Communication path setting method, device, and terminal

By enabling remote UEs to communicate via both direct and indirect paths, the solution addresses the inefficiencies of single-path transmission, enhancing RRC robustness and reducing radio link recovery time in wireless communication systems.

JP7776647B2Active Publication Date: 2025-11-26VIVO MOBILE COMM CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
JP2024532439
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-01
Filing Date
2022-11-30
Publication Date
2025-11-26
Estimated Expiration
2042-11-30

AI Technical Summary

Technical Problem

Remote UEs in wireless communication systems typically support only single-path transmission, either indirect or direct, leading to increased radio link recovery time and reduced RRC robustness due to the initiation of RRC re-establishment procedures.

Method used

Enabling remote UEs to simultaneously communicate via both direct and indirect paths through operations such as establishment, re-establishment, and recovery, allowing for multipath transmission and quick recovery of failed paths.

Benefits of technology

This approach ensures RRC robustness and significantly shortens radio link recovery time by allowing communication via non-failed paths, thereby improving the reliability and efficiency of wireless communication.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007776647000001
    Figure 0007776647000001
  • Figure 0007776647000002
    Figure 0007776647000002
  • Figure 0007776647000003
    Figure 0007776647000003
Patent Text Reader

Abstract

The present application discloses a method, an apparatus and a terminal for setting a communication path, which belong to the technical field of wireless communication. The method for setting a communication path of an embodiment of the present application includes: a remote UE performs a first operation or a second operation on at least one of a direct path and an indirect path; and the remote UE communicates with a network side via the direct path and the indirect path, where the first operation includes an establishment operation, a re-establishment operation or a first recovery operation, the second operation includes a second recovery operation, and the second recovery operation includes an operation of the remote UE recovering the indirect path via the direct path, or an operation of the remote UE recovering the direct path via the indirect path.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims priority from Chinese Patent Application No. 202111459077.1 filed on December 1, 2021, the entire contents of which are incorporated herein by reference.

[0002] The present application relates to the technical field of wireless communication, and more particularly to a method, device and terminal for establishing a communication path. [Background technology]

[0003] In the case of a sidelink (SL) relay in a wireless communication system, a remote terminal (UE) typically supports only single-path transmission, for example, all transmissions of the remote UE are realized via an indirect path or all transmissions are realized via a direct path. Summary of the Invention [Problem to be solved by the invention]

[0004] The embodiments of the present application provide a communication path establishment method, device, and terminal, which enable a remote UE to trigger a Radio Resource Control (RRC) procedure to enable an indirect path and a direct path to communicate with a network side simultaneously, and which can shorten the radio link establishment time and ensure the RRC robustness of the remote UE. [Means for solving the problem]

[0005] In a first aspect, a method for setting up a communication path is provided, comprising: a step in which a remote UE performs a first operation or a second operation on at least one of a direct path and an indirect path; and a step in which the remote UE communicates with a network side via the direct path and the indirect path, wherein the first operation comprises an establishment operation, a re-establishment operation, or a first recovery operation, and the second operation comprises a second recovery operation, wherein the second recovery operation comprises an operation in which the remote UE recovers the indirect path via the direct path, or an operation in which the remote UE recovers the direct path via the indirect path.

[0006] In a second aspect, there is provided a communication path setting device comprising an operation module for executing a first operation or a second operation on at least one of a direct path and an indirect path, wherein the remote UE communicates with a network side via the direct path and the indirect path, the first operation includes an establishment operation, a re-establishment operation or a first recovery operation, and the second operation includes a second recovery operation, wherein the second recovery operation includes an operation of the remote UE recovering the indirect path via the direct path or an operation of the remote UE recovering the direct path via the indirect path.

[0007] In a third aspect, there is provided a terminal comprising a processor, a memory, and a program or command stored in the memory and executable by the processor, the program or command performing the steps of the method according to the first aspect when executed by the processor.

[0008] In a fourth aspect, there is provided a terminal comprising a processor and a communications interface, the communications interface and the processor being coupled together, the processor executing programs or commands and adapted to implement the steps of the method according to the first aspect.

[0009] In a fifth aspect, there is provided a readable storage medium having stored thereon a program or commands that, when executed by a processor, implements the steps of the method according to the first aspect.

[0010] In a sixth aspect, there is provided a chip comprising a processor and a communication interface, the communication interface and the processor being coupled together, the processor executing a program or command to implement the steps of the method according to the first aspect.

[0011] In a seventh aspect, there is provided a computer program / program product stored on a non-transitory storage medium and adapted to implement the steps of the method according to the first aspect when executed by at least one processor. [Effects of the Invention]

[0012] In an embodiment of the present application, the remote UE performs a first operation or a second operation on at least one of the supported direct path and indirect path, thereby, on the one hand, realizing the establishment, re-establishment or recovery of the direct path and / or the indirect path through an establishment operation, a re-establishment operation or a first recovery operation, so that the remote UE can realize path re-establishment and recovery in multipath transmission while supporting multipath transmission, and ensure RRC robustness; on the other hand, realizing quick recovery of a failed path through a path that does not fail, thereby avoiding the problem in related technologies that the initiation of an RRC re-establishment procedure increases the radio link recovery time, and effectively shortens the radio link recovery time and improves the RRC robustness of the remote UE. [Brief explanation of the drawings]

[0013] [Figure 1a] 1 is a structural schematic diagram of a wireless communication system provided in an exemplary embodiment of the present application; [Figure 1b]1 is a schematic diagram of an SL relay communication scene provided in an exemplary embodiment of the present application; [Figure 1c] 2 is a schematic diagram of an SL relay communication scene provided in an exemplary embodiment of the present application; [Figure 1d] 3 is a schematic diagram of an SL relay communication scene provided in an exemplary embodiment of the present application; [Figure 1e] 4 is a schematic diagram of an SL relay communication scene provided in an exemplary embodiment of the present application; [Figure 2] 1 is a schematic diagram 1 of a procedure of a communication path setting method provided in an exemplary embodiment of the present application; [Figure 3] 2 is a schematic diagram 2 of the procedure of the communication path setting method provided in an exemplary embodiment of the present application; [Figure 4] 3 is a flowchart illustrating a procedure of a communication path setting method provided in an exemplary embodiment of the present application. [Figure 5] 4 is a flowchart illustrating a procedure of a communication path setting method provided in an exemplary embodiment of the present application. [Figure 6] FIG. 1 is a structural schematic diagram of a communication path setting device provided in an exemplary embodiment of the present application; [Figure 7] FIG. 2 is a structural schematic diagram of a terminal provided in an exemplary embodiment of the present application; DETAILED DESCRIPTION OF THE INVENTION

[0014] Hereinafter, the technical solutions in the embodiments of the present application will be clearly explained with reference to the drawings in the embodiments of the present application, and it should be understood that the described embodiments are only a part of the embodiments of the present application, not all of the embodiments, and all other embodiments obtained by those skilled in the art based on the embodiments in the present application shall fall within the protection scope of the present application.

[0015] The terms "first," "second," etc. in the specification and claims of this application are not intended to describe a particular order or precedence order, but rather to distinguish between similar objects. It should be understood that terms used in this manner may be interchanged where appropriate so that the embodiments of this application can be implemented in an order other than that illustrated or described herein. Furthermore, the objects distinguished by "first" and "second" generally refer to one type and do not limit the number of objects; for example, the first object may be one or more. Furthermore, "and / or" in the specification and claims means at least one of the connected objects, and the " / " symbol generally means that the related objects before and after are in an "or" relationship.

[0016] It should be noted that the techniques described in the embodiments of the present application are not limited to Long Term Evolution (LTE) / LTE-Advanced (LTE-A) systems, but are also applicable to other wireless communication systems, such as Code Division Multiple Access (CDMA), Time Division Multiple Access (TDMA), Frequency Division Multiple Access (FDMA), Orthogonal Frequency Division Multiple Access (OFDMA), and Single-Carrier Frequency-Division Multiple Access (SC-FDMA), as well as other systems. The terms "system" and "network" in the embodiments of the present application may often be used interchangeably. The described techniques may be used for the systems and radio technologies mentioned above, as well as other systems and radio technologies. For illustrative purposes, the following description will discuss New Radio (NR) systems, and NR terminology will be used in much of the following description; however, these techniques may be applied to systems other than NR systems, e.g., 6th generation (6G) systems. th It can also be applied to 6G (Generation, 6G) communication systems.

[0017] FIG. 1a is a schematic diagram of a wireless communication system to which the embodiments of the present application can be applied. The wireless communication system includes a terminal 11 and a network side device 12 (also referred to as a network side). The terminal 11 may also be referred to as a terminal device or user equipment (UE), and may be a terminal side device such as a mobile phone, a tablet personal computer, a laptop computer (also referred to as a notebook computer), a personal digital assistant (PDA), a palmtop computer, a netbook, an ultra-mobile personal computer (UMPC), a mobile internet device (MID), a wearable device, an in-vehicle device, or a pedestrian user equipment (PUE), etc. Wearable devices include smart watches, wristbands, headphones, glasses, etc. It should be noted that the embodiments of the present application are not limited to a specific type of the terminal 11. The network side device 12 may be a base station or a core network. Here, the base station may be referred to as a Node B, an evolved Node B, an access point, a base transceiver station (BTS), a radio base station, a radio transceiver, a basic service set (BSS), an extended service set (ESS), a B node, an evolved B node (eNB), a home B node, a home evolved B node, a WLAN access point, a WiFi node, a transmitting and receiving point (TRP), or any other suitable term in the art, and the base station is not limited to a specific technical term as long as it can achieve similar technical effects. It should be noted that in the embodiments of the present application, a base station in an NR system is used as an example, but the specific type of the base station is not limited.

[0018] Based on the above description of the wireless communication system, the present application further provides a schematic diagram of the SL relay communication scene, as shown in Figure 1b, Figure 1c, Figure 1d and Figure 1e.

[0019] The SL relay communication scenario shown in Figure 1b includes at least a remote UE, a relay UE, and a base station A, and a direct path and an indirect path are established between the remote UE and the base station A. That is, in the SL relay communication scenario of Figure 1b, the remote UE can simultaneously support transmission on the direct path and the indirect path, and the direct path and the indirect path can be controlled by the same base station A.

[0020] The SL relay communication scenario shown in Figure 1c includes at least a remote UE, a relay UE, base station A, and base station B, where a direct path is established between the remote UE and base station A, and an indirect path is established between the remote UE and base station B. That is, in the SL relay communication scenario of Figure 1c, the remote UE can simultaneously support transmission on the direct path and the indirect path, but the direct path and the indirect path are controlled by different base stations A and B. It should be noted that base station A and base station B can communicate via an Xn interface.

[0021] The difference between the SL relay communication scene shown in Figure 1d and Figure 1b is that the direct path of the remote UE includes a master cell group (MCG) path and a secondary cell group (SCG) path, i.e., the direct path of the remote UE shown in Figure 1d is a dual connection.

[0022] The difference between the SL relay communication scene shown in Figure 1e and Figure 1c is that the direct path of the remote UE includes an MCG path and an SCG path, that is, the direct path of the remote UE shown in Figure 1e is a dual connection.

[0023] In addition, it can be understood that the "indirect path" described in this application is a radio link through which a remote UE establishes an RRC connection with a base station via a relay UE and the air interface of the relay UE, and the "direct path" is a radio link through which a remote UE establishes an RRC connection with a base station via its own Uu interface.

[0024] In the following, based on the above description of the wireless communication system and the SL relay communication scenario, and further with reference to the drawings, the technical solutions provided in the embodiments of the present application will be described in more detail in several embodiments and their application scenarios.

[0025] 2 shows a procedure diagram of a communication path setting method 200 provided in an exemplary embodiment of the present application, which may be performed by, but is not limited to, a remote UE, specifically, by hardware and / or software installed in the remote UE. In this embodiment, the method 200 may include at least the following step S210:

[0026] At S210, the remote UE performs a first operation or a second operation on at least one of the direct path and the indirect path.

[0027] Here, the first operation includes an establishment operation, a re-establishment operation, or a first recovery operation. That is, when the remote UE needs to simultaneously establish a direct path and an indirect path, or when a problem such as a failure occurs in at least one of the direct path and / or the indirect path supported by the remote UE and path recovery or re-establishment is required, the remote UE can trigger an RRC procedure to perform the establishment operation, the re-establishment operation, or the first recovery operation to establish, re-establish, or recover the direct path and / or the indirect path. This allows the remote UE to support multipath transmission while achieving path re-establishment and recovery in multipath transmission. Furthermore, since the remote UE supports multipath transmission, even if a failure occurs in one path among the multipaths supported by the remote UE, transmission can continue via other paths that do not have a failure, thereby ensuring RRC robustness of the remote UE.

[0028] The second operation includes a second recovery operation, and the second recovery operation includes an operation of the remote UE recovering an indirect path via a direct path, or an operation of the remote UE recovering the direct path via an indirect path. That is, when the remote UE simultaneously supports a direct path and an indirect path, if a failure occurs in the direct path or the indirect path, the remote UE can quickly recover the failed path via a path that does not have a failure, thereby effectively shortening the radio link recovery time and avoiding the problem in the related art that the radio link recovery time is lengthened due to the initiation of an RRC re-establishment procedure, and improving the RRC robustness of the remote UE.

[0029] In addition, the remote UE communicates with the network side via the direct path and the indirect path, that is, by performing the first or second operation, the remote UE can simultaneously communicate with the network side via both the direct path and the indirect path. Here, as shown in Figure 1b and Figure 1c, the network side may include one base station for simultaneously controlling the indirect path and the direct path, or may include two base stations for independently and simultaneously controlling the indirect path and the direct path, and this embodiment is not limited thereto.

[0030] In this embodiment, the remote UE performs a first operation or a second operation on at least one of the supported direct path and indirect path, thereby, on the one hand, establishing, re-establishing, or restoring the direct path and / or indirect path through the establishment operation, re-establishing operation, or first recovery operation, so that the remote UE can communicate with the network side device via multiple paths, and can realize path re-establishment and recovery in multipath transmission while supporting multipath (including direct path and indirect path) transmission, thereby ensuring the robustness of RRC of the remote UE. On the other hand, realizing rapid recovery of a failed path through a non-failed path effectively shortens the radio link recovery time, thereby avoiding the problem in the related art that the initiation of an RRC re-establishment procedure increases the radio link recovery time, and improving the RRC robustness of the remote UE.

[0031] 3 shows a procedure diagram of a communication path setting method 300 provided in an exemplary embodiment of the present application, which may be performed by, but is not limited to, a remote UE, specifically, by hardware and / or software installed in the remote UE. In this embodiment, the method 300 may include at least the following step S310:

[0032] At S310, the remote UE performs a first operation or a second operation on at least one of the direct path and the indirect path.

[0033] wherein the remote UE communicates with a network side via the direct path and the indirect path; The first operation includes an establishment operation, a re-establishment operation, or a first recovery operation, and the second operation includes a second recovery operation, and the second recovery operation includes an operation in which the remote UE recovers an indirect path via a direct path, or an operation in which the remote UE recovers a direct path via an indirect path.

[0034] In addition to the relevant description in method embodiment 200 being referred to for the implementation process of S310, as one possible implementation form, referring again to FIG. 3, it can be understood that the process in which the remote UE performs a first operation on at least one of a direct path and an indirect path can be realized by the following S311, the content of which is as follows:

[0035] In S311, when the remote UE determines at least one first cell and / or at least one first relay UE, it performs a first operation on at least one of a direct path and an indirect path.

[0036] Here, the remote UE communicates with the network side via the direct path and the indirect path.

[0037] The at least one first cell is a cell that satisfies a cell selection or reselection condition obtained by the remote UE performing a cell selection or reselection procedure, i.e., a suitable cell. Correspondingly, the at least one first relay UE is a relay UE that satisfies a relay selection or reselection condition obtained by the remote UE performing a relay selection or reselection procedure, i.e., a suitable relay UE.

[0038] Based on this, the process in which the remote UE performs an establishment operation for at least one of a direct path and an indirect path based on at least one first cell and / or at least one first relay UE may include the following (11) and / or (12), the contents of which are as follows:

[0039] (11) The remote UE establishes the direct path based on an RRC connection establishment procedure initiated by a target cell, where the target cell is one of the at least one first cell.

[0040] For example, the remote UE may first select the target cell from the at least one first cell, and then initiate an RRC connection establishment procedure based on the target cell, thereby establishing a direct path with a first target base station to which the target cell belongs.

[0041] It is understood that the means by which the remote UE selects the target cell from the at least one first cell may be random selection, selection based on the performance of the first cell, etc., and is not limited thereto.

[0042] (12) The remote UE establishes the indirect path based on an RRC connection establishment procedure initiated by a target relay UE, the target relay UE being one of the at least one first relay UE.

[0043] For example, the remote UE may first select the target relay UE from the at least one first relay UE, and then initiate an RRC connection establishment procedure based on the relay UE, thereby establishing an indirect path with a second target base station to which the target relay UE belongs.

[0044] Similar to the selection of the target cell, the means by which the remote UE selects the target relay UE from the at least one first relay UE may be random selection, selection based on the performance of the first relay UE, etc., and is not limited here.

[0045] Furthermore, the first target base station mentioned in (11) above and the second target base station mentioned in (12) above may be the same or different, that is, for example, as shown in Figures 1b and 1c, the direct path and the indirect path may be controlled by the same base station or may be independently controlled by different base stations.

[0046] Furthermore, the process in which the remote UE performs a re-establishment operation for at least one of a direct path and an indirect path based on at least one first cell and / or at least one first relay UE may include the following (13) and / or (14), the contents of which are as follows:

[0047] (13) The remote UE re-establishes the direct path based on an RRC connection re-establishment procedure initiated by a target cell, where the target cell is one of the at least one first cell.

[0048] For example, the remote UE may first select the target cell from the at least one first cell, and then initiate an RRC connection re-establishment procedure based on the target cell, thereby re-establishing the direct path with the first target base station to which the target cell belongs.

[0049] (14) The remote UE re-establishes the indirect path based on an RRC connection re-establishment procedure initiated by a target relay UE, the target relay UE being one of the at least one first relay UE.

[0050] For example, the remote UE may first select the target relay UE from the at least one first relay UE, and then initiate an RRC connection re-establishment procedure based on the relay UE, thereby re-establishing the indirect path with a second target base station to which the target relay UE belongs.

[0051] Furthermore, the process in which the remote UE performs a first recovery operation for at least one of a direct path and an indirect path based on at least one first cell and / or at least one first relay UE may include the following (15) and / or (16), the contents of which are as follows:

[0052] (15) The remote UE recovers the direct path based on an RRC connection recovery procedure initiated by a target cell, where the target cell is one of the at least one first cell.

[0053] For example, the remote UE can first select the target cell from the at least one first cell, and then initiate an RRC connection recovery procedure based on the target cell, thereby establishing a direct path with the first target base station to which the target cell belongs, and realizing the recovery of the direct path.

[0054] (16) The remote UE restores the indirect path based on an RRC procedure initiated by a target relay UE, where the target relay UE is one of the at least one first relay UE.

[0055] For example, the remote UE first selects the target relay UE from the at least one first relay UE, and then initiates an RRC connection recovery procedure based on the relay UE, thereby re-establishing the indirect path with the second target base station to which the target relay UE belongs, and achieving recovery of the indirect path.

[0056] It should be noted that the relevant descriptions of the target cell selection, target relay UE selection, first target base station, and second target base station described in (13) to (16) can refer to the relevant descriptions in (11) to (12) above, and detailed descriptions will be omitted here to avoid duplication.

[0057] Furthermore, in the above-mentioned (11) to (16), in the scene where the first operation needs to be performed for both the direct path and the indirect path, this embodiment does not limit the order of operations for the direct path and the indirect path, and for example, the remote UE may establish / restore the direct path and then establish / restore the indirect path, or may establish / restore the indirect path and then establish / restore the direct path, etc.

[0058] Of course, in addition to the operations (e.g., establishment, re-establishment, recovery) for the direct path and indirect path shown above, if the terminal has already established a direct path (e.g., no failure has occurred in the direct path supported by the remote UE, or the remote UE has completed the establishment, re-establishment, or recovery of the direct path based on the above-mentioned (11), (13), or (15)), the remote UE can directly establish, re-establish, or recover the indirect path based on the direct path, thereby improving the setting up efficiency of the indirect path, shortening the setting up time of the indirect path, and improving the RRC robustness of the remote UE.

[0059] For example, assuming that the UE completes the establishment, re-establishment or recovery of a direct path based on the above (11), (13) and (15), i.e., when the remote UE performs the first operation on the direct path based on the target cell, the remote UE can further realize the first operation, such as establishment, re-establishment or recovery, on an indirect path by performing the following (21) to (23).

[0060] (21) The remote UE may receive a first RRC reconfiguration message or a first RRC recovery message sent by a first target base station.

[0061] Here, the first target base station is a base station to which the target cell belongs.

[0062] The first RRC reconfiguration message includes configuration information of at least a second relay UE for establishing or re-establishing the indirect path, and the first RRC recovery message includes configuration information of at least a second relay UE for recovering the indirect path.

[0063] In one implementation form, the second relay UE may be selected by the first target base station from relay UEs cached by the first target base station itself, or may be selected based on at least one third relay UE reported by the remote UE, or may be selected based on both the relay UE cached by the first target base station itself and at least one third relay UE reported by the remote UE, and this embodiment is not limited here.

[0064] That is, before receiving the first RRC reconfiguration message or the first RRC recovery message sent by the first target base station, the remote UE can report related information of at least one third relay UE to the first target base station so that the first target base station can select the second relay UE.

[0065] Optionally, the at least one third relay UE includes at least one of the following (211) to (212):

[0066] (211) At least a portion of the at least one first relay UE.

[0067] (212) At least one fourth relay UE that satisfies a first measurement reporting event determined by the remote UE based on the measurement configuration of the first target base station, where the first measurement reporting event can be realized by a protocol specification, an upper layer configuration, or a network side configuration, and is not limited thereto.

[0068] Furthermore, the related information of the at least one third relay UE may include at least one of the following (213) to (214).

[0069] (213) Identification information of at least one of the third relay UEs.

[0070] (214) Quality information of a PC5 path between the remote UE and at least one of the third relay UEs.

[0071] (22) Based on the configuration information of the second relay UE, the remote UE sends a first RRC reconfiguration complete message or a first RRC recovery complete message to the first target base station via the second relay UE.

[0072] (23) If the transmission of the first RRC reconfiguration complete message or the first RRC recovery complete message to the first target base station is successful, the remote UE establishes the indirect path with the first target base station via the second relay UE.

[0073] Of course, it should be noted that in this implementation, the direct path and the indirect path are controlled by the same first target base station.

[0074] Also, referring to Figures 1d and 1e together, if the direct path supported by the remote UE is a dual connection (DC), i.e., the direct path includes a master cell group (MCG) path and a secondary cell group (SCG) path, assuming that the above-mentioned direct path is an MCG path, the first RRC reconfiguration message or the first RRC recovery message may further include configuration information of a third target base station (which may be understood as SN configuration or SCG configuration), and the remote UE establishes an SCG path based on the configuration information of the third target base station.

[0075] Furthermore, in response to the establishment of an indirect path based on the above-mentioned direct path, if the terminal has already established an indirect path (for example, if no failure occurs in the indirect path supported by the remote UE, or if the remote UE has completed the establishment, re-establishment, or recovery of the indirect path based on the above-mentioned (12), (14), or (16)), the remote UE can directly establish, re-establish, or recover the direct path based on the indirect path, thereby improving the setting up efficiency of the direct path, shortening the setting up time of the direct path, and improving the RRC robustness of the remote UE.

[0076] For example, assuming that the UE completes the establishment, re-establishment or restoration of an indirect path based on the above (12), (14) and (16), i.e., when the remote UE performs the first operation on the indirect path based on the target relay UE, the remote UE can further realize the first operation, such as establishment, re-establishment or restoration, on the indirect path by performing the following (24) to (26).

[0077] (24) The remote UE receives a second RRC reconfiguration message or a second RRC recovery message sent by a second target base station.

[0078] Here, the second target base station is the base station to which the target relay UE belongs.

[0079] The second RRC reconfiguration message includes configuration information of at least a second cell for establishing or re-establishing the direct path, and the second RRC recovery message includes configuration information of at least a second cell for recovering the direct path.

[0080] In one implementation form, the second cell may be selected by the second target base station from relay UEs cached by the second target base station itself, or may be selected based on at least one third cell reported by the received remote UE, or may be selected based on both cell information cached by the second target base station itself and at least one third cell reported by the remote UE, and this embodiment is not limited here.

[0081] That is, before receiving the second RRC reconfiguration message or the second RRC recovery message sent by the second target base station, the remote UE can report related information of at least one third cell to the second target base station so that the second target base station can select the second cell.

[0082] Optionally, the at least one third cell may include at least one of the following (241) to (242).

[0083] (241) At least a portion of said at least one first cell.

[0084] (242) At least one fourth cell that satisfies a second measurement reporting event, determined by the remote UE based on the measurement configuration of the second target base station.

[0085] Furthermore, the related information of the at least one third cell may include at least one of the following (243) to (244).

[0086] (243) Identification information of at least one of said third cells.

[0087] (244) Quality information of a Uu path between the remote UE and at least one of the third cells.

[0088] (25) Based on the configuration information of the second cell, the remote UE sends a second RRC reconfiguration complete message or a second RRC recovery complete message to a second target base station via the second cell.

[0089] (26) If the second RRC reconfiguration complete message or the second RRC recovery complete message is successfully transmitted to the second target base station, the remote UE establishes the direct path with the second target base station.

[0090] Of course, it should be noted that in this implementation, the direct path and the indirect path are controlled by the same second target base station.

[0091] Also, referring again to Figures 1d and 1e together, when the direct path supported by the remote UE is DC, i.e., the direct path includes an MCG path and an SCG path, assuming that the above-mentioned direct path is an MCG path, the second RRC reconfiguration message or the second RRC recovery message may further include configuration information of a fourth target base station (which may be understood as SN configuration or SCG configuration), and the remote UE establishes an SCG path based on the configuration information of the fourth target base station.

[0092] 4 shows a procedure diagram of a communication path setting method 400 provided in an exemplary embodiment of the present application, which may be performed by, but is not limited to, a remote UE, specifically, by hardware and / or software installed in the remote UE. In this embodiment, the method 400 includes at least the following step S410:

[0093] At S410, the remote UE performs a first operation or a second operation on at least one of the direct path and the indirect path.

[0094] Here, the remote UE communicates with the network side via the direct path and the indirect path.

[0095] The first operation includes an establishment operation, a re-establishment operation, or a first recovery operation, and the second operation includes a second recovery operation, and the second recovery operation includes an operation in which the remote UE recovers an indirect path via a direct path, or an operation in which the remote UE recovers a direct path via an indirect path.

[0096] For the implementation process of S410, refer to the relevant description in method embodiments 200 and / or 300. In addition, by referring again to FIG. 4, it can be understood that, as one possible implementation form, the step of the remote UE performing the first operation or the second operation on at least one of the direct path and the indirect path can be realized by S411 and S412, which are as follows:

[0097] At S411, the remote UE determines first information.

[0098] Here, the first information includes at least one of the following (31) to (32).

[0099] (31) Whether the direct path satisfies a direct path failure condition.

[0100] Optionally, the direct path failure condition includes at least one of the following (311) to (312):

[0101] (311) The remote UE has encountered a Uu radio link failure.

[0102] (312) The remote UE has encountered a Uu radio link recovery failure.

[0103] (32) Whether the indirect path satisfies an indirect path failure condition.

[0104] Optionally, the indirect path failure condition may include at least one of the following (321) to (323):

[0105] (321) A PC5 radio link failure occurs between the remote UE and the relay UE.

[0106] (322) A PC5 radio link release occurs between the remote UE and the relay UE.

[0107] (323) The remote UE receives first indication information from the relay UE, the first indication information being sent by the relay UE when a first condition is met, the first condition including at least one of: a Uu radio link failure occurs in the relay UE; a Uu radio link recovery failure occurs in the relay UE; a Uu switching occurs in the relay UE; and a Uu switching failure occurs in the relay UE.

[0108] In this embodiment, the first information, the direct path failure condition, and the indirect path failure condition can all be realized by protocol conventions, upper layer settings, or network side settings, and are not limited here.

[0109] At S412, the remote UE performs the first action or the second action on at least one of the direct path and the indirect path based on the first information.

[0110] Here, as one possible implementation form, the step of the remote UE performing the first operation or the second operation on at least one of the direct path and the indirect path based on the first information may include any one of the following (41) to (43).

[0111] (41) If the direct path satisfies the direct path failure condition and the indirect path does not satisfy the indirect path failure condition, the remote UE performs an operation to restore the direct path via the indirect path.

[0112] In one implementation, the process by which the remote UE restores the direct path via the indirect path may refer to the relevant description of the remote UE restoring the direct path based on the indirect path in the above-mentioned method embodiment 300, and detailed description will be omitted here to avoid duplication.

[0113] In another implementation, the remote UE may determine the recovery means for the direct path based on whether a fifth target base station corresponding to the indirect path supports an RRC procedure for recovering the direct path via the indirect path, for example, as described in the following (411) and (412). In this embodiment, the remote UE can determine whether the fifth target base station supports an RRC procedure for recovering the direct path via the indirect path based on whether a first timer is set. If the first timer is set, it can be understood that the fifth target base station supports the RRC procedure for recovering the direct path via the indirect path; otherwise, it determines that the fifth target base station does not support the RRC procedure. Here, the first timer is for indicating the effective period of the RRC procedure for the remote UE to recover the direct path via the indirect path. In addition, all of the timers mentioned in this application can be set by a base station (e.g., broadcast signaling configuration or RRC dedicated signaling configuration) and executed on the remote UE.

[0114] (411) If the fifth target base station corresponding to the indirect path supports an RRC procedure for recovering the direct path via the indirect path, the remote UE performs an operation for recovering the direct path via the indirect path.

[0115] Here, the process of recovering the direct path via the indirect path may include the following steps (4111) to (4113), the contents of which are as follows:

[0116] (4111) The remote UE reports a direct path failure message corresponding to the direct path to the fifth target base station corresponding to the indirect path, and starts a first timer.

[0117] (4112) When the remote UE receives a third RRC reconfiguration message sent by the fifth target base station, the remote UE stops the first timer, and the third RRC reconfiguration message includes configuration information of at least one fifth cell, and the configuration information of the fifth cell is for instructing the remote UE to establish the direct path with a sixth target base station to which the fifth cell belongs.

[0118] Alternatively, the configuration information of the fifth cell may be determined by the fifth target base station based on cell information cached by the fifth target base station itself, or may be determined based on cell information reported by a remote UE, and is not limited here.

[0119] It should be noted that the fifth target base station corresponding to the indirect path and the sixth target base station to which the fifth cell belongs may be the same or different. Of course, if the fifth target base station is different from the sixth target base station, the configuration information of the fifth cell included in the third RRC reconfiguration message may be generated by the sixth target base station and then transmitted to the fifth target base station.

[0120] Furthermore, according to different communication scenarios, the fifth target base station may be the same as or different from the first target base station or the second target base station described in the above-mentioned method embodiments, and accordingly, the sixth target base station may be the same as or different from the above-mentioned first target base station or the second target base station.

[0121] (4113) If the first timer times out, the remote UE performs the re-establishment operation to re-establish the direct path.

[0122] (412) If the fifth target base station corresponding to the indirect path does not support an RRC procedure for recovering the direct path via the indirect path, the remote UE performs the re-establishment operation to re-establish the direct path.

[0123] It should be noted that the re-establishment operations described in (4113) and (412) above can refer to the relevant descriptions in the above-mentioned method embodiments 200 and / or 300, and detailed descriptions will be omitted here to avoid duplication.

[0124] (42) If the direct path does not satisfy the direct path failure condition and the indirect path satisfies the indirect path failure condition, the remote UE performs an operation to restore the indirect path via the direct path.

[0125] In one implementation, the process by which the remote UE restores the indirect path via the direct path may refer to the relevant description of the remote UE restoring the indirect path based on the direct path in the aforementioned method embodiment 300, and detailed description will be omitted here to avoid duplication.

[0126] In another implementation form, the remote UE may determine the recovery means for the indirect path based on whether a seventh target base station corresponding to the direct path supports an RRC procedure for recovering the indirect path via the direct path, for example, as described in the following (421) and (422). In this embodiment, the remote UE can determine whether the seventh target base station supports an RRC procedure for recovering the indirect path via the direct path based on whether a second timer is set. It can be understood that if the second timer is set, the remote UE determines that the seventh target base station supports the RRC procedure for recovering the indirect path via the direct path, and if not, determines that the seventh target base station does not support the RRC procedure. Here, the second timer is for indicating a valid period of the RRC procedure for the remote UE to recover the indirect path via the direct path.

[0127] (421) If the seventh target base station corresponding to the direct path supports an RRC procedure for recovering the indirect path via the direct path, the remote UE performs an operation for recovering the indirect path via the direct path.

[0128] Here, the process of recovering the indirect path via the direct path may include the following steps (4211) to (4213).

[0129] (4211) The remote UE reports an indirect path failure message corresponding to the indirect path to the seventh target base station corresponding to the direct path, and starts a second timer.

[0130] (4212) When the remote UE receives a fourth RRC reconfiguration message sent by the seventh target base station, the remote UE stops the second timer, and the fourth RRC reconfiguration message includes configuration information of at least one fifth relay UE, and the configuration information of the fifth relay UE is for instructing the remote UE to establish the indirect path with the eighth target base station to which the fifth relay UE belongs.

[0131] Alternatively, the configuration information of the fifth relay UE may be determined by the seventh target base station based on the relay UE information cached by the seventh target base station itself, or may be determined based on the relay UE information reported by the remote UE, and is not limited here.

[0132] It should be noted that the seventh target base station corresponding to the direct path may be the same as or different from the eighth target base station to which the fifth relay UE belongs. Of course, if the seventh target base station is different from the eighth target base station, the configuration information of the fifth relay UE included in the fourth RRC reconfiguration message may be generated by the eighth target base station and then transmitted to the seventh target base station.

[0133] Furthermore, according to different communication scenarios, the seventh target base station may be the same as or different from the first target base station or the second target base station described in the above-mentioned method embodiments, and accordingly, the eighth target base station may be the same as or different from the above-mentioned first target base station or the second target base station.

[0134] (4213) If the second timer times out, the remote UE performs the re-establishment operation to re-establish the indirect path.

[0135] (422) If the seventh target base station corresponding to the direct path does not support an RRC procedure for recovering the indirect path via the direct path, the remote UE performs the re-establishment operation to re-establish the indirect path.

[0136] It should be noted that the re-establishment operations described in (4213) and (422) above may refer to the relevant descriptions in the above-mentioned method embodiments 200 and / or 300, and detailed descriptions will be omitted here to avoid duplication.

[0137] (43) If the direct path satisfies the direct path failure condition and the indirect path satisfies the indirect path failure condition, the remote UE performs the re-establishment operation.

[0138] Here, for a related description of the re-establishment operation, please refer to the related description in the above-mentioned method embodiments 200 and / or 300, and to avoid duplication, a detailed description will be omitted here.

[0139] In this embodiment, the remote UE adopts an operation of recovering an indirect path via a direct path or an operation of recovering a direct path via an indirect path based on the first information, thereby realizing the recovery of the corresponding path, effectively shortening the path recovery time, and improving the RRC robustness of the remote UE.

[0140] 5 shows a procedure diagram of a communication path setting method 500 provided in an exemplary embodiment of the present application, which may be performed by, but is not limited to, a remote UE, specifically, by hardware and / or software installed in the remote UE. In this embodiment, the method 500 includes at least the following step S510:

[0141] At S510, the remote UE performs a first operation or a second operation on at least one of the direct path and the indirect path.

[0142] Here, the remote UE communicates with the network side via the direct path and the indirect path.

[0143] The first operation includes an establishment operation, a re-establishment operation, or a first recovery operation, and the second operation includes a second recovery operation, and the second recovery operation includes an operation in which the remote UE recovers an indirect path via a direct path, or an operation in which the remote UE recovers a direct path via an indirect path.

[0144] The implementation process of S510 can refer to the relevant descriptions in method embodiments 200, 300, and 400. In addition, it can be understood that, as one possible implementation form, the direct path of the remote UE is a dual connection (DC), that is, the direct path may include an MCG path and an SCG path, and accordingly, the second operation may include an operation of the remote UE recovering the SCG path via the MCG path, or an operation of the remote UE recovering the MCG path via the SCG path, or an operation of the remote UE recovering the indirect path via the MCG path, or an operation of the remote UE recovering the indirect path via the SCG path, or an operation of the remote UE recovering the MCG path via the indirect path, or an operation of the remote UE recovering the SCG path via the indirect path.

[0145] In this case, referring again to FIG. 5, the step of the remote UE performing the first operation or the second operation on at least one of the direct path and the indirect path may include S511 and S512, which are as follows:

[0146] At S511, the remote UE determines second information.

[0147] Optionally, the second information includes at least one of the following (51) to (53):

[0148] (51) Whether the MCG path satisfies the MCG path failure condition.

[0149] Here, the MCG path failure condition includes at least one of the following (511) to (512).

[0150] (511) The remote UE has encountered a Uu radio link failure.

[0151] (512) The remote UE has encountered a Uu radio link recovery failure.

[0152] (52) Whether the SCG path satisfies an SCG path failure condition.

[0153] Here, the SCG path failure condition includes an SCG failure occurring in the remote UE.

[0154] (53) Whether the indirect path satisfies an indirect path failure condition.

[0155] Here, the indirect path failure condition may include at least one of the following (531) to (533).

[0156] (531) A PC5 radio link failure occurs between the remote UE and the relay UE.

[0157] (532) A PC5 radio link release occurs between the remote UE and the relay UE.

[0158] (533) The remote UE receives first indication information from the relay UE, the first indication information being sent by the relay UE when a first condition is satisfied, the first condition including at least one of: a Uu radio link failure occurs in the relay UE; a Uu radio link recovery failure occurs in the relay UE; a Uu switching occurs in the relay UE; and a Uu switching failure occurs in the relay UE.

[0159] It is understood that the second information, the MCG path failure condition, and the indirect path failure condition may be specified by a protocol, set by an upper layer, or set by a network side device, and are not limited here.

[0160] At S512, the remote UE performs the first operation or the second operation on at least one of an MCG path, an SCG path, and an indirect path based on the second information.

[0161] In one implementation, the step of the remote UE performing a first operation or a second operation on at least one of a direct path and an indirect path based on the second information includes any one of the following (61) to (67).

[0162] (61) If the MCG path satisfies the MCG path failure condition, the SCG path satisfies the SCG path failure condition, and the indirect path does not satisfy the indirect path failure condition, the remote UE performs an operation to recover the MCG path via the indirect path, and / or the remote UE performs an operation to recover the SCG path via the indirect path.

[0163] Here, when the remote UE performs an operation to recover the MCG path via the indirect path, the remote UE may determine a recovery method for the MCG path based on whether a ninth target base station corresponding to the indirect path supports an RRC procedure for recovering the MCG path via the indirect path, for example, as described in the following (611) and (612). In this embodiment, the remote UE may determine whether the ninth target base station supports an RRC procedure for recovering the MCG path via the indirect path based on whether a third timer is set. It can be understood that if the third timer is set, the remote UE determines that the ninth target base station supports the RRC procedure for recovering the MCG path via the indirect path, and if not, determines that the ninth target base station does not support the RRC procedure. Here, the third timer is for indicating a validity period of the RRC procedure for the remote UE to recover the MCG path via the indirect path.

[0164] (611) If the ninth target base station corresponding to the indirect path supports an RRC procedure for recovering the MCG path via the indirect path, the remote UE performs an operation for recovering the MCG path via the indirect path.

[0165] Here, the process of the remote UE restoring the MCG path through the indirect path may include the following steps (6111) to (6113), which are as follows:

[0166] (6111) The remote UE reports an MCG direct connection failure message corresponding to the MCG path to the ninth target base station corresponding to the indirect path, and starts a third timer.

[0167] (6112) When the remote UE receives a fifth RRC reconfiguration message sent by the ninth target base station, the remote UE stops the third timer, and the fifth RRC reconfiguration message includes configuration information of at least one sixth cell, where the configuration information of the sixth cell is for instructing the remote UE to establish the MCG path with the tenth target base station to which the sixth cell belongs.

[0168] Alternatively, the configuration information of the sixth cell may be determined by the ninth target base station based on cell information cached by the ninth target base station itself, or may be determined based on cell information reported by a remote UE, and is not limited here.

[0169] It should be noted that the ninth target base station corresponding to the indirect path may be the same as or different from the tenth target base station to which the sixth cell belongs. Of course, if the ninth target base station is different from the tenth target base station, the configuration information of the sixth cell included in the fifth RRC reconfiguration message may be generated by the tenth target base station and then transmitted to the ninth target base station.

[0170] (6113) If the third timer times out, the remote UE performs the re-establishment operation and re-establishes the MCG path.

[0171] (612) If the ninth target base station corresponding to the indirect path does not support an RRC procedure for recovering the MCG path via the indirect path, the remote UE performs the re-establishment operation and re-establishes the MCG path.

[0172] It should be noted that the re-establishment operations described in (6113) and (612) can refer to the relevant descriptions of the direct path re-establishment in the above-mentioned method embodiments 200 to 400, and detailed descriptions will be omitted here to avoid duplication.

[0173] Furthermore, according to different communication scenarios, the 9th target base station may be the same as or different from the first target base station or the second target base station described in the above-mentioned method embodiments, and accordingly, the 10th target base station may be the same as or different from the above-mentioned first target base station or the second target base station.

[0174] Furthermore, when the remote UE performs an operation to recover the SCG path via the indirect path, the remote UE may determine a means for recovering the SCG path based on whether a ninth target base station corresponding to the indirect path supports an RRC procedure for recovering the SCG path via the indirect path, for example, as described in the following (613) and (614). In this embodiment, the remote UE may determine whether the ninth target base station supports an RRC procedure for recovering the SCG path via the indirect path based on whether a sixth timer is set. It can be understood that if the sixth timer is set, the remote UE determines that the ninth target base station supports the RRC procedure for recovering the SCG path via the indirect path, and if not, determines that the ninth target base station does not support the RRC procedure. Here, the sixth timer is for indicating a validity period of the RRC procedure for the remote UE to recover the SCG path via the indirect path.

[0175] (613) If the ninth target base station corresponding to the indirect path supports an RRC procedure for recovering the MCG path via the indirect path, the remote UE performs an operation for recovering the MCG path via the indirect path.

[0176] Optionally, the process of the remote UE restoring the SCG path through the indirect path may include the following steps (6131) to (6133), which are as follows:

[0177] (6131) The remote UE reports an SCG direct connection failure message corresponding to the SCG path to the ninth target base station corresponding to the indirect path, and starts a sixth timer.

[0178] (6132) When the remote UE receives a fifth RRC reconfiguration message sent by the ninth target base station, the remote UE stops the sixth timer, and the fifth RRC reconfiguration message includes configuration information of at least one sixth cell, where the configuration information of the sixth cell is for instructing the remote UE to establish the SCG path with the fifteenth target base station to which the sixth cell belongs.

[0179] Alternatively, the configuration information of the sixth cell may be determined by the ninth target base station based on cell information cached by the ninth target base station itself, or may be determined based on cell information reported by a remote UE, and is not limited here.

[0180] It should be noted that the ninth target base station corresponding to the indirect path may be the same as or different from the fifteenth target base station to which the sixth cell belongs. Of course, if the ninth target base station is different from the fifteenth target base station, the configuration information of the sixth cell included in the fifth RRC reconfiguration message may be generated by the fifteenth target base station and then transmitted to the ninth target base station.

[0181] (6133) If the sixth timer times out, the remote UE performs the re-establishment operation and re-establishes the SCG path.

[0182] (614) If the ninth target base station corresponding to the indirect path does not support an RRC procedure for recovering the SCG path via the indirect path, the remote UE performs the re-establishment operation and re-establishes the SCG path.

[0183] It should be noted that the re-establishment operations described in (6133) and (614) above can refer to the relevant description of the direct path re-establishment in the above-mentioned method embodiments 200 and / or 300, and detailed description will be omitted here to avoid duplication.

[0184] Furthermore, according to different communication scenarios, the 9th target base station may be the same as or different from the first target base station or the second target base station described in the above-mentioned method embodiments, and accordingly, the 15th target base station may be the same as or different from the above-mentioned first target base station or the second target base station.

[0185] (62) If the MCG path satisfies the MCG path failure condition, the SCG path does not satisfy the SCG path failure condition, and the indirect path does not satisfy the indirect path failure condition, the remote UE performs an operation to recover the MCG path via the SCG path, or the remote UE performs an operation to recover the MCG path via the indirect path.

[0186] Here, the operation of the remote UE to restore the MCG path via the SCG path may refer to a conventional MCG restoration procedure, and is not limited in this application.

[0187] In addition, the implementation process in which the remote UE performs the operation of recovering the MCG path via the indirect path may refer to the related explanations in (611) to (612) above, and detailed explanations will be omitted here to avoid duplication.

[0188] Furthermore, in a scene where the MCG path satisfies the MCG path failure condition, the SCG path does not satisfy the SCG path failure condition, and the indirect path does not satisfy the indirect path failure condition, the remote UE determines a recovery measure for the MCG path based on one of random selection, network configuration, and protocol specification.

[0189] For example, assuming that the third information is set by the network, the remote UE can determine whether to recover the MCG path via the SCG path or the indirect path based on the third information set by the network.

[0190] Here, the third information may include at least one of the following (623) to (625).

[0191] (623) Second instruction information for instructing the remote UE whether to recover the MCG path via the SCG path or recover the MCG path via the indirect path.

[0192] Here, the second indication information may be 1-bit indication information set by the network, and is not limited here.

[0193] (624) A first threshold value which is a Uu link quality threshold value of the SCG path.

[0194] It should be noted that the link quality referred to in this application may be determined based on parameters such as reference signal received power (RSRP).

[0195] (625) A second threshold which is a PC5 link quality threshold of the indirect path.

[0196] Based on this, the step of the remote UE determining whether to recover the MCG path via the SCG path or the MCG path via the indirect path based on the Uu link quality of the SCG path and / or the PC5 link quality of the indirect path includes any one of (6251) to (6256).

[0197] (6251) Assuming that the first threshold is set by the network, if the Uu link quality of the SCG path meets the first threshold, the remote UE performs an operation to restore the MCG path via the SCG path.

[0198] (6252) Assuming that the first threshold is set by the network, if the Uu link quality of the SCG path does not meet the first threshold, the remote UE performs an operation to restore the MCG path via the indirect path.

[0199] (6253) Assuming that the second threshold is set by the network, if the PC5 link quality of the indirect path satisfies the second threshold, the remote UE performs an operation to restore the MCG path via the indirect path.

[0200] (6254) Assuming that the second threshold is set by the network, if the PC5 link quality of the indirect path does not meet the second threshold, the remote UE performs an operation to restore the MCG path via the SCG path.

[0201] (6255) Assuming that the first threshold and the second threshold are set by the network, if the Uu link quality of the SCG path meets the first threshold and the PC5 link quality of the indirect path does not meet the second threshold, the remote UE performs an operation to restore the MCG path via the SCG path.

[0202] (6256) Assuming that the first threshold and the second threshold are set by the network, if the Uu link quality of the SCG path does not meet the first threshold and the PC5 link quality of the indirect path meets the second threshold, the remote UE performs an operation to recover the MCG path via the indirect path.

[0203] (63) If the MCG path satisfies the MCG path failure condition, the SCG path does not satisfy the SCG path failure condition, and the indirect path satisfies the indirect path failure condition, the remote UE performs an operation to recover the MCG path via the SCG path, and / or the remote UE performs an operation to recover the indirect path via the SCG path.

[0204] It can be understood that the implementation process of the remote UE performing the operation of recovering the MCG path via the SCG path can refer to the relevant description in (62), and detailed description will be omitted here to avoid duplication.

[0205] Furthermore, when the remote UE performs an operation to recover the indirect path via the SCG path, the remote UE may determine a means for recovering the indirect path based on whether a 13th target base station corresponding to the SCG path supports an RRC procedure for recovering the indirect path via the SCG path, for example, as described in the following (631) and (632). In this embodiment, the remote UE may determine whether the 13th target base station supports an RRC procedure for recovering the indirect path via the SCG path based on whether a fifth timer is set. It can be understood that if the fifth timer is set, the remote UE determines that the 13th target base station supports the RRC procedure for recovering the indirect path via the SCG path, and if not, determines that the 13th target base station does not support the RRC procedure. Here, the fifth timer is for indicating a validity period of the RRC procedure for the remote UE to recover the indirect path via the SCG path.

[0206] (631) If the 13th target base station corresponding to the SCG path supports recovering the indirect path via the SCG path, the remote UE performs an operation of recovering the indirect path via the SCG path.

[0207] Optionally, the remote UE performing the process of restoring the indirect path via the SCG path may include the following steps (6311) to (6313), which are as follows:

[0208] (6311) The remote UE reports an indirect path failure message corresponding to the indirect path to the thirteenth target base station corresponding to the SCG path, and starts a fifth timer.

[0209] (6312) When the remote UE receives a sixth RRC reconfiguration message sent by a thirteenth target base station corresponding to the SCG path, the remote UE stops the fifth timer, and the sixth RRC reconfiguration message includes configuration information of at least one eighth relay UE, where the configuration information of the eighth relay UE is for instructing the remote UE to establish an indirect path with a fourteenth target base station to which the eighth relay UE belongs.

[0210] Alternatively, the configuration information of the 8th relay UE may be determined by the 13th target base station based on the relay UE information cached by the 13th target base station itself, or may be determined based on the relay UE information reported by the remote UE, and is not limited here.

[0211] It should be noted that the 13th target base station corresponding to the indirect path may be the same as or different from the 14th target base station to which the 8th relay UE belongs. Of course, if the 13th target base station is different from the 14th target base station, the configuration information of the 8th relay UE included in the 6th RRC reconfiguration message may be generated by the 14th target base station and then transmitted to the 13th target base station.

[0212] (6313) If the fifth timer times out, the remote UE performs the re-establishment operation and restores the indirect path.

[0213] (632) If the 13th target base station corresponding to the SCG path does not support restoring the indirect path via the SCG path, the remote UE performs the re-establishment operation to restore the indirect path.

[0214] It should be noted that the re-establishment operations described in (6313) and (632) can refer to the relevant description of the indirect path re-establishment in the above-mentioned method embodiments 200 and / or 300, and detailed description will be omitted here to avoid duplication.

[0215] Furthermore, according to different communication scenarios, the 13th target base station may be the same as or different from the first target base station, the second target base station, the third target base station, or the fourth target base station described in the above-mentioned method embodiments, and accordingly, the 14th target base station may be the same as or different from the above-mentioned first target base station, the second target base station, the third target base station, or the fourth target base station.

[0216] (64) If the MCG path satisfies the MCG path failure condition, the SCG path satisfies the SCG path failure condition, and the indirect path satisfies the indirect path failure condition, the remote UE performs the re-establishment operation and re-establishes at least one of the MCG path, the SCG path, and the indirect path.

[0217] Here, the process of implementing the re-establishment operation can refer to the related descriptions in the method embodiments 200 to 400 described above, and detailed descriptions will be omitted here to avoid duplication.

[0218] (65) If the indirect path satisfies the indirect path failure condition, the MCG path does not satisfy the MCG path failure condition, and the SCG path satisfies the SCG path failure condition, the remote UE performs an operation to recover the indirect path via the MCG path, and / or the remote UE performs an operation to recover the SCG path via the MCG path.

[0219] Here, when the remote UE performs an operation to recover the indirect path via the MCG path, the remote UE may determine a means for recovering the indirect path based on whether an eleventh target base station corresponding to the MCG path supports an RRC procedure for recovering the indirect path via the MCG path, for example, as described in the following (651) and (652). In this embodiment, the remote UE may determine whether the eleventh target base station supports an RRC procedure for recovering the indirect path via the MCG path based on whether a fourth timer is set. It can be understood that if the fourth timer is set, the remote UE determines that the eleventh target base station supports the RRC procedure for recovering the indirect path via the MCG path, and if not, determines that the eleventh target base station does not support the RRC procedure. Here, the fourth timer is for indicating a validity period of the RRC procedure for the remote UE to recover the indirect path via the MCG path.

[0220] (651) If the 11th target base station corresponding to the MCG path supports an RRC procedure for recovering the indirect path via the MCG path, the remote UE performs an operation for recovering the indirect path via the MCG path.

[0221] Here, the remote UE performing the process of recovering the indirect path via the MCG path may include the following steps (6511) to (6513), which are as follows:

[0222] (6511) The remote UE reports an indirect path failure message corresponding to the indirect path to the eleventh target base station corresponding to the MCG path, and starts a fourth timer.

[0223] (6512) When the remote UE receives a sixth RRC reconfiguration message sent by the eleventh target base station, the remote UE stops the fourth timer, and the sixth RRC reconfiguration message includes configuration information of at least one sixth relay UE, where the configuration information of the sixth relay UE is for instructing the remote UE to establish an indirect path with the twelfth target base station to which the sixth relay UE belongs.

[0224] Alternatively, the configuration information of the sixth relay UE may be determined by the eleventh target base station based on the relay UE information cached by the eleventh target base station itself, or may be determined based on the relay information reported by the remote UE, and is not limited here.

[0225] It should be noted that the 11th target base station corresponding to the indirect path may be the same as or different from the 12th target base station to which the 6th relay UE belongs. Of course, if the 11th target base station is different from the 12th target base station, the configuration information of the 6th relay UE included in the 6th RRC reconfiguration message may be generated by the 12th target base station and then transmitted to the 11th target base station.

[0226] (6513) If the fourth timer times out, the remote UE performs the re-establishment operation and re-establishes the indirect path.

[0227] (652) If the 11th target base station corresponding to the MCG path does not support an RRC procedure for recovering the indirect path via the MCG path, the remote UE performs the re-establishment operation and re-establishes the indirect path.

[0228] It should be noted that the process for implementing the re-establishment operations described in (6513) and (652) can refer to the relevant descriptions in the above-mentioned method embodiments 200 to 400, and detailed descriptions will be omitted here to avoid duplication.

[0229] In addition, the process by which the remote UE performs the operation of recovering the SCG path via the MCG path may refer to the relevant descriptions in method embodiments 200 to 400, and detailed descriptions will be omitted here to avoid duplication.

[0230] (66) If the indirect path satisfies the indirect path failure condition, the MCG path does not satisfy the MCG path failure condition, and the SCG path does not satisfy the SCG path failure condition, the remote UE performs an operation to recover the indirect path via the MCG path, or performs an operation to recover the indirect path via the SCG path.

[0231] It can be understood that the implementation process of the remote UE performing the operation of recovering the indirect path via the MCG path can be referred to the related explanations in (651) to (652) above, and detailed explanations will be omitted here to avoid duplication.

[0232] The implementation process of the remote UE recovering the indirect path via the SCG path can refer to the related explanations in (631) to (632) above, and detailed explanations will be omitted here to avoid duplication.

[0233] In addition, in a scene where the indirect path satisfies the indirect path failure condition, the MCG path does not satisfy the MCG path failure condition, and the SCG path does not satisfy the SCG path failure condition, the remote UE can determine the recovery means of the indirect path by means of random selection, network configuration, or protocol specification.

[0234] For example, assuming that the fourth information is set by the network, the remote UE can determine whether to recover the indirect path via the MCG path or the SCG path based on the fourth information.

[0235] Here, the fourth information may include at least one of the following (661) to (663).

[0236] (661) Third instruction information for instructing the remote UE whether to recover the indirect path via the MCG path or recover the indirect path via the SCG path.

[0237] For example, the third indication information may be 1-bit indication information set by the network.

[0238] (662) A third threshold which is a Uu link quality threshold of the SCG path.

[0239] (663) A fourth threshold which is a Uu link quality threshold of the MCG path.

[0240] Based on this, the step of the remote UE determining whether to recover the indirect path via the MCG path or the indirect path via the SCG path based on the Uu link quality of the SCG path and / or the Uu link quality of the MCG path may include any one of the following (6631) to (6636).

[0241] (6631) If the Uu link quality of the SCG path satisfies the third threshold, the remote UE performs an operation to restore the indirect path via the SCG path.

[0242] (6632) If the Uu link quality of the SCG path does not satisfy the third threshold condition, the remote UE performs an operation to restore the indirect path via the MCG path.

[0243] (6633) If the Uu link quality of the MCG path satisfies the fourth threshold, the remote UE performs an operation to restore the indirect path via the MCG path.

[0244] (6634) If the Uu link quality of the MCG path does not meet the fourth threshold, the remote UE performs an operation to restore the indirect path via the SCG path.

[0245] (6635) If the Uu link quality of the SCG path meets the third threshold and the Uu link quality of the MCG path does not meet the fourth threshold, the remote UE performs an operation to restore the indirect path via the SCG path.

[0246] (6636) If the Uu link quality of the SCG path does not meet the third threshold and the Uu link quality of the MCG path meets the fourth threshold, the remote UE performs an operation to restore the indirect path via the MCG path.

[0247] (67) If the indirect path satisfies the indirect path failure condition, the MCG path satisfies the MCG path failure condition, and the SCG path does not satisfy the SCG path failure condition, the remote UE performs an operation to recover the MCG path via the SCG path, and / or the remote UE performs an operation to recover the indirect path via the SCG path.

[0248] Here, the implementation process in which the remote UE performs the operation of recovering the MCG path via the SCG path can refer to the related explanation in (62), and the implementation process in which the remote UE performs the operation of recovering the indirect path via the SCG path can refer to the related explanation in (631) to (632), and detailed explanations are omitted here to avoid duplication.

[0249] In this embodiment, when the direct path of the remote UE includes an MCG path and an SCG path, the recovery method of the indirect path can be determined based on the second information, which can effectively shorten the path recovery time and improve the RRC robustness of the remote UE.

[0250] It should be noted that the execution entity of the communication path setting method provided in the embodiments of the present application may be a communication path setting device, or may be a control module for executing the communication path setting method within the communication path setting device. In the embodiments of the present application, the communication path setting device provided in the embodiments of the present application will be described taking as an example a case in which the communication path setting device executes the communication path setting method.

[0251] FIG. 6 shows a structural schematic diagram of a communication path setting device 600 provided in an exemplary embodiment of the present application, the device 600 including an operation module 610 for performing a first operation or a second operation on at least one of a direct path and an indirect path, where the remote UE communicates with a network side via the direct path and the indirect path, the first operation includes an establishment operation, a re-establishment operation, or a first recovery operation, and the second operation includes a second recovery operation, where the second recovery operation includes an operation of the remote UE recovering the indirect path via the direct path, or an operation of the remote UE recovering the direct path via the indirect path.

[0252] Optionally, the device 600 further comprises a setting module for setting the first operation and / or the second operation.

[0253] Optionally, the step of the operation module 610 performing a first operation or a second operation on at least one of a direct path and an indirect path includes a step of performing a first operation on at least one of a direct path and an indirect path when the operation module 610 determines at least one first cell and / or at least one first relay UE, wherein the establishment operation includes an operation of the operation module 610 establishing the direct path based on a radio resource control (RRC) connection establishment procedure initiated by a target cell, and / or an operation of the operation module 610 establishing the indirect path based on an RRC connection establishment procedure initiated by a target relay UE, and the re-establishment operation includes an operation of the operation module 610 establishing the previous indirect path based on an RRC connection re-establishment procedure initiated by a target cell. The first recovery operation includes an operation of the operation module 610 recovering the direct path based on an RRC connection re-establishment procedure initiated by a target relay UE, and / or an operation of the operation module 610 recovering the indirect path based on an RRC connection recovery procedure initiated by a target cell, and / or an operation of the operation module 610 recovering the indirect path based on an RRC procedure initiated by a target relay UE, wherein the at least one first cell is a cell that satisfies a cell selection or reselection condition, the at least one first relay UE is a relay UE that satisfies a relay selection or reselection condition, the target cell is one of the at least one first cells, and the target relay UE is one of the at least one first relay UE.

[0254] Optionally, when the action module 610 performs the first action on the direct path based on the target cell, the method further comprises: the operation module 610 receiving a first RRC reconfiguration message or a first RRC recovery message sent by a first target base station, where the first RRC reconfiguration message or the first RRC recovery message includes at least configuration information of a second relay UE, and the first target base station is a base station to which the target cell belongs; The operation module 610 sends a first RRC reconfiguration complete message or a first RRC recovery complete message to the first target base station via the second relay UE according to the configuration information of the second relay UE; The method further includes the step of the operation module 610 establishing the indirect path with the first target base station via the second relay UE if the first RRC reconfiguration complete message or the first RRC recovery complete message is successfully sent to the first target base station.

[0255] Optionally, the operation module 610 is further used for reporting related information of at least one third relay UE to the first target base station, where the at least one third relay UE includes at least one of at least a portion of the at least one first relay UE and at least one fourth relay UE that satisfies a first measurement reporting event determined by the operation module 610 based on the measurement configuration of the first target base station.

[0256] Optionally, the related information of the at least one third relay UE includes at least one of identification information of the at least one third relay UE and quality information of a PC5 path between the remote UE and the at least one third relay UE.

[0257] Alternatively, when the operation module 610 performs the first operation for the direct path based on the target relay UE, the operation module 610 receives a second RRC reconfiguration message or a second RRC recovery message sent by a second target base station, the second RRC reconfiguration message or the second RRC recovery message including at least configuration information of a second cell, and the second target base station is a base station to which the target relay UE belongs. Based on the configuration information of the second cell, the operation module 610 sends a second RRC reconfiguration complete message or a second RRC recovery complete message to the second target base station via the second cell. If the transmission of the second RRC reconfiguration complete message or the second RRC recovery complete message to the second target base station is successful, the operation module 610 establishes the direct path with the second target base station.

[0258] Optionally, the operation module 610 is further used to report related information of at least one third cell to the second target base station, where the at least one third cell includes at least one of at least a portion of the at least one first cell and at least one fourth cell that satisfies a second measurement reporting event determined by the operation module 610 based on the measurement setting of the second target base station.

[0259] Optionally, the related information of the at least one third cell includes at least one of identification information of the at least one third cell and quality information of a Uu path between the remote UE and the at least one third cell.

[0260] Alternatively, if the direct path is a master cell group MCG path, and if the first RRC reconfiguration message or the first RRC recovery message further includes configuration information of a third target base station, the operation module 610 establishes a secondary cell group SCG path based on the configuration information of the third target base station. If the second RRC reconfiguration message or the second RRC recovery message further includes configuration information of a fourth target base station, the operation module 610 establishes an SCG path according to the configuration information of the fourth target base station.

[0261] Optionally, the step of the operation module 610 performing a first operation or a second operation on at least one of a direct path and an indirect path includes the step of the operation module 610 determining first information; and the step of the operation module 610 performing the first operation or the second operation on at least one of the direct path and the indirect path based on the first information, wherein the first information includes at least one of whether the direct path satisfies a direct path failure condition and whether the indirect path satisfies an indirect path failure condition.

[0262] Alternatively, the direct path failure condition includes at least one of: a Uu radio link failure occurs in the remote UE; and a Uu radio link recovery failure occurs in the remote UE; and / or the indirect path failure condition includes at least one of: a PC5 radio link failure occurs between the remote UE and a relay UE; a PC5 radio link release occurs between the remote UE and a relay UE; and the remote UE receives first indication information from a relay UE, wherein the first indication information is sent by the relay UE when a first condition is satisfied, and the first condition includes at least one of: a Uu radio link failure occurs in the relay UE; a Uu radio link recovery failure occurs in the relay UE; a Uu switching occurs in the relay UE; and a Uu switching failure occurs in the relay UE.

[0263] Optionally, the step of the operation module 610 performing the first operation or the second operation on at least one of the direct path and the indirect path based on the first information includes any one of the following steps: performing an operation to restore the direct path via the indirect path when the direct path satisfies the direct path failure condition and the indirect path does not satisfy the indirect path failure condition; performing an operation to restore the indirect path via the direct path when the direct path does not satisfy the direct path failure condition and the indirect path satisfies the indirect path failure condition; and performing the re-establishment operation when the direct path satisfies the direct path failure condition and the indirect path satisfies the indirect path failure condition.

[0264] Optionally, the step of the operation module 610 recovering the direct path via the indirect path includes the step of the operation module 610 performing an operation of recovering the direct path via the indirect path if a fifth target base station corresponding to the indirect path supports an RRC procedure for recovering the direct path via the indirect path, and the step of the operation module 610 performing the re-establishment operation if the fifth target base station corresponding to the indirect path does not support an RRC procedure for recovering the direct path via the indirect path.

[0265] Alternatively, when a fifth target base station corresponding to the indirect path supports an RRC procedure for recovering the direct path via the indirect path, the step of the operation module 610 performing an operation for recovering the direct path via the indirect path includes the step of the operation module 610 reporting a direct path failure message corresponding to the direct path to the fifth target base station corresponding to the indirect path and starting a first timer, the first timer being for indicating an effective period of the RRC procedure for recovering the direct path via the indirect path; and the step of stopping the first timer when the operation module 610 receives a third RRC reconfiguration message sent by the fifth target base station, the third RRC reconfiguration message including configuration information of at least one fifth cell, and the configuration information of the fifth cell being for instructing the remote UE to establish the direct path with a sixth target base station to which the fifth cell belongs.

[0266] Optionally, if the fifth target base station corresponding to the indirect path supports an RRC procedure for recovering the direct path via the indirect path, the step of the operation module 610 performing an operation for recovering the direct path via the indirect path further includes the step of the operation module 610 performing the re-establishment operation when the first timer times out.

[0267] Alternatively, if the fifth target base station corresponding to the indirect path is different from the sixth target base station to which the fifth cell belongs, the configuration information of the fifth cell included in the third RRC reconfiguration message is generated by the sixth target base station and then transmitted to the fifth target base station.

[0268] Optionally, the step of the operation module 610 performing an operation of recovering the indirect path via the direct path includes the step of the operation module 610 performing an operation of recovering the indirect path via the direct path if a seventh target base station corresponding to the direct path supports an RRC procedure of recovering the indirect path via the direct path, and the step of the operation module 610 performing the re-establishment operation if the seventh target base station corresponding to the direct path does not support an RRC procedure of recovering the indirect path via the direct path.

[0269] Alternatively, when the seventh target base station corresponding to the direct path supports an RRC procedure for recovering the indirect path via the direct path, the step of the operation module 610 performing the operation of recovering the indirect path via the direct path includes the step of the operation module 610 reporting an indirect path failure message corresponding to the indirect path to the seventh target base station corresponding to the direct path and starting a second timer, wherein the second timer is for indicating an effective period of the RRC procedure for recovering the indirect path via the direct path; and the step of stopping the second timer when the operation module 610 receives a fourth RRC reconfiguration message sent by the seventh target base station, wherein the fourth RRC reconfiguration message includes configuration information of at least one fifth relay UE, and the configuration information of the fifth relay UE is for instructing the remote UE to establish the indirect path with an eighth target base station to which the fifth relay UE belongs.

[0270] Optionally, if the seventh target base station corresponding to the direct path supports an RRC procedure for recovering the indirect path via the direct path, the step of the operation module 610 performing an operation for recovering the indirect path via the direct path further includes the step of the operation module 610 performing the re-establishment operation when the second timer times out.

[0271] Alternatively, if the seventh target base station corresponding to the direct path is different from the eighth target base station to which the fifth relay UE belongs, the fourth RRC reconfiguration message is generated by the eighth target base station and then transmitted to the seventh target base station.

[0272] Optionally, the direct path includes an MCG path and an SCG path, and the step of the operation module 610 performing a first operation or a second operation on at least one of the direct path and the indirect path includes the steps of determining second information, and performing the first operation or the second operation on at least one of the MCG path, the SCG path, and the indirect path based on the second information, wherein the second operation further includes an operation of recovering the SCG path via the MCG path or an operation of recovering the MCG path via the SCG path, and the second information includes at least one of whether the MCG path satisfies an MCG path failure condition, whether the SCG path satisfies an SCG path failure condition, and whether the indirect path satisfies an indirect path failure condition.

[0273] Optionally, the MCG path failure condition includes at least one of a Uu radio link failure occurring in the remote UE and a Uu radio link recovery failure occurring in the remote UE, and / or the SCG path failure condition includes an SCG failure occurring in the remote UE.

[0274] Alternatively, the step of the operation module 610 performing a first operation or a second operation on at least one of a direct path and an indirect path based on the second information includes the step of the operation module 610 performing an operation of recovering the MCG path via the indirect path and / or performing an operation of recovering the SCG path via the indirect path when the MCG path satisfies the MCG path failure condition, the SCG path satisfies the SCG path failure condition, and the indirect path does not satisfy the indirect path failure condition; the step of the operation module 610 performing an operation of recovering the MCG path via the SCG path or performing an operation of recovering the MCG path via the indirect path when the MCG path satisfies the MCG path failure condition, the SCG path does not satisfy the SCG path failure condition, and the indirect path does not satisfy the indirect path failure condition; a step of the operation module 610 performing an operation of recovering the MCG path via the SCG path and / or performing an operation of recovering the indirect path via the SCG path when the MCG path satisfies the MCG path failure condition, the SCG path satisfies the SCG path failure condition, and the indirect path satisfies the indirect path failure condition, the operation module 610 performing the re-establishment operation; and if the indirect path satisfies the indirect path failure condition, the MCG path does not satisfy the MCG path failure condition, and the SCG path satisfies the SCG path failure condition, the operation module 610 performs an operation to restore the indirect path via the MCG path and / or performs an operation to restore the SCG path via the MCG path; and if the indirect path satisfies the indirect path failure condition, the MCG path does not satisfy the MCG path failure condition, and the SCG path does not satisfy the SCG path failure condition, the operation module 610:performing an operation to recover the indirect path via the MCG path, or performing an operation to recover the indirect path via the SCG path; and, when the indirect path satisfies the indirect path failure condition, the MCG path satisfies the MCG path failure condition, and the SCG path does not satisfy the SCG path failure condition, the operation module 610 performs an operation to recover the MCG path via the SCG path and / or performs an operation to recover the indirect path via the SCG path.

[0275] Optionally, if the MCG path satisfies the MCG path failure condition, the SCG path does not satisfy the SCG path failure condition, and the indirect path does not satisfy the indirect path failure condition, the operation module 610 determines a recovery measure for the MCG path based on one of random selection, network configuration, and protocol specification.

[0276] Optionally, the step of the operation module 610 determining a recovery means for the MCG path based on the network setting includes a step of the operation module 610 determining whether to recover the MCG path via the SCG path or the indirect path based on third information set by the network, wherein the third information includes at least one of second instruction information for instructing the remote UE whether to recover the MCG path via the SCG path or the indirect path, a first threshold which is a Uu link quality threshold of the SCG path, and a second threshold which is a PC5 link quality threshold of the indirect path.

[0277] Optionally, the step of the operation module 610 determining whether to recover the MCG path via the SCG path or recover the MCG path via the indirect path based on the Uu link quality of the SCG path and / or the PC5 link quality of the indirect path includes the steps of: if the Uu link quality of the SCG path satisfies the first threshold, the operation module 610 performing an operation to recover the MCG path via the SCG path; if the Uu link quality of the SCG path does not satisfy the first threshold, the operation module 610 performing an operation to recover the MCG path via the indirect path; and if the PC5 link quality of the indirect path satisfies the second threshold, the operation module 610 performing an operation to recover the MCG path via the indirect path. the operation module 610 performs an operation to recover the MCG path via the SCG path if the PC5 link quality of the indirect path does not satisfy the second threshold; the operation module 610 performs an operation to recover the MCG path via the SCG path if the Uu link quality of the SCG path satisfies the first threshold and the PC5 link quality of the indirect path does not satisfy the second threshold; and the operation module 610 performs an operation to recover the MCG path via the indirect path if the Uu link quality of the SCG path does not satisfy the first threshold and the PC5 link quality of the indirect path satisfies the second threshold.

[0278] Optionally, if the indirect path satisfies the indirect path failure condition, the MCG path does not satisfy the MCG path failure condition, and the SCG path does not satisfy the SCG path failure condition, the operation module 610 determines a recovery means for the indirect path based on at least one of random selection, network configuration, and protocol specification.

[0279] Optionally, the step of the operation module 610 determining a restoration means for the indirect path based on the network setting includes a step of the operation module 610 determining whether to restore the indirect path via the MCG path or the SCG path based on fourth information set by the network, wherein the fourth information includes at least one of third instruction information for instructing the remote UE whether to restore the indirect path via the MCG path or the SCG path, a third threshold which is a Uu link quality threshold of the SCG path, and a fourth threshold which is a Uu link quality threshold of the MCG path.

[0280] Optionally, the step of the operation module 610 determining whether to restore the indirect path via the MCG path or the indirect path via the SCG path based on the Uu link quality of the SCG path and / or the Uu link quality of the MCG path includes the steps of: if the Uu link quality of the SCG path satisfies the third threshold, the operation module 610 performing an operation to restore the indirect path via the SCG path; if the Uu link quality of the SCG path does not satisfy the third threshold condition, the operation module 610 performing an operation to restore the indirect path via the MCG path; and if the Uu link quality of the MCG path satisfies the fourth threshold, the operation module 610 performing an operation to restore the indirect path via the MCG path. the remote UE performing an operation to restore the indirect path via the SCG path if the Uu link quality of the MCG path does not satisfy the fourth threshold; the operation module 610 performing an operation to restore the indirect path via the SCG path if the Uu link quality of the SCG path satisfies the third threshold and the Uu link quality of the MCG path does not satisfy the fourth threshold; and the operation module 610 performing an operation to restore the indirect path via the MCG path if the Uu link quality of the SCG path does not satisfy the third threshold and the Uu link quality of the MCG path satisfies the fourth threshold.

[0281] Optionally, the step of the operation module 610 performing an operation of recovering the MCG path via the indirect path includes the step of the operation module 610 performing an operation of recovering the MCG path via the indirect path if a ninth target base station corresponding to the indirect path supports an RRC procedure of recovering the MCG path via the indirect path, and the step of the operation module 610 performing the re-establishment operation if the ninth target base station corresponding to the indirect path does not support an RRC procedure of recovering the MCG path via the indirect path.

[0282] Alternatively, when a ninth target base station corresponding to the indirect path supports an RRC procedure for recovering the MCG path via the indirect path, the step of the operation module 610 performing an operation of recovering the MCG path via the indirect path includes the step of the operation module 610 reporting an MCG direct connection failure message corresponding to the MCG path to the ninth target base station corresponding to the indirect path and starting a third timer, wherein the third timer is for indicating an effective period of the RRC procedure for recovering the MCG path via the indirect path; and the step of stopping the third timer when the operation module 610 receives a fifth RRC reconfiguration message sent by the ninth target base station, wherein the fifth RRC reconfiguration message includes configuration information of at least one sixth cell, and the configuration information of the sixth cell is for instructing the remote UE to establish the MCG path with a tenth target base station to which the sixth cell belongs.

[0283] Optionally, the step of the operation module 610 performing an operation to recover the indirect path via the MCG path includes the step of the operation module 610 performing an operation to recover the indirect path via the MCG path if an 11th target base station corresponding to the MCG path supports an RRC procedure to recover the indirect path via the MCG path, and the step of the operation module 610 performing the re-establishment operation if the 11th target base station corresponding to the MCG path does not support an RRC procedure to recover the indirect path via the MCG path.

[0284] Alternatively, when an 11th target base station corresponding to the MCG path supports an RRC procedure for recovering the indirect path via the MCG path, the step of the operation module 610 performing an operation of recovering the indirect path via the MCG path includes the step of the operation module 610 reporting an indirect path failure message corresponding to the indirect path to an 11th target base station corresponding to the MCG path and starting a fourth timer, wherein the fourth timer is for indicating an effective period of the RRC procedure for recovering the indirect path via the MCG path; and the step of stopping the fourth timer when the operation module 610 receives a sixth RRC reconfiguration message sent by the 11th target base station, wherein the sixth RRC reconfiguration message includes configuration information of at least one sixth relay UE, and the configuration information of the sixth relay UE is for instructing the remote UE to establish an indirect path with a 12th target base station to which the sixth relay UE belongs.

[0285] Optionally, the step of the operation module 610 recovering the indirect path via the SCG path includes the step of the operation module 610 performing an operation of recovering the indirect path via the SCG path if a 13th target base station corresponding to the SCG path supports recovering the indirect path via the SCG path, and the step of the operation module 610 performing the re-establishment operation if a 13th target base station corresponding to the SCG path does not support recovering the indirect path via the SCG path.

[0286] Alternatively, when the 13th target base station corresponding to the SCG path supports recovering the indirect path via the SCG path, the step of the operation module 610 performing the operation of recovering the indirect path via the SCG path includes the step of the operation module 610 reporting an indirect path failure message corresponding to the indirect path to the 13th target base station corresponding to the SCG path and starting a fifth timer, the fifth timer being for indicating an effective period of an RRC procedure for recovering the indirect path via the SCG path; and the step of stopping the fifth timer when the operation module 610 receives a sixth RRC reconfiguration message sent by the 13th target base station corresponding to the SCG path, the sixth RRC reconfiguration message including configuration information of at least one eighth relay UE, and the configuration information of the eighth relay UE being for instructing the remote UE to establish an indirect path with the 14th target base station to which the eighth relay UE belongs.

[0287] In the embodiment of the present application, the communication path setting device 600 may be a device, a device having an operating system, or electronic equipment, or may be a component, integrated circuit, or chip within a terminal. The device or electronic equipment may be a portable terminal or a non-portable terminal. For example, the portable terminal may include, but is not limited to, the types of terminals 11 listed above, and the non-portable terminal may be, for example, a server, a network attached storage (NAS), a personal computer (PC), a television (TV), an automated teller machine (ATM), a kiosk, etc., and is not specifically limited in the embodiment of the present application.

[0288] The communication path setting device 600 provided in the embodiment of the present application can implement each process implemented in the method embodiment of Figures 2 to 5, and can achieve similar technical effects, and detailed descriptions thereof will be omitted here to avoid duplication.

[0289] The embodiments of the present application further provide a terminal, which includes a processor and a communication interface, and the communication interface and the processor are coupled together, and the processor executes programs or commands to implement the steps of the methods described in methods 200 to 500. The embodiments of the terminal correspond to the above-mentioned terminal-side method embodiments, and the implementation processes and realization modes of the above-mentioned method embodiments can all be applied to the embodiments of the terminal, and similar technical effects can be achieved. Specifically, Figure 7 is a schematic diagram of the hardware structure of a terminal implementing the embodiments of the present application.

[0290] The terminal 700 includes at least some components such as, but not limited to, a radio frequency unit 701, a network equipment module 702, an audio output unit 703, an input unit 704, a sensor 705, a display unit 706, a user input unit 707, an interface unit 708, a memory 709, and a processor 710.

[0291] Those skilled in the art will understand that the terminal 700 may further include a power source (e.g., a battery) for powering each component, and the power source may be logically connected to the processor 710 through a power management system, which may further realize functions such as charge / discharge management and power consumption management. The terminal structure shown in Figure 7 is not intended to limit the terminal, and the terminal may include more or fewer components than those shown, or a combination of some components, or a different component arrangement, and detailed descriptions thereof will be omitted here.

[0292] It should be understood that in the embodiment of the present application, the input unit 704 may include a graphics processing unit (GPU) 7041 that processes image data of still images or videos captured by an image capture device (e.g., a camera) in a video capture mode or an image capture mode, and a microphone 7042. The display unit 706 may include a display panel 7061, which may be arranged in the form of a liquid crystal display, an organic light emitting diode, or the like. The user input unit 707 includes a touch panel 7071 and other input devices 7072. The touch panel 7071 is also called a touch screen. The touch panel 7071 may include two parts: a touch detection device and a touch controller. The other input devices 7072 may include, but are not limited to, a physical keyboard, function buttons (e.g., volume control buttons, switch buttons, etc.), a trackball, a mouse, and a control lever, and detailed description thereof will be omitted here.

[0293] In the embodiment of the present application, the high frequency unit 701 receives downlink data from the network device, processes the data in the processor 710, and transmits uplink data to the network side device. Typically, the high frequency unit 701 includes, but is not limited to, an antenna, at least one amplifier, a receiver / transmitter, a coupler, a low-noise amplifier, a duplexer, etc.

[0294] The memory 709 can be used to store software programs or commands and various data. The memory 709 may primarily include a program or command storage area capable of storing an operating system, an application or command required for at least one function (e.g., audio playback function, image playback function, etc.), and a data storage area. The memory 709 may also include high-speed random access memory and may further include nonvolatile memory. Here, the nonvolatile memory may be read-only memory (ROM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), or flash memory, such as at least one disk storage device, flash memory, or other nonvolatile solid-state storage device.

[0295] The processor 710 may include one or more processing units. Optionally, the processor 710 may integrate an application processor that mainly processes an operating system, a user interface, and applications or commands, and a modem processor, such as a baseband processor that mainly processes wireless communications. It is understood that the modem processor may not be integrated into the processor 710.

[0296] Here, the processor 710 is used to perform a first operation or a second operation on at least one of a direct path and an indirect path, and the network module 702 is used to communicate with a network side via the direct path and the indirect path, where the first operation includes an establishment operation, a re-establishment operation, or a first recovery operation, and the second operation includes a second recovery operation, where the second recovery operation includes an operation of the remote UE recovering the indirect path via the direct path, or an operation of the remote UE recovering the direct path via the indirect path.

[0297] Optionally, the step of the processor 710 performing the first operation or the second operation on at least one of the direct path and the indirect path includes, if the processor 710 determines at least one first cell and / or at least one first relay UE, performing the first operation on at least one of the direct path and the indirect path, wherein the establishing operation includes an operation of establishing the direct path based on a radio resource control (RRC) connection establishment procedure initiated by a target cell and / or an operation of establishing the indirect path based on an RRC connection establishment procedure initiated by a target relay UE, and the re-establishment operation includes an operation of re-establishing the direct path based on an RRC connection re-establishment procedure initiated by a target cell. and / or an operation of re-establishing the indirect path based on an RRC connection re-establishment procedure initiated by a target relay UE, and the first recovery operation includes an operation of recovering the direct path based on an RRC connection recovery procedure initiated by a target cell and / or an operation of recovering the indirect path based on an RRC procedure initiated by a target relay UE, wherein the at least one first cell is a cell that satisfies a cell selection or reselection condition, the at least one first relay UE is a relay UE that satisfies a relay selection or reselection condition, the target cell is one of the at least one first cells, and the target relay UE is one of the at least one first relay UE.

[0298] Alternatively, when the processor 710 performs the first operation for the direct path based on the target cell, the processor 710 receives a first RRC reconfiguration message or a first RRC recovery message sent by a first target base station, the first RRC reconfiguration message or the first RRC recovery message including at least configuration information of a second relay UE, and the first target base station is a base station to which the target cell belongs. Based on the configuration information of the second relay UE, the processor 710 sends a first RRC reconfiguration complete message or a first RRC recovery complete message to the first target base station via the second relay UE. If the transmission of the first RRC reconfiguration complete message or the first RRC recovery complete message to the first target base station is successful, the processor 710 establishes the indirect path with the first target base station via the second relay UE.

[0299] Optionally, before the step of the remote UE receiving a first RRC reconfiguration message or a first RRC recovery message sent by a first target base station, the method further includes a step of the processor 710 reporting related information of at least one third relay UE to the first target base station, where the at least one third relay UE includes at least one of at least a portion of the at least one first relay UE and at least one fourth relay UE that satisfies a first measurement reporting event determined based on the measurement configuration of the first target base station.

[0300] Optionally, the related information of the at least one third relay UE includes at least one of identification information of the at least one third relay UE and quality information of a PC5 path between the remote UE and the at least one third relay UE.

[0301] Alternatively, when the processor 710 performs the first operation for the direct path based on the target relay UE, the radio frequency unit 701 receives a second RRC reconfiguration message or a second RRC recovery message sent by a second target base station, the second RRC reconfiguration message or the second RRC recovery message includes at least configuration information of a second cell, and the second target base station is a base station to which the target relay UE belongs. Based on the configuration information of the second cell, the processor 710 sends a second RRC reconfiguration complete message or a second RRC recovery complete message to the second target base station via the second cell, and if the transmission of the second RRC reconfiguration complete message or the second RRC recovery complete message to the second target base station is successful, the processor 710 establishes the direct path with the second target base station.

[0302] Optionally, before the processor 710 receives a second RRC reconfiguration message or a second RRC recovery message sent by the second target base station, the method further includes a step in which the remote UE reports related information of at least one third cell to the second target base station, where the at least one third cell includes at least one of at least a portion of the at least one first cell and at least one fourth cell that satisfies a second measurement reporting event determined by the processor 710 based on the measurement configuration of the second target base station.

[0303] Optionally, the related information of the at least one third cell includes at least one of identification information of the at least one third cell and quality information of a Uu path between the remote UE and the at least one third cell.

[0304] Alternatively, if the direct path is a master cell group MCG path, and if the first RRC reconfiguration message or the first RRC recovery message further includes configuration information of a third target base station, the processor 710 establishes a secondary cell group SCG path based on the configuration information of the third target base station. If the second RRC reconfiguration message or the second RRC recovery message further includes configuration information of a fourth target base station, the processor 710 establishes an SCG path based on the configuration information of the fourth target base station.

[0305] Optionally, the step of the processor 710 performing a first operation or a second operation on at least one of the direct path and the indirect path includes the steps of determining first information and performing the first operation or the second operation on at least one of the direct path and the indirect path based on the first information, wherein the first information includes at least one of whether the direct path satisfies a direct path failure condition and whether the indirect path satisfies an indirect path failure condition.

[0306] Alternatively, the direct path failure condition includes at least one of: a Uu radio link failure occurs in the remote UE; and a Uu radio link recovery failure occurs in the remote UE; and / or the indirect path failure condition includes at least one of: a PC5 radio link failure occurs between the remote UE and a relay UE; a PC5 radio link release occurs between the remote UE and a relay UE; and the remote UE receives first indication information from a relay UE, wherein the first indication information is sent by the relay UE when a first condition is satisfied, and the first condition includes at least one of: a Uu radio link failure occurs in the relay UE; a Uu radio link recovery failure occurs in the relay UE; a Uu switching occurs in the relay UE; and a Uu switching failure occurs in the relay UE.

[0307] Selectively, the step of the processor 710 performing the first operation or the second operation on at least one of the direct path and the indirect path based on the first information includes any one of the following steps: when the direct path satisfies the direct path failure condition and the indirect path does not satisfy the indirect path failure condition, the processor 710 performing an operation to restore the direct path via the indirect path; when the direct path does not satisfy the direct path failure condition and the indirect path satisfies the indirect path failure condition, the processor 710 performing an operation to restore the indirect path via the direct path; and when the direct path satisfies the direct path failure condition and the indirect path satisfies the indirect path failure condition, the processor 710 performing the re-establishment operation.

[0308] Optionally, the step of the processor 710 recovering the direct path via the indirect path includes the step of the processor 710 performing an operation of recovering the direct path via the indirect path if a fifth target base station corresponding to the indirect path supports an RRC procedure for recovering the direct path via the indirect path, and the step of the processor 710 performing the re-establishment operation if the fifth target base station corresponding to the indirect path does not support an RRC procedure for recovering the direct path via the indirect path.

[0309] Optionally, when a fifth target base station corresponding to the indirect path supports an RRC procedure for recovering the direct path via the indirect path, the step of the processor 710 performing an operation of recovering the direct path via the indirect path includes the step of the processor 710 reporting a direct path failure message corresponding to the direct path to the fifth target base station corresponding to the indirect path and starting a first timer, the first timer being for indicating an effective period of the RRC procedure for recovering the direct path via the indirect path; and the step of stopping the first timer when the processor 710 receives a third RRC reconfiguration message sent by the fifth target base station, the third RRC reconfiguration message including configuration information of at least one fifth cell, and the configuration information of the fifth cell being for instructing the remote UE to establish the direct path with a sixth target base station to which the fifth cell belongs.

[0310] Optionally, if the fifth target base station corresponding to the indirect path supports an RRC procedure for recovering the direct path via the indirect path, the step of the processor 710 performing an operation for recovering the direct path via the indirect path further includes the step of the processor 710 performing the re-establishment operation when the first timer times out.

[0311] Alternatively, if the fifth target base station corresponding to the indirect path is different from the sixth target base station to which the fifth cell belongs, the configuration information of the fifth cell included in the third RRC reconfiguration message is generated by the sixth target base station and then transmitted to the fifth target base station.

[0312] Optionally, the step of the processor 710 performing an operation of recovering the indirect path via the direct path includes the step of the processor 710 performing an operation of recovering the indirect path via the direct path if a seventh target base station corresponding to the direct path supports an RRC procedure of recovering the indirect path via the direct path, and the step of the processor 710 performing the re-establishment operation if the seventh target base station corresponding to the direct path does not support an RRC procedure of recovering the indirect path via the direct path.

[0313] Alternatively, when the seventh target base station corresponding to the direct path supports an RRC procedure for recovering the indirect path via the direct path, the step of the processor 710 performing an operation of recovering the indirect path via the direct path includes the step of the processor 710 reporting an indirect path failure message corresponding to the indirect path to the seventh target base station corresponding to the direct path and starting a second timer, the second timer being for indicating an effective period of the RRC procedure for recovering the indirect path via the direct path; and the step of stopping the second timer when the processor 710 receives a fourth RRC reconfiguration message sent by the seventh target base station, the fourth RRC reconfiguration message including configuration information of at least one fifth relay UE, and the configuration information of the fifth relay UE being for instructing the remote UE to establish the indirect path with an eighth target base station to which the fifth relay UE belongs.

[0314] Optionally, if the seventh target base station corresponding to the direct path supports an RRC procedure for recovering the indirect path via the direct path, the step of the processor 710 performing an operation for recovering the indirect path via the direct path further includes the step of the processor 710 performing the re-establishment operation when the second timer times out.

[0315] Alternatively, if the seventh target base station corresponding to the direct path is different from the eighth target base station to which the fifth relay UE belongs, the fourth RRC reconfiguration message is generated by the eighth target base station and then transmitted to the seventh target base station.

[0316] Optionally, the direct path includes an MCG path and an SCG path, and the step of the processor 710 performing the first operation or the second operation on at least one of the direct path and the indirect path includes the steps of determining second information, and performing the first operation or the second operation on at least one of the MCG path, the SCG path, and the indirect path based on the second information, wherein the second operation further includes an operation of recovering the SCG path via the MCG path or an operation of recovering the MCG path via the SCG path, and the second information includes at least one of whether the MCG path satisfies an MCG path failure condition, whether the SCG path satisfies an SCG path failure condition, and whether the indirect path satisfies an indirect path failure condition.

[0317] Optionally, the MCG path failure condition includes at least one of a Uu radio link failure occurring in the remote UE and a Uu radio link recovery failure occurring in the remote UE, and / or the SCG path failure condition includes an SCG failure occurring in the remote UE.

[0318] Alternatively, the step of the processor 710 executing a first operation or a second operation on at least one of a direct path and an indirect path based on the second information may include a step of the processor 710 executing an operation of recovering the MCG path via the indirect path and / or an operation of recovering the SCG path via the indirect path when the MCG path satisfies the MCG path failure condition, the SCG path satisfies the SCG path failure condition, and the indirect path does not satisfy the indirect path failure condition; a step of the processor 710 executing an operation of recovering the MCG path via the SCG path or an operation of recovering the MCG path via the indirect path when the MCG path satisfies the MCG path failure condition, the SCG path does not satisfy the SCG path failure condition, and the indirect path does not satisfy the indirect path failure condition; a step of the processor 710 performing an operation of recovering the MCG path via the SCG path when a path satisfies the indirect path failure condition, and / or performing an operation of recovering the indirect path via the SCG path; a step of the processor 710 performing the re-establishment operation when the MCG path satisfies the MCG path failure condition, the SCG path satisfies the SCG path failure condition, and the indirect path satisfies the indirect path failure condition; a step of the processor 710 performing the operation of recovering the indirect path via the MCG path when the indirect path satisfies the indirect path failure condition, the MCG path does not satisfy the MCG path failure condition, and the SCG path satisfies the SCG path failure condition, and / or performing an operation of recovering the SCG path via the MCG path; and a step of the processor 710 performing the operation of recovering the indirect path via the MCG path when the indirect path satisfies the indirect path failure condition, the MCG path does not satisfy the MCG path failure condition, and the SCG path does not satisfy the SCG path failure condition.and, when the indirect path satisfies the indirect path failure condition, the MCG path satisfies the MCG path failure condition, and the SCG path does not satisfy the SCG path failure condition, the processor 710 performs an operation to recover the MCG path via the SCG path and / or performs an operation to recover the indirect path via the SCG path.

[0319] Optionally, if the MCG path satisfies the MCG path failure condition, the SCG path does not satisfy the SCG path failure condition, and the indirect path does not satisfy the indirect path failure condition, the processor 710 determines a recovery means for the MCG path based on one of random selection, network configuration, and protocol specification.

[0320] Optionally, the step of the processor 710 determining a recovery means for the MCG path based on the network setting includes a step of the processor 710 determining whether to recover the MCG path via the SCG path or the indirect path based on third information set by the network, wherein the third information includes at least one of second instruction information for instructing the remote UE whether to recover the MCG path via the SCG path or the indirect path, a first threshold which is a Uu link quality threshold of the SCG path, and a second threshold which is a PC5 link quality threshold of the indirect path.

[0321] Optionally, the step of the processor 710 determining whether to recover the MCG path via the SCG path or recover the MCG path via the indirect path based on the Uu link quality of the SCG path and / or the PC5 link quality of the indirect path includes the steps of: if the Uu link quality of the SCG path satisfies the first threshold, the processor 710 performing an operation of recovering the MCG path via the SCG path; if the Uu link quality of the SCG path does not satisfy the first threshold, the processor 710 performing an operation of recovering the MCG path via the indirect path; and if the PC5 link quality of the indirect path satisfies the second threshold, the processor 710 performing an operation of recovering the MCG path via the indirect path. the processor 710 performing an operation to recover the MCG path via the SCG path if the PC5 link quality of the indirect path does not satisfy the second threshold; the processor 710 performing an operation to recover the MCG path via the SCG path if the Uu link quality of the SCG path satisfies the first threshold and the PC5 link quality of the indirect path does not satisfy the second threshold; and the processor 710 performing an operation to recover the MCG path via the indirect path if the Uu link quality of the SCG path does not satisfy the first threshold and the PC5 link quality of the indirect path satisfies the second threshold.

[0322] Optionally, if the indirect path satisfies the indirect path failure condition, the MCG path does not satisfy the MCG path failure condition, and the SCG path does not satisfy the SCG path failure condition, the processor 710 determines a recovery means for the indirect path based on at least one of random selection, network configuration, and protocol specification.

[0323] Optionally, the step of the processor 710 determining a restoration means for the indirect path based on the network setting includes a step of the processor 710 determining whether to restore the indirect path via the MCG path or the SCG path based on fourth information set by the network, wherein the fourth information includes at least one of third instruction information for instructing the remote UE whether to restore the indirect path via the MCG path or the SCG path, a third threshold which is a Uu link quality threshold of the SCG path, and a fourth threshold which is a Uu link quality threshold of the MCG path.

[0324] Optionally, the step of the remote UE determining whether to recover the indirect path via the MCG path or recover the indirect path via the SCG path based on the Uu link quality of the SCG path and / or the Uu link quality of the MCG path may include the steps of: if the Uu link quality of the SCG path satisfies the third threshold, the processor 710 performing an operation of recovering the indirect path via the SCG path; if the Uu link quality of the SCG path does not satisfy the third threshold condition, the processor 710 performing an operation of recovering the indirect path via the MCG path; and if the Uu link quality of the MCG path satisfies the fourth threshold, the processor 710 performing an operation of recovering the indirect path via the MCG path. the remote UE performing an operation of restoring the indirect path via the SCG path if the Uu link quality of the MCG path does not satisfy the fourth threshold; the processor 710 performing an operation of restoring the indirect path via the SCG path if the Uu link quality of the SCG path satisfies the third threshold and the Uu link quality of the MCG path does not satisfy the fourth threshold; and the processor 710 performing an operation of restoring the indirect path via the MCG path if the Uu link quality of the SCG path does not satisfy the third threshold and the Uu link quality of the MCG path satisfies the fourth threshold.

[0325] Optionally, the step of the processor 710 performing an operation of recovering the MCG path via the indirect path includes the step of the processor 710 performing an operation of recovering the MCG path via the indirect path if a ninth target base station corresponding to the indirect path supports an RRC procedure of recovering the MCG path via the indirect path, and the step of the processor 710 performing the re-establishment operation if the ninth target base station corresponding to the indirect path does not support an RRC procedure of recovering the MCG path via the indirect path.

[0326] Alternatively, when a ninth target base station corresponding to the indirect path supports an RRC procedure for recovering the MCG path via the indirect path, the step of the processor 710 performing an operation of recovering the MCG path via the indirect path includes the step of the processor 710 reporting an MCG direct connection failure message corresponding to the MCG path to the ninth target base station corresponding to the indirect path and starting a third timer, the third timer being for indicating an effective period of the RRC procedure for recovering the MCG path via the indirect path; and the step of stopping the third timer when the processor 710 receives a fifth RRC reconfiguration message sent by the ninth target base station, the fifth RRC reconfiguration message including configuration information of at least one sixth cell, and the configuration information of the sixth cell being for instructing the remote UE to establish the MCG path with a tenth target base station to which the sixth cell belongs.

[0327] Optionally, the step of the processor 710 performing an operation of recovering the indirect path via the MCG path includes the step of the processor 710 performing an operation of recovering the indirect path via the MCG path if an 11th target base station corresponding to the MCG path supports an RRC procedure of recovering the indirect path via the MCG path, and the step of the processor 710 performing the re-establishment operation if the 11th target base station corresponding to the MCG path does not support an RRC procedure of recovering the indirect path via the MCG path.

[0328] Alternatively, when an 11th target base station corresponding to the MCG path supports an RRC procedure for recovering the indirect path via the MCG path, the step of the processor 710 performing an operation of recovering the indirect path via the MCG path includes the steps of the processor 710 reporting an indirect path failure message corresponding to the indirect path to an 11th target base station corresponding to the MCG path and starting a fourth timer, the fourth timer being for indicating an effective period of the RRC procedure for recovering the indirect path via the MCG path; and when the processor 710 receives a sixth RRC reconfiguration message sent by the 11th target base station, stopping the fourth timer, the sixth RRC reconfiguration message including configuration information of at least one sixth relay UE, and the configuration information of the sixth relay UE being for instructing the remote UE to establish an indirect path with a 12th target base station to which the sixth relay UE belongs.

[0329] Optionally, the step of the processor 710 recovering the indirect path via the SCG path includes the step of the processor 710 performing an operation of recovering the indirect path via the SCG path if a 13th target base station corresponding to the SCG path supports recovering the indirect path via the SCG path, and the step of the processor 710 performing the re-establishment operation if a 13th target base station corresponding to the SCG path does not support recovering the indirect path via the SCG path.

[0330] Alternatively, when a 13th target base station corresponding to the SCG path supports recovering the indirect path via the SCG path, the step of the processor 710 performing an operation of recovering the indirect path via the SCG path includes the steps of the processor 710 reporting an indirect path failure message corresponding to the indirect path to the 13th target base station corresponding to the SCG path and starting a fifth timer, the fifth timer being for indicating an effective period of an RRC procedure for recovering the indirect path via the SCG path, and, when the processor 710 receives a sixth RRC reconfiguration message sent by the 13th target base station corresponding to the SCG path, stopping the fifth timer, the sixth RRC reconfiguration message including configuration information of at least one eighth relay UE, and the configuration information of the eighth relay UE being for instructing the remote UE to establish an indirect path with a 14th target base station to which the eighth relay UE belongs.

[0331] In this embodiment, the terminal performs a first operation or a second operation on at least one of the supported direct paths and indirect paths, thereby, on the one hand, realizing the establishment, re-establishment or recovery of the direct path and / or the indirect path through the establishment operation, the re-establishment operation or the first recovery operation, so that the terminal can realize the path re-establishment and recovery in the multipath transmission while supporting the multipath transmission, and ensure the robustness of the RRC; on the other hand, realizing the quick recovery of the failed path through the path where no failure occurs, can avoid the problem in the related art that the initiation of the RRC re-establishment procedure increases the recovery time of the radio link, and effectively shortens the recovery time of the radio link, and improves the RRC robustness of the terminal.

[0332] The embodiments of the present application further provide a readable storage medium, which stores a program or command, and when the program or command is executed by a processor, each process of the above-mentioned embodiment of the communication path setting method is realized, and similar technical effects can be achieved. To avoid repetition, detailed descriptions are omitted here.

[0333] Here, the processor is a processor in the terminal described in the above embodiment. The readable storage medium includes a computer readable storage medium such as a computer read-only memory (ROM).

[0334] The embodiments of the present application further provide a chip, which includes a processor and a communication interface, and the communication interface and the processor are coupled together, and the processor executes programs or commands of the network side device to realize each process of the above-mentioned embodiments of the communication path setting method, thereby achieving the same technical effects. To avoid repetition, detailed descriptions are omitted here.

[0335] It should be understood that the chips referred to in the embodiments of this application may also be referred to as system level chips, system chips, chip systems, or system-on-chips, etc.

[0336] The embodiments of the present application further provide a computer program product, which is stored in a non-transitory storage medium and can be executed by a processor to realize the processes of the above-mentioned embodiments of the communication path setting method, thereby achieving similar technical effects. To avoid repetition, detailed descriptions will be omitted here.

[0337] It should be noted that, as used herein, the terms "comprise," "consist of," or any other variation thereof, are intended to include a non-exclusive inclusion, whereby a process, method, article, or apparatus comprising a series of elements includes not only those elements but also other elements not expressly specified or inherent in such process, method, article, or apparatus. Unless otherwise specified, elements qualified by the phrase "comprise..." do not exclude the presence of other identical elements in the process, method, article, or apparatus that includes the element. It should also be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may include performing functions substantially simultaneously or in the reverse order, depending on such functionality. For example, the described method may be performed in a different order than described, and various steps may be added, omitted, or combined. Furthermore, features described with reference to one example may be combined in other examples.

[0338] From the description of the above embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be realized in the form of a combination of software and a necessary common hardware platform, and of course, they can also be realized by hardware, but in many cases the former is a more preferred embodiment. Based on this view, the technical solutions of the present application can be substantially embodied in the form of a computer software product, which is stored in a storage medium (e.g., ROM / RAM, magnetic disk, optical disk) and includes a plurality of commands that cause a terminal (which may be a mobile phone, a computer, a server, an air conditioner, or a network device, etc.) to execute the methods described in each embodiment of the present application.

[0339] Although the examples of the present application have been described above with reference to the drawings, the present application is not limited to the above-mentioned specific embodiments, which are merely illustrative and not limiting. Based on the suggestions of the present application, many forms that a person skilled in the art can make without departing from the spirit of the present application and the scope of protection of the claims are all within the scope of protection of the present application.

Claims

1. a remote UE performing a second operation on at least one of the direct path and the indirect path; the remote UE communicating with a network side via the direct path and the indirect path; The step of the remote UE performing a second operation on at least one of the direct path and the indirect path includes: a step of the remote UE performing an operation of recovering the direct path via the indirect path when a fifth target base station corresponding to the indirect path supports an RRC procedure of recovering the direct path via the indirect path, the step of recovering the direct path via the indirect path comprising: the remote UE reporting a direct path failure message corresponding to the direct path to the fifth target base station corresponding to the indirect path and starting a first timer, the first timer for indicating an effective period of the RRC procedure of recovering the direct path via the indirect path; the remote UE stopping the first timer when it receives a third RRC reconfiguration message transmitted by the fifth target base station, the third RRC reconfiguration message including configuration information of at least one fifth cell, the configuration information of the fifth cell for instructing the remote UE to establish the direct path with a sixth target base station to which the fifth cell belongs; or and when a seventh target base station corresponding to the direct path supports an RRC procedure for recovering the indirect path via the direct path, the remote UE performs an operation of recovering the indirect path via the direct path, the step of recovering the indirect path via the direct path includes the remote UE reporting an indirect path failure message corresponding to the indirect path to the seventh target base station corresponding to the direct path and starting a second timer, the second timer being for indicating an effective period of the RRC procedure for recovering the indirect path via the direct path, and the remote UE stopping the second timer when receiving a fourth RRC reconfiguration message transmitted by the seventh target base station, the fourth RRC reconfiguration message including configuration information of at least one fifth relay UE, the configuration information of the fifth relay UE being for instructing the remote UE to establish the indirect path with an eighth target base station to which the fifth relay UE belongs. How to set up communication paths.

2. The step of the remote UE performing a second operation on at least one of the direct path and the indirect path includes: the remote UE determining first information; the remote UE performing the second operation on at least one of the direct path and the indirect path based on the first information; The first information is whether the direct path satisfies a direct path failure condition; and whether the indirect path satisfies an indirect path failure condition.

3. The direct path failure condition is a Uu radio link failure occurs at the remote UE; and a Uu radio link recovery failure occurs in the remote UE; and / or The indirect path failure condition is A PC5 radio link failure occurs between the remote UE and a relay UE; and A PC5 radio link release occurs between the remote UE and the relay UE; and the remote UE receives first indication information from a relay UE, the first indication information being sent by the relay UE when a first condition is met, the first condition including at least one of: a Uu radio link failure has occurred in the relay UE; a Uu radio link recovery failure has occurred in the relay UE; a Uu switching has occurred in the relay UE; and a Uu switching failure has occurred in the relay UE.

4. The step of the remote UE performing the second operation on at least one of the direct path and the indirect path based on the first information includes: When the direct path satisfies the direct path failure condition and the indirect path does not satisfy the indirect path failure condition, the remote UE performs an operation of recovering the direct path via the indirect path; If the direct path does not satisfy the direct path failure condition and the indirect path satisfies the indirect path failure condition, the remote UE performs an operation of recovering the indirect path via the direct path; and if the direct path satisfies the direct path failure condition and the indirect path satisfies the indirect path failure condition, the remote UE performs a re-establishment operation; The step of the remote UE recovering the direct path via the indirect path comprises: If the fifth target base station corresponding to the indirect path does not support an RRC procedure for recovering the direct path via the indirect path, the remote UE performs a re-establishment operation. The method of claim 2.

5. When a fifth target base station corresponding to the indirect path supports an RRC procedure for recovering the direct path via the indirect path, the step of the remote UE performing an operation for recovering the direct path via the indirect path includes: The method of claim 1 , further comprising the step of the remote UE performing a re-establishment operation if the first timer times out.

6. 2. The method of claim 1, wherein, when a fifth target base station corresponding to the indirect path is different from a sixth target base station to which the fifth cell belongs, the configuration information of the fifth cell included in the third RRC reconfiguration message is generated by the sixth target base station and then transmitted to the fifth target base station.

7. The step of the remote UE performing an operation of recovering the indirect path via the direct path includes:

2. The method of claim 1, further comprising: if a seventh target base station corresponding to the direct path does not support an RRC procedure for recovering the indirect path via the direct path, the remote UE performs a re-establishment operation.

8. When a seventh target base station corresponding to the direct path supports an RRC procedure for recovering the indirect path via the direct path, the step of the remote UE performing an operation for recovering the indirect path via the direct path includes: The method of claim 1 , further comprising the step of the remote UE performing a re-establishment operation if the second timer times out.

9. 2. The method of claim 1, wherein, when a seventh target base station corresponding to the direct path is different from an eighth target base station to which the fifth relay UE belongs, the fourth RRC reconfiguration message is generated by the eighth target base station and then transmitted to the seventh target base station.

10. A terminal comprising a processor, a memory, and a program or command stored in the memory and executable by the processor, wherein when the program or command is executed by the processor, the steps of the communication path setting method according to claim 1 are realized.

Citation Information

Patent Citations

  • Device and method for relay selection

    WO2017130593A1

  • Communication method and apparatus

    WO2021134725A1