Energy-saving configuration method and device, electronic equipment and storage medium

CN118828831BActive Publication Date: 2026-09-15CHINA MOBILE GRP FUJIAN CO LTD +1
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Patent Information

Application Number
CN202410885250.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-07-03
Publication Date
2026-09-15
Estimated Expiration
2044-07-03

AI Technical Summary

Technical Problem

[0003]目前,SMO仅基于单一维度的测量参数对网络功能及云平台进行节能配置,导致能耗降低较少

Benefits of technology

[0024] The energy-saving configuration method, apparatus, electronic device, and storage medium provided in this application send first information to a first object. The first information includes an energy-saving wake-up strategy, which includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. Therefore, by sending an energy-saving wake-up strategy containing the first measurement parameters and their corresponding priorities to the first object, energy-saving operations can be performed based on a comprehensive evaluation of the first measurement parameters and their corresponding priorities. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

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Abstract

The application provides an energy-saving configuration method and device, electronic equipment and a storage medium. The method comprises: sending first information to a first object, wherein the first information comprises an energy-saving wake-up strategy, and the energy-saving wake-up strategy comprises one or more of the following: energy-saving configuration information, wake-up configuration information, a first measurement parameter, and a priority corresponding to the first measurement parameter. Thus, by sending the energy-saving wake-up strategy containing the first measurement parameter and the priority corresponding thereto to the first object, the energy-saving operation is comprehensively evaluated based on the first measurement parameter and the priority corresponding thereto. Therefore, the accuracy of energy-saving wake-up is improved, and the energy consumption is effectively reduced.
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Description

Technical Field

[0001] This application relates to the field of communication technology, and in particular to an energy-saving configuration method, device, electronic device and storage medium. Background Technology

[0002] The Service Management and Orchestration (SMO) function defined in the O-RAN architecture distributes energy-saving configurations to network functions (including wireless network functions CU, DU, RU, as well as non-real-time wireless intelligent controllers (Non-RT RICs) and near-real-time wireless intelligent controllers (Near-RT RICs) and the cloud platform O-Cloud through standardized interfaces to perform energy-saving operations.

[0003] Currently, SMO only configures network functions and cloud platforms for energy saving based on a single dimension of measurement parameters, resulting in only a small reduction in energy consumption. Summary of the Invention

[0004] This application aims to at least partially address one of the technical problems in the related art.

[0005] Therefore, the first objective of this application is to propose an energy-saving configuration method to effectively reduce energy consumption.

[0006] The second objective of this application is to propose an energy-saving configuration device.

[0007] The third objective of this application is to propose an electronic device.

[0008] The fourth objective of this application is to provide a computer-readable storage medium.

[0009] The fifth objective of this application is to provide a computer program product.

[0010] To achieve the above objectives, a first aspect of this application proposes an energy-saving configuration method, comprising:

[0011] Send first information to a first object, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, a first measurement parameter, and the priority corresponding to the first measurement parameter.

[0012] To achieve the above objectives, a second aspect of this application proposes another energy-saving configuration method, including:

[0013] The system receives first information sent by a first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, a first measurement parameter, and the priority corresponding to the first measurement parameter.

[0014] To achieve the above objectives, a third aspect of this application provides an energy-saving configuration device, comprising:

[0015] The transceiver module is used to send first information to a first object, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and priority corresponding to the first measurement parameters.

[0016] To achieve the above objectives, a fourth aspect of this application provides an energy-saving configuration device, comprising:

[0017] The transceiver module is used to receive first information sent by the first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and priority corresponding to the first measurement parameters.

[0018] To achieve the above objectives, a fifth aspect of this application provides an electronic device comprising:

[0019] At least one processor; and

[0020] A memory that is communicatively connected to at least one processor; wherein,

[0021] The memory stores instructions that can be executed by at least one processor, which enables the at least one processor to perform the methods of the above embodiments.

[0022] To achieve the above objectives, a sixth aspect of this application provides a computer-readable storage medium storing computer instructions, wherein the computer instructions are used to cause a computer to perform the method according to the above embodiments.

[0023] To achieve the above objectives, a seventh aspect of this application provides a computer program product, including a computer program that, when executed by a processor, implements the method described in the above embodiments.

[0024] The energy-saving configuration method, apparatus, electronic device, and storage medium provided in this application send first information to a first object. The first information includes an energy-saving wake-up strategy, which includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. Therefore, by sending an energy-saving wake-up strategy containing the first measurement parameters and their corresponding priorities to the first object, energy-saving operations can be performed based on a comprehensive evaluation of the first measurement parameters and their corresponding priorities. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0025] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description

[0026] The above and / or additional aspects and advantages of this application will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, wherein:

[0027] Figure 1 This is a schematic flowchart illustrating an energy-saving configuration method provided in an embodiment of this application.

[0028] Figure 2 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0029] Figure 3 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0030] Figure 4 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0031] Figure 5 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0032] Figure 6 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0033] Figure 7 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0034] Figure 8 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0035] Figure 9 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0036] Figure 10 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0037] Figure 11 This is a schematic flowchart illustrating another energy-saving configuration method provided in an embodiment of this application;

[0038] Figure 12 This is a schematic diagram of the structure of an energy-saving configuration device provided in an embodiment of this application;

[0039] Figure 13 This is a schematic diagram of the structure of an energy-saving configuration device provided in an embodiment of this application. Detailed Implementation

[0040] The embodiments of this application are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this application, and should not be construed as limiting this application.

[0041] The energy-saving configuration method and apparatus of this application are described below with reference to the accompanying drawings.

[0042] The energy-saving configuration method of this application embodiment is executed by the energy-saving configuration device (hereinafter referred to as the energy-saving device) provided in this application embodiment. The device can be configured in computer equipment and terminal equipment to improve the accuracy of energy-saving wake-up and effectively reduce energy consumption.

[0043] In this application, the first device may include service management and orchestration functions, such as SMO, NFVO, MEO, OAM, etc. The first object includes one of the following: base station gNB, baseband processing unit BBU, centralized unit CU / O-RAN centralized unit O-CU, distributed unit / O-RAN distributed unit DU / O-DU, radio frequency unit RU, cloud platform O-Cloud, near-real-time wireless intelligent controller Near-RT RIC / xApp, etc., and this application does not limit this.

[0044] Figure 1 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first device.

[0045] like Figure 1 As shown, the energy-saving configuration method includes the following steps:

[0046] Step 101: Send first information to the first object, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters.

[0047] The energy-saving configuration information includes at least one energy-saving operation, and the wake-up configuration information includes at least one wake-up operation. The first measurement parameter includes one or more of the following: carrier dimension parameter, neighbor cell dimension parameter, cell dimension parameter, user dimension parameter, component dimension parameter, and device dimension parameter.

[0048] In this application, the first device can pre-generate an energy-saving wake-up strategy corresponding to the first object in the system, and then generate first information based on the energy-saving wake-up strategy corresponding to the first object. Thus, the first object performs energy-saving operations based on the first information. The energy-saving wake-up strategy is used to optimize the energy efficiency of the first object and reduce energy consumption.

[0049] For example, the power-saving wake-up strategy of RRU is shown in Table 1 below:

[0050] Table 1

[0051]

[0052] Among them, carrier power consumption and energy consumption are carrier-level parameters; neighbor cell throughput, PRB utilization, number of active users, number of RRC connections, number of neighbor cell handover failures, and neighbor cell energy-saving status are neighbor cell-level parameters; cell throughput, PRB utilization, number of active users, and number of RRC connections are cell-level parameters; VIP user 5QI, number of handovers, and path prediction are user-level parameters; earthquake sensing and air raid alarm response are environmental-level parameters.

[0053] The BBU's power-saving wake-up strategy is shown in Table 2 below:

[0054] Table 2

[0055]

[0056] The power-saving wake-up strategies for Near-RT RIC or Non-RT RIC are shown in Table 3 below:

[0057] Table 3

[0058]

[0059]

[0060] The cell KPIs corresponding to xApp / rApp, the number of cells corresponding to the Near-RT RIC / Non-RT RIC platform, and the cell KPIs corresponding to the Near-RT RIC / Non-RT RIC platform are cell-level parameters; the user KPIs corresponding to xApp / rApp, the number of users corresponding to the Near-RT RIC / Non-RT RIC platform, and the user KPIs corresponding to the Near-RT RIC / Non-RT RIC platform are user-level parameters; the number of tasks processed, computational load, and forwarding volume of xApp / rApp are component-level parameters; the number of xApp / rApps included in the Near-RT RIC / Non-RT RIC platform, and the forwarding data volume of the Near-RT RIC / Non-RT RIC platform are device-level parameters.

[0061] O-Cloud's power-saving wake-up strategy is shown in Table 4 below:

[0062] Table 4

[0063]

[0064] Among them, CPU utilization, CPU temperature, network card packet loss, number of CPU tasks, and number of I / O read / write operations are component-level parameters; server throughput is a device-level parameter.

[0065] It should be noted that the first measurement parameter, the priority of each first measurement parameter, the energy-saving configuration information, and the wake-up configuration information in the table above are only examples and are not intended to limit this application. The energy-saving wake-up strategy corresponding to the first object can be configured according to actual needs.

[0066] In this application, first information is sent to a first object, wherein the first information includes an energy-saving wake-up strategy, and the energy-saving wake-up strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. Therefore, by sending an energy-saving wake-up strategy containing the first measurement parameters and their corresponding priorities to the first object, energy-saving operations can be performed based on a comprehensive evaluation of the first measurement parameters and their corresponding priorities. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0067] Figure 2 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first device.

[0068] like Figure 2 As shown, the energy-saving configuration method includes the following steps:

[0069] Step 201: Send first information to the first object, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters.

[0070] The specific implementation process of step 201 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0071] Step 202: Determine whether the first object performs a power-saving operation and / or a wake-up operation.

[0072] In this application, the measured values ​​corresponding to each first measurement parameter in the energy-saving wake-up strategy corresponding to the first object can be determined by any monitoring or measurement means. The first device can measure and obtain the measured values ​​corresponding to the first measurement parameters in the energy-saving wake-up strategy corresponding to the first object. Alternatively, a measurement or monitoring device can obtain the measured values ​​corresponding to the first measurement parameters in the energy-saving wake-up strategy corresponding to the first object and send them to the first device. Or, the first object can measure and obtain the measured values ​​corresponding to the first measurement parameters in its corresponding energy-saving wake-up strategy and send them to the first device. After receiving the first data including the measured values ​​of the first measurement parameters corresponding to the first object, the first device determines whether the first object should perform an energy-saving operation and / or a wake-up operation based on the priority and measured values ​​of the first measurement parameters.

[0073] The priority and measured value of the first measurement parameter, and the process for determining whether the first object should perform energy-saving operations, can be found in the following formula:

[0074]

[0075] Among them, P i Let β be the measured value of the i-th first measurement parameter. i `k` represents the weighting coefficient for the i-th first measurement parameter, and `priority` represents the priority. The weighting coefficient is set according to the priority of the first measurement parameter; the higher the priority, the larger the corresponding weighting coefficient. Then, `k` is compared with a preset threshold `T` to determine whether to perform power-saving and / or wake-up operations. For example, when `k` is less than the preset threshold `T`, all or part of the power-saving wake-up operation in the power-saving wake-up strategy is executed; when `k` is greater than the preset threshold `T`, either no power-saving operation in the power-saving wake-up strategy is executed, or all or part of the wake-up operation in the power-saving wake-up strategy is executed.

[0076] It should be noted that the division of weighting coefficients for each priority level is only an example and is not intended to limit the weighting coefficients in this application.

[0077] Optionally, there can be multiple preset thresholds T, for example, T i ={T1,T2,...,T n When k satisfies a specific threshold T i Time (i.e., T) i ≤k <T i+1 ), determine the first object to execute the energy-saving configuration information T i The corresponding specific energy-saving operation, and / or execution of the wake-up configuration information T icorresponding specific wake-up operation. For example, if the first object is an RRU, when k<T1, all other energy-saving operations except the overall device shutdown in the energy-saving wake-up strategy corresponding to the RRU are performed; when T1≤k<T2, energy-saving operations including symbol shutdown and radio frequency channel shutdown are performed, and in the wake-up operations corresponding to the RRU according to the energy-saving wake-up strategy, all wake-up operations except the most basic digital circuit interface are turned on.

[0078] Optionally, after determining whether each operation object is a target operation object based on the measurement value of the first measurement parameter associated with each operation object in the energy-saving configuration information, if the number of the target operation objects is not zero, it is determined to perform the energy-saving operation.

[0079] In the present application, the energy-saving operations included in the energy-saving configuration information are composed of operation objects and operation behaviors. An association relationship between each operation object and a first measurement parameter can be preset in the system. Then, weighted summation is performed on the measurement values of the first measurement parameter associated with each operation object respectively, to determine an energy-saving index value corresponding to each operation object. If the energy-saving index value corresponding to an operation object is less than a preset threshold, the operation object is determined as a target operation object. Then, the energy-saving operation corresponding to the target operation object in the energy-saving configuration information is performed. Thus, fine-grained energy-saving management is realized, and the accuracy and efficiency of energy saving are improved.

[0080] Step 203: when it is determined that the first object performs an energy-saving operation and / or a wake-up operation, send second information to the first object, wherein the second information is used to instruct the first object to perform the energy-saving operation based on the energy-saving configuration information and / or perform the wake-up operation based on the wake-up configuration information.

[0081] In the present application, the second information can only be used to instruct whether the first object performs the energy-saving operation and / or the wake-up operation. Which specific energy-saving operations and / or wake-up operations are to be performed can be determined by the first object based on the measurement value, priority and the like of the corresponding first measurement parameter of the first object.

[0082] Alternatively, when the first device determines the specific energy-saving operation and / or wake-up operation performed by the first object, the second information can be generated based on the operation identifier corresponding to the specific energy-saving operation performed by the first object and / or the operation identifier corresponding to the wake-up operation, and the second information is sent to the first object through the interface between the first device and the first object. Accordingly, the first object can directly perform the energy-saving operation and / or wake-up operation included in the second information. Therefore, the accuracy and efficiency of energy saving are improved.

[0083] In this application, first information is sent to a first object, including an energy-saving wake-up strategy. This strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. Then, it is determined whether the first object should perform an energy-saving operation and / or a wake-up operation. If it is determined that the first object should perform the energy-saving operation and / or a wake-up operation, second information is sent to the first object. This second information instructs the first object to perform the energy-saving operation based on the energy-saving configuration information and / or the wake-up operation based on the wake-up configuration information. Thus, energy-saving operations are performed based on a comprehensive evaluation of the first measurement parameters and their corresponding priorities. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0084] Figure 3 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first device.

[0085] like Figure 3 As shown, the energy-saving configuration method includes the following steps:

[0086] Step 301: Send first information to the first object, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters.

[0087] Step 302: Receive the first data corresponding to the first object, wherein the first data includes the measured value of the first measurement parameter.

[0088] The specific implementation process of steps 301-302 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0089] Step 303: Based on the priority and measurement value of the first measurement parameter, determine whether the first object should perform energy-saving operation and / or wake-up operation.

[0090] In this application, the energy-saving wake-up strategy also includes a first threshold corresponding to the first measurement parameter. Based on the priority of the first measurement parameter, the measured value, and the first threshold, it can be determined whether the first object performs an energy-saving operation and / or a wake-up operation.

[0091] For example, the difference between a first threshold and the measured value for each first measurement parameter can be determined. Then, based on the difference and priority corresponding to each first measurement parameter, the energy-saving index value corresponding to the first object is determined. Next, if the energy-saving index value is less than a second threshold, it is determined that the first object will execute all or part of the energy-saving operations in its corresponding energy-saving wake-up strategy. If the energy-saving index value is greater than or equal to the second threshold, it is determined that the first object will not execute the energy-saving operations in its corresponding energy-saving wake-up strategy, or will execute all or part of the wake-up operations in its corresponding energy-saving wake-up strategy.

[0092] The process for determining the energy-saving index value corresponding to the first object can be found in the following formula:

[0093]

[0094] Among them, P i Let β be the measured value of the i-th first measurement parameter. i For the priority of the i-th first measurement parameter, Th i The first threshold is the first measurement parameter corresponding to the i-th first measurement parameter.

[0095] Alternatively, determine the difference between the measured value of the third measurement parameter and its corresponding first threshold, where the three measurement parameters are the neighbor dimension parameters in the first measurement parameter. Then, based on the difference and priority corresponding to each third measurement parameter, determine the wake-up index value corresponding to the first object. Then, if the wake-up index value is greater than the third threshold, determine that the first object performs all or part of the wake-up operation in its corresponding energy-saving wake-up strategy. If the wake-up index value is less than or equal to the third threshold, determine that the first object does not perform the wake-up operation.

[0096] Step 304: If it is determined that the first object is performing a power-saving operation and / or a wake-up operation, send second information to the first object, wherein the second information is used to instruct the first object to perform a power-saving operation based on the power-saving configuration information and / or to perform a wake-up operation based on the wake-up configuration information.

[0097] The specific implementation process of step 304 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0098] In this application, first information is sent to a first object, including an energy-saving wake-up strategy. This strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters. Then, first data corresponding to the first object is received, including the measured value of the first measurement parameters. Based on the priority and measured value of the first measurement parameters, it is determined whether the first object should perform an energy-saving operation and / or a wake-up operation. If it is determined that the first object should perform an energy-saving operation and / or a wake-up operation, second information is sent to the first object, instructing the first object to perform an energy-saving operation based on the energy-saving configuration information and / or a wake-up operation based on the wake-up configuration information. Thus, energy-saving operations are performed based on a comprehensive evaluation of the first measurement parameters and their corresponding priorities. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0099] Figure 4 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first device.

[0100] like Figure 4 As shown, the energy-saving configuration method includes the following steps:

[0101] Step 401: Send first information to the first object, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters.

[0102] The specific implementation process of step 401 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0103] Step 402: Receive second data of the second object collected based on the energy-saving wake-up strategy corresponding to the second object, wherein the second data includes the measured value of each first measurement parameter in the energy-saving wake-up strategy corresponding to the second object, and the second object is associated with the first object.

[0104] In this application, the second object may have an upstream or downstream relationship with the first object, meaning the second object can be an upstream or downstream device of the first object; this application does not impose any restrictions on this. For example, RU is associated with BBU, Near-RT RIC / Non-RT RIC is associated with BBU, and O-Cloud is associated with BBU / Near-RT RIC / Non-RT RIC.

[0105] In this application, the first device can generate and send its corresponding energy-saving wake-up strategy to the second object, and receive second data containing the measurement values ​​of each first measurement parameter in the energy-saving wake-up strategy corresponding to the second object.

[0106] Step 403: Based on the priority and measurement value of the first measurement parameters corresponding to the second object and the first object, determine whether the first object performs energy-saving operation and / or wake-up operation.

[0107] The process of determining whether the first object performs energy-saving operation and / or wake-up operation based on the priority and measurement value of the first measurement parameters corresponding to the second object and the first object can be found in the following formula:

[0108]

[0109] Among them, P i Let β be the measured value of the i-th first measurement parameter. i The priority of the i-th first measurement parameter is given. The first measurement parameter includes the first measurement parameter corresponding to the second object and the first measurement parameter corresponding to the first object. Then, k is compared with a preset threshold T to determine whether to perform power saving and / or wake-up operations.

[0110] Step 404: If it is determined that the first object is performing a power-saving operation and / or a wake-up operation, a second message is sent to the first object, wherein the second message is used to instruct the first object to perform a power-saving operation based on the power-saving configuration information and / or to perform a wake-up operation based on the wake-up configuration information.

[0111] The specific implementation process of step 404 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0112] In this application, first information is sent to a first object, including an energy-saving wake-up strategy. This strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. Then, second data of the second object, collected based on the energy-saving wake-up strategy corresponding to the second object, is received. This second data includes the measured value of each first measurement parameter in the energy-saving wake-up strategy corresponding to the second object. The second object is associated with the first object, and based on the priority and measured values ​​of the first measurement parameters corresponding to the second object and the first object, it is determined whether the first object should perform an energy-saving operation and / or a wake-up operation. If it is determined that the first object should perform an energy-saving operation and / or a wake-up operation, second information is sent to the first object, instructing the first object to perform an energy-saving operation based on the energy-saving configuration information and / or a wake-up operation based on the wake-up configuration information. Thus, energy-saving operations are performed through comprehensive and collaborative evaluation based on the priority and measured values ​​of the first measurement parameters corresponding to the first and second objects, achieving energy-saving collaboration between the first and second objects. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0113] Figure 5This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first device.

[0114] like Figure 5 As shown, the energy-saving configuration method includes the following steps:

[0115] Step 501: Send first information to the first object, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters.

[0116] The specific implementation process of step 501 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0117] Step 502: Receive third information corresponding to the second object, wherein the third information includes at least one of the following: operation instruction, target operation object, energy-saving wake-up state, and the target operation object is the operation object corresponding to the energy-saving operation performed by the second object.

[0118] The energy-saving wake-up state includes activating energy-saving mode, deactivating energy-saving mode, and activating wake-up. Operation instructions can be used to instruct specific energy-saving operations and / or wake-up operations, or to indicate whether to perform an energy-saving operation. The second object is associated with the first object. For example, the second object and the first object have an upstream / downstream relationship, meaning the second object can be upstream or downstream equipment of the first object; this application does not impose any restrictions in this regard.

[0119] In this application, when the second object has completed the energy-saving operation and / or wake-up operation, or is preparing to perform the energy-saving operation and / or wake-up operation, it can generate third information and send the third information to the first device.

[0120] For example, the BBU generates third information based on its current power-saving wake-up state and sends it to the SMO. The SMO then triggers RU power-saving or wake-up based on this third information. When the BBU finishes performing a power-saving operation and / or a wake-up operation, or when the BBU is about to perform a power-saving operation, the BBU generates third information based on the power-saving operation and / or wake-up operation it is performing or preparing to perform and sends it to the SMO. The SMO then triggers RU power-saving or wake-up based on this third information.

[0121] Step 503: Based on the third information, determine whether the first object performs a power-saving operation or a wake-up operation.

[0122] In this application, when the operation instruction indicates a specific energy-saving operation and / or wake-up operation, the energy-saving operation and / or wake-up operation to be performed by the first object can be determined based on the operation instruction.

[0123] When the operation instruction indicates the execution of an energy-saving operation, and the third information contains a target operation object, the first device can match the target operation object with each energy-saving operation in the corresponding energy-saving configuration information to determine that the first object executes the energy-saving operation corresponding to the target operation object in its corresponding energy-saving configuration information.

[0124] When the energy-saving wake-up state is "energy-saving enabled," the first object is determined to perform an energy-saving operation. When the energy-saving wake-up state is "energy-saving disabled," the first object is determined not to perform an energy-saving operation. When the energy-saving wake-up state is "wake-up enabled," the first object is determined to perform a wake-up operation. When the first object in deep sleep does not have the interface function to monitor the wake-up of the second object, the first device triggers the hardware wake-up of the first object. Furthermore, the specific energy-saving operations to be performed can be determined by the first object based on the measured value and priority of the first measurement parameter in its corresponding energy-saving wake-up strategy.

[0125] Step 504: If it is determined that the first object is performing a power-saving operation and / or a wake-up operation, send second information to the first object, wherein the second information is used to instruct the first object to perform a power-saving operation based on the power-saving configuration information and / or to perform a wake-up operation based on the wake-up configuration information.

[0126] The specific implementation process of step 504 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0127] In this application, first information is sent to a first object, including an energy-saving wake-up strategy. This strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, a first measurement parameter, and the priority corresponding to the first measurement parameter. Then, third information corresponding to a second object is received, including at least one of the following: an operation instruction, a target operation object, and an energy-saving wake-up status. The target operation object is the operation object corresponding to the energy-saving operation performed by the second object. Based on the third information, it is determined whether the first object performs an energy-saving operation or a wake-up operation. Then, if it is determined that the first object performs an energy-saving operation and / or a wake-up operation, second information is sent to the first object, instructing the first object to perform an energy-saving operation based on the energy-saving configuration information and / or a wake-up operation based on the wake-up configuration information. Thus, the third information sent by the second object determines whether the first object performs an energy-saving operation or a wake-up operation, achieving energy-saving coordination between the first and second objects. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0128] Figure 6 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first object.

[0129] like Figure 6 As shown, the energy-saving configuration method includes the following steps:

[0130] Step 601: Receive first information sent by the first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters.

[0131] The energy-saving configuration information includes energy-saving operations, and the wake-up configuration information includes wake-up operations. The first measurement parameters include one or more of the following: carrier dimension parameters, neighbor cell dimension parameters, cell dimension parameters, user dimension parameters, component dimension parameters, and device dimension parameters.

[0132] In this application, the first device can pre-generate an energy-saving wake-up strategy corresponding to the first object in the system, and then generate first information based on the energy-saving wake-up strategy corresponding to the first object. Thus, the first object performs energy-saving operations based on the first information. The energy-saving wake-up strategy is used to optimize the energy efficiency of the first object and reduce energy consumption.

[0133] For example, the power-saving wake-up strategy of RRU is shown in Table 1 below:

[0134] Table 1

[0135]

[0136] Among them, carrier power consumption and energy consumption are carrier-level parameters; neighbor cell throughput, PRB utilization, number of active users, number of RRC connections, number of neighbor cell handover failures, and neighbor cell energy-saving status are neighbor cell-level parameters; cell throughput, PRB utilization, number of active users, and number of RRC connections are cell-level parameters; VIP user 5QI, number of handovers, and path prediction are user-level parameters; earthquake sensing and air raid alarm response are environmental-level parameters.

[0137] The BBU's power-saving wake-up strategy is shown in Table 2 below:

[0138] Table 2

[0139]

[0140]

[0141] The power-saving wake-up strategies for Near-RT RIC or Non-RT RIC are shown in Table 3 below:

[0142] Table 3

[0143]

[0144] The cell KPIs corresponding to xApp / rApp, the number of cells corresponding to the Near-RT RIC / Non-RT RIC platform, and the cell KPIs corresponding to the Near-RT RIC / Non-RT RIC platform are cell-level parameters; the user KPIs corresponding to xApp / rApp, the number of users corresponding to the Near-RT RIC / Non-RT RIC platform, and the user KPIs corresponding to the Near-RT RIC / Non-RT RIC platform are user-level parameters; the number of tasks processed, computational load, and forwarding volume of xApp / rApp are component-level parameters; the number of xApp / rApps included in the Near-RT RIC / Non-RT RIC platform, and the forwarding data volume of the Near-RT RIC / Non-RT RIC platform are device-level parameters.

[0145] O-Cloud's power-saving wake-up strategy is shown in Table 4 below:

[0146] Table 4

[0147]

[0148] Among them, CPU utilization, CPU temperature, network card packet loss, number of CPU tasks, and number of I / O read / write operations are component-level parameters; server throughput is a device-level parameter.

[0149] It should be noted that the first measurement parameter, the priority of each first measurement parameter, the energy-saving configuration information, and the wake-up configuration information in the table above are only examples and are not intended to limit this application. The energy-saving wake-up strategy corresponding to the first object can be configured according to actual needs.

[0150] In this application, a first device receives first information sent by itself. This first information includes an energy-saving wake-up strategy, which comprises one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. Thus, a first object receives the energy-saving wake-up strategy sent by the first device, which includes the first measurement parameters and their corresponding priorities, to facilitate energy-saving operations based on a comprehensive evaluation of the first measurement parameters and their corresponding priorities. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0151] Figure 7 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first object.

[0152] like Figure 7 As shown, the energy-saving configuration method includes the following steps:

[0153] Step 701: Receive first information sent by the first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and priority corresponding to the first measurement parameters.

[0154] The specific implementation process of step 701 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0155] Step 702: Determine whether to perform power-saving operation and / or wake-up operation.

[0156] In this application, the first device can determine whether the first object should perform an energy-saving operation and / or a wake-up operation based on the priority and measurement value of a first measurement parameter, or based on third information corresponding to the second object, and then send second information to the first object to instruct whether the first object should perform an energy-saving operation and / or a wake-up operation, or to instruct the first object to perform a specific energy-saving operation and / or a wake-up operation. Alternatively, the first object can determine whether to perform an energy-saving operation or a wake-up operation based on the priority and measurement value of the first measurement parameter in its corresponding energy-saving wake-up strategy, or based on the third information corresponding to the second object. The third information includes at least one of the following: an operation instruction, a target operation object, and an energy-saving wake-up status, wherein the target operation object is the operation object corresponding to the energy-saving operation performed by the second object. The second information is used to instruct the first object to perform an energy-saving operation based on energy-saving configuration information and / or to perform a wake-up operation based on wake-up configuration information.

[0157] Step 703: If it is determined that an energy-saving operation and / or a wake-up operation shall be performed, the energy-saving operation and / or the wake-up operation shall be performed based on the energy-saving configuration information.

[0158] In this application, the first object can determine whether to perform a power-saving operation and / or a wake-up operation by parsing the second information sent by the first device. If it is determined that a power-saving operation should be performed, the first object can determine the specific power-saving operation and / or wake-up operation to be performed in its corresponding power-saving wake-up strategy based on the measured value and priority of the first measurement parameter in its corresponding power-saving wake-up strategy. When the second information contains a specific power-saving operation and / or wake-up operation to be performed, the power-saving operation and / or wake-up operation contained in the second information can be executed.

[0159] In this application, a first device sends first information, which includes an energy-saving wake-up strategy. The energy-saving wake-up strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. Then, it is determined whether to perform an energy-saving operation and / or a wake-up operation. If it is determined that an energy-saving operation and / or a wake-up operation should be performed, the energy-saving operation and / or the wake-up operation are performed based on the energy-saving configuration information. Thus, an energy-saving operation is performed based on a comprehensive evaluation of the first measurement parameters and their corresponding priorities. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0160] Figure 8 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first object.

[0161] like Figure 8 As shown, the energy-saving configuration method includes the following steps:

[0162] Step 801: Receive first information sent by the first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and priority corresponding to the first measurement parameters.

[0163] The specific implementation process of step 801 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0164] Step 802: Acquire and send first data to the first device, wherein the first data includes the measurement value corresponding to the first measurement parameter.

[0165] In this application, the first object can determine the measurement values ​​corresponding to each first measurement parameter in the energy-saving wake-up strategy corresponding to the first object through any monitoring or measurement method. Then, first data is generated based on the measurement value corresponding to each first measurement parameter, and the first data is sent to the first device.

[0166] Step 803: Receive second information sent by the first device, wherein the second information is used to instruct the first object to perform energy-saving operation based on energy-saving configuration information and / or perform wake-up operation based on wake-up configuration information.

[0167] In this application, the first device determines whether the first object should perform a power-saving operation and / or a wake-up operation based on the priority and measurement value of each first measurement parameter, and generates second information. Then, the second information is sent to the first object. The second information may be used solely to indicate whether the first object should perform a power-saving operation and / or a wake-up operation.

[0168] Alternatively, if the first device determines the specific energy-saving operation and / or wake-up operation performed by the first object, it can generate second information based on the operation identifier corresponding to the specific energy-saving operation and / or wake-up operation performed by the first object, and send the second information to the first object through the interface with the first object. Thus, the first object can directly execute the energy-saving operation and / or wake-up operation contained in the second information, thereby improving the accuracy and efficiency of energy-saving execution.

[0169] Step 804: Analyze the second information to determine whether to perform power-saving operation and / or wake-up operation.

[0170] In this application, the second information is only used to indicate whether the first object is performing a power-saving operation and / or a wake-up operation. By parsing the second information, it can be determined whether a power-saving operation and / or a wake-up operation is performed. If it is determined that a power-saving operation and / or a wake-up operation is performed, the specific power-saving operation or the specific wake-up operation can be determined based on the first data.

[0171] When the second information contains an operation identifier corresponding to an energy-saving operation and / or an operation identifier corresponding to a wake-up operation, the second information can be parsed to obtain the operation identifier, and the energy-saving operation or wake-up operation corresponding to that operation identifier in the energy-saving wake-up strategy can be executed.

[0172] Step 805: If it is determined that an energy-saving operation and / or a wake-up operation shall be performed, the energy-saving operation and / or the wake-up operation shall be performed based on the energy-saving configuration information.

[0173] The specific implementation process of steps 804-805 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0174] In this application, a first device sends first information, which includes an energy-saving wake-up strategy. The energy-saving wake-up strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, a first measurement parameter, and the priority corresponding to the first measurement parameter. Then, the first device acquires and sends first data, which includes the measurement value corresponding to the first measurement parameter. Next, the first device sends second information, which instructs a first object to perform an energy-saving operation based on the energy-saving configuration information and / or a wake-up operation based on the wake-up configuration information. The second information is parsed to determine whether to perform the energy-saving operation and / or the wake-up operation. If it is determined that the energy-saving operation and / or the wake-up operation should be performed, then the energy-saving operation and / or the wake-up operation are performed based on the energy-saving configuration information. Thus, an energy-saving operation is performed based on a comprehensive evaluation of the first measurement parameter and its corresponding priority. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0175] Figure 9 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first object.

[0176] like Figure 9 As shown, the energy-saving configuration method includes the following steps:

[0177] Step 901: Receive first information sent by the first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters.

[0178] Step 902: Obtain first data, wherein the first data includes the measurement value corresponding to each first measurement parameter.

[0179] The specific implementation process of step 901 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0180] Step 903: Based on the measured value and priority of the first measurement parameter, determine whether to perform energy-saving operation and / or wake-up operation.

[0181] In this application, the process for determining whether the first object performs energy-saving operations can be found in the following formula:

[0182]

[0183]

[0184] Among them, P i Let β be the measured value of the i-th first measurement parameter. i `k` represents the weighting coefficient for the i-th first measurement parameter, and `priority` represents the priority. The weighting coefficient is set according to the priority of the first measurement parameter; the higher the priority, the larger the corresponding weighting coefficient. Then, `k` is compared with a preset threshold `T` to determine whether to perform power-saving and / or wake-up operations. For example, when `k` is less than the preset threshold `T`, all or part of the power-saving wake-up operation in the power-saving wake-up strategy is executed; when `k` is greater than the preset threshold `T`, either no power-saving operation in the power-saving wake-up strategy is executed, or all or part of the wake-up operation in the power-saving wake-up strategy is executed.

[0185] It should be noted that the division of weighting coefficients for each priority level is only an example and is not intended to limit the weighting coefficients in this application.

[0186] Optionally, there can be multiple preset thresholds T, for example, T i ={T1,T2,...,T n When k satisfies a specific threshold T itime (i.e., T i ≤k<T i+1 ), determining that the first object performs the specific energy-saving operation corresponding to T i in the energy-saving configuration information, and / or performs the specific wake-up operation corresponding to T i in the wake-up configuration information. For example, if the first object is a Radio Remote Unit (RRU), when k<T1, all other energy-saving operations in the energy-saving and wake-up strategy corresponding to the RRU are performed except turning off the entire device; when T1≤k<T2, energy-saving operations including symbol turning off and radio frequency channel turning off are performed, and wake-up operations in which all components except the most basic digital circuit interface are turned on are performed in the energy-saving and wake-up strategy corresponding to the RRU.

[0187] Optionally, the energy-saving and wake-up strategy further includes a first threshold corresponding to the first measurement parameter, and whether to perform an energy-saving operation and / or a wake-up operation can be determined based on the priority, the measured value of the first measurement parameter and the first threshold.

[0188] For example, the difference between the first threshold and the measured value of each first measurement parameter can be determined. Then, the energy-saving index value corresponding to the first object is determined based on the difference and priority corresponding to each first measurement parameter. Then, when the energy-saving index value is less than a second threshold, it is determined that the first object performs all or part of energy-saving operations in its corresponding energy-saving and wake-up strategy. When the energy-saving index value is greater than or equal to the second threshold, it is determined that the first object does not perform the energy-saving operations in its corresponding energy-saving and wake-up strategy, or performs all or part of wake-up operations in its corresponding energy-saving and wake-up strategy.

[0189] Wherein, the process of determining the energy-saving index value corresponding to the first object can be referred to the following formula:

[0190]

[0191] Wherein, P i is the measured value of the i-th first measurement parameter, β i is the priority of the i-th first measurement parameter, Th i is the first threshold corresponding to the i-th first measurement parameter.

[0192] Alternatively, determining the difference between the measured value of a third measurement parameter and its corresponding first threshold, wherein the third measurement parameter is a neighboring cell dimension parameter among the first measurement parameters, then determining the wake-up index value corresponding to the first object based on the difference and priority corresponding to each third measurement parameter, then, when the wake-up index value is greater than a third threshold, determining that the first object performs all or part of wake-up operations in its corresponding energy-saving and wake-up strategy, and when the wake-up index value is less than or equal to the third threshold, determining that the first object does not perform the wake-up operation.

[0193] Optionally, after determining whether each operation object is a target operation object based on the measured value of the first measurement parameter associated with each operation object in the energy-saving configuration information, if the number of target operation objects is not zero, it is determined to perform an energy-saving operation.

[0194] In this application, the energy-saving operations included in the energy-saving configuration information consist of operation objects and operation behaviors. The association between each operation object and a first measurement parameter can be pre-set in the system. Then, the measured values ​​of the first measurement parameter associated with each operation object are weighted and summed to determine the energy-saving index value corresponding to each operation object. If the energy-saving index value corresponding to a certain operation object is less than a preset threshold, that operation object is determined as the target operation object. Then, the energy-saving operation corresponding to the target operation object in the energy-saving configuration information is executed. This achieves fine-grained energy-saving management and improves the accuracy and efficiency of energy saving.

[0195] Step 904: If it is determined that an energy-saving operation and / or a wake-up operation shall be performed, the energy-saving operation and / or the wake-up operation shall be performed based on the energy-saving configuration information.

[0196] The specific implementation process of step 904 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0197] In this application, a first information sent by a first device is received, wherein the first information includes an energy-saving wake-up strategy, which includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. First data is acquired, wherein the first data includes the measurement value corresponding to each first measurement parameter. Based on the measurement value and priority of the first measurement parameter, it is determined whether to perform an energy-saving operation and / or a wake-up operation. If it is determined that an energy-saving operation and / or a wake-up operation should be performed, the energy-saving operation and / or the wake-up operation are performed based on the energy-saving configuration information. Thus, an energy-saving operation is performed based on a comprehensive evaluation of the first measurement parameters and their corresponding priorities. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0198] Figure 10 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first object.

[0199] like Figure 10 As shown, the energy-saving configuration method includes the following steps:

[0200] Step 1001: Receive first information sent by the first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and priority corresponding to the first measurement parameters.

[0201] The specific implementation process of step 1001 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0202] Step 1002: Receive second data of the second object collected based on the energy-saving wake-up strategy corresponding to the second object, wherein the second data includes the measured value of each first measurement parameter in the energy-saving wake-up strategy corresponding to the second object, and the second object is associated with the first object.

[0203] In this application, the second object may have an upstream or downstream relationship with the first object, meaning the second object can be an upstream or downstream device of the first object; this application does not impose any restrictions on this. For example, RU is associated with BBU, Near-RT RIC / Non-RT RIC is associated with BBU, and O-Cloud is associated with BBU / Near-RT RIC / Non-RT RIC.

[0204] In this application, the first device can generate and send its corresponding energy-saving wake-up strategy to the second object, which can then measure the value corresponding to each first measurement parameter in the energy-saving wake-up strategy. Afterwards, the second object can generate second data based on the measured value of the first measurement parameter and send it to the first object. Alternatively, the second object can send the second data to the first device, which will then forward it to the first object.

[0205] Step 1003: Based on the priority and measurement value of each first measurement parameter corresponding to the second object and the first object, determine whether to perform energy-saving operation and / or wake-up operation.

[0206] The process of determining whether the first object performs energy-saving operation and / or wake-up operation based on the priority and measurement value of the first measurement parameters corresponding to the second object and the first object can be found in the following formula:

[0207]

[0208] Among them, P i Let β be the measured value of the i-th first measurement parameter. i The priority of the i-th first measurement parameter is given. The first measurement parameter includes the first measurement parameter corresponding to the second object and the first measurement parameter corresponding to the first object. Then, k is compared with a preset threshold T to determine whether to perform power saving and / or wake-up operations.

[0209] Step 1004: If it is determined that an energy-saving operation and / or a wake-up operation shall be performed, the energy-saving operation and / or the wake-up operation shall be performed based on the energy-saving configuration information.

[0210] The specific implementation process of step 1004 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0211] In this application, a first device sends first information, which includes an energy-saving wake-up strategy. The energy-saving wake-up strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. The application also receives second data of a second object collected based on the energy-saving wake-up strategy corresponding to the second object. The second data includes the measured value of each first measurement parameter in the energy-saving wake-up strategy corresponding to the second object. The second object is associated with the first object. Then, based on the priority and measured value of each first measurement parameter corresponding to the second object and the first object, it is determined whether to perform an energy-saving operation and / or a wake-up operation. If it is determined that an energy-saving operation and / or a wake-up operation should be performed, the energy-saving operation and / or the wake-up operation are performed based on the energy-saving configuration information and / or the wake-up configuration information. Thus, by comprehensively and collaboratively evaluating the priority and measured value of the first measurement parameters corresponding to the first object and the second object, energy-saving operations are performed, achieving energy-saving collaboration between the first object and the second object. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0212] Figure 11 This is a flowchart illustrating an energy-saving configuration method provided in an embodiment of this application, executed by a first object.

[0213] like Figure 11 As shown, the energy-saving configuration method includes the following steps:

[0214] Step 1101: Receive first information sent by the first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and priority corresponding to the first measurement parameters.

[0215] The specific implementation process of step 1101 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0216] Step 1102: Receive third information corresponding to the second object, wherein the third information includes at least one of the following: operation instruction, target operation object, energy-saving wake-up state, and the target operation object is the operation object corresponding to the energy-saving operation performed by the second object.

[0217] The energy-saving wake-up state includes activating energy-saving mode, deactivating energy-saving mode, and activating wake-up. Operation instructions can be used to instruct specific energy-saving operations and / or wake-up operations, or to indicate whether to perform an energy-saving operation. The second object is associated with the first object. For example, the second object and the first object have an upstream / downstream relationship, meaning the second object can be upstream or downstream equipment of the first object; this application does not impose any restrictions in this regard.

[0218] In this application, when the second object completes or prepares to perform a power-saving operation and / or a wake-up operation, it can generate third information and send the third information to the first object. Alternatively, the second object can send the third information to the first device, which will then forward it to the first object.

[0219] For example, the BBU generates third information based on the current power-saving wake-up state, and then sends the third information to the RU or SMO, which forwards the third information to the RU. When the BBU finishes performing a power-saving operation and / or a wake-up operation, or when the BBU is about to perform a power-saving operation, the BBU generates third information based on the power-saving operation and / or wake-up operation it is performing or about to perform, and then sends the third information to the RU or SMO, which forwards the third information to the RU.

[0220] Step 1103: Based on the third information, determine whether to perform a power-saving operation or a wake-up operation.

[0221] In this application, when the operation instruction indicates a specific energy-saving operation and / or wake-up operation, the energy-saving operation and / or wake-up operation to be performed by the first object can be determined based on the operation instruction.

[0222] When the operation instruction indicates the execution of an energy-saving operation, and the third information contains a target operation object, the first device can match the target operation object with each energy-saving operation in the corresponding energy-saving configuration information to determine that the first object executes the energy-saving operation corresponding to the target operation object in its corresponding energy-saving configuration information.

[0223] When the energy-saving wake-up state is "energy-saving enabled," the first object is determined to perform an energy-saving operation. When the energy-saving wake-up state is "energy-saving disabled," the first object is determined not to perform an energy-saving operation. When the energy-saving wake-up state is "wake-up enabled," the first object is determined to perform a wake-up operation. When the first object in deep sleep does not have the interface function to monitor the wake-up of the second object, the first device triggers the hardware wake-up of the first object. Furthermore, the specific energy-saving operations to be performed can be determined by the first object based on the measured value and priority of the first measurement parameter in its corresponding energy-saving wake-up strategy.

[0224] Step 1104: If it is determined that an energy-saving operation and / or a wake-up operation shall be performed, the energy-saving operation and / or the wake-up operation shall be performed based on the energy-saving configuration information.

[0225] The specific implementation process of step 1104 in this application can be found in the detailed description of any embodiment of this application, and will not be repeated here.

[0226] In the process of clearing the system, the system receives first information sent by a first device, which includes an energy-saving wake-up strategy. This energy-saving wake-up strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters. The system also receives third information corresponding to a second object, which includes at least one of the following: an operation instruction, a target operation object, and an energy-saving wake-up status. The target operation object is the operation object corresponding to the energy-saving operation performed by the second object. Based on the third information, the system determines whether to perform an energy-saving operation or a wake-up operation. If it determines to perform an energy-saving operation and / or a wake-up operation, it performs the energy-saving operation and / or the wake-up operation based on the energy-saving configuration information. Thus, the third information sent by the second object determines whether the first object performs an energy-saving operation, achieving energy-saving coordination between the first and second objects. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0227] To achieve the above embodiments, this application also proposes an energy-saving configuration device.

[0228] Figure 12 This is a schematic diagram of an energy-saving configuration device provided in an embodiment of this application.

[0229] like Figure 12 As shown, the energy-saving configuration device includes a transceiver module 1210 and a processing module 1220.

[0230] The transceiver module 1210 is used to send first information to the first object, wherein the first information includes an energy-saving wake-up strategy, and the energy-saving wake-up strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters.

[0231] Optionally, the processing module 1220 is used for:

[0232] Determine whether the first object performs a power-saving operation and / or a wake-up operation;

[0233] If it is determined that the first object is performing a power-saving operation and / or a wake-up operation, a second message is sent to the first object, wherein the second message is used to instruct the first object to perform a power-saving operation based on the power-saving configuration information and / or to perform a wake-up operation based on the wake-up configuration information.

[0234] Optionally, the above processing module 1220 is used for:

[0235] Receive first data corresponding to the first object, wherein the first data includes the measured value of the first measurement parameter;

[0236] Based on the priority and measurement value of the first measurement parameter, it is determined whether the first object should perform energy-saving operation and / or wake-up operation.

[0237] Optionally, the energy-saving wake-up strategy also includes a first threshold corresponding to the first measurement parameter. The aforementioned processing module 1220 is used for:

[0238] Based on the priority of the first measurement parameter, the measured value, and the first threshold, it is determined whether the first object performs energy-saving operation and / or wake-up operation.

[0239] Optionally, the above processing module 1220 is used for:

[0240] Determine the difference between the first threshold and the measured value for each first measurement parameter;

[0241] Based on the difference and priority corresponding to each first measurement parameter, the energy-saving index value corresponding to the first object is determined;

[0242] If the energy-saving index value is less than the second threshold, the first object is determined to perform energy-saving operation;

[0243] If the energy-saving index value is greater than or equal to the second threshold, it is determined that the first object will not perform energy-saving operations.

[0244] Optionally, the above processing module 1220 is used for:

[0245] Determine the difference between the measured value of the third measurement parameter and its corresponding first threshold, wherein the three measurement parameters are the neighbor dimension parameters among the first measurement parameters;

[0246] Based on the difference and priority corresponding to each third measurement parameter, determine the wake-up indicator value corresponding to the first object;

[0247] If the wake-up indicator value is greater than the third threshold, the first object is determined to perform the wake-up operation;

[0248] If the wake-up indicator value is less than or equal to the third threshold, it is determined that the first object will not perform a wake-up operation.

[0249] Optionally, the above processing module 1220 is used for:

[0250] Receive second data of the second object collected based on the energy-saving wake-up strategy corresponding to the second object, wherein the second data includes the measured value of each first measurement parameter in the energy-saving wake-up strategy corresponding to the second object, and the second object is associated with the first object;

[0251] Based on the priority and measurement value of the first measurement parameters corresponding to the second object and the first object, it is determined whether the first object performs energy-saving operation and / or wake-up operation.

[0252] Optionally, the above processing module 1220 is used for:

[0253] Receive third information sent by the second object, wherein the third information includes at least one of the following: operation instruction, target operation object, energy-saving wake-up status, and the target operation object is the operation object corresponding to the energy-saving operation performed by the second object;

[0254] Based on the third information, determine whether the first object should perform an energy-saving operation or a wake-up operation.

[0255] Optionally, the first measurement parameter may include one or more of the following: carrier dimension parameter, neighbor cell dimension parameter, cell dimension parameter, user dimension parameter, component dimension parameter, and device dimension parameter.

[0256] Optionally, the above-mentioned processing module 1220 is also used for:

[0257] Generate an energy-saving wake-up strategy.

[0258] It should be noted that the foregoing explanation of the energy-saving configuration method embodiment also applies to the energy-saving configuration device of this embodiment, and will not be repeated here.

[0259] In this application, first information is sent to a first object, wherein the first information includes an energy-saving wake-up strategy, and the energy-saving wake-up strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and priorities corresponding to the first measurement parameters. Therefore, by sending an energy-saving wake-up strategy containing the first measurement parameters and their corresponding priorities to the first object, energy-saving operations can be performed based on a comprehensive evaluation of the first measurement parameters and their corresponding priorities. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption.

[0260] Figure 13 This is a schematic diagram of an energy-saving configuration device provided in an embodiment of this application.

[0261] like Figure 13 As shown, the energy-saving configuration device includes a transceiver module 1310 and a processing module 1320.

[0262] The transceiver module 1310 is used to receive first information sent by the first device, wherein the first information includes an energy-saving wake-up strategy, and the energy-saving wake-up strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, first measurement parameters, and the priority corresponding to the first measurement parameters.

[0263] Optionally, the processing module 1320 is used for:

[0264] Determine whether to perform energy-saving operations and / or wake-up operations;

[0265] If it is determined that an energy-saving operation and / or a wake-up operation should be performed, the energy-saving operation and / or the wake-up operation should be performed based on the energy-saving configuration information.

[0266] Optionally, the processing module 1320 is used for:

[0267] Acquire and send first data to the first device, wherein the first data includes the measurement value corresponding to the first measurement parameter;

[0268] The device receives second information sent by the first device, wherein the second information is used to instruct the first object to perform energy-saving operation based on energy-saving configuration information and / or to perform wake-up operation based on wake-up configuration information;

[0269] The second piece of information is analyzed to determine whether to perform energy-saving operations and / or wake-up operations.

[0270] Optionally, the second information includes operation instructions and / or target operation objects, where the target operation objects are one or more operation objects in the energy-saving configuration information or wake-up configuration information. The processing module 1320 is used for:

[0271] Based on the operation instructions and the corresponding operation configuration information of the target operation object in the energy-saving configuration information or wake-up configuration information, perform energy-saving operations and / or wake-up operations.

[0272] Optionally, the processing module 1320 is used for:

[0273] Acquire first data, wherein the first data includes the measurement value corresponding to each first measurement parameter;

[0274] Based on the measured value and priority of the first measurement parameter, determine whether to perform energy-saving operation and / or wake-up operation.

[0275] Optionally, the processing module 1320 is used for:

[0276] Based on the priority of the first measurement parameter, the measured value, and the first threshold, it is determined whether to perform energy-saving operation and / or wake-up operation.

[0277] Optionally, the processing module 1320 is used for:

[0278] Determine the difference between the first threshold and the measured value for each first measurement parameter;

[0279] Based on the difference and priority corresponding to each first measurement parameter, the energy-saving index value corresponding to the first object is determined;

[0280] If the energy-saving index value is less than the second threshold, it is determined that an energy-saving operation should be performed.

[0281] If the energy-saving index value is greater than or equal to the second threshold, it is determined that no energy-saving operation will be performed.

[0282] Optionally, the processing module 1320 is used for:

[0283] Determine the difference between the measured value of the third measurement parameter and its corresponding first threshold, wherein the three measurement parameters are the neighbor dimension parameters among the first measurement parameters;

[0284] Based on the difference and priority corresponding to each third measurement parameter, determine the wake-up indicator value corresponding to the first object;

[0285] If the wake-up indicator value is greater than the third threshold, a wake-up operation will be performed.

[0286] If the wake-up indicator value is less than or equal to the third threshold, it is determined that no wake-up operation will be performed.

[0287] Optionally, the processing module 1320 is used for:

[0288] Based on the measured value of the first measurement parameter associated with each operation object in the energy-saving configuration information, determine whether each operation object is the target operation object;

[0289] If the number of target objects is not zero, determine to perform energy-saving operations.

[0290] Optionally, the processing module 1320 is used for:

[0291] Receive second data of the second object based on the energy-saving wake-up strategy corresponding to the second object, wherein the second data includes the measured value of each first measurement parameter in the energy-saving wake-up strategy corresponding to the second object, and the second object is associated with the first object;

[0292] Based on the priority and measurement value of each first measurement parameter corresponding to the second object and the first object, determine whether to perform energy-saving operation and / or wake-up operation.

[0293] Optionally, the processing module 1320 is used for:

[0294] Receive third information corresponding to the second object, wherein the third information includes operation instructions and / or target operation object, and the target operation object is the operation object corresponding to the energy-saving operation performed by the second object;

[0295] Based on the third information, determine whether to perform energy-saving operation or wake-up operation.

[0296] Optionally, the first measurement parameter may include one or more of the following: carrier dimension parameter, neighbor cell dimension parameter, cell dimension parameter, user dimension parameter, component dimension parameter, and device dimension parameter.

[0297] It should be noted that the foregoing explanation of the energy-saving configuration method embodiment also applies to the energy-saving configuration device of this embodiment, and will not be repeated here.

[0298] In this application, a first device sends first information, which includes an energy-saving wake-up strategy. The energy-saving wake-up strategy includes one or more of the following: energy-saving configuration information, wake-up configuration information, a first measurement parameter, and a priority corresponding to the first measurement parameter. Thus, a first object receives the energy-saving wake-up strategy sent by the first device, which includes the first measurement parameter and its corresponding priority, to facilitate energy-saving operation based on a comprehensive evaluation of the first measurement parameter and its corresponding priority. This improves the accuracy of energy-saving wake-up and effectively reduces energy consumption. To implement the above embodiments, this application also proposes an electronic device, including: a processor and a memory communicatively connected to the processor; the memory stores computer execution instructions; the processor executes the computer execution instructions stored in the memory to implement the method provided in the foregoing embodiments.

[0299] To implement the above embodiments, this application also proposes a computer-readable storage medium storing computer-executable instructions, which, when executed by a processor, are used to implement the methods provided in the foregoing embodiments.

[0300] To implement the above embodiments, this application also proposes a computer program product, including a computer program that, when executed by a processor, implements the methods provided in the foregoing embodiments.

[0301] The collection, storage, use, processing, transmission, provision, and disclosure of user personal information involved in this application comply with relevant laws and regulations and do not violate public order and good morals.

[0302] It should be noted that personal information collected from users should be used for legitimate and reasonable purposes and should not be shared or sold outside of these legitimate uses. Furthermore, such collection / sharing should only be conducted after receiving the user's informed consent, including but not limited to notifying the user to read the user agreement / user notice and sign an agreement / authorization that includes authorization of relevant user information before the user uses the function. In addition, any necessary steps must be taken to protect and safeguard access to such personal information data and ensure that others with access to personal information data comply with their privacy policies and procedures.

[0303] This application is intended to provide an implementation scheme for users to selectively prevent the use or access to their personal information data. Specifically, this application is intended to provide hardware and / or software to prevent or block access to such personal information data. Once personal information data is no longer needed, risks can be minimized by restricting data collection and deleting data. Furthermore, where applicable, such personal information is de-identified to protect user privacy.

[0304] In the foregoing descriptions of the embodiments, the terms "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0305] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0306] Any process or method description in the flowchart or otherwise herein can be understood as representing a module, segment, or portion of code comprising one or more executable instructions for implementing custom logic functions or processes, and the scope of the preferred embodiments of this application includes additional implementations in which functions may be performed not in the order shown or discussed, including substantially simultaneously or in reverse order depending on the functions involved, as should be understood by those skilled in the art to which embodiments of this application pertain.

[0307] The logic and / or steps represented in the flowchart or otherwise described herein, for example, can be considered as a sequenced list of executable instructions for implementing logical functions, and can be embodied in any computer-readable medium for use by, or in conjunction with, an instruction execution system, apparatus, or device (such as a computer-based system, a processor-including system, or other system that can fetch and execute instructions from, an instruction execution system, apparatus, or device). For the purposes of this specification, "computer-readable medium" can be any means that can contain, store, communicate, propagate, or transmit programs for use by, or in conjunction with, an instruction execution system, apparatus, or device. More specific examples (a non-exhaustive list) of computer-readable media include: an electrical connection having one or more wires (electronic device), a portable computer disk drive (magnetic device), random access memory (RAM), read-only memory (ROM), erasable and programmable read-only memory (EPROM or flash memory), fiber optic devices, and portable optical disc read-only memory (CDROM). Alternatively, the computer-readable medium may be paper or other suitable media on which the program can be printed, since the program can be obtained electronically, for example, by optically scanning the paper or other medium, followed by editing, interpreting, or otherwise processing as necessary, and then stored in a computer memory.

[0308] It should be understood that various parts of this application can be implemented using hardware, software, firmware, or a combination thereof. In the above embodiments, multiple steps or methods can be implemented using software or firmware stored in memory and executed by a suitable instruction execution system. For example, if implemented in hardware as in another embodiment, it can be implemented using any one or a combination of the following techniques known in the art: discrete logic circuits having logic gates for implementing logical functions on data signals, application-specific integrated circuits (ASICs) having suitable combinational logic gates, programmable gate arrays (PGAs), field-programmable gate arrays (FPGAs), etc.

[0309] Those skilled in the art will understand that all or part of the steps of the methods in the above embodiments can be implemented by a program instructing related hardware. The program can be stored in a computer-readable storage medium, and when executed, the program includes one or a combination of the steps of the method embodiments.

[0310] Furthermore, the functional units in the various embodiments of this application can be integrated into a processing module, or each unit can exist physically separately, or two or more units can be integrated into a module. The integrated module can be implemented in hardware or as a software functional module. If the integrated module is implemented as a software functional module and sold or used as an independent product, it can also be stored in a computer-readable storage medium.

[0311] The storage medium mentioned above can be a read-only memory, a disk, or an optical disk, etc. Although embodiments of this application have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting this application. Those skilled in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of this application.

Claims

1. An energy-saving configuration method, characterized in that, Performed by a first device, the method includes: Send first information to a first object, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, a first measurement parameter, and the priority corresponding to the first measurement parameter; Receive first data corresponding to the first object, wherein the first data includes the measured value of the first measurement parameter; Based on the priority and measurement value of the first measurement parameter, determine whether the first object performs energy-saving operation and / or wake-up operation; If it is determined that the first object is performing a power-saving operation and / or a wake-up operation, a second message is sent to the first object, wherein the second message is used to instruct the first object to perform a power-saving operation based on the power-saving configuration information and / or to perform a wake-up operation based on the wake-up configuration information.

2. The method as described in claim 1, characterized in that, The energy-saving wake-up strategy further includes a first threshold corresponding to the first measurement parameter. The step of determining whether the first object performs an energy-saving operation and / or a wake-up operation based on the priority and measurement value of the first measurement parameter includes: Based on the priority, measured value, and first threshold of the first measurement parameter, it is determined whether the first object performs energy-saving operation and / or wake-up operation.

3. The method as described in claim 2, characterized in that, The step of determining whether the first object performs a power-saving operation and / or a wake-up operation based on the priority, measured value, and first threshold of the first measurement parameter includes: Determine the difference between a first threshold and the measured value for each of the first measurement parameters; Based on the difference and priority corresponding to each of the first measurement parameters, the energy-saving index value corresponding to the first object is determined; If the energy-saving index value is less than the second threshold, it is determined that the first object performs an energy-saving operation; If the energy-saving index value is greater than or equal to the second threshold, it is determined that the first object does not perform energy-saving operations.

4. The method as described in claim 2, characterized in that, The step of determining whether the first object performs a power-saving operation and / or a wake-up operation based on the priority, measured value, and first threshold of the first measurement parameter includes: Determine the difference between the measured value of the third measurement parameter and its corresponding first threshold, wherein the third measurement parameter is the neighbor dimension parameter in the first measurement parameter; Based on the difference and priority corresponding to each of the third measurement parameters, the wake-up index value corresponding to the first object is determined; If the wake-up indicator value is greater than the third threshold, it is determined that the first object performs a wake-up operation; If the wake-up indicator value is less than or equal to the third threshold, it is determined that the first object will not perform a wake-up operation.

5. The method as described in claim 1, characterized in that, Determining whether the first object performs a power-saving operation and / or a wake-up operation includes: Receive second data of the second object collected based on the energy-saving wake-up strategy corresponding to the second object, wherein the second data includes the measured value of each first measurement parameter in the energy-saving wake-up strategy corresponding to the second object, and the second object is associated with the first object; Based on the priority and measurement value of the first measurement parameter corresponding to the second object and the first object, it is determined whether the first object performs a power-saving operation and / or a wake-up operation.

6. The method as described in claim 1, characterized in that, Determining whether the first object performs a power-saving operation and / or a wake-up operation includes: Receive third information sent by the second object, wherein the third information includes at least one of the following: operation instruction, target operation object, energy-saving wake-up state, wherein the target operation object is the operation object corresponding to the energy-saving operation performed by the second object; Based on the third information, it is determined whether the first object performs a power-saving operation or a wake-up operation.

7. The method as described in claim 1, characterized in that, The first measurement parameter includes one or more of the following: carrier dimension parameter, neighbor cell dimension parameter, cell dimension parameter, user dimension parameter, component dimension parameter, and device dimension parameter.

8. The method as described in claim 1, characterized in that, Also includes: Generate the energy-saving wake-up strategy.

9. An energy-saving configuration method, characterized in that, The method, executed by the first object, includes: Receive first information sent by a first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameter, and priority corresponding to the first measurement parameter; Acquire first data, wherein the first data includes the measurement value corresponding to each of the first measurement parameters; Based on the measured value and priority of the first measurement parameter, determine whether to perform energy-saving operation and / or wake-up operation; If it is determined that an energy-saving operation and / or a wake-up operation should be performed, the energy-saving operation and / or the wake-up operation should be performed based on the energy-saving configuration information.

10. The method as described in claim 9, characterized in that, The determination of whether to perform power-saving operation and / or wake-up operation includes: Acquire and send first data to the first device, wherein the first data includes the measurement value corresponding to the first measurement parameter; The device receives second information sent by the first device, wherein the second information is used to instruct the first object to perform energy-saving operation based on the energy-saving configuration information and / or perform wake-up operation based on the wake-up configuration information; The second information is parsed to determine whether to perform a power-saving operation and / or a wake-up operation.

11. The method as described in claim 10, characterized in that, The second information includes operation instructions and / or target operation objects, wherein the target operation objects are one or more operation objects in the energy-saving configuration information or the wake-up configuration information, and the step of performing energy-saving operation based on the energy-saving configuration information and / or performing wake-up operation based on the wake-up configuration information includes: Based on the operation instructions and the operation configuration information corresponding to the target operation object in the energy-saving configuration information or the wake-up configuration information, perform energy-saving operations and / or wake-up operations.

12. The method as described in claim 9, characterized in that, The energy-saving wake-up strategy further includes a first threshold corresponding to the first measurement parameter, and determining whether to perform an energy-saving operation and / or a wake-up operation includes: Based on the priority, measured value, and first threshold of the first measurement parameter, it is determined whether to perform energy-saving operation and / or wake-up operation.

13. The method as described in claim 12, characterized in that, The step of determining whether to perform power-saving operation and / or wake-up operation based on the priority, measured value, and first threshold of the first measurement parameter includes: Determine the difference between a first threshold and the measured value for each of the first measurement parameters; Based on the difference and priority corresponding to each of the first measurement parameters, the energy-saving index value corresponding to the first object is determined; If the energy-saving index value is less than the second threshold, it is determined that an energy-saving operation will be performed; If the energy-saving index value is greater than or equal to the second threshold, it is determined that no energy-saving operation will be performed.

14. The method as described in claim 12, characterized in that, The step of determining whether to perform power-saving operation and / or wake-up operation based on the priority, measured value, and first threshold of the first measurement parameter includes: Determine the difference between the measured value of the third measurement parameter and its corresponding first threshold, wherein the third measurement parameter is the neighboring dimension parameter in the first measurement parameter; Based on the difference and priority corresponding to each of the third measurement parameters, the wake-up index value corresponding to the first object is determined; If the wake-up indicator value is greater than the third threshold, it is determined to perform a wake-up operation; If the wake-up indicator value is less than or equal to the third threshold, it is determined that no wake-up operation will be performed.

15. The method as described in claim 9, characterized in that, The step of determining whether to perform energy-saving operation and / or wake-up operation based on the measured value and priority of the first measurement parameter includes: Based on the measured value of the first measurement parameter associated with each operation object in the energy-saving configuration information, determine whether each operation object is a target operation object; If the number of the target operation objects is not zero, it is determined that an energy-saving operation will be performed.

16. The method as described in claim 9, characterized in that, The determination of whether to perform power-saving operation and / or wake-up operation includes: Receive second data of the second object based on the energy-saving wake-up strategy corresponding to the second object, wherein the second data includes the measured value of each first measurement parameter in the energy-saving wake-up strategy corresponding to the second object, and the second object is associated with the first object; Based on the priority and measurement value of each first measurement parameter corresponding to the second object and the first object, it is determined whether to perform energy-saving operation and / or wake-up operation.

17. The method as described in claim 10, characterized in that, The determination of whether to perform power-saving operation and / or wake-up operation includes: Receive third information corresponding to the second object, wherein the third information includes an operation instruction and / or a target operation object, and the target operation object is the operation object corresponding to the energy-saving operation performed by the second object; Based on the third information, determine whether to perform an energy-saving operation or a wake-up operation.

18. The method as described in claim 9, characterized in that, The first measurement parameter includes one or more of the following: carrier dimension parameter, neighbor cell dimension parameter, cell dimension parameter, user dimension parameter, component dimension parameter, and device dimension parameter.

19. An energy-saving configuration device, characterized in that, Performed by a first device, the apparatus includes: The transceiver module is used to send first information to a first object, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and priority corresponding to the first measurement parameters; A processing module is configured to receive first data corresponding to the first object, wherein the first data includes the measured value of the first measurement parameter; Based on the priority and measurement value of the first measurement parameter, determine whether the first object performs energy-saving operation and / or wake-up operation; If it is determined that the first object is performing a power-saving operation and / or a wake-up operation, a second message is sent to the first object, wherein the second message is used to instruct the first object to perform a power-saving operation based on the power-saving configuration information and / or to perform a wake-up operation based on the wake-up configuration information.

20. An energy-saving configuration device, characterized in that, Performed by a first object, the apparatus includes: The transceiver module is used to receive first information sent by the first device, wherein the first information includes a power-saving wake-up strategy, and the power-saving wake-up strategy includes one or more of the following: power-saving configuration information, wake-up configuration information, first measurement parameters, and priority corresponding to the first measurement parameters; The processing module is used to acquire first data, wherein the first data includes the measurement value corresponding to each of the first measurement parameters; Based on the measured value and priority of the first measurement parameter, determine whether to perform energy-saving operation and / or wake-up operation; If it is determined that an energy-saving operation and / or a wake-up operation should be performed, the energy-saving operation and / or the wake-up operation should be performed based on the energy-saving configuration information.

21. An electronic device, characterized in that, include: processor; The memory that is communicatively connected to the processor The memory stores computer-executed instructions. The processor executes computer execution instructions stored in the memory to implement the method as described in any one of claims 1-18.

22. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores computer-executable instructions, which, when executed by a processor, are used to implement the method as described in any one of claims 1-18.

23. A computer program product, characterized in that, Includes a computer program that, when executed by a processor, implements the method of any one of claims 1-18.

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