Node management methods, communication equipment, storage media, and program products

The node management method addresses the inefficiency and unreliability of low-capability relay nodes by defining time-frequency domain positions for cooperative signaling, enhancing communication reliability and efficiency with RIS in 5G and future networks.

JP7843921B2Active Publication Date: 2026-04-10ZTE CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
ZTE CORP
Filing Date
2023-08-08
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing relay nodes with low processing capabilities exhibit poor interaction effects and low reliability in communication due to the reliance on high processing power for interaction instructions, particularly in scenarios involving reconfigurable intelligent surfaces (RIS).

Method used

A node management method is implemented that specifies the time-frequency domain positions for analyzing cooperative signaling, enabling efficient and reliable communication by defining interaction interfaces and behaviors between transmitting nodes and relay nodes, including RIS, through coordinated signaling using Radio Resource Control (RRC) or Medium Access Control (MAC) to set up and manage nodes based on node management parameters.

Benefits of technology

The method enhances the interaction efficiency and reliability between transmitting nodes and relay nodes, particularly with RIS, by specifying interaction interfaces and behaviors, ensuring high-quality communication in various communication systems including 5G and future 6G networks.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The embodiments of the present application provide a node management method, a communication device, a storage medium, and a program product. The node management method includes: after a relay node receives a first cooperation signaling from a transmitting node, analyzing the first cooperation signaling at a first predetermined time-frequency domain position according to a previously received cooperation configuration command to obtain a node management parameter (S1000); and then managing the relay node based on the node management parameter (S2000).
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Description

Technical Field

[0001] This application is filed based on a Chinese patent application with an application number of 202211147352.0 and a filing date of September 19, 2022, and claims the priority of the Chinese patent application. All the contents of the Chinese patent application are incorporated herein by reference.

[0002] Embodiments of this application relate to the technical field of communications, and in particular, to a node management method, a communication device, a storage medium, and a program product.

Background Art

[0003] In the prior art, a relay node is arranged between a transmitting node and a receiving node and can control the channel between the transmitting node and the receiving node. However, in some cases, the interaction instruction between the relay node and the transmitting node usually depends on the relay node having high processing capabilities. For a relay node with low processing capabilities, the interaction effect in the interaction process with the transmitting node is poor and the reliability is low.

Summary of the Invention

Problems to be Solved by the Invention

[0004] Embodiments of this application provide a node management method, a communication device, a storage medium, and a program product.

Means for Solving the Problems

[0005] In a first aspect, when receiving a first cooperation signaling from a transmitting node, an embodiment of this application analyzes the first cooperation signaling at a first preset resource position according to a previously received cooperation setting instruction to obtain a node management parameter, and manages a node based on the node management parameter. The node management method includes the above steps.

[0006] In a second aspect, an embodiment of the present invention provides a node management method that includes the steps of: setting up a first cooperative signaling at a first pre-configured resource location in accordance with a pre-received cooperative setting command; and transmitting the first cooperative signaling to the relay node so that the relay node analyzes the first cooperative signaling at the first pre-configured resource location to obtain node management parameters and manages the node based on the node management parameters.

[0007] In a third aspect, an embodiment of the present application provides a communication device comprising at least one processor and at least one memory for storing at least one program, wherein the at least one program, when executed by the at least one processor, performs the node management method described in any one of the first aspects or the node management method described in any one of the second aspects.

[0008] In a fourth aspect, an embodiment of the present application provides a computer-readable storage medium storing a processor-executable program that, when executed by a processor, performs the node management method described in any one of the first aspects or the node management method described in any one of the second aspects.

[0009] In the fifth aspect, an embodiment of the present application provides a computer program product which includes a computer program or computer instruction stored in a computer-readable storage medium, wherein the processor of a computer device reads the computer program or computer instruction from the computer-readable storage medium, and the processor executes the computer program or computer instruction to cause the computer device to execute the node management method described in any one of the first aspects or the node management method described in any one of the second aspects. [Brief explanation of the drawing]

[0010] [Figure 1] This is a schematic diagram of a communication system according to an embodiment of the present invention. [Figure 2] This is a flowchart of a node management method performed by a relay node according to one embodiment of the present invention. [Figure 3] This is a flowchart of a node management method according to one embodiment of the present invention. [Figure 4] This is a flowchart of a node management method according to one embodiment of the present invention. [Figure 5] This is a flowchart of a node management method performed by a transmitting node according to one embodiment of the present invention. [Figure 6] This is a flowchart of a node management method according to one embodiment of the present invention. [Figure 7] This is a schematic diagram of the transmission position of cooperative signaling between a transmitting node and a relay node according to one embodiment of the present invention. [Figure 8] This is an interaction flowchart between a transmitting node and a relay node according to one embodiment of the present invention. [Figure 9] This is a schematic diagram of the configuration of cooperative signaling in a single relay node scenario according to one embodiment of the present invention. [Figure 10] This is a schematic diagram of the settings for the first coordinated signaling and the second coordinated signaling according to one embodiment of the present invention. [Figure 11] This is a schematic diagram of a scenario in which a transmitting node and multiple relay nodes cooperate according to one embodiment of the present invention. [Figure 12] This is a schematic diagram of the configuration of cooperative signaling in a multi-relay node scenario according to one embodiment of the present invention. [Figure 13] This is a flowchart of the interaction between a transmitting node and relay nodes in a multi-relay node scenario according to one embodiment of the present invention. [Figure 14] A schematic diagram of the configuration of a communication device according to one embodiment of the present invention. [Modes for carrying out the invention]

[0011] To further clarify the purpose, technical solutions, and advantages of this application, the application will be described in more detail below with reference to the drawings and examples. The examples described herein are for illustrative purposes only and are not intended to limit the application.

[0012] In addition, while the schematic diagram of the device shows the division of functional modules and the flowchart shows the logical order, the division of modules in the device may differ in some cases, or the steps shown or described may be performed in a different order than that shown in the flowchart. Terms such as "first," "second," etc., in this specification, the claims, and the drawings are terms used to distinguish similar subjects and are not used to describe a particular order or priority.

[0013] In the embodiments of this application, terms such as “furthermore,” “exemplary,” or “optionally” are used as examples, illustrations, or descriptive phrases and should not be construed as being preferable or superior to other embodiments or design modes. The use of terms such as “furthermore,” “exemplary,” or “optionally” is intended to present relevant concepts.

[0014] In conventional technology, relay nodes are placed between the transmitting and receiving nodes and can control the channel between them. However, in some cases, interaction commands between the relay node and the transmitting node typically depend on the relay node having high processing power. For relay nodes with low processing power, the interaction process with the transmitting node is ineffective and unreliable.

[0015] When the relay node is a reconfigurable intelligent surface (RIS), the RIS is an artificial electromagnetic material with programmable electromagnetic characteristics, and by controlling the phase of each array, the transmitted beam can be focused on a desired direction or point, realizing the control of the electromagnetic environment. On the other hand, the current interaction instructions between the base station and the RIS usually rely on the fact that the RIS has high processing capabilities, and specific transmission signaling and interface schemes are not defined.

[0016] Based on this, the present application aims to improve the interaction effect and reliability of the interaction process between the transmitting node and the relay node, and provides a node management method, a communication device, a computer-readable storage medium, and a computer program product. The embodiments of the present application define the time-frequency domain position for analyzing the cooperative signaling and can manage the relay node by node management parameters. Therefore, in the embodiments of the present application, the interaction interface and behavior between the transmitting node and the relay node are specified, thereby realizing highly reliable and efficient communication between the transmitting node and the relay node.

[0017] FIG. 1 is a schematic diagram of a communication system according to an embodiment of the present application. The communication system includes a transmitting node 110, a relay node 120, and a receiving node 130. In order to realize the communication between the transmitting node 110 and the receiving node 130, it is necessary to transfer the signal through the relay node 120.

[0018] The technical solution of the embodiments of the present application can be applied to various communication systems, such as wideband code division multiple access mobile communication systems (WCDMA (registered trademark): wideband code division multiple access), evolved universal terrestrial radio access network (E-UTRAN) systems, next generation radio access network (NG-RAN) systems, long term evolution (LTE) systems, worldwide interoperability for microwave access (WiMAX) communication systems, fifth generation (5G) systems such as new radio access technology (NR), and future communication systems such as 6G systems.

[0019] The technical solution of the embodiments of the present application can be applied to various communication technologies such as microwave communication, optical wave communication, and millimeter wave communication. The embodiments of the present application do not limit the specific technologies and specific device forms adopted.

[0020] The transmission node 110 of the embodiments of the present application may be an evolved NodeB (eNB), a transmission reception point (TRP), a next generation base station (gNB) in the NR system, another base station in a future mobile communication system, or a transmission node in a wireless fidelity (WiFi) system. The embodiments of the present application do not limit the specific technologies and specific device forms adopted by the transmission node.

[0021] The receiving node 130 in the embodiment of this application is an entity on the user side, such as a mobile phone, for receiving or transmitting signals. The receiving node equipment can also be called a receiving node device (terminal), user equipment (UE), mobile station (MS), mobile receiving node device (MT), etc. The receiving node equipment may be a car with communication functions, a smart car, a mobile phone, a wearable device, a tablet (Pad), a computer with wireless transmission and reception functions, a virtual reality (VR) receiving node device, an augmented reality (AR) receiving node device, a wireless receiving node device in industrial control, a wireless receiving node device in self-driving, a wireless receiving node device in remote medical surgery, a wireless receiving node device in a smart grid, a wireless receiving node device in transportation safety, a wireless receiving node device in a smart city, a wireless receiving node device in a smart home, etc. The embodiments of this application are not limited to the specific technology and specific equipment forms employed by the receiving node.

[0022] The relay node 120 in the embodiment of the present application may be any network device having the capability to relay wireless signals, that is, the capability to receive and wirelessly transmit wireless signals. The relay node may be a repeater, a reconfigurable intelligent surface (RIS), a smart repeater, etc. The embodiment of the present application is not limited to the specific technology and specific equipment form employed by the relay node.

[0023] In the embodiments of this application, a base station is used as the transmitting node and a RIS is used as the relay node. However, those skilled in the art will understand that other types of transmitting nodes, such as TRPs and gNBs, or other types of relay nodes, such as Smart Repeaters, are also suitable for the node management method according to the embodiments of this application.

[0024] Figure 2 is a flowchart of a node management method performed by a relay node according to one embodiment of the present invention. As shown in Figure 2, the node management method may include, but is not limited to, steps S1000 and S2000.

[0025] Step S1000: When a first cooperative signaling is received from a transmitting node, the first cooperative signaling is analyzed at a first pre-configured resource location according to a previously received cooperative setting command to obtain node management parameters.

[0026] In one embodiment, the relay node may, after receiving a coordination setting command in advance, determine the analysis position of the coordination signaling between the relay node and the transmitting node in accordance with the coordination setting command. When the relay node receives the first coordination signaling transmitted by the transmitting node, it may analyze the first coordination signaling at the first pre-configured resource position determined by the coordination setting command to obtain the node management parameters in the first coordination signaling.

[0027] In one embodiment, the above-described coordinating configuration command may be configured by Radio Resource Control (RRC) or Medium Access Control (MAC) to define the specific time-frequency resource location of the coordinating signaling, i.e., configured by Radio Resource Control or Medium Access Control, and transmitted to the transmitting node and relay nodes. Here, the coordinating configuration command may include, but is not limited to, at least one of the following: (1) Transmission frame number and slot number, (2) Symbol start position of the first coordinated signaling, (3) Symbol length of the first coordinated signaling, (4) The frequency domain start position of the first coordinated signaling, (5) Number of frequency domain resources occupied by the first coordinated signaling, (6) Symbol start position of the second coordinated signaling for transmission to the transmitting node, (7) Symbol length of the second coordinated signaling to be transmitted to the transmitting node, (8) The frequency domain start position of the second coordinated signaling for transmission to the transmitting node, (9) Number of frequency domain resources occupied by the second coordinated signaling for transmission to the transmitting node, (10) The allocation of frequency domain resources between multiple first coordinating signalings and second coordinating signalings for transmission to the transmitting node, or (11) The number of delay slots or symbols of the second co-signaling for transmission to the transmitting node relative to the first co-signaling.

[0028] In one embodiment, the first coordinated signaling described above may be transmitted using a guard interval (GP) symbol as a dedicated communication command for the transmitting node and the relay node. That is, the transmitting node may transmit the first coordinated signaling to the relay node using a guard interval symbol.

[0029] In one embodiment, the first coordinated signaling described above may include, but is not limited to, at least one of the following: (1) A node instruction identifier representing the number of nodes that the first cooperative signaling system controls, (2) A target identity identifier representing the node identity information that the first cooperative signaling system controls in correspondence with, (3) Cell identity identifier, (4) System frame number, or (5) Node management parameters.

[0030] Step S2000: Manage nodes based on node management parameters.

[0031] In one embodiment, after the relay node obtains node management parameters in the first cooperative signaling through analysis, the relay node manages its own nodes based on the node management parameters.

[0032] In one embodiment, as shown in Figure 3, Figure 3 is a flowchart of a node management method according to one embodiment of the present invention, and if the first cooperative signaling includes a target identity identifier, step S2000 above may include step S2100, but is not limited thereto.

[0033] Step S2100: If the target identity identifier matches a pre-configured identity identifier, manage the node based on the node management parameters.

[0034] In one embodiment, a pre-configured identity identifier is set for the relay node, and if the target identity identifier in the first cooperative signaling matches the pre-configured identity identifier of the relay node, it indicates that the current relay node is under control, and therefore the current relay node manages the node based on node management parameters.

[0035] In one embodiment, the node management parameters in the first cooperative signaling may include, but are not limited to, at least one of the following: (1) Extended reference signals for timing synchronization, channel estimation, or power control, (2) State control parameters for controlling the operating state, (3) A codebook identifier for determining the corresponding target codebook and generating a beam based on the target codebook.

[0036] In one embodiment, the state control parameter described above may include, but is not limited to, at least one of the following. (1) On / off control parameters, (2) Beam scanning control parameters, (3) Power control parameters, (4) Detection period control parameters, (5) Direction control parameters, (6) Operating mode control parameters, or (7) Codebook set switching parameter.

[0037] In one embodiment, the node management parameters described above may be pseudo-random sequences such as m-sequences, ZC-sequences, or PN-sequences.

[0038] In one embodiment, as shown in Figure 4, Figure 4 is a flowchart of a node management method according to one embodiment of the present invention, and after receiving the first coordinated signaling from the transmitting node in step S1000, the node management method further includes, but is not limited to, steps S3100 and S3200.

[0039] Step S3100: Generate a second cooperative signaling based on the first cooperative signaling.

[0040] Step S3200: In accordance with the previously received coordinating setting command, the second coordinating signaling is set up at the second pre-configured resource location, and the second coordinating signaling is fed back to the transmitting node.

[0041] In one embodiment, after receiving a first coordinating signal from the transmitting node, the relay node further generates a second coordinating signal based on the first coordinating signal. The relay node then determines the analysis position of the coordinating signal between the relay node and the transmitting node according to a previously received coordinating setup command, that is, the relay node determines a second pre-configured resource location according to a previously received coordinating setup command, sets up the second coordinating signal at the second pre-configured resource location, and feeds back the configured second coordinating signal to the transmitting node.

[0042] In one embodiment, the approach by which a relay node feeds back a second cooperative signaling to a transmitting node may include, but is not limited to, the following approaches.

[0043] Approach 1: The relay node feeds back the second coordinated signaling to the transmitting node using guard interval symbols.

[0044] Second approach: The relay node feeds back the second coordinated signaling to the transmitting node via a physical uplink channel.

[0045] Third approach: The relay node feeds back the second cooperative signaling to the transmitting node in response to the transmission request.

[0046] In one embodiment, the second coordinated signaling described above may include, but is not limited to, at least one of the following: (1) Pre-configured identity identifier of relay node, (2) Successful analysis of relay nodes based on the first coordinated signaling, (3) Error notification for analysis of relay nodes based on the first coordinated signaling, (4) Current codebook identifier of the relay node, (5) The current operating mode of the relay node, or (6) The current functional status of the relay node.

[0047] In one embodiment, the first preset resource location and the second preset resource location may include at least one of a time-domain location or a frequency-domain location.

[0048] Figure 5 is a flowchart of a node management method performed by a transmitting node according to one embodiment of the present invention. As shown in Figure 5, the node management method may include, but is not limited to, steps S4000 and S5000.

[0049] Step S4000: Set up the first cooperative signaling at the first pre-configured resource location according to the cooperative setting command received in advance.

[0050] Step S5000: The relay node analyzes the first cooperative signaling at a first pre-configured resource location to obtain node management parameters and transmits the first cooperative signaling to the relay node so that it can manage the node based on the node management parameters.

[0051] In one embodiment, the transmitting node may, after receiving a coordinating setup command in advance, determine the analysis location of the coordinating signaling between the relay node and the transmitting node in accordance with this coordinating setup command. When the transmitting node generates the first coordinating signaling, it may determine a first pre-configured resource location in accordance with the coordinating setup command received in advance, configure the first coordinating signaling at the first pre-configured resource location, and transmit the configured first coordinating signaling to the relay node. When the relay node receives the first coordinating signaling transmitted from the transmitting node, it may analyze the first coordinating signaling at the first pre-configured resource location determined by the coordinating setup command to obtain node management parameters in the first coordinating signaling, and finally manage its own node based on the node management parameters.

[0052] In one embodiment, the above-described coordinating configuration command may be configured by Radio Resource Control (RRC) or Medium Access Control (MAC) to define the specific time-frequency resource location of the coordinating signaling, i.e., configured by Radio Resource Control or Medium Access Control, and transmitted to the transmitting node and relay nodes. Here, the coordinating configuration command may include, but is not limited to, at least one of the following: (1) Transmission frame number and slot number, (2) Symbol start position of the first coordinated signaling, (3) Symbol length of the first coordinated signaling, (4) The frequency domain start position of the first coordinated signaling, (5) Number of frequency domain resources occupied by the first coordinated signaling, (6) Symbol start position of the second coordinated signaling for transmission to the transmitting node, (7) Symbol length of the second coordinated signaling to be transmitted to the transmitting node, (8) The frequency domain start position of the second coordinated signaling for transmission to the transmitting node, (9) Number of frequency domain resources occupied by the second coordinated signaling for transmission to the transmitting node, (10) The allocation of frequency domain resources between multiple first coordinating signalings and second coordinating signalings for transmission to the transmitting node, or (11) The number of delay slots or symbols of the second co-signaling for transmission to the transmitting node relative to the first co-signaling.

[0053] In one embodiment, the first coordinated signaling described above may be transmitted using a guard interval (GP) symbol as a dedicated communication command for the transmitting node and the relay node. That is, the transmitting node may transmit the first coordinated signaling to the relay node using a guard interval symbol.

[0054] In one embodiment, the first coordinated signaling described above may include, but is not limited to, at least one of the following: (1) A node instruction identifier representing the number of nodes that the first cooperative signaling system controls, (2) A target identity identifier representing the node identity information that the first cooperative signaling system controls in correspondence with, (3) Cell identity identifier, (4) System frame number, or (5) Node management parameters.

[0055] In one embodiment, the node management parameters in the first cooperative signaling may include, but are not limited to, at least one of the following: (1) Extended reference signals for timing synchronization, channel estimation, or power control, (2) State control parameters for controlling the operating state, (3) A codebook identifier for determining the corresponding target codebook and generating a beam based on the target codebook.

[0056] In one embodiment, the state control parameter described above may include, but is not limited to, at least one of the following. (1) On / off control parameters, (2) Beam scanning control parameters, (3) Power control parameters, (4) Detection period control parameters, (5) Direction control parameters, (6) Operating mode control parameters, or (7) Codebook set switching parameter.

[0057] In one embodiment, the node management parameters described above may be pseudo-random sequences such as m-sequences, ZC-sequences, or PN-sequences.

[0058] In one embodiment, as shown in Figure 6, Figure 6 is a flowchart of a node management method according to one embodiment of the present invention, in which, after transmitting the first cooperative signaling to the relay node in step S5000, the node management method further includes, but is not limited to, steps S6100 and S6200.

[0059] Step S6100: The relay node receives a second cooperative signaling that has been fed back based on the first cooperative signaling.

[0060] Step S6200: Analyze the second cooperative signaling at the second pre-configured resource location according to the cooperative setting command received in advance.

[0061] In one embodiment, after receiving a first coordinating signal from the transmitting node, the relay node further generates a second coordinating signal based on the first coordinating signal. The relay node then determines the analysis location of the coordinating signal between the relay node and the transmitting node according to a previously received coordinating setup command. Specifically, the relay node determines a second pre-configured resource location according to a previously received coordinating setup command, sets up the second coordinating signal at the second pre-configured resource location, and feeds back the configured second coordinating signal to the transmitting node. Furthermore, the transmitting node determines a second pre-configured resource location according to a previously received coordinating setup command and analyzes the second coordinating signal at the second pre-configured resource location.

[0062] In one embodiment, the approach by which the transmitting node receives the second coordinated signaling from the relay node may include, but is not limited to, the following approaches.

[0063] Approach 1: The relay node receives the second cooperative signaling, which has been fed back via the guard interval symbol.

[0064] Second approach: The relay node receives the second coordinated signaling, which has been fed back via the physical uplink channel.

[0065] Third approach: The relay node receives the second cooperative signaling fed back by the transmission request.

[0066] In one embodiment, the second coordinated signaling described above may include, but is not limited to, at least one of the following: (1) Pre-configured identity identifier of relay node, (2) Successful analysis of relay nodes based on the first coordinated signaling, (3) Error notification for analysis of relay nodes based on the first coordinated signaling, (4) Current codebook identifier of the relay node, (5) The current operating mode of the relay node, or (6) The current functional status of the relay node.

[0067] In one embodiment, the first preset resource location and the second preset resource location may include at least one of a time-domain location or a frequency-domain location.

[0068] Below, we propose embodiments of the present invention based on the node management method performed by the relay node and the node management method performed by the transmitting node described above.

[0069] Embodiments of the present invention propose an efficient, low-complexity, and reliable method of coordinating and interacting between a transmitting node and a relay node, including a method for coordination and interaction between a base station and a RIS. Efficient communication between a base station and a single or multi-RIS is achieved by controlling the RIS and transmitting a codebook ID using coordinate signaling. Here, the transmission takes place at GP symbol locations, and a coordinate configuration command defines the coordinate signaling time-frequency location and specifies the interaction interface and behavior between the base station and the RIS.

[0070] Regarding the time-frequency location of the coordinate signaling in which the transmitting node and relay node interact, the coordinate signaling is a dedicated communication command between the transmitting node and relay node, and the coordinate configuration command defines the specific time-frequency resource location of the coordinate signaling, is configured by RRC or MAC, and is sent to the transmitting node and relay node, and the coordinate configuration command includes one or more of the following: (1) Transmission frame number and slot number, (2) Symbol start position for downlink coordinated signaling, (3) Symbol length of downlink coordinated signaling, (4) The frequency domain start position of downlink coordinated signaling, (5) Number of frequency domain resources occupied by downlink coordinated signaling, (6) Symbol start position for uplink coordinated signaling, (7) Symbol length of uplink coordinated signaling, (8) The frequency domain start position of uplink coordinated signaling, (9) Number of frequency domain resources occupied by uplink coordinated signaling, (10) Allocation of frequency domain resources for multiple coordinated signaling in a multi-relay node scenario, (11) The number of delayed slots or symbols for uplink coordinated signaling relative to downlink signaling.

[0071] Here, downlink coordinated signaling is the first coordinated signaling described above, and uplink coordinated signaling is the second coordinated signaling described above.

[0072] Furthermore, as shown in Figure 7, Figure 7 is a schematic diagram of the transmission position of the coordinating signaling between the transmitting node and the relay node according to one embodiment of the present invention, and the contents of the coordinating signaling, such as downlink coordinating signaling and uplink coordinating signaling, are as follows.

[0073] Coordinated signaling may be transmitted using GP symbols as a dedicated communication command between the transmitting node and the relay node, and the content of the downlink coordinated signaling transmitted by the transmitting node to the relay node includes one or more of the following, of which (4) to (6) are collectively referred to as coordinated function signaling. (1) Multi-relay node instruction, which is a 1-bit instruction bit: Indicates that the current cooperative signaling controls only one relay node or multiple relay nodes. (2) The number or unique identification ID of the target relay node in the network, (3) Cell ID, system frame number, (4) Extended reference signal: Used for timing synchronization between transmitting and relay nodes, channel estimation, or automatic power control. (5) Control commands: These include, but are not limited to, turning relay nodes on and off, restarting, giving beam polling scan instructions, power control, detection cycle (how often the RIS monitors), mechanical adjustments such as height tilt angle, and mode switching. Modes include energy-saving mode or normal mode, fixed beam or polling scan mode (fixed beam is a semi-static method, and polling scan mode is a dynamic scanning method), and codebook set flags (used to switch the relay node codebook set, and multiple sets of codebooks may be stored on the RIS board side to support switching). (6) Codebook ID: Used by the relay node to analyze and activate the codebook number (after the RIS analyzes the codebook number, it switches to the corresponding codebook and outputs the corresponding directional beam).

[0074] In a multi-RIS scenario, a corresponding number of cooperative function signalings are placed according to the number of RIS codes, and the number of cooperative function signalings is equal to the number of RIS codes.

[0075] Furthermore, the signaling content of the uplink coordinated signaling that the relay node transmits to the transmitting node includes one or more of the following, and this feedback signaling may be transmitted via the PUSCH channel or using HARQ, in addition to being transmitted at the GP location. (1) The number or unique identification ID of the current relay node in the network, (2) Success or failure indication of relay node reception synchronization, control, or codebook ID: This feedback signaling may be placed in PUSCH. (3) Reporting the current codebook ID or operating mode of the relay node. (4) Feedback of functional abnormalities.

[0076] Of these, the extended reference signal, control command, and codebook ID sequence may be transmitted using pseudo-random sequences such as m sequences, ZC sequences, and PN sequences.

[0077] Furthermore, the transmitted downlink coordinating signaling is set with a multi-RIS instruction, which is a 1-bit instruction bit indicating that the current coordinating signaling controls only one RIS or multiple RISs. When controlling multiple RISs, the downlink coordinating function signaling that the base station transmits to multiple RISs and the uplink coordinating function signaling that the multiple RISs report to the base station must be placed in the symbol where the coordinating signaling exists. The frequency domain resource allocation for multiple RIS coordinating function signaling is defined in the coordinating setup instruction. The RIS reads the target RIS number or ID in the coordinating signaling and compares it to itself. If its number or ID is in the transmitted coordinating signaling, it analyzes information such as extended reference signals, control instructions, and codebook IDs at the time-frequency position corresponding to the current RIS and activates the control instructions and codebook. If its number or ID is not in the coordinating signaling, no signaling analysis is performed.

[0078] In one embodiment, as shown in Figure 8, Figure 8 is a flowchart of the interaction between a transmitting node and a relay node according to one embodiment of the present invention, where the transmitting node is a base station and the relay node is a RIS. In this example, the interaction process includes, but is not limited to, steps S7100, S7200, and S7300.

[0079] Step S7100: The base station transmits coordinating signaling to the RIS, setting and transmitting a specific transmission location by RRC or MAC, and setting the coordinating signaling between the base station and the RIS at the corresponding GP symbol location. As shown in Figure 9, Figure 9 is a schematic diagram of the setting of coordinating signaling in a single relay node scenario according to one embodiment of the present invention, and includes one or more of the following: (1) Multi-RIS instruction, which is a 1-bit instruction bit: Here, we set it to 0 to indicate that only one RIS is controlled. (2) Target RIS number or unique identification ID in the network: The target RIS has a network number of x, and the receiving RIS compares its own number with x. If they are the same, it analyzes and activates the corresponding cooperative function signaling. (3) Cell ID, system frame number, (4) Extended reference signal: Used for timing synchronization between base stations and RIS, channel estimation, or automatic power control, and transmitted using a pseudo-random sequence. (5) Control command: Set the RIS to beam polling scan mode, set the codebook set flag to 5, adjust the horizontal tilt angle to 10 degrees, adjust the height to -10 cm, and use energy saving mode. (6) Codebook ID: Set the codebook ID to 150, i.e., codebook number 150 of codebook set 5. After the RIS analyzes the corresponding ID, apply this codebook to the RIS board and emit the corresponding directional beam.

[0080] Step S7200: The RIS receives the coordinated signaling, analyzes it at the corresponding time-frequency position, activates the control content within it, and if it contains a codebook instruction, the RIS board switches to the corresponding codebook.

[0081] Step S7300: The RIS feeds back a coordinated signaling to the base station, which may be transmitted via the PUSCH channel or using HARQ, in addition to being transmitted at the GP location. (1) The current RIS number or unique identification ID in the network: The number is x. (2) Success or failure indication of RIS reception synchronization, control, or codebook ID: This feedback signaling may be placed in PUSCH. (3) Report the current codebook ID or operating mode of the RIS: The current codebook ID is 150. (4) Feedback of functional abnormalities.

[0082] If the base station does not receive a successful reception feedback, it will resend the coordinated signaling, and after successful coordination, it will initiate normal uplink and downlink services.

[0083] In one embodiment, the time-frequency resource location for coordinated signaling is defined using a coordinated setting command, as follows. The coordinated setting command defines the specific transmission time-frequency resource location for coordinated signaling, is set by RRC or MAC, and transmitted to the first and second nodes. In this embodiment, the first node is a base station, and the second node may be a terminal, RIS, or Smart repeater. Taking an RIS as an example, Figure 10 shows a schematic diagram of the setting of the first and second coordinated signaling according to one embodiment of the present invention.

[0084] For example, if the frequency domain start position for downlink coordinating signaling is set to 100, the number of frequency domain resources to 127, the frame number to 5, the slot number to 13, the symbol start position to 8, and the symbol length to 1, then the current frequency domain RE position for coordinating signaling is 100-226, and the time domain occupies the 8th symbol in the 13th slot of the 5th frame. If the frequency domain start position for uplink coordinating signaling is set to 100, the number of frequency domain resources to 127, the frame number to 5, the slot number to 13, the symbol start position to 11, and the symbol length to 1, then the current frequency domain RE position for coordinating signaling is 100-226, and the time domain occupies the 11th symbol in the 13th slot of the 5th frame.

[0085] The base station, following the instructions of the coordinating setup command, sets up downlink coordinating signaling at the corresponding location and transmits it to the RIS, which analyzes it at the corresponding time-frequency location, and the RIS uploads uplink coordinating signaling at the indicated time-frequency location, which the base station analyzes at that time-frequency location.

[0086] In one embodiment, the communication flow between a base station and a target RIS in a multi-RIS scenario is as follows. In this embodiment, the first node is the base station, and the second node may be a terminal, RIS, or Smart Repeater, with the RIS being an example. A multi-RIS scenario indicates that multiple RISs are connected to one base station, or that relays or cascades exist between multiple RISs. An example of a communication system in a multi-RIS scenario is shown in Figure 11, and multi-RIS coordinated signaling is shown in Figure 12.

[0087] As shown in Figure 13, Figure 13 is a flowchart of the interaction between a transmitting node and a relay node in a multi-relay node scenario according to one embodiment of the present invention, the process of this interaction including, but not limited to, steps S8100, S8200, S8300, S8400, and S8500.

[0088] Step S8100: The base station sets a multi-RIS instruction (1-bit instruction bit) in the transmitted coordinating signaling, defining that the current coordinating signaling controls multiple RISs, specifying the number or unique identification ID of the corresponding target RIS, and sets the corresponding number of the coordinating function signaling at the corresponding time-frequency position.

[0089] Step S8200: The base station transmits coordinate signaling to the RIS, setting a specific transmission location by RRC or MAC and transmitting at the corresponding GP symbol location or other time-frequency location.

[0090] Step S8300: The RIS receives and analyzes the cooperative signaling. In a single-RIS scenario, it analyzes and activates it directly according to Example 1. In a multi-RIS scenario, it determines whether its own number is included in the number set of the cooperative signaling. If it is not included, it does not perform analysis or activate the function.

[0091] Step S8400: If the analysis results in a multi-RIS scenario and the received coordinating signaling contains its own number or ID, read the coordinating function signaling at the corresponding frequency domain resource location in numerical order, analyze it, and activate the control content and codebook within it.

[0092] Step S8500: The RIS feeds back coordinated signaling to the base station, including one or more of the following: (1) The current RIS number or unique identification ID in the network, (2) Success / failure indication of RIS reception synchronization, control, or codebook ID: This feedback signaling may be placed in PUSCH. (3) Report the current codebook ID or operating mode of the RIS. (4) Feedback of functional abnormalities.

[0093] If the base station does not receive a successful reception feedback, it will resend the coordinated signaling, and after successful coordination, it will initiate normal uplink and downlink services.

[0094] Below, based on the node management method according to any of the above embodiments, we propose embodiments of the communication equipment, computer-readable storage medium, and computer program product according to the embodiments of this application.

[0095] Figure 14 is a schematic diagram of the configuration of a communication device according to one embodiment of the present invention. As shown in Figure 14, the communication device includes a memory 210 and a processor 220. The number of memory 210 and processor 220 may be one or more, and Figure 14 illustrates one memory 210 and one processor 220. The memory 210 and processor 220 of the device may be connected via a bus, and Figure 14 illustrates a connection via a bus.

[0096] The memory 210 can be used as a computer-readable storage medium to store software programs, computer-executable programs, and modules, such as program instructions / modules corresponding to the node management method according to any embodiment of the present application. The processor 220 implements the node management method by operating the software programs, instructions, and modules stored in the memory 210.

[0097] Memory 210 may primarily include a program memory area capable of storing an operating system and application programs required for at least one function, and a data memory area. Furthermore, memory 210 may include high-speed random-access memory and non-volatile memory such as at least one magnetic disk memory device, flash memory device, or other non-volatile solid-state memory device. In some examples, memory 210 may further include memory remotely located to a processor 220 that can be connected to the device via a network. Such networks include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.

[0098] One embodiment of the present invention further provides a computer-readable storage medium storing computer-executable instructions for performing a node management method according to any embodiment of the present invention.

[0099] One embodiment of the present invention further provides a computer program product which includes a computer program or computer instruction stored on a computer-readable storage medium, wherein the processor of the computer device reads the computer program or computer instruction from the computer-readable storage medium, and the processor executes the computer program or computer instruction, thereby causing the computer device to execute the node management method according to any embodiment of the present invention.

[0100] In the node management method, communication equipment, storage medium, and program product according to the embodiment of the present application, a relay node, after receiving a first cooperative signaling from a transmitting node, analyzes the first cooperative signaling at a first pre-set time-frequency domain position according to a pre-received cooperative setting command to obtain node management parameters, and then can manage the relay node based on the node management parameters. The embodiment of the present application defines a time-frequency domain position for analyzing cooperative signaling and can manage the relay node using node management parameters. Therefore, the embodiment of the present application specifies the interaction interface and behavior between the transmitting node and the relay node, thereby enabling reliable and efficient communication between the transmitting node and the relay node.

[0101] The system architectures and application scenarios described in the embodiments of this application are intended to more clearly illustrate the technical solutions of the embodiments and do not limit the technical solutions provided by the embodiments. Those skilled in the art will see that the technical solutions provided by the embodiments of this application are similarly applicable to similar technical problems as system architectures evolve and new application scenarios emerge.

[0102] Those skilled in the art will understand that all or part of the steps in the methods disclosed above, the functional modules / units in a system or device, may be implemented as software, firmware, hardware, or a suitable combination thereof.

[0103] In hardware embodiments, the division between functional modules / units described above does not necessarily correspond to the division of physical components. For example, one physical component may have multiple functions, and one function or step may be performed in conjunction with multiple physical components. Some or all of the physical components may be implemented as software executed by a processor such as a central processor, digital signal processor, or microprocessor, or as hardware, or as an integrated circuit such as an application-specific integrated circuit. Such software may be distributed on computer-readable media that may include computer storage media (or non-temporary media) and communication media (or temporary media). As is well known to those skilled in the art, the term computer storage media includes volatile and non-volatile, removable and non-removable media implemented in any method or technique for storing information (e.g., computer-readable instructions, data structures, program modules, or other data). Computer storage media include, but are not limited to, RAM, ROM, EEPROM, flash memory or other memory technologies, CD-ROM, digital versatile disk (DVD) or other optical disk storage devices, magnetic cartridges, magnetic tapes, magnetic disk storage devices or other magnetic storage devices, or any other media that can be used to store desired information and can be accessed by a computer. Furthermore, it is well known to those skilled in the art that communication media may include any information distribution media, typically containing computer-readable instructions, data structures, program modules, or other data in modulated data signals such as carrier waves or other transmission mechanisms.

[0104] As used herein, terms such as “component,” “module,” and “system” are used to represent computer-related entities, hardware, firmware, hardware-software combinations, software, or running software. For example, a component may be, but is not limited to, a process running on a processor, a processor, an object, an executable file, an execution thread, a program, or a computer. As illustrated, both applications running on computing equipment and computing equipment may be components. One or more components may reside within a process or execution thread, and components may be located on one computer or distributed across two or more computers. Furthermore, these components may run from various computer-readable media storing various data structures. Components may communicate via local or remote processes according to signals, for example, one or more data packets (e.g., data from two components interacting with other components across a local system, a distributed system, or a network, e.g., the Internet interacting with other systems via signals).

Claims

1. A node management method performed by a relay node, The steps include receiving a first coordinated signaling from the transmitting node, A step of obtaining node management parameters by analyzing the first coordinate signaling at a first pre-configured resource location in accordance with a pre-received coordinate setting command, wherein the node management parameters include state control parameters for controlling the operating state and / or a codebook identifier for determining a target codebook and generating a beam based on the target codebook, and the state control parameters include at least one of on / off control parameters, beam scanning control parameters, power control parameters, detection cycle control parameters, azimuth control parameters, operating mode control parameters, or codebook set switching parameters. A node management method comprising the step of managing nodes based on the node management parameters.

2. The first pre-configured resource location is determined according to the cooperative setting command, and the cooperative setting command is Transmission frame number and slot number, The symbol start position of the first coordinated signaling, The symbol length of the first coordinated signaling, The frequency domain start position of the first coordinated signaling, The number of frequency domain resources occupied by the first coordinated signaling, The symbol start position of the second coordinated signaling for transmission to the aforementioned transmitting node, The symbol length of the second coordinated signaling to be transmitted to the aforementioned transmitting node, The frequency domain start position of the second coordinated signaling for transmission to the aforementioned transmitting node, The number of frequency domain resources occupied by the second coordinated signaling for transmission to the aforementioned transmitting node, The allocation status of frequency domain resources for multiple first coordinate signalings and second coordinate signalings for transmission to the transmitting node, or The number of delay slots or symbols of the second cooperative signaling for transmission to the transmitting node relative to the first cooperative signaling, The node management method according to claim 1, comprising at least one of the following.

3. The node management method according to claim 1, wherein the aforementioned cooperative setting command is set by wireless resource control or media access control.

4. The node management method according to claim 1, wherein the first cooperative signaling is transmitted by the transmitting node using a guard interval symbol.

5. The first coordinated signaling is, A node instruction identifier representing the number of nodes controlled by the first cooperative signaling, A target identity identifier representing node identity information controlled by the first cooperative signaling, Cell identity identifier, or System frame number, The node management method according to claim 1, further comprising at least one of the following.

6. If the first cooperative signaling includes the target identity identifier, the step of managing the node based on the node management parameters is: The node management method according to claim 5, further comprising the step of managing a node based on the node management parameters if the target identity identifier matches a pre-configured identity identifier.

7. The node management parameters are: Extended reference signals for timing synchronization, channel estimation, or power control. The node management method according to claim 1, further comprising:

8. The node management method according to claim 1, wherein the node management parameter is a pseudo-random sequence.

9. After receiving the first coordinated signaling from the transmitting node, The steps include generating a second cooperative signaling based on the first cooperative signaling, The node management method according to claim 1, further comprising the steps of setting up the second cooperative signaling at a second pre-configured resource location in accordance with the cooperative setting command received in advance, and feeding back the second cooperative signaling to the transmitting node.

10. The step of feeding back the second coordinated signaling to the transmitting node is: A step of feeding back the second coordinated signaling to the transmitting node using a guard interval symbol, A step of feeding back the second coordinated signaling to the transmitting node via a physical uplink channel, or The node management method according to claim 9, comprising any of the steps of feeding back the second cooperative signaling to the transmitting node in response to a transmission request.

11. The node management method described above is applied to relay nodes, and the second cooperative signaling is, The pre-configured identity identifier of the relay node, The signal indicating the success of the analysis of the relay node based on the first cooperative signaling, Analysis failure instruction of the relay node based on the first cooperative signaling, The current codebook identifier of the relay node, The current operating mode of the relay node, or The current functional status of the relay node, The node management method according to claim 9, comprising at least one of the following.

12. The node management method according to claim 9, wherein the second pre-configured resource location includes at least one of a time-domain location or a frequency-domain location.

13. The node management method according to claim 1, wherein the first pre-configured resource location includes at least one of a time-domain location or a frequency-domain location.

14. A node management method performed by a transmitting node, The steps include setting up a first cooperative signaling at a first pre-configured resource location in accordance with a cooperative setting command received in advance, A node management method comprising the steps of: transmitting the first coordinating signaling to a relay node so that the relay node analyzes the first coordinating signaling at a first pre-configured resource location to obtain node management parameters and manages the node based on the node management parameters, wherein the node management parameters include state control parameters for controlling the operating state and / or a codebook identifier for determining a target codebook and generating a beam based on the target codebook, and the state control parameters include at least one of on / off control parameters, beam scanning control parameters, power control parameters, detection period control parameters, azimuth control parameters, operating mode control parameters, or codebook set switching parameters.

15. After the step of transmitting the first coordinated signaling to the relay node, The steps include: receiving a second cooperative signal that the relay node has fed back based on the first cooperative signal; The node management method according to claim 14, further comprising the step of analyzing the second cooperative signaling at a second pre-configured resource location in accordance with the cooperative setting command received in advance.

16. The step of receiving a second cooperative signaling that the relay node has fed back based on the first cooperative signaling is: The relay node receives a second coordinated signaling fed back by a guard interval symbol, The relay node receives a second coordinated signaling fed back via a physical uplink channel. The node management method according to claim 15, comprising the step of receiving a second cooperative signaling fed back by the relay node in response to a transmission request.

17. It is a communication device, At least one processor, It includes at least one memory for storing at least one program, A communication device wherein at least one of the programs, when executed by at least one of the processors, performs the node management method according to any one of claims 1 to 13, or the node management method according to any one of claims 14 to 16.

18. A computer-readable storage medium storing a processor-executable program that, when executed by a processor, performs the node management method described in any one of claims 1 to 13, or the node management method described in any one of claims 14 to 16.

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