WO2024016654A1 - 节能控制方法、电子设备及计算机可读存储介质 - Google Patents
节能控制方法、电子设备及计算机可读存储介质 Download PDFInfo
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- WO2024016654A1 WO2024016654A1 PCT/CN2023/077223 CN2023077223W WO2024016654A1 WO 2024016654 A1 WO2024016654 A1 WO 2024016654A1 CN 2023077223 W CN2023077223 W CN 2023077223W WO 2024016654 A1 WO2024016654 A1 WO 2024016654A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0203—Power saving arrangements in the radio access network or backbone network of wireless communication networks
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W64/00—Locating users or terminals or network equipment for network management purposes, e.g. mobility management
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W16/00—Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
- H04W16/18—Network planning tools
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/02—Arrangements for optimising operational condition
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0203—Power saving arrangements in the radio access network or backbone network of wireless communication networks
- H04W52/0206—Power saving arrangements in the radio access network or backbone network of wireless communication networks in access points, e.g. base stations
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02D—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
- Y02D30/00—Reducing energy consumption in communication networks
- Y02D30/70—Reducing energy consumption in communication networks in wireless communication networks
Definitions
- the present application relates to the field of communication technology, especially an energy-saving control method, electronic equipment and computer-readable storage media.
- the current cell power-off energy-saving technology requires conditional judgment on whether to enter the energy-saving state.
- UE terminal equipment
- the cell is turned off for energy saving, all UEs in the entire cell can be migrated to other basic cells. Then the load of other basic cells is required to be low enough to accommodate all UEs in the cell.
- other basic cells The actual coverage of the basic cell may not be sufficient for all UEs to migrate, that is to say, the cell cannot ensure that it enters an energy-saving state.
- Embodiments of the present application provide an energy-saving control method, electronic equipment, and computer-readable storage media.
- inventions of the present application provide an energy-saving control method.
- the energy-saving control method includes: dividing the coverage area of the first cell into multiple logical grids, and generating a coverage association for each of the logical grids.
- Information wherein the coverage association information is used to characterize the correspondence between the logical grid and the coverage area of the second cell; when the grid positioning result of the terminal equipment UE located in the first cell is obtained, According to the grid positioning result and all the coverage area associated information, a target energy saving policy for controlling the energy saving state of the first cell is generated, wherein the grid positioning result is used to determine the current state of the UE. at least one of said logical grids.
- embodiments of the present application also provide an electronic device, including: at least one processor; at least one memory for storing at least one program; when at least one of the programs is executed by at least one of the processors, the Energy-saving control methods as described previously.
- embodiments of the present application also provide a computer-readable storage medium in which a processor-executable program is stored.
- the processor-executable program is executed by the processor, it is used to implement the above-mentioned steps. Energy saving control methods.
- Figure 1 is a schematic diagram of an application scenario of an energy-saving control method in related technologies
- Figure 2 is a flow chart of an energy-saving control method provided by an embodiment of the present application.
- Figure 3 is a flow chart of dividing the coverage area of the first cell into multiple logical grids and generating coverage associated information for each logical grid in the energy-saving control method provided by an embodiment of the present application;
- Figure 4 is a flow chart for obtaining measurement configuration results in an energy-saving control method provided by an embodiment of the present application
- Figure 5 is a flow chart of dividing the coverage area of the first cell into multiple logical grids and generating coverage associated information for each logical grid in the energy-saving control method provided by another embodiment of the present application;
- Figure 6 is a flow chart for obtaining grid positioning results in the energy-saving control method provided by an embodiment of the present application.
- Figure 7 is a flow chart for generating a first target energy-saving strategy in the energy-saving control method provided by an embodiment of the present application
- Figure 8 is a flow chart for determining that all second cells meet preset energy-saving conditions in the energy-saving control method provided by an embodiment of the present application;
- Figure 9 is a flow chart for obtaining the total number of UEs accommodated by each second cell in the energy-saving control method provided by an embodiment of the present application.
- Figure 10 is a schematic diagram of a network element used to perform an energy-saving control method provided by an embodiment of the present application
- Figure 11 is a schematic diagram of an application scenario of an energy-saving control method provided by an embodiment of the present application.
- Figure 12 is a flow chart of an energy-saving control method provided by another embodiment of the present application.
- Figure 13 is a schematic diagram of an electronic device provided by an embodiment of the present application.
- UE1, UE2 and UE3 in the energy-saving cell.
- UE1 and UE2 are within the scope of basic coverage cell 1
- UE3 is within the scope of basic coverage cell 2.
- the energy-saving cell does not know each The actual location information of the UE, that is to say, the energy-saving cell does not know which basic coverage cell each UE will migrate to when the energy-saving cell is closed, so the loads of basic coverage cell 1 and basic coverage cell 2 need to be low enough. That is, the energy-saving cell is allowed to enter the energy-saving state only when it can accommodate all three UEs.
- the energy-saving control method of one embodiment includes: dividing the coverage area of the first cell into multiple logical grids, and generating coverage association information for each logical grid, where the coverage association information is used to characterize the relationship between the logical grid and The corresponding relationship between the coverage areas of the second cell; when the grid positioning result of the terminal equipment UE located in the first cell is obtained, based on the grid positioning result and all coverage area related information, a data for controlling the first cell is generated.
- the target energy saving strategy of the energy saving state wherein the grid positioning result is used to determine at least one logical grid in which the UE is currently located.
- the relationship between the first cell and other related second cells is determined based on the logical grid. coverage area relationship. Since the obtained grid positioning result of the UE in the first cell can be used to determine the logical grid where the UE is located, it can be determined by combining the grid positioning result and all coverage area related information. Whether the UE can migrate to the corresponding second cell can generate a suitable target energy saving strategy. That is to say, it only needs to determine whether the second cell can accommodate the corresponding UE to enter, which effectively reduces the energy saving of the first cell. The difficulty of the state is conducive to increasing the energy-saving duration of the first cell, thereby filling the technical gaps in related methods.
- Figure 2 is a flow chart of an energy-saving control method provided by an embodiment of the present application.
- the energy-saving control method may include but is not limited to steps S110 to S120.
- Step S110 Divide the coverage area of the first cell into multiple logical grids, and generate coverage association information for each logical grid, where the coverage association information is used to characterize the relationship between the logical grid and the coverage area of the second cell. corresponding relationship.
- the coverage area of the first cell is divided into multiple logical grids and coverage association information of each logical grid is generated, so as to establish the logical grid granularity of the first cell and other related second cells.
- the coverage relationship between cells provides a corresponding basis for judgment on the energy-saving migration of the UE in the first cell in subsequent steps, which is conducive to further reliable generation of the target energy-saving strategy.
- steps S110 to S120 may be, but are not limited to, applied to wireless access networks. They may be applied to wireless networks that have multi-frequency point coverage (for example, greater than or equal to 2 layers) or multiple standard coverage (for example, greater than or equal to Layer 2), or those skilled in the art can choose appropriate scenarios for application, which are not limited here.
- multi-frequency point coverage for example, greater than or equal to 2 layers
- multiple standard coverage for example, greater than or equal to Layer 2
- the first cell is the cell to be energy-saving, which can be determined in advance
- the second cell is other cells associated with the first cell, which can be one or more.
- the types of the first cell and the second cell are not limited, for example, both can be Both are basic coverage cells, but in this scenario, the first cell is used as the basic coverage cell to be energy-saving. That is to say, the types of the first cell and the second cell are not strictly divided, which is hereby explained.
- the second cell includes at least one of the following:
- the type of the second cell may be set according to the application scenario, which is not limited here.
- different logical grids respectively occupy different coverage areas of the first cell.
- the corresponding relationship between it and the coverage area of the second cell may not be limited. That is to say , there may be multiple logical grids corresponding to the coverage area of the same second cell, or there may be one logical grid corresponding to the coverage areas of multiple second cells, etc., for example, one logical grid
- the corresponding coverage area is the overlapping coverage area of multiple second cells, which will not be described again here.
- Step S110 includes but is not limited to steps S111 to S112.
- Step S111 Obtain the measurement configuration result of the UE in the first cell
- Step S112 Divide the coverage area of the first cell into multiple logical grids according to the measurement configuration results, and generate coverage association information for each logical grid.
- each UE in the first cell is measured separately to obtain the measurement configuration result of the UE, that is, the coverage area information of the UE relative to other second cells is obtained, so that the first cell can be configured according to the measurement configuration result.
- the coverage area of the cell is divided into multiple logical grids, and coverage association information of each logical grid is generated. That is to say, the number of divided logical grids can be determined by, but is not limited to, the measurement configuration results of the UE.
- the number and type of UEs in the first cell are not limited and can be determined accordingly in the scenario.
- the UE can be but is not limited to a user unit, a user station, a mobile station, a mobile station, a remote station, Remote terminal, mobile device, user terminal, wireless communication equipment, user agent or user device, etc., and the presentation form in the application scenario can be different, that is to say, the UE can be different in different application scenarios, here Not limited.
- the measurement configuration result of the UE in the first cell there may be multiple ways of obtaining the measurement configuration result of the UE in the first cell, which are not limited here.
- the measurement configuration result of the UE can be obtained by performing basic coverage measurement on the UE in the first cell, where the basic coverage measurement can be same-frequency, inter-frequency or inter-system measurement, or by those skilled in the art according to the application. Scenario selection method for measurement configuration.
- Step S111 includes but is not limited to steps S1111 to S1112.
- Step S1111 Send measurement configuration information to the UE in the first cell
- Step S1112 Obtain the measurement configuration results measured and reported by the UE according to the measurement configuration information.
- the measurement configuration information is delivered to the UE in the first cell, so that the UE performs measurements according to the measurement configuration information to obtain the measurement configuration results, and reports the measurement configuration results obtained by the measurement, thereby ensuring that the measurement configuration results are obtained stably.
- the coverage association information can represent the information of the inter-frequency basic coverage cells and the inter-system basic coverage cells that can be measured in the coverage area corresponding to the logical grid, that is, the coverage area information of one or more second cells; It should be noted that the number and method of delivering measurement configuration information are not limited and can be selected and set according to the application scenario.
- the measurement configuration information includes:
- Step S112 includes but is not limited to step S1121.
- Step S1121 When the number of measurement configuration results meets the preset measurement configuration sample number condition, divide the coverage area of the first cell into multiple logical grids according to the measurement configuration results, and generate coverage association information for each logical grid.
- the judgment content that the number of measurement configuration results meets the preset measurement configuration sample number conditions is set, so that coverage of the first cell based on the measurement configuration results will only be performed when the number of measurement configuration results meets the corresponding requirements.
- the area is divided into multiple logical grids, and the coverage associated information of each logical grid is generated. This can ensure that the number of measurement configuration results is sufficient to meet the measurement requirements, and is conducive to improving the accuracy of the measurement configuration as a whole.
- the preset measurement configuration sample number condition can be set to a value according to the scenario, which is not limited here.
- Step S120 When the grid positioning result of the UE located in the first cell is obtained, generate a target energy-saving policy for controlling the energy-saving state of the first cell according to the grid positioning result and all coverage area related information, where, The positioning result is used to determine at least one logical grid where the UE is currently located.
- the relationship between the first cell and other related second cells is determined based on the logical grid.
- the coverage area relationship between Whether to migrate to the corresponding second cell so as to generate a suitable target energy-saving strategy. That is to say, it only needs to determine whether the second cell can accommodate the corresponding UE to enter, which effectively reduces the risk of the first cell entering the energy-saving state.
- the difficulty is conducive to increasing the energy-saving duration of the first cell, thereby filling the technical gaps in related methods.
- the UE may be in one logical grid or multiple logical grids, but no matter it belongs to In either case, since the coverage association information of each logical grid is used to characterize the correspondence between the logical grid and the coverage area of the second cell, the grid positioning results and all coverages corresponding to each logical grid can be based on The area association information is compared, so as to accurately determine whether the second cell can accommodate the corresponding UE to enter.
- the target energy-saving strategy may be any relevant operation related to controlling the energy-saving state of the first cell. That is to say, the target energy-saving strategy may be presented as various operations to control the energy-saving state of the first cell, which all belong to Within the protection scope of this embodiment, for example, maintaining the current access status of the cell, turning off the cell, etc. are not limited here.
- one embodiment of the present application further explains the grid positioning result of the UE in the first cell in step S120.
- the grid positioning result can be obtained by, but is not limited to, the following steps 200 to S300.
- Step S200 Perform positioning measurement on the UE to obtain the regional location information of the UE in the first cell;
- Step S300 Generate a grid positioning result of the UE according to the regional location information.
- the regional location information of the UE in the first cell is obtained by performing positioning measurement on the UE. That is to say, the specific location coordinates of the UE in the first cell are obtained, and then the logical location of the UE can be determined based on the specific location coordinates. On the grid, by recording the content information of the corresponding logical grid, the grid positioning result of the UE can be obtained. In this way, the corresponding relationship between the UE and the logical grid can be accurately and reliably established.
- GNSS Global Navigation Satellite System
- OTDOA Observed Time Difference of Arrival
- UDOA uplink Time Difference of Arrival
- step S120 in the case where the target energy saving strategy includes a first target energy saving strategy for controlling the first cell to enter the energy saving state, step S120 is further described.
- Step S120 includes but is not limited to step S121. .
- Step S121 When it is determined that all second cells meet the preset energy-saving conditions according to the grid positioning results and all coverage area related information, generate a first target energy-saving strategy.
- the second cell when it is determined that all second cells meet the preset energy-saving conditions based on the grid positioning results and all coverage area related information, it is confirmed that the second cell can provide guarantee for energy saving of the first cell, so that in this case, a generated
- the first target energy saving strategy in other words, if the second cell does not meet the preset energy saving conditions, the first target energy saving strategy will not be generated.
- the first cell needs to be further processed to achieve energy saving, so the need to wake up can be selected more accurately. energy-saving community, reducing unnecessary and useless wake-ups, which is conducive to further increasing the energy-saving time of the energy-saving community.
- the preset energy-saving conditions can be selected and set according to application scenarios, such as accommodation load conditions, business function conditions, etc., which are not limited here.
- the first target energy saving strategy may be any relevant operation related to controlling the first cell to enter the energy saving state. That is to say, the first target energy saving strategy may be presented as various operations to control the first cell to enter the energy saving state. status, which all fall within the protection scope of this embodiment, such as shutting down the cell, restricting external terminal access, etc., which are not limited here.
- one embodiment of the present application further performs "determining that all second cells meet the preset energy-saving conditions based on the grid positioning results and all coverage area association information" in step S121 when there are multiple UEs.
- Instructions include but are not limited to steps S1211 to S1212.
- Step S1211 According to the grid positioning result and all coverage area related information, obtain the total number of UEs corresponding to each second cell;
- Step S1212 When the sum of the total number of all UEs is not greater than the total load threshold, determine that all second cells meet the preset energy saving conditions, where the total load threshold is the sum of the preset load thresholds of each second cell.
- the total number of UEs accommodated by each second cell is obtained to calculate the sum of the total number of all UEs, and then the sum of the total number of all UEs is compared with the total load threshold, where the total load
- the threshold is the sum of the preset load thresholds of each second cell. That is to say, if the sum of the total number of all UEs is not greater than the total load threshold, then all second cells can fully accommodate the migrated UEs. In this case There is no need to worry about internal UE migration problems when moving to the first cell, and the energy-saving state can be entered. At the same time, it can also be seen that the UEs in the first cell can be migrated to which basic coverage cells (ie, the second cell) are judged one by one.
- the basic coverage cell only needs to be summarized and judged whether it can accommodate the UEs in the logical grid that has a coverage area relationship with it. It does not need to be able to accommodate all UEs in the first cell. Therefore, this effectively reduces the energy saving of the first cell. The difficulty of the state will help increase its energy-saving time.
- the preset load thresholds of each second cell can be set separately, and there is no correlation between them. That is to say, for different second cells, the values of the corresponding preset load thresholds It can be set according to application scenarios, cell characteristic information and other factors, and is not limited here.
- Step S1211 includes but is not limited to steps S12111 to S12112.
- Step S12111 Generate multiple UE positioning information according to the grid positioning result and all coverage area related information, where each UE positioning information is used to determine at least one second cell matched by each UE;
- Step S12112 Based on multiple UE positioning information, count the total number of UEs accommodated by each second cell.
- multiple UE positioning information is determined through the grid positioning results and all coverage area related information, so that all second cells matched by each UE can be determined. For example, one UE matches the second cell 6, and the other UE matches In the second cell 3, another UE matches the second cell 6, and then the total number of UEs accommodated by each second cell can be counted based on all UE positioning information, so that in subsequent steps, the total number of UEs accommodated by each second cell can be calculated. The total number of UEs is further judged.
- the UE positioning information can represent the situation that the UE matches multiple second cells at the same time.
- the counting method is similar to the above embodiment, that is, step S12112 can also be used to perform the counting, which will not be described again here.
- Figure 10 is a schematic diagram of a network element for executing an energy-saving control method provided by an embodiment of the present application, in which the first cell is the energy-saving cell and the basic coverage cell is the second cell.
- the energy-saving control method is executed based on the network element where the energy-saving community is located, where the network element where the energy-saving community is located includes:
- the measurement module is used to measure UE to realize the construction of logical grid of energy-saving cells
- the grid management module is used to perform grid positioning of all UEs in the energy-saving community
- the algorithm control module is used to perform algorithm detection for starting the energy-saving community and entering the energy-saving conditions.
- this embodiment can cover cell 1 from the basics through the cooperative application of the measurement module, grid management module and algorithm control module. Find the corresponding coverage areas of UE1, UE2 and UE3 in basic coverage cell 2 (shown as the dotted hexagonal box in Figure 11), and then determine that basic coverage cell 1 and basic coverage cell 2 can accommodate UE1, UE3 accordingly. After UE2 and UE3, control the energy-saving cell to enter the energy-saving state, migrate UE1 and UE2 to basic coverage cell 1, and migrate UE3 to basic coverage cell 2.
- an embodiment of the present application also includes but is not limited to steps S130 to S140.
- Step S130 When it is determined that all second cells do not meet the preset energy-saving conditions according to the grid positioning results and all coverage area related information, start the timer;
- Step S140 When the timer times out, re-acquire the grid positioning result for the UE, and regenerate the target energy-saving policy for controlling the energy-saving state of the first cell based on all coverage area association information and the re-obtained grid positioning result. .
- this step when it is determined based on the grid positioning results and all coverage area related information that all the second cells do not meet the preset energy-saving conditions, it means that the first cell at this time is not suitable to enter the energy-saving state, otherwise the first cell in the first cell will be All UEs cannot be migrated and accommodated, so the UEs can be repositioned and further processed after a period of time, so that all second cells can meet the preset energy-saving conditions, so that the first cell can be controlled to enter an energy-saving state.
- the time delay of the timer can be selectively set according to the scenario, which is not limited here.
- step S140 in this embodiment belongs to the same concept as the related embodiments of the above-mentioned energy-saving control method, the only difference is that step S140 is executed at intervals of a period of time. That is to say, step S140 is different from the above-mentioned energy-saving control method.
- the related embodiments are actually similar. Therefore, for other implementations and related implementations of step S140 in this embodiment, reference can be made to the related embodiments of the energy-saving control method in the above embodiment. To avoid redundancy, the Other implementations and related implementations of step S140 will not be described again here.
- intra-frequency periodic measurement, inter-frequency periodic measurement and inter-system periodic measurement are delivered to the UE in the energy-saving cell, and the measurement results are collected.
- the grid construction algorithm is executed to construct a logical grid for the energy-saving community.
- Each logical grid corresponds to the inter-frequency basic coverage cells and inter-frequency basic coverage cells that can be measured within its coverage area.
- the grid construction module is triggered to perform grid positioning on all UEs in the energy-saving cell, and determine which logical grids the UEs are in; each logical grid is used to determine which basic coverage cells the UEs in the corresponding logical grid can migrate to. For different basic coverage cells, determine the load of which UEs each basic coverage cell needs to accommodate based on the aggregated grid positioning results of all UEs. Based on the UE load expected to be accommodated by the basic coverage cell, determine whether all basic coverage cells can accommodate it. Corresponding UE load;
- the above judgment method can be:
- Cover cell set information C(i) records the corresponding relationship between UE(i) and basic coverage cells, that is, which basic coverage cells each UE(i) is within.
- UE(i) is any energy-saving cell. a UE;
- BC_UE(j) is the basic coverage cell when the energy-saving cell is closed.
- the service load of these UEs is expected to be migrated from the energy-saving cell to the corresponding basic coverage cell when the energy-saving cell is closed.
- it is determined whether each basic coverage cell can To accommodate the expected migration of UE load if yes, it is considered that the energy saving conditions are met, and the general process of closing the energy saving cell is executed, which will not be described in detail here; if not, the energy saving test and energy saving condition judgment can be continued after a period of time, that is to say , if the basic coverage cell does not meet the preset energy-saving conditions, then the energy-saving cell needs to be further processed to achieve energy saving. Therefore, this can more accurately select the energy-saving cell that needs to be woken up, reduce unnecessary and useless wake-up, and is beneficial to Further increase the energy-saving time of energy-saving communities
- the relationship between the first cell and other related second cells is determined based on the logical grid.
- Coverage area relationship since the obtained grid positioning result of the UE in the first cell can be used to determine the logical grid where the UE is located, therefore the combination of the grid positioning result and all coverage area related information can be used to determine whether the UE can Migrate to the corresponding second cell to generate a suitable target energy-saving strategy. In other words, you only need to determine whether the second cell can accommodate the corresponding UE. This effectively reduces the difficulty of the first cell entering the energy-saving state. , which is conducive to increasing the energy-saving duration of the first cell, thereby filling the technical gaps in related methods.
- one embodiment of the present application also discloses an electronic device 100, including: at least one processor 110; at least one memory 120 for storing at least one program; when at least one program is processed by at least one When executed, the processor 110 implements the energy-saving control method as in the previous embodiment.
- an embodiment of the present application also discloses a computer-readable storage medium in which computer-executable instructions are stored, and the computer-executable instructions are used to execute the energy-saving control method as in any of the previous embodiments.
- an embodiment of the present application also discloses a computer program product, which includes a computer program or computer instructions.
- the computer program or computer instructions are stored in a computer-readable storage medium.
- the processor of the computer device reads the computer program from the computer-readable storage medium.
- the computer program or computer instructions are obtained, and the processor executes the computer program or computer instructions, so that the computer device performs the energy-saving control method as in any of the previous embodiments.
- the relationship between the first cell and other related second cells is determined based on the logical grid.
- the coverage area relationship between Whether to migrate to the corresponding second cell so as to generate a suitable target energy-saving strategy. That is to say, it only needs to determine whether the second cell can accommodate the corresponding UE to enter, which effectively reduces the risk of the first cell entering the energy-saving state.
- the difficulty is conducive to increasing the energy-saving duration of the first cell, thereby filling the technical gaps in related methods.
- Computer storage media includes, but is not limited to, RAM, ROM, EEPROM, flash memory or other memory technology, CD-ROM, Digital Versatile Disk (DVD) or other optical disk storage, magnetic cassettes, tapes, disk storage or other magnetic storage devices, or may Any other medium used to store the desired information and that can be accessed by a computer.
- communication media typically embodies computer readable instructions, data structures, program modules or other data in a modulated data signal such as a carrier wave or other transport mechanism, and may include any information delivery media .
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Abstract
Description
Claims (13)
- 一种节能控制方法,包括:将第一小区的覆盖区域划分为多个逻辑栅格,并生成每个所述逻辑栅格的覆盖关联信息,其中,所述覆盖关联信息用于表征所述逻辑栅格与第二小区的覆盖区域之间的对应关系;当获取到位于所述第一小区中的终端设备UE的栅格定位结果,根据所述栅格定位结果和所有所述覆盖区域关联信息,生成用于控制所述第一小区的节能状态的目标节能策略,其中,所述栅格定位结果用于确定所述UE当前处于的至少一个所述逻辑栅格。
- 根据权利要求1所述的节能控制方法,其中,所述目标节能策略包括用于控制所述第一小区进入节能状态的第一目标节能策略;所述根据所述栅格定位结果和所有所述覆盖区域关联信息,生成用于控制所述第一小区的节能状态的目标节能策略,包括:当根据所述栅格定位结果和所有所述覆盖区域关联信息确定所有所述第二小区满足预设节能条件,生成所述第一目标节能策略。
- 根据权利要求2所述的节能控制方法,其中,所述UE为多个;所述根据所述栅格定位结果和所有所述覆盖区域关联信息确定所有所述第二小区满足预设节能条件,包括:根据所述栅格定位结果和所有所述覆盖区域关联信息,分别获取各个所述第二小区对应容纳的所述UE的总数量;当所有所述UE的总数量之和不大于总负荷阈值,确定所有所述第二小区满足预设节能条件,其中,所述总负荷阈值为各个所述第二小区的预设负荷阈值之和。
- 根据权利要求3所述的节能控制方法,其中,所述根据所述栅格定位结果和所有所述覆盖区域关联信息,分别获取各个所述第二小区对应容纳的所述UE的总数量,包括:根据所述栅格定位结果和所有所述覆盖区域关联信息生成多个UE定位信息,其中,每个所述UE定位信息用于确定每个所述UE所匹配的至少一个所述第二小区;根据所述多个UE定位信息,统计各个所述第二小区对应容纳的所述UE的总数量。
- 根据权利要求2所述的节能控制方法,其中,所述节能控制方法还包括:当根据所述栅格定位结果和所有所述覆盖区域关联信息确定所有所述第二小区不满足预设节能条件,启动定时器;当所述定时器超时,重新获取对于所述UE的栅格定位结果,并根据所有所述覆盖区域关联信息和重新获取到的所述栅格定位结果,重新生成用于控制所述第一小区的节能状态的目标节能策略。
- 根据权利要求1所述的节能控制方法,其中,所述将第一小区的覆盖区域划分为多个逻辑栅格,并生成每个所述逻辑栅格的覆盖关联信息,包括:获取所述第一小区中的所述UE的测量配置结果;根据所述测量配置结果将所述第一小区的覆盖区域划分为多个逻辑栅格,并生成每个所述逻辑栅格的覆盖关联信息。
- 根据权利要求6所述的节能控制方法,其中,所述获取所述第一小区中的所述UE的测量配置结果,包括:向所述第一小区中的所述UE下发测量配置信息;获取由所述UE根据所述测量配置信息进行测量并上报的测量配置结果。
- 根据权利要求7所述的节能控制方法,其中,所述测量配置信息包括:同频周期测量配置信息、异频周期测量配置信息、异系统周期测量配置信息。
- 根据权利要求6所述的节能控制方法,其中,所述根据所述测量配置结果将所述第一小区的覆盖区域划分为多个逻辑栅格,并生成每个所述逻辑栅格的覆盖关联信息,包括:当所述测量配置结果的数量满足预设测量配置样本数量条件,根据所述测量配置结果将所述第一小区的覆盖区域划分为多个逻辑栅格,并生成每个所述逻辑栅格的覆盖关联信息。
- 根据权利要求1所述的节能控制方法,其中,所述第一小区中的所述UE的栅格定位结果基于如下步骤获取得到:对所述UE进行定位测量,得到所述UE在所述第一小区中的区域位置信息;根据所述区域位置信息生成所述UE的栅格定位结果。
- 根据权利要求1所述的节能控制方法,其中,所述第二小区包括如下至少之一:异频基础覆盖小区;或异系统基础覆盖小区。
- 一种电子设备,包括:至少一个处理器;至少一个存储器,用于存储至少一个程序;当至少一个所述程序被至少一个所述处理器执行时实现如权利要求1至11任意一项所述的节能控制方法。
- 一种计算机可读存储介质,其中存储有处理器可执行的程序,所述处理器可执行的程序被处理器执行时用于实现如权利要求1至11任意一项所述的节能控制方法。
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| CN119421226A (zh) * | 2025-01-09 | 2025-02-11 | 智慧尘埃(成都)科技有限公司 | 基站节能方法、系统及存储介质 |
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| CN112911691A (zh) * | 2021-02-24 | 2021-06-04 | 中国联合网络通信集团有限公司 | 一种小区节能方法、设备及存储介质 |
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| CN118984484A (zh) * | 2024-09-12 | 2024-11-19 | 中国移动通信集团浙江有限公司 | 基站节能方法、装置及设备 |
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