PCell of the MCG, and the second configuration includes the configuration of the candidate PSCell of the SCG.
[0227] As an example, the first configuration is for the MCG and the second configuration is for the SCG, which means that the first configuration is the masterCellGroup; the second configuration is the secondaryCellGroup.
[0228] As an example, the first configuration is for the MCG and the second configuration is for the SCG, which means that the first configuration is the masterCellGroup; the second configuration is the mrdc-SecondaryCellGroupConfig, and the mrdc-SecondaryCellGroup in the mrdc-SecondaryCellGroupConfig is set to nr-SCG.
[0229] As an example, the first configuration for MCG and the second configuration for SCG mean that: the first configuration belongs to the masterCellGroup; the second configuration belongs to the secondaryCellGroup.
[0230] As an example, the first configuration for MCG and the second configuration for SCG mean that: the first configuration belongs to the masterCellGroup; the second configuration belongs to the mrdc-SecondaryCellGroupConfig, and the mrdc-SecondaryCellGroup in the mrdc-SecondaryCellGroupConfig is set to nr-SCG.
[0231] As an example, the first configuration for MCG and the second configuration for SCG mean that: the first configuration includes the masterCellGroup; the second configuration includes the secondaryCellGroup.
[0232] As an example, the first configuration for MCG and the second configuration for SCG mean that: the first configuration includes the masterCellGroup; the second configuration includes the mrdc-SecondaryCellGroupConfig, and the mrdc-SecondaryCellGroup in the mrdc-SecondaryCellGroupConfig is set to nr-SCG.
[0233] As an example, the first execution condition includes condExecutionCond-r16.
[0234] As an example, the first execution condition is condExecutionCond-r16.
[0235] As an example, the second execution condition includes condExecutionCondSCG-r17.
[0236] As an example, the second execution condition includes condExecutionCondPSCell-r18.
[0237] As an example, the second execution condition is condExecutionCondPSCell-r18.
[0238] As an example, the execution condition includes the MeasId of the associated cell.
[0239] Typically, the first RRC message includes a CondReconfigToAddMod-r16, the CondReconfigToAddMod-r16 includes a condRRCReconfig-r16, a condExecutionCond-r16 and a condExecutionCondPSCell-r18, the condRRCReconfig-r16 includes the first configuration for the first cell and the second configuration for the second cell, the condExecutionCond-r16 includes the first execution condition for the first cell, and the condExecutionCondPSCell-r18 includes the second execution condition for the second cell.
[0240] As an embodiment, the order of applying the first configuration and applying the second configuration is based on UE implementation.
[0241] As an embodiment, applying the configuration includes: performing a random access procedure.
[0242] As an embodiment, applying the configuration includes: resetting the MAC entity.
[0243] As an embodiment, applying the configuration includes: clearing all candidate configuration information except for subsequent candidate configuration information.
[0244] As an embodiment, applying the configuration includes: stopping all timers.
[0245] As an embodiment, applying the configuration includes: starting relevant timers.
[0246] As an embodiment, applying the configuration includes: applying relevant uplink resources.
[0247] As an embodiment, applying the first configuration and applying the second configuration are for handover.
[0248] As an embodiment, applying the first configuration and applying the second configuration are for switch.
[0249] As an embodiment, applying the first configuration and applying the second configuration are for establishing a wireless connection.
[0250] As an embodiment, applying the first configuration and applying the second configuration are for restoring a wireless connection.
[0251] As an example, setting the first information block in the first variable in accompaniment with the application of the first configuration and the application of the second configuration means that when the first execution condition is satisfied and the second execution condition is satisfied, the first information block is set in the first variable.
[0252] As an example, setting the first information block in the first variable in accompaniment with the application of the first configuration and the application of the second configuration means that when it is determined that the first configuration and the second configuration are applied, the first information block is set in the first variable.
[0253] As an example, setting the first information block in the first variable in accompaniment with the application of the first configuration and the application of the second configuration means that when the application of the first configuration and the application of the second configuration are in progress, the first information block is set in the first variable.
[0254] As an example, setting the first information block in the first variable in accompaniment with the application of the first configuration and the application of the second configuration means that when the application of the first configuration and the application of the second configuration are completed, the first information block is set in the first variable.
[0255] As an example, setting the first information block in the first variable in accompaniment with the application of the first configuration and the application of the second configuration means that when at least the application of the first configuration and the application of the second configuration are completed, the first information block is set in the first variable.
[0256] As an example, setting the first information block in the first variable in accompaniment with the application of the first configuration and the application of the second configuration means that in response to the application of the first configuration and the application of the second configuration being completed, the first information block is set in the first variable.
[0257] As an example, the completion of the application of the first configuration and the application of the second configuration means that the application of the first configuration and the application of the second configuration are successfully completed.
[0258] As an example, the completion of the application of the first configuration and the application of the second configuration means that the application of the first configuration and the application of the second configuration are not successfully completed.
[0259] As an example, the unsuccessful completion of the application of the first configuration and the application of the second configuration means that the T304 corresponding to any one of the first cell and the second cell expires.
[0260] As an example, setting the first information block in the first variable along with applying the first configuration and applying the second configuration means that when the configuration information of a cell other than the first cell and the second cell is completed, the first information block is not set in the first variable.
[0261] As an example, setting the first information block in the first variable depends on the first configuration parameter being configured.
[0262] As an example, the first configuration parameter is configured for CHO with candidate SCG(s).
[0263] As an example, the first configuration parameter is configured for SON.
[0264] As an example, the first configuration parameter is included in SON-Parameters.
[0265] As an example, the first configuration parameter includes SON-Parameters.
[0266] As an example, the first configuration parameter is SON-Parameters.
[0267] As an example, the first configuration parameter is success-HO-Report-r19.
[0268] As an example, the first configuration parameter is success-HO-Report-CHO-r19.
[0269] As an example, the first configuration parameter is rlfReportCHO-r19.
[0270] As an example, the name of the first configuration parameter includes success and Report.
[0271] As an example, the name of the first configuration parameter includes RLF and Report.
[0272] As an example, the first variable is for CHO with candidate SCG(s).
[0273] As an example, setting the first information block in the first variable is for CHO with candidate SCG(s).
[0274] As an example, the first variable is VarSuccessHO-Report.
[0275] As an example, the first variable is VarSuccessPSCell-Report.
[0276] As an example, the first variable includes VarSuccessHO-Report.
[0277] As an example, the first variable includes VarSuccessPSCell-Report.
[0278] As an example, the name of the first variable includes Var and Success.
[0279] As an example, the name of the first variable includes CHO with candidate SCG(s).
[0280] As an example, the name of the first variable includes at least one of VarSuccess, LTM, CHO, CHO with candidate SCG(s), mobility, and Report.
[0281] As an example, the first information block is successHO-Report-r17.
[0282] As an example, the first information block is successHO-Report-r19.
[0283] As an example, the first information block is successHO-Report-r20.
[0284] As an example, the first information block is successPSCell-Report-r17.
[0285] As an example, the first information block is successPSCell-Report-r19.
[0286] As an example, the first information block is successPSCell-Report-r20.
[0287] As an example, the first information block is SuccessLTM-Report-r19.
[0288] As an example, the first information block is SuccessLTM-Report-r20.
[0289] As an example, the first variable is set to RLF.
[0290] As an example, the first variable is VarRLF-Report.
[0291] As an example, the first variable includes VarRLF-Report.
[0292] As an example, the first variable belongs to VarRLF-Report.
[0293] As an example, the first information block is RLF-Report-r16.
[0294] As an example, the first information block is RLF-Report-r19.
[0295] As an example, the first information block is RLF-Report-r20.
[0296] As an example, the first information block at least includes the identifier of the first cell and the identifier of the second cell.
[0297] As an example, the first information block includes the identifier of the first cell and the identifier of the second cell, indicating that the application of the first configuration and the application of the second configuration have been successfully completed.
[0298] As an example, the first information block includes the identifier of the first cell and the identifier of the second cell, indicating that the application of the first configuration and the application of the second configuration have not been successfully completed.
[0299] As an example, the first information block includes a first identity domain, and the first identity domain includes the identifier of the first cell and the identifier of the second cell.
[0300] As an example, the first identity domain only includes the identifier of the first cell and the identifier of the second cell.
[0301] As an example, the first identity domain includes the identifier of the candidate cell in the first RRC message.
[0302] As an example, the first identity domain includes the identifiers of all candidate cells in the conditional configuration.
[0303] As an example, the identifier of the cell is a logical identifier.
[0304] As an example, the identifier of the cell includes NCGI (NR Cell Global Identifier).
[0305] As an example, the identifier of the cell includes CGI (Cell Global Identifier).
[0306] As an example, the identifier of the cell includes PLMN (Public Land Mobile Network).
[0307] As an example, the identifier of the cell includes SNPN (Stand-alone Non-Public Network).
[0308] As an example, the identifier of the cell includes one of NCGI, CGI, PLMN, and SNPN.
[0309] As an example, the identifier of the cell includes PLMN and CGI.
[0310] As an example, the identifier of the cell includes SNPN and CGI.
[0311] As an example, the identifier of the cell is a bit string.
[0312] As an example, the identifier of the cell uniquely indicates any one of the cells within a tracking area.
[0313] As an example, the identifier of the cell uniquely indicates any one of the cells within multiple tracking areas.
[0314] As an example, the identifier of the cell uniquely indicates any one of the cells within a PLMN.
[0315] As an example, the identifier of the cell uniquely indicates any one of the cells within multiple PLMNs.
[0316] As an example, the identifier of the cell uniquely indicates any one of the cells within a SNPN.
[0317] As an example, the identifier of the cell uniquely indicates any one of the cells within multiple SNPNs.
[0318] As an example, the identifier of the cell is the global cell identifier (Cell Global Identifier, CGI) and the tracking area code (Tracking Area Code).
[0319] As an example, the identifier of the cell includes the cell PCI (Physical Cell Identity).
[0320] As an example, the identifier of the cell is the cell PCI and the carrier frequency.
[0321] As an example, the identifier of the cell includes the servingCellId of the cell.
[0322] As an example, the identifier of the cell includes the CGI of the cell and the Tracking Area Code (TAC) of the cell.
[0323] As an example, if the GCI and TAC of the cell are available, the cell identifier is the GCI and TAC of the cell; otherwise, the identifier of the cell is the cell PCI.
[0324] As an example, if the GCI and TAC of the cell are available, the cell identifier is the GCI and TAC of the cell; otherwise, the identifier of the cell is the cell PCI and the carrier frequency.
[0325] As an example, if the global cell identifier and the tracking area code of the first cell and / or the second cell are available, the identifier of the cell is the global cell identifier and the tracking area code of the first cell and / or the second cell; otherwise, the identifier of the cell is the cell PCI and the carrier frequency.
[0326] As an example, the name of the first time interval includes "Time".
[0327] As an example, the name of the first time interval includes "elapsedTime".
[0328] As an example, the unit of the first time interval is a positive integer in milliseconds.
[0329] As an example, the unit of the first time interval is a positive integer in seconds.
[0330] As an example, the first time interval is equal to the time interval between the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0331] As an example, the first time interval is the time interval between the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0332] As an example, the first time interval is the time elapsed between the time when the first execution condition is satisfied and the time when the second execution condition is satisfied, where the first execution condition is satisfied earlier in time than the second execution condition.
[0333] As an example, the time when the first execution condition is satisfied is the time when the condition corresponding to a MeasId in the first execution condition is satisfied; the first execution condition is configured with only 1 MeasId.
[0334] As an example, the time when the first execution condition is satisfied is the time when the condition corresponding to a MeasId in the first execution condition is satisfied; the first execution condition is configured with 2 MeasIds; the one MeasId is the MeasId that is satisfied later in time among the 2 MeasIds.
[0335] As an example, the terminal determines that the first execution condition is satisfied based on measurement.
[0336] As an example, the terminal determines that the first execution condition is satisfied based on prediction.
[0337] As an example, the time when the second execution condition is satisfied is the time when the condition corresponding to a MeasId in the second execution condition is satisfied; the second execution condition is configured with only 1 MeasId.
[0338] As an example, the time when the second execution condition is satisfied is the time when the condition corresponding to a MeasId in the second execution condition is satisfied; the second execution condition is configured with 2 MeasIds; the one MeasId is the MeasId that is satisfied later in time among the 2 MeasIds.
[0339] As an example, the terminal determines that the second execution condition is satisfied based on measurement.
[0340] As an example, the terminal determines that the second execution condition is satisfied based on prediction.
[0341] As an example, the first time interval is the time interval between the time when the first execution condition is satisfied and the time when the second execution condition is satisfied; the time when the first execution condition is satisfied is earlier than the time when the second execution condition is satisfied.
[0342] As an example, the start time of the first time interval is the time when the first execution condition is satisfied.
[0343] As an example, the end time of the first time interval is the time when the second execution condition is satisfied.
[0344] As an example, the first time interval is the time interval between the time when the second execution condition is satisfied and the time when the first execution condition is satisfied; the time when the first execution condition is satisfied is later than the time when the second execution condition is satisfied.
[0345] As an example, the start time of the first time interval is the time when the second execution condition is satisfied.
[0346] As an example, the end time of the first time interval is the time when the first execution condition is satisfied.
[0347] As an example, the first time interval is either the time from when the first execution condition and the second execution condition are configured to when the first execution condition is satisfied or the time from when the first execution condition and the second execution condition are configured to when the second execution condition is satisfied.
[0348] As an example, the first time interval is the time from when the first execution condition and the second execution condition are configured to when the first execution condition is satisfied.
[0349] As an example, the first time interval is the time from when the first execution condition and the second execution condition are configured to when the second execution condition is satisfied.
[0350] As an example, the time when the first execution condition is satisfied is earlier than the time when the second execution condition is satisfied.
[0351] As an example, the time when the first execution condition is satisfied is later than the time when the second execution condition is satisfied.
[0352] As an example, the start time of the first time interval is the time when the first execution condition and the second execution condition are configured.
[0353] As an example, the end time of the first time interval is the time when the first execution condition is satisfied.
[0354] As an example, the end time of the first time interval is the time when the second execution condition is satisfied.
[0355] As an example, the first information block includes a first field that depends on the first time interval to meet a threshold.
[0356] As an example, in response to the first time interval meeting a threshold, the first information block includes a first field that indicates the first time interval.
[0357] As an example, the first time interval meets a threshold to trigger that the first information block includes a first field, and the first field indicates the first time interval.
[0358] As an example, the first time interval meets a threshold means that the first time interval is not less than a threshold.
[0359] As an example, the not less than means greater than or equal to.
[0360] As an example, the not less than means greater than.
[0361] As an example, the threshold is configured by the first RRC message.
[0362] As an example, the threshold is configured by the network.
[0363] As an example, the threshold is implemented based on the UE.
[0364] As an example, in response to successfully completing the application of the first configuration and the application of the second configuration, a first information block is set in the first variable; the first variable is VarSuccessHO-Report; the first information block indicates success information.
[0365] As an example, in response to successfully completing the application of the first configuration and the application of the second configuration, a first information block is set in the first variable; the first variable is VarSuccessHO-Report; the first information block indicates information about the first time interval, and the first time interval is the time when the first execution condition and the second execution condition are configured until the first execution condition is satisfied.
[0366] As an example, in response to successfully completing the application of the first configuration and the application of the second configuration, a first information block is set in the first variable; the first variable is VarSuccessPSCell-Report; the first information block indicates success information.
[0367] As an example, in response to successfully completing the application of the first configuration and the application of the second configuration, a first information block is set in the first variable; the first variable is VarSuccessPSCell-Report; the first information block indicates information about the first time interval, and the first time interval is the time when the first execution condition and the second execution condition are configured until the second execution condition is satisfied.
[0368] As an example, in response to the application of the first configuration and the unsuccessful completion of the application of the second configuration, a first information block is set in the first variable; the first variable is VaRLF-Report; the first information block indicates failure information.
[0369] As an example, in response to the application of the first configuration and the unsuccessful completion of the application of the second configuration, a first information block is set in the first variable; the first variable is VaRLF-Report; the first information block indicates information on the first time interval.
[0370] Example 2
[0371] Example 2 illustrates a schematic diagram of a network architecture according to an embodiment of the present application, as shown in the appendix Figure 2 as shown. Appendix Figure 2Describes the network architecture 200 of a 5G NR (New Radio) / LTE (Long-Term Evolution) / LTE-A (Long-Term Evolution Advanced) system. The 5G NR / LTE / LTE-A network architecture 200 may be referred to as 5GS (5G System) / EPS (Evolved Packet System) 200 or some other suitable term. The 5GS / EPS 200 includes at least one of UE (User Equipment) 201, RAN (Radio Access Network) 202, 5GC (5G Core Network) / EPC (Evolved Packet Core) 210, HSS (Home Subscriber Server) / UDM (Unified Data Management) 220, and Internet service 230. The 5GS / EPS may be interconnected with other access networks, but these entities / interfaces are not shown for simplicity. As shown, the 5GS / EPS provides packet-switched services. However, those skilled in the art will readily understand that the various concepts presented throughout this application can be extended to networks that provide circuit-switched services or other cellular networks. The RAN includes node 203 and other nodes 204. Node 203 provides user and control plane protocol termination towards UE 201. Node 203 may be connected to other nodes 204 via the Xn interface (e.g., backhaul) / X2 interface. Node 203 may also be referred to as a base station, base transceiver station, radio base station, radio transceiver, transceiver function, basic service set (BSS), extended service set (ESS), TRP (Transmitting and Receiving Point), or some other suitable term. Node 203 provides an access point to the 5GC / EPC 210 for UE 201. Examples of UE 201 include cellular phones, smartphones, Session Initiation Protocol (SIP) phones, laptop computers, personal digital assistants (PDAs), satellite radios, non-terrestrial base station communications, satellite mobile communications, global positioning systems, multimedia devices, video devices, digital audio players (e.g., MP3 players), cameras, game consoles, drones, aircraft, narrowband Internet of Things devices, machine-type communication devices, land vehicles, automobiles, wearable devices, or any other similar functional device. Those skilled in the art may also refer to UE 201 as a mobile station, subscriber station, mobile unit, subscriber unit, wireless unit, remote unit, mobile device, wireless device, wireless communication device, remote device, mobile subscriber station, access terminal, mobile terminal, wireless terminal, remote terminal, handset, user agent, mobile client, client, or some other suitable term.The node 203 is connected to the 5GC / EPC 210 via the S1 / NG interface. The 5GC / EPC 210 includes an MME (Mobility Management Entity) / AMF (Authentication Management Field) / SMF (Session Management Function) 211, other MME / AMF / SMFs 214, an S-GW (Service Gateway) / UPF (User Plane Function) 212, and a P-GW (Packet Date Network Gateway) / UPF 213. The MME / AMF / SMF 211 is a control node that processes the signaling between the UE 201 and the 5GC / EPC 210. Generally, the MME / AMF / SMF 211 provides bearer and connection management. All user IP (Internet Protocal) packets are transmitted through the S-GW / UPF 212, and the S-GW / UPF 212 itself is connected to the P-GW / UPF 213. The P-GW provides UE IP address allocation and other functions. The P-GW / UPF 213 is connected to the Internet service 230. The Internet service 230 includes operator-corresponding Internet protocol services, which may specifically include the Internet, an intranet, an IMS (IP Multimedia Subsystem), and packet-switched streaming services.
[0372] As an embodiment, the UE 201 corresponds to the terminal in this application.
[0373] As an embodiment, the UE 201 is a user equipment (UE).
[0374] As an embodiment, the terminal is a user equipment.
[0375] As an embodiment, the UE 201 is a relay device.
[0376] As an embodiment, the node 203 corresponds to the base station in this application.
[0377] As an embodiment, the node 203 is a base station device.
[0378] As an embodiment, the node 203 is a relay device.
[0379] As an example, the node 203 is a gateway device.
[0380] Typically, the UE 201 is a user equipment, and the node 203 is a base station device.
[0381] As an example, the user equipment supports transmission over a Non-Terrestrial Network (NTN).
[0382] As an example, the user equipment supports transmission over a Terrestrial Network.
[0383] As an example, the user equipment supports Dual Connection (DC) transmission.
[0384] As an example, the user equipment includes an aircraft.
[0385] As an example, the user equipment includes a vehicle-mounted terminal.
[0386] As an example, the user equipment includes a ship.
[0387] As an example, the user equipment includes an Internet of Things (IoT) terminal.
[0388] As an example, the user equipment includes a terminal for industrial Internet of Things.
[0389] As an example, the user equipment includes a device that supports low-latency and high-reliability transmission.
[0390] As an example, the user equipment includes a test device.
[0391] As an example, the user equipment includes a signaling tester.
[0392] As an example, the user equipment includes an IAB (Integrated Access and Backhaul)-MT.
[0393] As an example, the user equipment supports generating reports using AI (Artificial Intelligence) or machine learning.
[0394] As an example, the user equipment is a terminal that supports Massive-MIMO.
[0395] As an example, the base station device supports transmission over a non-terrestrial network.
[0396] As an embodiment, the base station device supports the transmission of a terrestrial network.
[0397] As an embodiment, the base station device includes a Base Transceiver Station (BTS).
[0398] As an embodiment, the base station device includes a Node B (NB).
[0399] As an embodiment, the base station device includes a gNB.
[0400] As an embodiment, the base station device includes an eNB.
[0401] As an embodiment, the base station device includes an ng-eNB.
[0402] As an embodiment, the base station device includes an en-gNB.
[0403] As an embodiment, the base station device includes a CU (Centralized Unit).
[0404] As an embodiment, the base station device includes a DU (Distributed Unit).
[0405] As an embodiment, the base station device includes a TRP (Transmitter Receiver Point).
[0406] As an embodiment, the base station device includes a macro cellular base station.
[0407] As an embodiment, the base station device includes a micro cell base station.
[0408] As an embodiment, the base station device includes a pico cell base station.
[0409] As an embodiment, the base station device includes a femtocell.
[0410] As an embodiment, the base station device includes a flying platform device.
[0411] As an embodiment, the base station device includes a satellite device.
[0412] As an embodiment, the base station device includes a test device.
[0413] As an embodiment, the base station device includes a signaling tester.
[0414] As an embodiment, the base station device includes a gateway device.
[0415] As an embodiment, the base station device includes an IAB-node.
[0416] As an embodiment, the base station device includes an IAB-donor.
[0417] As an embodiment, the base station device includes an IAB-donor-CU.
[0418] As an embodiment, the base station device includes an IAB-donor-DU.
[0419] As an embodiment, the base station device includes an IAB-DU.
[0420] As an embodiment, the base station device includes an IAB-MT.
[0421] As an embodiment, the base station device supports Massive-MIMO based transmission.
[0422] As an embodiment, the base station device supports decompressing CSI using an AI model.
[0423] As an embodiment, the base station device supports mobility management using an AI model.
[0424] Example 3
[0425] Embodiment 3 shows a schematic diagram of an embodiment of a radio protocol architecture for a user plane and a control plane according to the present application, as shown in the appendix Figure 3 as shown. Figure 3 is a schematic diagram illustrating an embodiment of a radio protocol architecture for user plane 350 and control plane 300, Figure 3The radio protocol architecture for controlling plane 300 is shown in three layers: Layer 1, Layer 2, and Layer 3. Layer 1 (L1 layer) is the lowest layer and implements various PHY (Physical Layer) signal processing functions. The L1 layer will be referred to as PHY301 herein. Layer 2 (L2 layer) 305 is above PHY301 and includes a MAC (Medium Access Control) sub-layer 302, an RLC (Radio Link Control) sub-layer 303, and a PDCP (Packet Data Convergence Protocol) sub-layer 304. The PDCP sub-layer 304 provides multiplexing between different radio bearers and logical channels. The PDCP sub-layer 304 also provides security by encrypting data packets and provides handover support. The RLC sub-layer 303 provides segmentation and reassembly of upper layer data packets, retransmission of lost data packets, and reordering of data packets to compensate for disordered reception due to HARQ (Hybrid Automatic Repeat Request). The MAC sub-layer 302 provides multiplexing between logical and transport channels. The MAC sub-layer 302 is also responsible for allocating various radio resources (e.g., resource blocks) in a cell. The MAC sub-layer 302 is also responsible for HARQ operations. The RRC (Radio Resource Control) sub-layer 306 in Layer 3 (L3 layer) of the control plane 300 is responsible for obtaining radio resources (i.e., radio bearers) and configuring the lower layers using RRC signaling. The radio protocol architecture of the user plane 350 includes Layer 1 (L1 layer) and Layer 2 (L2 layer). In the user plane 350, the radio protocol architecture is generally the same as the corresponding layers and sub-layers in the control plane 300 for the physical layer 351, the PDCP sub-layer 354 in the L2 layer 355, the RLC sub-layer 353 in the L2 layer 355, and the MAC sub-layer 352 in the L2 layer 355. However, the PDCP sub-layer 354 also provides header compression for upper layer data packets to reduce radio transmission overhead. The SDAP (Service Data Adaptation Protocol) sub-layer 356 is also included in the L2 layer 355 of the user plane 350. The SDAP sub-layer 356 is responsible for mapping between QoS flows and data radio bearers (DRBs) to support service diversity.
[0426] As an example, the Figure 3 radio protocol architecture in is applicable to the terminal described in this application.
[0427] As an example, the Figure 3The wireless protocol architecture in [the relevant context] is applicable to the base station in this application.
[0428] As an embodiment, the first RRC message in this application is generated at the RRC306.
[0429] As an embodiment, the first RRC message in this application is generated at the MAC302 or MAC352.
[0430] As an embodiment, the first RRC message in this application is generated at the PHY301 or PHY351.
[0431] As an embodiment, the second RRC message in this application is generated at the RRC306.
[0432] As an embodiment, the second RRC message in this application is generated at the MAC302 or MAC352.
[0433] As an embodiment, the second RRC message in this application is generated at the PHY301 or PHY351.
[0434] As an embodiment, the third RRC message in this application is generated at the RRC306.
[0435] As an embodiment, the third RRC message in this application is generated at the MAC302 or MAC352.
[0436] As an embodiment, the third RRC message in this application is generated at the PHY301 or PHY351.
[0437] Example 4
[0438] Embodiment 4 shows a schematic diagram of a first communication device and a second communication device according to this application, as shown in the appendix Figure 4 as shown. Figure 4 It is a block diagram of a first communication device 450 and a second communication device 410 that communicate with each other in an access network.
[0439] The first communication device 450 includes a controller / processor 459, a memory 460, a data source 467, a transmit processor 468, a receive processor 456, a multi-antenna transmit processor 457, a multi-antenna receive processor 458, a transmitter / receiver 454, and an antenna 452.
[0440] The second communication device 410 includes a controller / processor 475, a memory 476, a receiving processor 470, a transmitting processor 416, a multi-antenna receiving processor 472, a multi-antenna transmitting processor 471, a transmitter / receiver 418, and an antenna 420.
[0441] In the transmission from the second communication device 410 to the first communication device 450, at the second communication device 410, upper layer data packets from the core network are provided to the controller / processor 475. The controller / processor 475 implements the functionality of the L2 layer. In the transmission from the second communication device 410 to the first communication device 450, the controller / processor 475 provides header compression, encryption, packet segmentation and reordering, multiplexing between logical and transport channels, and radio resource allocation to the first communication device 450 based on various priority metrics. The controller / processor 475 is also responsible for retransmission of lost packets and signaling to the first communication device 450. The transmitting processor 416 and the multi-antenna transmitting processor 471 implement various signal processing functions for the L1 layer (i.e., the physical layer). The transmitting processor 416 implements coding and interleaving to facilitate forward error correction (FEC) at the second communication device 410, and mapping of signal constellations based on various modulation schemes (e.g., binary phase shift keying (BPSK), quadrature phase shift keying (QPSK), M-phase shift keying (M-PSK), M-quadrature amplitude modulation (M-QAM)). The multi-antenna transmitting processor 471 performs digital spatial precoding on the coded and modulated symbols, including codebook-based precoding and non-codebook-based precoding, and beamforming processing, to generate one or more spatial streams. The transmitting processor 416 then maps each spatial stream to subcarriers, multiplexes with reference signals (e.g., pilots) in the time domain and / or frequency domain, and then uses the inverse fast Fourier transform (IFFT) to generate a physical channel carrying time-domain multi-carrier symbol streams. Subsequently, the multi-antenna transmitting processor 471 performs transmit analog precoding / beamforming operations on the time-domain multi-carrier symbol streams. Each transmitter 418 converts the baseband multi-carrier symbol streams provided by the multi-antenna transmitting processor 471 into radio frequency streams, and then provides them to different antennas 420.
[0442] In the transmission from the second communication device 410 to the first communication device 450, at the first communication device 450, each receiver 454 receives signals via its respective antenna 452. Each receiver 454 recovers the information modulated onto the radio frequency carrier and converts the radio frequency stream into a baseband multi-carrier symbol stream to be provided to the receive processor 456. The receive processor 456 and the multi-antenna receive processor 458 perform various signal processing functions of the L1 layer. The multi-antenna receive processor 458 performs receive analog precoding / beamforming operations on the baseband multi-carrier symbol stream from the receivers 454. The receive processor 456 uses the fast Fourier transform (FFT) to convert the baseband multi-carrier symbol stream after the receive analog precoding / beamforming operations from the time domain to the frequency domain. In the frequency domain, the physical layer data signal and the reference signal are demultiplexed by the receive processor 456, where the reference signal will be used for channel estimation, and the data signal recovers any spatial streams destined for the first communication device 450 after multi-antenna detection in the multi-antenna receive processor 458. The symbols on each spatial stream are demodulated and recovered in the receive processor 456, and soft decisions are generated. Subsequently, the receive processor 456 decodes and de-interleaves the soft decisions to recover the upper layer data and control signals transmitted by the second communication device 410 on the physical channel. Subsequently, the upper layer data and control signals are provided to the controller / processor 459. The controller / processor 459 performs the functions of the L2 layer. The controller / processor 459 may be associated with a memory 460 that stores program code and data. The memory 460 may be referred to as a computer-readable medium. In the transmission from the second communication device 410 to the second communication device 450, the controller / processor 459 provides demultiplexing between transport and logical channels, packet reassembly, decryption, header decompression, control signal processing to recover upper layer data packets from the core network. Subsequently, the upper layer data packets are provided to all protocol layers above the L2 layer. Various control signals may also be provided to the L3 for L3 processing.
[0443] In the transmission from the first communication device 450 to the second communication device 410, at the first communication device 450, a data source 467 is used to provide upper layer data packets to a controller / processor 459. The data source 467 represents all protocol layers above the L2 layer. Similar to the transmit function described at the second communication device 410 in the transmission from the second communication device 410 to the first communication device 450, the controller / processor 459 implements header compression, encryption, packet segmentation and reordering, and multiplexing between logical and transport channels based on radio resource allocation, and implements L2 layer functions for the user plane and the control plane. The controller / processor 459 is also responsible for retransmission of lost packets and signaling to the second communication device 410. A transmit processor 468 performs modulation mapping and channel coding processing. A multi-antenna transmit processor 457 performs digital multi-antenna spatial precoding, including codebook-based precoding and non-codebook-based precoding, and beamforming processing. Subsequently, the transmit processor 468 modulates the generated spatial streams into multi-carrier / single-carrier symbol streams, and after passing through analog precoding / beamforming operations in the multi-antenna transmit processor 457, provides them to different antennas 452 via a transmitter 454. Each transmitter 454 first converts the baseband symbol stream provided by the multi-antenna transmit processor 457 into a radio frequency symbol stream and then provides it to the antenna 452.
[0444] In the transmission from the first communication device 450 to the second communication device 410, the functions at the second communication device 410 are similar to the receive function described at the first communication device 450 in the transmission from the second communication device 410 to the first communication device 450. Each receiver 418 receives a radio frequency signal through its corresponding antenna 420, converts the received radio frequency signal into a baseband signal, and provides the baseband signal to a multi-antenna receive processor 472 and a receive processor 470. The receive processor 470 and the multi-antenna receive processor 472 jointly implement L1 layer functions. A controller / processor 475 implements L2 layer functions. The controller / processor 475 may be associated with a memory 476 that stores program code and data. The memory 476 may be referred to as a computer-readable medium. In the transmission from the first communication device 450 to the second communication device 410, the controller / processor 475 provides demultiplexing between transport and logical channels, packet reassembly, decryption, header decompression, and control signal processing to recover upper layer data packets from the UE 450. The upper layer data packets from the controller / processor 475 may be provided to the core network.
[0445] As an example, the first communication device 450 includes: at least one processor and at least one memory, the at least one memory including computer program code; the at least one memory and the computer program code are configured to be used with the at least one processor, and the first communication device 450 is at least: receiving a first RRC message; wherein the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG; in response to the first execution condition being satisfied and the second execution condition being satisfied, applying the first configuration and applying the second configuration; in conjunction with applying the first configuration and applying the second configuration, setting a first information block in a first variable; wherein the first information block includes an identifier of the first cell and an identifier of the second cell; wherein the first information block includes a first field, the first field indicating a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0446] As an example, the first communication device 450 includes: a memory storing a computer-readable instruction program, the computer-readable instruction program generating actions when executed by at least one processor, the actions including: receiving a first RRC message; wherein the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG; in response to the first execution condition being satisfied and the second execution condition being satisfied, applying the first configuration and applying the second configuration; in conjunction with applying the first configuration and applying the second configuration, setting a first information block in a first variable; wherein the first information block includes an identifier of the first cell and an identifier of the second cell; wherein the first information block includes a first field, the first field indicating a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0447] As an example, the second communication device 410 includes: at least one processor and at least one memory, the at least one memory including computer program code; the at least one memory and the computer program code are configured to be used together with the at least one processor. The second communication device 410 is at least: sending a first RRC message; wherein, the first RRC message includes a first configuration for a first cell and a first execution condition, the first RRC message includes a second configuration for a second cell and a second execution condition, the first configuration is for MCG, and the second configuration is for SCG; wherein, in response to the first execution condition being satisfied and the second execution condition being satisfied, the receiver of the first RRC message applies the first configuration and applies the second configuration; accompanying the application of the first configuration and the application of the second configuration, the receiver of the first RRC message sets a first information block in a first variable; the first information block includes the identifier of the first cell and the identifier of the second cell; the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0448] As an example, the second communication device 410 includes: a memory storing a computer-readable instruction program, the computer-readable instruction program generating actions when executed by at least one processor, the actions including: sending a first RRC message; wherein, the first RRC message includes a first configuration for a first cell and a first execution condition, the first RRC message includes a second configuration for a second cell and a second execution condition, the first configuration is for MCG, and the second configuration is for SCG; wherein, in response to the first execution condition being satisfied and the second execution condition being satisfied, the receiver of the first RRC message applies the first configuration and applies the second configuration; accompanying the application of the first configuration and the application of the second configuration, the receiver of the first RRC message sets a first information block in a first variable; the first information block includes the identifier of the first cell and the identifier of the second cell; the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0449] As an example, at least one of the antenna 420, the transmitter 418, the transmit processor 471, and the controller / processor 475 is used to send the first RRC message.
[0450] As an example, at least one of the antenna 452, the receiver 454, the receiving processor 456, and the controller / processor 459 is used to receive a first RRC message.
[0451] As an example, at least one of the antenna 420, the transmitter 418, the transmitting processor 471, and the controller / processor 475 is used to send a second RRC message.
[0452] As an example, at least one of the antenna 452, the receiver 454, the receiving processor 456, and the controller / processor 459 is used to receive a second RRC message.
[0453] As an example, at least one of the antenna 452, the transmitter 454, the transmitting processor 468, and the controller / processor 459 is used to send a third RRC message.
[0454] As an example, at least one of the antenna 420, the receiver 418, the receiving processor 470, and the controller / processor 475 is used to receive a third RRC message.
[0455] As an example, the first communication device 450 corresponds to the terminal in the present application.
[0456] As an example, the second communication device 410 corresponds to the base station in the present application.
[0457] As an example, the first communication device 450 is a user equipment.
[0458] As an example, the first communication device 450 is a relay device.
[0459] As an example, the second communication device 410 is a base station device.
[0460] As an example, the second communication device 410 is a relay device.
[0461] Example 5
[0462] Embodiment 5 exemplifies a wireless signal transmission flowchart according to an embodiment of the present application, as shown in the appendix Figure 5 It should be specifically noted that the order in this example does not limit the signal transmission order and the implementation order in the present application.
[0463] For Terminal U01, in step S5101, a first RRC message is received; wherein, the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG; in step S5102, the configuration information of the first cell and the configuration information of the second cell are applied; in step S5103, a first information block is set in a first variable; wherein, the first information block includes the identifier of the first cell and the identifier of the second cell; in step S5104, a second RRC message is received, and the second RRC message includes first indication information; in step S5105, a third RRC message is sent, and the third RRC message includes the first information block.
[0464] For Base Station N02 , in step S5201, a first RRC message is sent.
[0465] For Base Station N03 , in step S5301, a second RRC message is sent; in step S5302, a third RRC message is received.
[0466] In Embodiment 5, the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0467] As an embodiment, the terminal U01 is a UE.
[0468] As an embodiment, the terminal U01 is a UE supporting 3GPP R19.
[0469] As an embodiment, the terminal U01 is a UE supporting 6G.
[0470] As an embodiment, the terminal U01 is a UE supporting an AI model.
[0471] As an embodiment, the terminal U01 is a UE supporting ML inference.
[0472] As an embodiment, the terminal U01 is not a UE.
[0473] As an embodiment, there is a wireless connection between the terminal U01 and the base station N02.
[0474] As an embodiment, there is a wired connection between the terminal U01 and the base station N02.
[0475] As an example, the terminal U01 and the base station N02 are connected through the Uu interface.
[0476] As an example, the terminal U01 and the base station N02 are connected through the IAB interface.
[0477] As an example, the base station N02 is the serving base station of the current serving cell of the terminal U01.
[0478] As an example, the base station N02 is the serving base station of the cell that the terminal U01 has served.
[0479] As an example, the terminal U01 and the base station N03 are connected wirelessly.
[0480] As an example, the terminal U01 and the base station N03 are connected by wire.
[0481] As an example, the terminal U01 and the base station N03 are connected through the Uu interface.
[0482] As an example, the base station N03 is the serving base station of the current serving cell of the terminal U01.
[0483] As an example, the base station N03 is the serving base station of the cell that the terminal U01 has served.
[0484] As an example, the base station N03 and the base station N02 are connected through a wireless interface.
[0485] As an example, the base station N03 and the base station N02 are connected through a wired interface.
[0486] As an example, the base station N03 and the base station N02 are connected through the Xn interface.
[0487] As an example, the base station N03 and the base station N02 are connected through the X2 interface.
[0488] As an example, the base station N03 and the base station N02 have an ideal backhaul.
[0489] As an example, the base station N03 and the base station N02 have a non-ideal backhaul.
[0490] As an example, the base station N03 is the base station N02.
[0491] As an example, the base station N03 is not the base station N02.
[0492] As an example, the base station N03 is the maintenance base station of the first cell.
[0493] As an example, the base station N03 is the maintenance base station of the second cell.
[0494] As an example, after receiving the first information block, the base station N03 forwards it to the base station N02.
[0495] As an example, after receiving the first information block, the base station N03 forwards a part of it to the base station N02.
[0496] As an example, the terminal U01 receives the first RRC message.
[0497] As an example, after receiving the first RRC message, the terminal U01 configures the first configuration and the first execution condition of the first cell, and the second configuration and the second execution condition of the second cell.
[0498] As an example, after receiving the first RRC message, the terminal U01 configures the first configuration and the second configuration of the first cell and the second cell, and applies the first execution condition and the second execution condition.
[0499] As an example, configuring the first configuration and the second configuration of the first cell and the second cell includes: adding (add) the first configuration and the second configuration of the first cell and the second cell to the first configuration variable.
[0500] As an example, configuring the first configuration and the second configuration of the first cell and the second cell includes: modifying (modify) the first configuration and the second configuration of the first cell and the second cell in the first configuration variable.
[0501] As an example, the first configuration variable is VarConditionalReconfig.
[0502] As an example, the first configuration variable belongs to VarConditionalReconfig.
[0503] As an example, the first configuration variable stores conditional configurations.
[0504] As an example, configuring the first configuration and the second configuration of the first cell and the second cell includes: starting to evaluate the execution conditions of the first cell and the second cell.
[0505] As an example, the execution condition includes the MeasId of the associated cell.
[0506] As an example, the first configuration and the second configuration are for CHO.
[0507] As an example, the first configuration and the second configuration are for CPA / CPC.
[0508] As an example, the first configuration and the second configuration are for CHO with candidate SCG(s).
[0509] As an example, the first configuration and the second configuration include the ConditionalReconfiguration IE.
[0510] As an example, the first configuration and the second configuration are the ConditionalReconfigurationIE.
[0511] As an example, the first configuration and the second configuration include CondReconfigToAddMod-r16.
[0512] As an example, the first configuration and the second configuration include condRRCReconfig.
[0513] As an example, the first configuration and the second configuration are for LTM.
[0514] As an example, the first configuration and the second configuration include the LTM-Config IE.
[0515] As an example, the first configuration and the second configuration are the LTM-Config IE.
[0516] As an example, the first configuration and the second configuration include the LTM-Candidate IE.
[0517] As an example, the first configuration and the second configuration include timer T304.
[0518] As an example, the first configuration and the second configuration include timer T310.
[0519] As an example, the first configuration and the second configuration include timer T312.
[0520] As an example, the first configuration and the second configuration include a timer other than timers T304, T310, and T312.
[0521] As an embodiment, the first configuration and the second configuration include one timer other than timers T304, T310, and T312.
[0522] As an embodiment, the terminal U01 applies the first configuration and applies the second configuration.
[0523] As an embodiment, applying the first configuration and applying the second configuration depends on the first execution condition being satisfied and the second execution condition being satisfied.
[0524] As an embodiment, in response to the first execution condition being satisfied and the second execution condition being satisfied, the first configuration is applied and the second configuration is applied.
[0525] As an embodiment, when the first execution condition is satisfied and the second execution condition is satisfied, the first configuration is applied and the second configuration is applied.
[0526] As an embodiment, when at least the first execution condition is satisfied and the second execution condition is satisfied, the first configuration is applied and the second configuration is applied.
[0527] As an embodiment, the first configuration and the second configuration are applied only after the first execution condition is satisfied and the second execution condition is satisfied.
[0528] As an embodiment, once the first execution condition is satisfied and the second execution condition is satisfied, the first configuration is applied and the second configuration is applied.
[0529] As an embodiment, after receiving the first RRC message, the terminal U01 starts to evaluate the first execution condition and the second execution condition, and in response to the first execution condition being satisfied and the second execution condition being satisfied, the first configuration is applied and the second configuration is applied.
[0530] As an embodiment, in conjunction with applying the first configuration and applying the second configuration, the terminal U01 sets a first information block in a first variable.
[0531] As an embodiment, the first variable is for the first cell and the second cell.
[0532] As an embodiment, the first variable being for the first cell and the second cell means that the trigger condition for setting the first variable is included in the first configuration and / or the second configuration.
[0533] As an example, for the first cell and the second cell, the first variable means that the trigger condition for setting the first variable depends on applying the first configuration and applying the second configuration.
[0534] As an example, for the first cell and the second cell, the first variable means that the trigger condition for setting the first variable is accompanied by the first configuration and / or the second configuration being configured.
[0535] As an example, when applying the first configuration and applying the second configuration are successfully completed, it triggers the terminal U01 to set the first variable, and the first information block in the first variable indicates success information.
[0536] As an example, the success information includes the information that applying the first configuration is successfully completed.
[0537] As an example, the success information includes the information that applying the first configuration and applying the second configuration are successfully completed.
[0538] As an example, when applying the first configuration and applying the second configuration are not successfully completed, it triggers the terminal U01 to set the first variable, and the first information block in the first variable indicates failure information.
[0539] As an example, the failure information includes the information that applying the first configuration is not successfully completed.
[0540] As an example, the failure information includes the information that applying the first configuration and applying the second configuration are not successfully completed.
[0541] As an example, the virtual box F5.1 exists.
[0542] As an example, the terminal U01 receives the second RRC message.
[0543] As an example, the terminal U01 receives the second RRC message after the first information block of the first variable is set.
[0544] As an example, the terminal U01 sends a fourth RRC message before receiving the second RRC message, and the fourth RRC message indicates the available information of the first information block.
[0545] As an example, the fourth RRC message is an RRCReconfigurationComplete message.
[0546] As an example, the fourth RRC message includes an RRCReconfigurationComplete message.
[0547] As an example, the fourth RRC message is a UEAssistanceInformation message.
[0548] As an example, the fourth RRC message includes a UEAssistanceInformation message.
[0549] As an example, a field in the fourth RRC message is set to true to indicate the available information of the first information block.
[0550] As an example, in response to sending the fourth RRC message, the second RRC message is received.
[0551] As an example, the terminal U01 receives the second RRC message depending on applying the first configuration and completing the application of the second configuration.
[0552] As an example, before the terminal U01 receives the second RRC message, the first configuration is applied and the application of the second configuration is completed.
[0553] As an example, in response to applying the first configuration and completing the application of the second configuration, the terminal U01 receives the second RRC message.
[0554] As an example, after applying the first configuration and completing the application of the second configuration, the terminal U01 receives the second RRC message.
[0555] As an example, the second RRC message is sent on at least one of the first cell or the second cell.
[0556] As an example, the second RRC message is sent on the current serving cell.
[0557] As an example, the sender of the second RRC message is the same as the sender of the first RRC message.
[0558] As an example, the sender of the second RRC message is different from the sender of the first RRC message.
[0559] As an example, the sender of the second RRC message is related to the sender of the first RRC message.
[0560] As an example, the sender of the second RRC message is related to the sender of the first RRC message.
[0561] As an example, the sender of the second RRC message is a target cell of the sender of the first RRC message.
[0562] As an example, the sender of the second RRC message is a candidate cell of the sender of the first RRC message.
[0563] As an example, the sender of the second RRC message is a subsequent candidate cell of the sender of the first RRC message.
[0564] As an example, the sender of the second RRC message is a secondary cell of the sender of the first RRC message.
[0565] As an example, the virtual box F5.2 exists.
[0566] As an example, the terminal U01 sends the third RRC message.
[0567] As an example, the terminal U01 sends the third RRC message depending on receiving the second RRC message.
[0568] As an example, the first request indication in the second RRC message indicates that the third RRC message includes the first information block.
[0569] As an example, in response to receiving the second RRC message, the third RRC message is sent.
[0570] As an example, in response to receiving the second RRC message, the third RRC message is set.
[0571] As an example, the second RRC message and the third RRC message are coupled.
[0572] As an example, the virtual box F5.2 does not exist.
[0573] As an example, the second RRC message instructs to clear the first information block in the first variable.
[0574] As an example, the second RRC message instructs to discard the first information block in the first variable.
[0575] As an example, the second RRC message instructs to release the first information block in the first variable.
[0576] As an example, the second RRC message instructs the terminal U01 to perform reconfiguration.
[0577] As an example, the virtual box F5.1 does not exist.
[0578] As an example, the virtual box F5.2 exists.
[0579] As an example, the terminal U01 sends the third RRC message.
[0580] As an example, the terminal U01 sending the third RRC message does not depend on the second RRC message.
[0581] As an example, the third RRC message indicates the first information block.
[0582] As an example, the third RRC message indicating the first information block means that the third RRC message indicates the available information of the first information block.
[0583] As an example, a field in the third RRC message being set to true indicates the available information of the first information block.
[0584] As an example, the third RRC message indicating the first information block means that the third RRC message includes the first information block.
[0585] As an example, the third RRC message indicating the first information block means that the third RRC message includes partial information of the first information block.
[0586] As an example, the third RRC message is an RRCReconfigurationComplete message.
[0587] As an example, the third RRC message includes an RRCReconfigurationComplete message.
[0588] As an example, the third RRC message is a UEAssistanceInformation message.
[0589] As an example, the third RRC message includes a UEAssistanceInformation message.
[0590] As an example, the virtual box F5.2 does not exist.
[0591] Example 6
[0592] Example 6 illustrates a schematic diagram of a first information block including a second field according to an embodiment of the present application, as shown in the appendix Figure 6 as shown
[0593] In Example 6, the first information block includes a second field, and the second field includes first and second measurement results of a target cell; the target cell is the first cell among the first cell and the second cell that first meets the execution condition.
[0594] As an embodiment, in response to setting the first information block in the first variable, the first information block includes a second field.
[0595] As an embodiment, as long as the first information block is set in the first variable, the first information block includes a second field.
[0596] As an embodiment, in response to the first time interval meeting a threshold, the first information block includes a second field.
[0597] As an embodiment, as long as the first time interval meets a threshold, the first information block includes a second field.
[0598] As an embodiment, the second field indicates a measurement result.
[0599] As an embodiment, the second field only includes the measurement results of the target cell.
[0600] As an embodiment, the measurement result includes either L1 or L3 measurement result.
[0601] As an embodiment, the measurement result includes L1 and L3 measurement results.
[0602] As an embodiment, the measurement result includes SINR.
[0603] As an embodiment, the measurement result includes RSRP.
[0604] As an embodiment, the measurement result includes RSRQ.
[0605] As an embodiment, the measurement result includes RSSI.
[0606] As an embodiment, the measurement result includes at least one of SINR, RSRP, RSRQ, and RSSI.
[0607] As an embodiment, the measurement result depends on at least one of SS / PBCH or CSI-RS.
[0608] As an embodiment, the measurement result depends on PRS.
[0609] As an example, the measurement result depends on a dedicated reference signal.
[0610] As an example, the name of the second domain includes measResult.
[0611] As an example, the first information block includes a second domain depending on the first time interval.
[0612] As an example, the first information block includes a second domain depending on the first time interval means that when the first domain includes the first time interval, the first information block includes the second domain.
[0613] As an example, the first information block includes a second domain depending on the first time interval means that when the first time interval meets a threshold, the first information block includes the second domain.
[0614] As an example, the first information block includes a second domain depending on the first time interval means that when the first domain includes the first time interval and the first time interval meets the threshold, the first information block includes the second domain.
[0615] As an example, the first information block includes a second domain depending on the first time interval means that when the first information block does not include the first time interval, the first information block includes the second domain.
[0616] As an example, the first information block includes a second domain depending on the first time interval means that the second domain includes the first measurement result and the second measurement result of the target cell; the first measurement result and the second measurement result of the target cell depend on the first time interval.
[0617] As an example, the first measurement result of the target cell is measured at the start time of the first time interval; the second measurement result of the target cell is measured at the end time of the first time interval.
[0618] As an example, the start time of the first time interval means the time when the first execution condition is met.
[0619] As an example, the start time of the first time interval means the time when the second execution condition is met.
[0620] As an example, the start time of the first time interval means the time when the first execution condition and the second execution condition are met first.
[0621] As an example, the first measurement result is the measurement result at the start time of the first time interval.
[0622] As an example, the first measurement result is the latest measurement result that has been measured at the start time of the first time interval.
[0623] As an example, the first measurement result is measured before the start time of the first time interval.
[0624] As an example, that the first measurement result is measured at the start time of the first time interval means that at the start time of the first time interval, the measurement of the first measurement result is performed.
[0625] As an example, that the first measurement result is measured at the start time of the first time interval means that when the start time of the first time interval is determined, the measurement of the first measurement result is performed.
[0626] As an example, determining the start time of the first time interval means the moment when the first execution condition or the second execution condition is determined to be satisfied.
[0627] As an example, that the first measurement result is measured at the start time of the first time interval means that at the start time of the first time interval, the first measurement result is determined.
[0628] As an example, that the first measurement result is measured at the start time of the first time interval means that when the start time of the first time interval is determined, the first measurement result is determined.
[0629] As an example, determining the first measurement result means that the first measurement result is the measurement result obtained by the target cell performing a measurement at the start time of the first time interval.
[0630] As an example, determining the first measurement result means that it is considered that the measurement result obtained by the target cell performing a measurement at the start time of the first time interval is the first measurement result.
[0631] As an example, determining the first measurement result means that it is considered that the satisfaction of the third execution condition depends on the first measurement result.
[0632] As an example, the third execution condition is the execution condition that is first satisfied among the first execution condition and the second execution condition.
[0633] As an example, the name of the first measurement result includes CellMeas.
[0634] As an embodiment, the name of the first measurement result includes "first".
[0635] As an embodiment, the first measurement result is the measurement result of the target cell at the start moment of the first time interval.
[0636] As an embodiment, the first measurement result is the cell-level RSRP, RSRQ, and available SINR of the target cell at the start moment of the first time interval.
[0637] As an embodiment, the first measurement result includes the measurement result of the target cell at the start moment of the first time interval.
[0638] As an embodiment, the first measurement result includes the cell-level RSRP, RSRQ, and available SINR of the target cell at the start moment of the first time interval.
[0639] As an embodiment, the first measurement result includes all available SSB and CSI-RS measurement quantities of the target cell at the start moment of the first time interval.
[0640] As an embodiment, the first measurement result includes the measurement quantity of the reference signal of the target cell at the start moment of the first time interval.
[0641] As an embodiment, when the first measurement result meets the first condition, it is considered that the third execution condition is met.
[0642] As an embodiment, when at least the first measurement result meets the first condition, it is considered that the third execution condition is met.
[0643] As an embodiment, in response to the first measurement result meeting the first condition, it is considered that the third execution condition is met.
[0644] As an embodiment, the first condition is configured by the network.
[0645] As an embodiment, the first condition is configured along with the first RRC message.
[0646] As an embodiment, the first condition being configured along with the first RRC message means that the first condition is included in the first RRC message.
[0647] As an embodiment, the first condition being configured along with the first RRC message means that the first condition is configured before the first RRC message configuration.
[0648] As an example, the first condition being associated with the configuration of the first RRC message means that the sender of the first condition and the first RRC message is the same.
[0649] As an example, the satisfaction of the third execution condition is independent of the first measurement result.
[0650] As an example, the end moment of the first time interval refers to the moment when the first execution condition is satisfied.
[0651] As an example, the end moment of the first time interval refers to the moment when the second execution condition is satisfied.
[0652] As an example, the end moment of the first time interval refers to the latest moment when either the first execution condition or the second execution condition is satisfied.
[0653] As an example, the second measurement result is the measurement result at the end moment of the first time interval.
[0654] As an example, the second measurement result is the latest measurement result that has been measured at the end moment of the first time interval.
[0655] As an example, the second measurement result is measured before the end moment of the first time interval.
[0656] As an example, the second measurement result being measured at the end moment of the first time interval means that at the end moment of the first time interval, the measurement of the second measurement result is performed.
[0657] As an example, the second measurement result being measured at the end moment of the first time interval means that when determining the end moment of the first time interval, the measurement of the second measurement result is performed.
[0658] As an example, the second measurement result being measured at the end moment of the first time interval means that at the end moment of the first time interval, the second measurement result is determined.
[0659] As an example, the second measurement result being measured at the end moment of the first time interval means that when determining the end moment of the first time interval, the second measurement result is determined.
[0660] As an example, the determination of the second measurement result means that the second measurement result is the measurement result obtained by performing a measurement on the target cell at the end moment of the first time interval.
[0661] As an example, the determination of the second measurement result means that the measurement result obtained by the target cell performing measurement at the end of the first time interval is regarded as the second measurement result.
[0662] As an example, the first measurement result is the measurement result at the start time of the first time interval; the second measurement result is the measurement result at the end time of the first time interval.
[0663] As an example, the first measurement result is the latest measurement result obtained at the start time of the first time interval; the second measurement result is the latest measurement result obtained at the end time of the first time interval.
[0664] As an example, the first measurement result is obtained before the start time of the first time interval; the second measurement result is obtained before the end time of the first time interval.
[0665] As an example, the first measurement result is the measurement result at the end time of the first time interval; the second measurement result is the measurement result when it is determined that the application of the first configuration and the application of the second configuration fail.
[0666] As an example, the first measurement result is the measurement result when the execution condition corresponding to the target cell is satisfied; the second measurement result is the measurement result when it is determined that the application of the first configuration and the application of the second configuration fail.
[0667] As an example, the third execution condition is the execution condition that is satisfied latest among the first execution condition and the second execution condition.
[0668] As an example, the satisfaction of the third execution condition has nothing to do with the second measurement result.
[0669] As an example, the name of the second measurement result includes CellMeas.
[0670] As an example, the name of the second measurement result includes second.
[0671] As an example, the second measurement result is the measurement result of the target cell at the end of the first time interval.
[0672] As an example, the second measurement result is the cell-level RSRP, RSRQ, and available SINR of the target cell at the end of the first time interval.
[0673] As an example, the first measurement result includes the measurement result of the target cell at the end of the first time interval.
[0674] As an example, the first measurement result includes the cell-level RSRP, RSRQ, and available SINR of the target cell at the end of the first time interval.
[0675] As an example, the target cell is the first cell among the first cell and the second cell that first meets the execution condition.
[0676] As an example, when the first execution condition among the first cell and the second cell is met, the other execution condition among the first cell and the second cell is not met.
[0677] As an example, when the first execution condition among the first cell and the second cell is met, the configuration information of the target cell is not applied, and the configuration information does not include the execution condition.
[0678] As an example, in response to the first execution condition among the first cell and the second cell being met, the target cell is determined.
[0679] As an example, in response to the first execution condition among the first cell and the second cell being met, the target cell is determined and the first measurement result is determined.
[0680] As an example, in response to the successful completion of applying the first configuration and applying the second configuration, SuccessHO-Report is set in VarSuccessHO-Report. The SuccessHO-Report includes a second field; the second field includes the first measurement result and the second measurement result of the target cell. The first measurement result is the measurement result of the target cell when performing measurements at the start of the first time interval, and the second measurement result is the measurement result of the target cell when performing measurements at the end of the first time interval; the target cell is the first cell among the first cell and the second cell that first meets the execution condition.
[0681] As an example, in response to successfully applying the first configuration and applying the second configuration, set SuccessPSCell-Report in VarSuccessPSCell-Report. The SuccessPSCell-Report includes a second field. The second field includes a first measurement result and a second measurement result of the target cell. The first measurement result is the measurement result obtained when the target cell performs a measurement at the start of the first time interval, and the second measurement result is the measurement result obtained when the target cell performs a measurement at the end of the first time interval. The target cell is the second cell.
[0682] As an example, in response to unsuccessfully applying the first configuration and applying the second configuration, set RLF-Report in VaRLF-Report. The RLF-Report includes a second field. The second field includes a first measurement result and a second measurement result of the target cell. The first measurement result is the measurement result obtained when the target cell performs a measurement at the start of the first time interval, and the second measurement result is the measurement result obtained when the target cell performs a measurement at the end of the first time interval. The target cell is the cell that first meets the execution condition among the first cell and the second cell.
[0683] Example 7
[0684] Example 7 illustrates a schematic diagram of a first information block including a third field according to an embodiment of the present application, as shown in the attached Figure 7 figure.
[0685] In Example 7, the first information block includes a third field, and the third field includes at least one of the first execution condition or the second execution condition.
[0686] As an example, the first information block includes a third field depending on the first information block including a first field.
[0687] As an example, in response to the first information block including the first field, the first information block includes a third field.
[0688] As an example, as long as the first information block includes the first field, the first information block includes a third field.
[0689] As an example, the first information block includes a third field depending on the first time interval meeting a threshold.
[0690] As an example, in response to the first time interval meeting a threshold, the first information block includes a third field.
[0691] As an example, as long as the first time interval meets a threshold, the first information block includes a third domain.
[0692] As an example, the first information block includes a third domain depending on the first time interval meeting a threshold, and the first information block includes a first domain.
[0693] As an example, in response to the first time interval meeting a threshold and the first information block including a first domain, the first information block includes a third domain.
[0694] As an example, as long as the first time interval meets a threshold and the first information block includes a first domain, the first information block includes a third domain.
[0695] As an example, the third domain including at least one of the first execution condition or the second execution condition means that the third domain includes a measurement index of at least one of the first execution condition or the second execution condition.
[0696] As an example, the third domain including at least one of the first execution condition or the second execution condition means that the third domain includes at least trigger event configuration information of at least one of the first execution condition or the second execution condition.
[0697] As an example, the third domain includes the first execution condition and the second execution condition.
[0698] As an example, the third domain includes execution conditions of a plurality of candidate cells, and the execution conditions of the plurality of candidate cells include the first execution condition and the second execution condition.
[0699] As an example, the third domain only includes the first execution condition and the second execution condition.
[0700] As an example, the first execution condition in the third domain indicates the execution condition that is satisfied first among the first execution condition or the second execution condition.
[0701] As an example, the first execution condition in the third domain indicates the execution condition that is satisfied last among the first execution condition or the second execution condition.
[0702] As an example, the first execution condition in the third domain is for MCG.
[0703] As an example, the first execution condition in the third domain is the execution condition of a candidate PCell.
[0704] As an example, the third domain includes only one of the first execution condition or the second execution condition.
[0705] As an example, the third domain includes only the first satisfied execution condition among the first execution condition and the second execution condition.
[0706] As an example, the third domain includes only the last satisfied execution condition among the first execution condition and the second execution condition.
[0707] As an example, the third domain includes at least the first execution condition, and the first execution condition is for MCG.
[0708] As an example, the first execution condition for MCG means that the first execution condition is the execution condition of a candidate PCell of the MCG.
[0709] As an example, the third domain includes at least the first execution condition means that the third domain includes the first execution condition.
[0710] As an example, the third domain includes at least the first execution condition means that the third domain includes the first execution condition and the execution condition of a candidate cell associated with the first cell; the execution condition of the candidate cell associated with the first cell includes the second execution condition.
[0711] As an example, the candidate cell associated with the first cell includes: the second cell.
[0712] As an example, the candidate cell associated with the first cell includes: a candidate PSCell configured for the first cell.
[0713] As an example, the candidate cell associated with the first cell includes: a target PSCell configured for the first cell.
[0714] As an example, the candidate cell associated with the first cell includes: a subsequent candidate cell configured for the first cell.
[0715] Example 8
[0716] Example 8 exemplifies a flowchart in which the first information block according to an embodiment of the present application includes that at least one of applying the first configuration or applying the second configuration on which the third domain depends is not successfully completed, as shown in the appendixFigure 8 as shown
[0717] In step S8101, at least one of applying the first configuration or applying the second configuration is not successfully completed; in step S8102, the first information block includes the third domain.
[0718] In Embodiment 8, the first information block includes the third domain depending on that at least one of applying the first configuration or applying the second configuration is not successfully completed.
[0719] As an embodiment, in response to at least one of applying the first configuration or applying the second configuration not being successfully completed, the first information block includes the third domain.
[0720] As an embodiment, when at least one of applying the first configuration or applying the second configuration is not successfully completed, the first information block includes the third domain.
[0721] As an embodiment, when at least one of applying the first configuration or applying the second configuration is not successfully completed, the first information block includes the third domain.
[0722] As an embodiment, in response to neither of applying the first configuration or applying the second configuration being successfully completed, the first information block includes the third domain.
[0723] As an embodiment, when neither of applying the first configuration or applying the second configuration is successfully completed, the first information block includes the third domain.
[0724] As an embodiment, in response to any one of applying the first configuration or applying the second configuration not being successfully completed, the first information block includes the third domain.
[0725] As an embodiment, when any one of applying the first configuration or applying the second configuration is not successfully completed, the first information block includes the third domain.
[0726] As an embodiment, in response to applying the first configuration not being successfully completed, the first information block includes the third domain.
[0727] As an embodiment, only when applying the first configuration is not successfully completed, the first information block includes the third domain.
[0728] As an embodiment, the not being successfully completed means that the corresponding T304 in the configuration expires.
[0729] As an example, the failure to be successfully completed means that the configuration is invalid.
[0730] As an example, the failure to be successfully completed means that the synchronization to the corresponding cell in the configuration fails.
[0731] As an example, the failure to be successfully completed means that the connection to the corresponding cell in the configuration fails.
[0732] As an example, the failure to be successfully completed means that the conversion to the corresponding cell in the configuration fails.
[0733] As an example, the failure to be successfully completed means that the handover to the corresponding cell in the configuration fails.
[0734] As an example, the first information block includes the third domain depending on the first time interval satisfying a threshold.
[0735] As an example, when the first time interval satisfies a threshold, the first information block includes the third domain.
[0736] As an example, when at least the first time interval satisfies a threshold, the first information block includes the third domain.
[0737] As an example, the first information block includes the third domain depending on the failure to successfully complete at least one of applying the first configuration or applying the second configuration and the first time interval satisfying a threshold.
[0738] As an example, in response to the failure to successfully complete at least one of applying the first configuration or applying the second configuration and the first time interval satisfying a threshold, the first information block includes the third domain.
[0739] As an example, when applying at least one of the first configuration or the second configuration fails to be successfully completed and the first time interval satisfies a threshold, the first information block includes the third domain.
[0740] As an example, when at least applying at least one of the first configuration or the second configuration fails to be successfully completed and the first time interval satisfies a threshold, the first information block includes the third domain.
[0741] Example 9
[0742] Example 9 illustrates a schematic diagram of the first information block including a fourth domain according to an embodiment of the present application, as shown in the appendix Figure 9 as shown.
[0743] In Embodiment 9, the first information block includes a fourth field, and the fourth field indicates a second time interval; the second time interval depends on the time when the first RRC message is received and the time when the first configuration is applied and the second configuration is applied and executed.
[0744] As an embodiment, the first information block includes a fourth field depending on at least one of the application of the first configuration and the application of the second configuration not being successfully completed.
[0745] As an embodiment, when at least one of the application of the first configuration and the application of the second configuration is not successfully completed, the first information block includes a fourth field.
[0746] As an embodiment, when at least one of the application of the first configuration and the application of the second configuration is not successfully completed, the first information block includes a fourth field.
[0747] As an embodiment, at least one of the application of the first configuration and the application of the second configuration not being successfully completed means that neither the application of the first configuration nor the application of the second configuration is successfully completed.
[0748] As an embodiment, at least one of the application of the first configuration and the application of the second configuration not being successfully completed means that either the application of the first configuration or the application of the second configuration is not successfully completed.
[0749] As an embodiment, at least one of the application of the first configuration and the application of the second configuration not being successfully completed means that the application of the first configuration is not successfully completed.
[0750] As an embodiment, the first information block includes a fourth field depending on both the application of the first configuration and the application of the second configuration being successfully completed.
[0751] As an embodiment, when both the application of the first configuration and the application of the second configuration are successfully completed, the first information block includes a fourth field.
[0752] As an embodiment, when at least both the application of the first configuration and the application of the second configuration are successfully completed, the first information block includes a fourth field.
[0753] As an embodiment, being successfully completed means that the corresponding T304 in the configuration has not expired.
[0754] As an embodiment, the successful completion means that the terminal successfully sends an RRCReconfigurationComplete message.
[0755] As an embodiment, the successful completion means that the terminal switches to the corresponding cell in the configuration.
[0756] As an embodiment, the successful completion means that the terminal transitions to the corresponding cell in the configuration.
[0757] As an embodiment, the successful completion means that the terminal connects to the corresponding cell in the configuration.
[0758] As an embodiment, the fourth domain is not the first domain, and the fourth domain only indicates the second time interval.
[0759] As an embodiment, the fourth domain is the first domain, and as a response to the first time interval not meeting a threshold, the first information block only indicates the second time interval.
[0760] As an embodiment, the name of the second time interval includes "Time".
[0761] As an embodiment, the name of the second time interval includes "elapsedTime".
[0762] As an embodiment, the unit of the second time interval is a positive integer in milliseconds.
[0763] As an embodiment, the unit of the second time interval is a positive integer in seconds.
[0764] As an embodiment, the start time of the second time interval depends on the time when the first RRC message is received.
[0765] As an embodiment, the start time of the second time interval is the time when the first RRC message is received at the physical layer.
[0766] As an embodiment, the start time of the second time interval is the time when the report reaches the MAC layer after the first RRC message is received at the physical layer.
[0767] As an embodiment, the start time of the second time interval is the time when the report reaches the RRC layer after the first RRC message is received at the physical layer.
[0768] As an embodiment, the start time of the second time interval is the time when the configuration information in the first RRC message is applied.
[0769] As an example, the application of the configuration information in the first RRC message means that the first execution condition and the second execution condition are configured.
[0770] As an example, the application of the configuration information in the first RRC message means that the first execution condition and the second execution condition start to be evaluated.
[0771] As an example, the end time of the second time interval depends on the time when the first configuration is applied and the second configuration is executed.
[0772] As an example, the end time of the second time interval is the time when the first configuration is applied and the second configuration is executed.
[0773] As an example, the time when the first configuration is applied and the second configuration is executed means the time when the first configuration is applied and the second configuration is determined to be executed.
[0774] As an example, the first configuration is applied and the second configuration is determined to be executed means that both the first execution condition and the second execution condition are satisfied.
[0775] As an example, the first configuration is applied and the second configuration is determined to be executed means the time to determine the handover to the first cell and the second cell.
[0776] As an example, the time when the first configuration is applied and the second configuration is executed means the time when the first configuration is applied and the second configuration starts to be executed.
[0777] As an example, the first configuration is applied and the second configuration starts to be executed means the time when the first-applied configuration among the first configuration and the second configuration starts to be executed.
[0778] As an example, the first configuration is applied and the second configuration starts to be executed means the time when the last-applied configuration among the first configuration and the second configuration starts to be executed.
[0779] As an example, the second time interval is the time elapsed from when the first RRC message is received to when the first configuration is applied and the second configuration is executed.
[0780] Example 10
[0781] Example 10 illustrates a schematic diagram of the first information block including a fifth field according to an embodiment of the present application, as shown in the appendix Figure 10 as shown.
[0782] In Example 10, the first information block includes a fifth field, and the fifth field indicates a third time interval; the third time interval depends on the time when the first configuration and the second configuration are applied and the time when the application of the second configuration fails; wherein, the application of the second configuration fails.
[0783] As an embodiment, the failure of the application of the second configuration means that: T304 for the SCG expires.
[0784] As an embodiment, the failure of the application of the second configuration means that: random access is not performed on the second cell.
[0785] As an embodiment, the failure of the application of the second configuration means that: an RRCReconfigurationComplete message is not sent to the second cell.
[0786] As an embodiment, the failure of the application of the second configuration means that: the second configuration is considered invalid.
[0787] As an embodiment, the failure of the application of the second configuration means that: the handover to the second cell is not performed.
[0788] As an embodiment, the failure of the application of the second configuration means that: the connection to the second cell is not established.
[0789] As an embodiment, the failure of the application of the second configuration means that: before the failure of the application of the second configuration, the application of the first configuration does not fail.
[0790] As an embodiment, the first information block includes a fifth field depending on the failure of the application of the second configuration.
[0791] As an embodiment, in response to the failure of the application of the second configuration, a first information block is set in the first UE variable; the first information block includes a fifth field, and the fifth field indicates a third time interval.
[0792] As an embodiment, when the application of the second configuration fails, the first information block includes a fifth field, and the fifth field indicates a third time interval.
[0793] As an embodiment, when at least the application of the second configuration fails, the first information block includes a fifth field, and the fifth field indicates a third time interval.
[0794] As an example, the first information block includes a fifth field that depends on the application of the second configuration failing and the application of the first configuration being completed.
[0795] As an example, in response to the application of the first configuration being completed, a first information block is set in the first variable, where the first information block indicates the information that the application of the first configuration has been completed; the first information block includes a fifth field that indicates a third time interval.
[0796] As an example, the first information block includes a fifth field that depends on the application of the second configuration failing and the application of the first configuration failing.
[0797] As an example, in response to the application of the second configuration failing and the application of the first configuration failing, a first information block is set in the first variable, where the first information block indicates the information that the application of the second configuration has failed and the application of the first configuration has failed; the first information block includes a fifth field that indicates a third time interval.
[0798] As an example, the name of the third time interval includes "Time".
[0799] As an example, the name of the third time interval includes "elapsedTime".
[0800] As an example, the unit of the third time interval is a positive integer in milliseconds.
[0801] As an example, the unit of the third time interval is a positive integer in seconds.
[0802] As an example, the start time of the third time interval depends on the application of the first configuration and the execution of the application of the second configuration.
[0803] As an example, the start time of the third time interval is the time when the application of the first configuration and the execution of the application of the second configuration occur.
[0804] As an example, the end time of the third time interval depends on the failure of the application of the second configuration.
[0805] As an example, the end time of the third time interval is the time when the application of the second configuration fails.
[0806] As an example, the time when the application of the second configuration fails refers to the time when the corresponding T304 in the second configuration is determined to have expired.
[0807] As an embodiment, the time when the application of the second configuration fails refers to the time when the first failure message is set to start.
[0808] As an embodiment, the time when the application of the second configuration fails refers to the time when the first failure message is sent.
[0809] As an embodiment, the first failure message is a SCGFailureInformation message.
[0810] As an embodiment, the first failure message includes a SCGFailureInformation message.
[0811] As an embodiment, the first failure message indicates that the application of the second configuration fails.
[0812] As an embodiment, when the first failure message is set to start, the first configuration has been applied and completed.
[0813] As an embodiment, when the first failure message is set to start, the first configuration has not been applied.
[0814] As an embodiment, when the first failure message is set to start, the transmission of the MCG is not suspended.
[0815] As an embodiment, the sending of the first failure message means that the first failure message is set and completed for transmission from the RRC layer to the lower layer.
[0816] As an embodiment, the sending of the first failure message means the time when the first failure message is sent at the physical layer.
[0817] As an embodiment, the third time interval is the time elapsed from the application of the first configuration and the execution of the application of the second configuration to the failure of the application of the second configuration.
[0818] Example 11
[0819] Embodiment 11 exemplifies a flowchart of setting a first information block in a first variable depending on a first time interval satisfying a first threshold according to an embodiment of the present application, as shown in the appendix Figure 11 as shown.
[0820] In step 11101, the first time interval satisfies the first threshold; in step 11102, a first information block is set in the first variable.
[0821] In Embodiment 11, setting the first information block in the first variable depends on the first time interval satisfying the first threshold; the first threshold is configurable.
[0822] As an embodiment, the first threshold is the one threshold.
[0823] As an embodiment, in response to the first time interval satisfying the first threshold, a first information block is set in the first variable.
[0824] As an embodiment, when the first time interval satisfies the first threshold, a first information block is set in the first variable.
[0825] As an embodiment, the satisfaction is greater than.
[0826] As an embodiment, the satisfaction is greater than or equal to.
[0827] As an embodiment, the satisfaction is not less than.
[0828] As an embodiment, when the first time interval is greater than the first threshold, the first information block is set in the first variable.
[0829] As an embodiment, when at least the first time interval is greater than the first threshold, the first information block is set in the first variable.
[0830] As an embodiment, setting the first information block in the first variable depends on the first time interval satisfying the first threshold and the first configuration and the second configuration being successfully applied.
[0831] As an embodiment, in response to the first time interval satisfying the first threshold and the first configuration and the second configuration being successfully applied, a first information block is set in at least the first variable; the first information block indicates success information.
[0832] As an embodiment, when the first time interval satisfies the first threshold and the first configuration and the second configuration are successfully applied, a first information block is set in at least the first variable; the first information block indicates success information.
[0833] As an embodiment, when the first time interval is greater than the first threshold and the first configuration and the second configuration are successfully applied, a first information block is set in at least the first variable; the first information block indicates success information.
[0834] As an embodiment, setting the first information block in at least the first variable means: setting the first information block only in the first variable.
[0835] As an example, setting the first information block in at least the first variable means: setting the first information block in the first variable and setting another information block in another variable; the first information block indicates the success information of one of both the first cell and the second cell, and the other information block indicates the success information of another cell.
[0836] As an example, setting the first information block in the first variable depends on the first time interval satisfying a first threshold and the application of the first configuration and the application of the second configuration not being successfully completed.
[0837] As an example, the application of the first configuration and the application of the second configuration not being successfully completed means: T304 corresponding to the first configuration expires and T304 corresponding to the second configuration expires.
[0838] As an example, the application of the first configuration and the application of the second configuration not being successfully completed means: once T304 corresponding to the first configuration expires, it is considered that the application of the first configuration and the application of the second configuration are not successfully completed.
[0839] As an example, in response to the first time interval satisfying a first threshold and the application of the first configuration and the application of the second configuration not being successfully completed, set the first information block in the first variable; the first information block indicates failure information.
[0840] As an example, when the first time interval satisfies a first threshold and the application of the first configuration and the application of the second configuration are not successfully completed, set the first information block in the first variable; the first information block indicates failure information.
[0841] As an example, when the first time interval is greater than a first threshold and the application of the first configuration and the application of the second configuration are not successfully completed, set the first information block in the first variable; the first information block indicates failure information.
[0842] As an example, the at least first threshold is a threshold, and the one threshold is the first threshold.
[0843] As an example, the at least first threshold is a plurality of thresholds, and the first threshold is one of the plurality of thresholds.
[0844] As an example, the plurality of thresholds are two thresholds.
[0845] As an example, the first threshold is thresholdPercentageT304 - r17.
[0846] As an example, the first threshold is thresholdPercentageT310-r17.
[0847] As an example, the first threshold is thresholdPercentageT312-r17.
[0848] As an example, the first threshold is thresholdPercentageT304-SCG-r18.
[0849] As an example, the first threshold is thresholdPercentageT310-SCG-r18.
[0850] As an example, the first threshold is thresholdPercentageT312-SCG-r18.
[0851] As an example, the first threshold is thresholdPercentageT304-r19.
[0852] As an example, the first threshold is thresholdPercentageT304-SCG-r19.
[0853] As an example, the first threshold is thresholdPercentageT310-r19.
[0854] As an example, the first threshold is thresholdPercentageT310-SCG-r19.
[0855] As an example, the first threshold is thresholdPercentageT312-r19.
[0856] As an example, the first threshold is thresholdPercentageT312-SCG-r19.
[0857] As an example, the name of the first threshold includes T304.
[0858] As an example, the name of the first threshold includes thresholdPercentage.
[0859] As an example, the name of the first threshold includes CHO with candidate SCG(s).
[0860] As an example, the first threshold is related to time.
[0861] As an example, the first threshold is related to at least the first cell and the second cell.
[0862] As an example, the first threshold is for at least the first cell and the second cell.
[0863] As an example, as the application of the first configuration and the application of the second configuration are successfully completed, and in response to the first time interval satisfying the first threshold, a first information block is set in the first variable; the first variable is VarSuccessHO-Report; the first information block indicates success information.
[0864] As an example, as the application of the first configuration and the application of the second configuration are successfully completed, and in response to the first time interval satisfying the first threshold, a first information block is set in the first variable; the first variable is VarSuccessHO-Report; the first information block indicates information about the first time interval.
[0865] As an example, as the application of the first configuration and the application of the second configuration are successfully completed, and in response to the first time interval satisfying the first threshold, a first information block is set in the first variable; the first variable is VarSuccessPSCell-Report; the first information block indicates success information.
[0866] As an example, as the application of the first configuration and the application of the second configuration are successfully completed, and in response to the first time interval satisfying the first threshold, a first information block is set in the first variable; the first variable is VarSuccessPSCell-Report; the first information block indicates information about the first time interval.
[0867] As an example, as the application of the first configuration and the application of the second configuration are not successfully completed, and in response to the first time interval satisfying the first threshold, a first information block is set in the first variable; the first variable is VaRLF-Report; the first information block indicates failure information.
[0868] As an example, as the application of the first configuration and the application of the second configuration are not successfully completed, and in response to the first time interval satisfying the first threshold, a first information block is set in the first variable; the first variable is VaRLF-Report; the first information block indicates information about the first time interval.
[0869] As an example, in response to the first configuration being applied and the second configuration not being successfully completed, a first information block is set in the first variable; the first variable is VaRLF-Report; the first information block indicates information about the first time interval.
[0870] Example 12
[0871] Example 12 illustrates a schematic diagram of the third RRC message according to an embodiment of the present application including at least a first information block depending on the first request indication, as shown in the appendix Figure 12 as shown.
[0872] In Example 12, the third RRC message includes the first information block in the first variable.
[0873] As an example, the second RRC message includes a UEInformationRequest message.
[0874] As an example, the second RRC message is a UEInformationRequest message.
[0875] As an example, the second RRC message includes a first request indication for indicating the transmission of the third RRC message.
[0876] As a sub-example of the above example, when the second RRC message includes a first request indication, the terminal U01 transmits the third RRC message.
[0877] As a sub-example of the above example, when at least the second RRC message includes a first request indication, the terminal U01 transmits the third RRC message.
[0878] As a sub-example of the above example, when the second RRC message includes a first request indication and the first request indication indicates the transmission of the third RRC message, the terminal U01 transmits the third RRC message.
[0879] As an example, the first request indication includes successHO-ReportReq-r17.
[0880] As an example, the first request indication includes successHO-ReportReq-r19.
[0881] As an example, the first request indication includes successHO-ReportReq-r20.
[0882] As an example, the first request indication includes successPSCell-ReportReq-r18.
[0883] As an example, the first request indication includes successPSCell-ReportReq-r19.
[0884] As an example, the first request indication includes successPSCell-ReportReq-r20.
[0885] As an example, the name of the first request indication includes CHO with candidate SCG(s).
[0886] As an example, the name of the first request indication includes ReportReq.
[0887] As an example, the second RRC message includes a UEInformationRequest message, and the third RRC message includes a UEInformationResponse message.
[0888] As an example, the second RRC message is a UEInformationRequest message, and the third RRC message is a UEInformationResponse message.
[0889] As an example, the second RRC message is not a UEInformationRequest message, and the third RRC message is a UEInformationResponse message.
[0890] As an example, the third RRC message includes a UEInformationResponse message.
[0891] As an example, the third RRC message is a UEInformationResponse message.
[0892] As an example, the third RRC message is not a UEInformationResponse message.
[0893] As an example, the third RRC message is a UEAssistanceInformation message.
[0894] As an example, the third RRC message including the first information block in the first variable means that the third RRC message includes all the information of the first information block in the first variable.
[0895] As an example, the first information block in the first variable includes information on which the configuration information of the second cell is applied.
[0896] As an example, the first information block in the first variable includes information on which the configuration information of the first cell is successfully applied.
[0897] As an example, the third RRC message including the first information block in the first variable means that the third RRC message includes partial information of the first information block in the first variable.
[0898] As an example, the partial information of the first information block refers to the information of the first cell.
[0899] As an example, the partial information of the first information block refers to at least the information of the first cell.
[0900] As an example, the partial information of the first information block refers to the information indicated by the first request indication.
[0901] As an example, the third RRC message including the first information block in the first variable means that the third RRC message includes the information indicated by the first request indication in the first information block in the first variable.
[0902] As an example, the third RRC message including the first information block in the first variable depends on the first request indication means that, as a response to receiving the first request indication, the third RRC message includes the first information block in the first variable.
[0903] As an example, the third RRC message including the first information block in the first variable depends on the first request indication means that after the first request indication is received, the third RRC message includes the first information block in the first variable.
[0904] As an example, the third RRC message including the first information block in the first variable depends on the first request indication means that after at least the first request indication is received, the third RRC message includes the first information block in the first variable.
[0905] As an example, the third RRC message including the first information block in the first variable depends on the first request indication means that once the first request indication is received, the third RRC message includes the first information block in the first variable.
[0906] As an example, the third RRC message including the first information block in the first variable depends on the first request indication means that the first request indication is set to indicate that the third RRC message includes the first information block in the first variable.
[0907] Example 13
[0908] Example 13 illustrates a structural block diagram of a processing device in a terminal according to an embodiment of the present application; as shown in the appendix Figure 13 shown. In the appendix Figure 13 In it, the processing device 1300 in the terminal includes a first processor 1301, a first receiver 1302, and a first transmitter 1303.
[0909] The first processor 1301 receives a first RRC message; wherein, the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is for MCG, and the second configuration is for SCG;
[0910] In response to the first execution condition being satisfied and the second execution condition being satisfied, apply the first configuration and apply the second configuration;
[0911] In accompaniment with applying the first configuration and applying the second configuration, set a first information block in a first variable; wherein, the first information block includes an identifier of the first cell and an identifier of the second cell;
[0912] In Example 13, the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0913] As an example, the terminal includes: one or more processors and a memory;
[0914] The memory is coupled to the one or more processors, and the memory is used to store computer program code, the computer program code includes computer instructions, and the one or more processors call the computer instructions to cause the terminal to execute the method in the present application for a terminal used in wireless communication.
[0915] As an example, the first information block includes a second field, and the second field includes first and second measurement results of a target cell; the target cell is the first cell among both the first cell and the second cell that first meets an execution condition.
[0916] As an example, the first information block includes a third field, and the third field includes at least one of the first execution condition or the second execution condition.
[0917] As an example, the first information block includes that the third field depends on that at least one of applying the first configuration or applying the second configuration has not been successfully completed.
[0918] As an example, the first information block includes a fourth field, and the fourth field indicates a second time interval; the second time interval depends on the time when the first RRC message is received and the time when the first configuration and the second configuration are applied and executed.
[0919] As an example, the first information block includes a fifth field, and the fifth field indicates a third time interval; the third time interval depends on the time when the first configuration and the second configuration are applied and executed and the time when applying the second configuration fails; wherein, applying the second configuration fails.
[0920] As an example, setting the first information block in the first variable depends on that the first time interval meets a first threshold; the first threshold is configurable.
[0921] As an example,
[0922] A first receiver 1302 receives a second RRC message, and the second RRC message includes a first request indication.
[0923] A first transmitter 1303 sends a third RRC message, and the third RRC message includes the first information block in the first variable.
[0924] Wherein, the third RRC message includes that the first information block in the first variable depends on the first request indication.
[0925] As an example, the first processor 1301 includes the first receiver 1302.
[0926] As an example, the first processor 1301 includes the first transmitter 1303.
[0927] As an example, the first processor 1301 includes the first receiver 1302 and the first transmitter 1303.
[0928] As an embodiment, the first receiver 1302 includes the attached Figure 4 At least one of the antenna 452 or the receiver 454 or the multi-antenna receive processor 458 or the receive processor 456 or the controller / processor 459 or the memory 460 or the data source 467.
[0929] As an embodiment, the first receiver 1302 includes the attached Figure 4 At least an antenna 452 and a receiver 454.
[0930] As an embodiment, the first transmitter 1303 includes the attached Figure 4 At least one of the antenna 452 or transmitter 454 or multi-antenna transmit processor 457 or transmit processor 468 or controller / processor 459 or memory 460 or data source 467.
[0931] As an embodiment, the first transmitter 1303 includes the attached Figure 4 At least antenna 452 and transmitter 454.
[0932] As an embodiment, the third RRC message is set by the first receiver 1302.
[0933] As an embodiment, the third RRC message is set by the first transmitter 1303.
[0934] As an embodiment, the third RRC message is set by the memory 460 in the first receiver 1302.
[0935] As an embodiment, the third RRC message is set by the memory 460 in the first transmitter 1303.
[0936] As an embodiment, the third RRC message is set by the controller / processor 459 in the first receiver 1302.
[0937] As an embodiment, the third RRC message is set by the controller / processor 459 in the first transmitter 1303.
[0938] Example 14
[0939] Embodiment 14 illustrates a structural block diagram of a processing device used in a base station according to an embodiment of the present application; Figure 14 As shown in the attached Figure 14 In the embodiment, the processing device 1400 in the base station includes a second transmitter 1401 and a second receiver 1402.
[0940] A second transmitter 1401 that sends a first RRC message; wherein, the first RRC message includes a first configuration for a first cell and a first execution condition, the first RRC message includes a second configuration for a second cell and a second execution condition, the first configuration is for MCG, and the second configuration is for SCG.
[0941] In Embodiment 14, in response to the first execution condition being satisfied and the second execution condition being satisfied, the receiver of the first RRC message applies the first configuration and applies the second configuration; accompanying the application of the first configuration and the application of the second configuration, the receiver of the first RRC message sets a first information block in a first variable; the first information block includes an identifier of the first cell and an identifier of the second cell; the first information block includes a first field that indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
[0942] As an embodiment, the base station includes: one or more processors and a memory;
[0943] The memory is coupled to the one or more processors, the memory is used to store computer program code, the computer program code includes computer instructions, and the one or more processors call the computer instructions to cause the base station to execute the method in the base station for wireless communication in this application.
[0944] As an embodiment, the first information block includes a second field that includes a first measurement result and a second measurement result of a target cell; the target cell is the cell that first satisfies the execution condition among the first cell and the second cell.
[0945] As an embodiment, the first information block includes a third field that includes at least one of the first execution condition or the second execution condition.
[0946] As an embodiment, the first information block includes the third field depending on at least one of the application of the first configuration or the application of the second configuration not being successfully completed.
[0947] As an embodiment, the first information block includes a fourth field that indicates a second time interval; the second time interval depends on the time when the first RRC message is received and the time when the application of the first configuration and the application of the second configuration are executed.
[0948] As an example, the first information block includes a fifth field that indicates a third time interval; the third time interval depends on the time when the first configuration and the second configuration are applied and the time when the application of the second configuration fails; wherein, the application of the second configuration fails.
[0949] As an example, setting the first information block in the first variable depends on the first time interval satisfying a first threshold; the first threshold is configurable.
[0950] As an example, a second transmitter 1401 sends a second RRC message, and the second RRC message includes a first request indication;
[0951] A second receiver 1402 receives a third RRC message, and the third RRC message includes the first information block in the first variable;
[0952] Wherein, the third RRC message includes the first information block in the first variable depending on the first request indication.
[0953] As an example, the second transmitter 1401 includes at least one of the antenna 420 or the transmitter 418 or the multi-antenna transmission processor 471 or the transmission processor 416 or the controller / processor 475 or the memory 476 attached to this application Figure 4
[0954] As an example, the second transmitter 1401 includes at least the antenna 420 and the transmitter 418 attached to this application Figure 4
[0955] As an example, the second receiver 1402 includes at least one of the antenna 420 or the receiver 418 or the multi-antenna reception processor 472 or the reception processor 470 or the controller / processor 475 or the memory 476 attached to this application Figure 4
[0956] As an example, the second receiver 1402 includes at least the antenna 420 and the receiver 418 attached to this application Figure 4
[0957] As an example, the first RRC message is set by the second receiver 1402.
[0958] As an example, the first RRC message is set by the second transmitter 1401.
[0959] As an example, the first RRC message is set by the memory 476 in the second receiver 1402.
[0960] As an example, the first RRC message is set by the memory 476 in the second transmitter 1401.
[0961] As an example, the first RRC message is set by the controller / processor 475 in the second receiver 1402.
[0962] As an example, the first RRC message is set by the controller / processor 475 in the second transmitter 1401.
[0963] As an example, the second RRC message is set by the second receiver 1402.
[0964] As an example, the second RRC message is set by the second transmitter 1401.
[0965] As an example, the second RRC message is set by the memory 476 in the second receiver 1402.
[0966] As an example, the second RRC message is set by the memory 476 in the second transmitter 1401.
[0967] As an example, the second RRC message is set by the controller / processor 475 in the second receiver 1402.
[0968] As an example, the second RRC message is set by the controller / processor 475 in the second transmitter 1401.
[0969] Those of ordinary skill in the art can understand that all or part of the steps in the above methods can be completed by instructing relevant hardware through a program, and the program can be stored in a computer-readable storage medium, such as a read-only memory, a hard disk, or an optical disc, etc. Optionally, all or part of the steps in the above embodiments can also be implemented using one or more integrated circuits. Correspondingly, each module unit in the above embodiments can be implemented in a hardware form or in the form of a software function module. This application is not limited to any specific form of the combination of software and hardware. The user equipment, terminal, and UE in this application include, but are not limited to, unmanned aerial vehicles, communication modules on unmanned aerial vehicles, remote control aircraft, aircraft, small aircraft, mobile phones, tablet computers, notebooks, vehicle-mounted communication devices, wireless sensors, network cards, Internet of Things terminals, RFID terminals, NB-IOT terminals, MTC (Machine Type Communication) terminals, eMTC (enhanced MTC) terminals, data cards, network cards, vehicle-mounted communication devices, low-cost mobile phones, low-cost tablet computers, and other wireless communication devices. The base station or system equipment in this application includes, but is not limited to, macrocell base stations, microcell base stations, home base stations, relay base stations, gNB (NR Node B) NR Node B, TRP (Transmitter Receiver Point), and other wireless communication devices.
[0970] As described above, the above are only the preferred embodiments of this application and are not used to limit the protection scope of this application. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of this application shall be included in the protection scope of this application.
Claims
1. A method used in a terminal, characterized in that: include: Receive a first RRC message; wherein the first RRC message includes a first configuration and a first execution condition for a first cell, the first RRC message includes a second configuration and a second execution condition for a second cell, the first configuration is MCG, and the second configuration is SCG; In response to the first execution condition being satisfied and the second execution condition being satisfied, applying the first configuration and applying the second configuration; Accompanying the applying of the first configuration and the applying of the second configuration, setting a first information block in a first variable; wherein the first information block includes an identifier of the first cell and an identifier of the second cell; The first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
2. The method according to claim 1, characterized in that The first information block includes a second field, and the second field includes a first measurement result and a second measurement result of a target cell; the target cell is the cell that first meets the execution condition between the first cell and the second cell.
3. The method according to claim 1 or 2, characterized in that: The first information block includes a third field, and the third field includes at least one of the first execution condition or the second execution condition.
4. The method according to claim 3, characterized in that The first information block includes that at least one of the third domain dependency applying the first configuration or applying the second configuration is not successfully completed.
5. The method according to any one of claims 1 to 4, characterized in that The first information block includes a fourth field, the fourth field indicating a second time interval; the second time interval depends on the time when the first RRC message is received and the time when applying the first configuration and applying the second configuration are performed.
6. The method according to any one of claims 1 to 5, characterized in that The first information block includes a fifth field, which indicates a third time interval; the third time interval depends on the time when the first configuration is applied and the second configuration is applied and the time when the second configuration fails to be applied; wherein, the second configuration fails to be applied.
7. The method according to any one of claims 1 to 6, characterized in that The setting of the first information block in the first variable depends on the first time interval satisfying a first threshold; the first threshold is configurable.
8. The method according to any one of claims 1 to 7, characterized in that include: receiving a second RRC message, wherein the second RRC message includes a first request indication; Sending a third RRC message, wherein the third RRC message includes the first information block in the first variable; The third RRC message includes the first information block in the first variable depending on the first request indication.
9. A terminal, characterized in that: The terminal includes: one or more processors and a memory; The memory is coupled to the one or more processors, and the memory is used to store computer program codes, where the computer program codes include computer instructions. The one or more processors call the computer instructions to enable the terminal to execute the method according to any one of claims 1 to 8.
10. A method used in a base station, characterized in that: include: Sending a first RRC message; wherein the first RRC message includes a first configuration and a first execution condition for the first cell, the first RRC message includes a second configuration and a second execution condition for the second cell, the first configuration is MCG, and the second configuration is SCG; In which, as a response to the first execution condition being satisfied and the second execution condition being satisfied, the recipient of the first RRC message applies the first configuration and applies the second configuration; accompanying the application of the first configuration and the application of the second configuration, the recipient of the first RRC message sets a first information block in a first variable; the first information block includes an identifier of the first cell and an identifier of the second cell; the first information block includes a first field, and the first field indicates a first time interval; the first time interval depends on the time when the first execution condition is satisfied and the time when the second execution condition is satisfied.
11. The method according to claim 10, characterized in that The first information block includes a second field, and the second field includes a first measurement result and a second measurement result of a target cell; the target cell is the cell that first meets the execution condition between the first cell and the second cell.
12. The method according to claim 10 or 11, characterized in that: The first information block includes a third field, and the third field includes at least one of the first execution condition or the second execution condition.
13. The method according to claim 12, characterized in that The first information block includes that at least one of the third domain dependency applying the first configuration or applying the second configuration is not successfully completed.
14. The method according to any one of claims 10 to 13, characterized in that: The first information block includes a fourth field, the fourth field indicating a second time interval; the second time interval depends on the time when the first RRC message is received and the time when applying the first configuration and applying the second configuration are performed.
15. The method according to any one of claims 10 to 14, characterized in that The first information block includes a fifth field, which indicates a third time interval; the third time interval depends on the time when the first configuration is applied and the second configuration is applied and the time when the second configuration fails to be applied; wherein, the second configuration fails to be applied.
16. The method according to any one of claims 10 to 15, characterized in that The setting of the first information block in the first variable depends on the first time interval satisfying a first threshold; the first threshold is configurable.
17. The method according to any one of claims 10 to 16, characterized in that Sending a second RRC message, wherein the second RRC message includes the first request indication; receiving a third RRC message, wherein the third RRC message includes at least a first information block; The third RRC message includes at least a first information block that depends on the first request indication.
18. A base station, characterized in that: The base station includes: one or more processors and a memory; The memory is coupled to the one or more processors, and the memory is used to store computer program codes, where the computer program codes include computer instructions, and the one or more processors call the computer instructions to enable the base station to perform the method according to any one of claims 10 to 17.