A cell energy saving management method and device and a storage medium
By acquiring the cell status and controlling the energy-saving status in a timely manner, the problem of base station alarms being difficult to detect during cell energy saving is solved, thereby improving user experience and terminal call quality.
Patent Information
- Application Number
- CN202310739038.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-20
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2043-06-20
AI Technical Summary
In existing technologies, it is difficult to detect base station alarms in a timely manner during the energy-saving process of a cell, which leads to a decline in terminal call quality and an inability to handle base station alarms in a timely manner, thus affecting user experience.
By acquiring the status of the first cell of the cell to be saved, and controlling the cell to exit the energy-saving state when the state is abnormal, base station alarms can be detected in a timely manner; when the state is normal, the status of neighboring cells can be acquired to ensure that neighboring cells are not abnormal and to avoid base station alarms caused by cell energy saving.
It enables rapid detection of base station alarms without any perceived change in terminal call quality, improving user experience and preventing call quality degradation caused by cell energy saving.
Smart Images

Figure CN116634539B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of communication, in particular to a cell energy saving management method and device and storage medium. BACKGROUND
[0002] With the popularization of the fifth generation mobile communication technology, the energy consumption of the mobile communication network is increasing. In order to reduce the energy consumption of the mobile communication network, the cell in the base station needs to be energy saving. However, the base station to which the cell belongs may generate a base station alarm in the process of cell energy saving, thereby affecting the call quality of the terminal in the cell. Therefore, the above-mentioned base station alarm needs to be discovered in time, so as to guarantee the call quality of the terminal in the cell.
[0003] The prior art usually determines whether the base station to which the cell belongs generates a base station alarm by monitoring the key performance indicator (KPI) indicators (such as wireless network coverage, abnormal call drop rate, call connection establishment success rate, etc.) of the cell. However, the above-mentioned method has a certain lag, that is, when the call quality of the terminal in the cell decreases obviously, the base station alarm of the base station to which the cell belongs can be determined by the KPI indicators. SUMMARY
[0004] The present application provides a cell energy saving management method and device and storage medium, which is used to solve the technical problem that it is difficult to discover in time that the base station to which the cell belongs generates a base station alarm due to cell energy saving in the prior art.
[0005] To achieve the above-mentioned purpose, the present application adopts the following technical solutions:
[0006] In a first aspect, a cell energy saving management method is provided, comprising: obtaining a first cell state of a to-be-energy-saving cell; the to-be-energy-saving cell is a cell receiving an energy saving start instruction; when the first cell state is an abnormal state, controlling the to-be-energy-saving cell to exit an energy saving state; when the first cell state is a normal state, obtaining a second cell state of a cell adjacent to the to-be-energy-saving cell; when the second cell state is an abnormal state, controlling the to-be-energy-saving cell to exit the energy saving state.
[0007] Optionally, before obtaining the first cell state of the to-be-energy-saving cell, the cell energy saving management method further comprises: receiving a control instruction; the control instruction is used to instruct to control the to-be-energy-saving cell to enter the energy saving state; in response to the control instruction, obtaining a third cell state of the to-be-energy-saving cell; when the third cell state is an abnormal state, sending an energy saving prohibition instruction to the base station to which the to-be-energy-saving cell belongs; the energy saving prohibition instruction is used to prohibit the to-be-energy-saving cell to enter the energy saving state; when the third cell state is a normal state, sending an energy saving start instruction to the base station to which the to-be-energy-saving cell belongs; the energy saving start instruction is used to instruct the to-be-energy-saving cell to enter the energy saving state.
[0008] Optionally, after sending the energy saving start instruction to the base station to which the cell to be put into energy saving belongs, the cell energy saving management method further comprises: determining whether the cell to be put into energy saving enters the energy saving state; when the cell to be put into energy saving enters the energy saving state, determining that the first cell state of the cell to be put into energy saving is the abnormal state or the normal state; and when the cell to be put into energy saving does not enter the energy saving state, repeatedly sending the energy saving start instruction to the base station to which the cell to be put into energy saving belongs until the cell to be put into energy saving enters the energy saving state.
[0009] Optionally, the cell energy saving management method further comprises: obtaining a first sending frequency of the energy saving start instruction sent to the base station to which the cell to be put into energy saving belongs; and when the first sending frequency is greater than a first preset frequency, outputting first alarm information.
[0010] Optionally, after controlling the cell to be put into energy saving to exit the energy saving state, the cell energy saving management method further comprises: determining whether the cell to be put into energy saving exits the energy saving state; and when the cell to be put into energy saving does not exit the energy saving state, repeatedly sending the energy saving exit instruction to the base station to which the cell to be put into energy saving belongs until the cell to be put into energy saving exits the energy saving state.
[0011] Optionally, the cell energy saving management method further comprises: obtaining a second sending frequency of the energy saving exit instruction sent to the base station to which the cell to be put into energy saving belongs; and when the second sending frequency is greater than a second preset frequency, outputting second alarm information.
[0012] In a second aspect, a cell energy saving management apparatus is provided, comprising: an obtaining unit and a control unit; the obtaining unit is configured to obtain a first cell state of a cell to be put into energy saving; the cell to be put into energy saving is a cell receiving an energy saving start instruction; the control unit is configured to control the cell to be put into energy saving to exit an energy saving state when the first cell state is an abnormal state; the obtaining unit is further configured to obtain a second cell state of a cell adjacent to the cell to be put into energy saving when the first cell state is a normal state; and the control unit is further configured to control the cell to be put into energy saving to exit the energy saving state when the second cell state is the abnormal state.
[0013] Optionally, the cell energy saving management apparatus further comprises: a sending unit; the obtaining unit is further configured to receive a control instruction; the control instruction is configured to instruct to control the cell to be put into energy saving to enter the energy saving state; the obtaining unit is further configured to obtain a third cell state of the cell to be put into energy saving in response to the control instruction; the sending unit is configured to send an energy saving prohibition instruction to the base station to which the cell to be put into energy saving belongs when the third cell state is the abnormal state; the energy saving prohibition instruction is configured to prohibit the cell to be put into energy saving to enter the energy saving state; and the sending unit is further configured to send an energy saving start instruction to the base station to which the cell to be put into energy saving belongs when the third cell state is the normal state; the energy saving start instruction is configured to instruct the cell to be put into energy saving to enter the energy saving state.
[0014] Optionally, the cell energy saving management apparatus further comprises a determining unit configured to determine whether the to-be-energy-saving cell enters the energy saving state; the determining unit is further configured to determine that the first cell state of the to-be-energy-saving cell is the abnormal state or the normal state when the to-be-energy-saving cell enters the energy saving state; and the sending unit is further configured to repeatedly send the energy saving start instruction to the base station to which the to-be-energy-saving cell belongs until the to-be-energy-saving cell enters the energy saving state when the to-be-energy-saving cell does not enter the energy saving state.
[0015] Optionally, the acquiring unit is further configured to acquire a first sending frequency of the energy saving start instruction sent to the base station to which the to-be-energy-saving cell belongs; and the sending unit is further configured to output the first alarm information when the first sending frequency is greater than a first preset frequency.
[0016] Optionally, the determining unit is further configured to determine whether the to-be-energy-saving cell exits the energy saving state; and the sending unit is further configured to repeatedly send the energy saving exit instruction to the base station to which the to-be-energy-saving cell belongs until the to-be-energy-saving cell exits the energy saving state when the to-be-energy-saving cell does not exit the energy saving state.
[0017] Optionally, the acquiring unit is further configured to acquire a second sending frequency of the energy saving exit instruction sent to the base station to which the to-be-energy-saving cell belongs; and the sending unit is further configured to output the second alarm information when the second sending frequency is greater than a second preset frequency.
[0018] In a third aspect, a cell energy saving management apparatus is provided, which comprises a memory and a processor; the memory is configured to store computer execution instructions; the processor is connected to the memory through a bus; when the cell energy saving management apparatus runs, the processor executes the computer execution instructions stored in the memory, so that the cell energy saving management apparatus executes the cell energy saving management method in the first aspect.
[0019] The cell energy saving management apparatus can be a network device or a part of the network device, for example, a chip system in the network device. The chip system is configured to support the network device to implement the functions involved in the first aspect and any possible implementation manner thereof, for example, acquiring, determining and sending the data and / or information involved in the cell energy saving management method. The chip system comprises a chip and can further comprise other discrete devices or circuit structures.
[0020] In a fourth aspect, a computer readable storage medium is provided, which comprises computer execution instructions; when the computer execution instructions run on a computer, the computer execution instructions make the computer execute the cell energy saving management method in the first aspect.
[0021] In a fifth aspect, a computer program product is further provided, which comprises computer instructions; when the computer instructions run on a cell energy saving management apparatus, the computer instructions make the cell energy saving management apparatus execute the cell energy saving management method in the first aspect.
[0022] It should be noted that the computer instructions described above can be stored in whole or in part on the first computer readable storage medium. The first computer readable storage medium can be packaged together with the processor of the cell energy saving management apparatus, or can be packaged separately from the processor of the cell energy saving management apparatus, and the embodiments of the present application do not limit this.
[0023] The second aspect, the third aspect, the fourth aspect and the fifth aspect of the present application are described in detail with reference to the detailed description of the first aspect, and the beneficial effects of the second aspect, the third aspect, the fourth aspect and the fifth aspect can refer to the beneficial effect analysis of the first aspect, which will not be repeated here.
[0024] In the embodiments of the present application, the name of the cell energy saving management apparatus does not constitute a limitation on the devices or functional modules themselves, and in actual implementation, these devices or functional modules can appear with other names. As long as the functions of each device or functional module are similar to those of the present application, they belong to the scope of the claims of the present application and equivalent technologies.
[0025] These aspects or other aspects of the present application will be more apparent in the following description.
[0026] The technical solutions provided by the present application at least have the following beneficial effects:
[0027] Based on any of the above aspects, the embodiments of the present application provide a cell energy saving management method, which can obtain a first cell state of a cell to be energy saved. The cell to be energy saved is a cell receiving an energy saving start instruction. Since the characteristic of the first cell state is that the call quality of the terminal in the cell to be energy saved is reduced before the cell to be energy saved is abnormal, the cell to be energy saved can be timely and quickly represented, so that the present application can timely find the base station alarm of the base station to which the cell to be energy saved belongs when the first cell state is an abnormal state, and control the cell to be energy saved to exit the energy saving state. In this way, the present application can quickly find the base station alarm of the base station to which the cell to be energy saved belongs in the case that there is no change in the call quality of the terminal in the cell to be energy saved, and improve the user experience.
[0028] Secondly, when the first cell state is a normal state, the electronic device can obtain a second cell state of a neighboring cell of the cell to be energy saved. Since the neighboring cell of the cell to be energy saved will carry the terminal service of the cell to be energy saved after the cell to be energy saved enters the energy saving state, the second cell state can also timely and quickly represent whether the neighboring cell of the cell to be energy saved is abnormal.
[0029] In summary, the application can determine whether the base station alarm caused by cell energy saving exists in the base station to which the cell to be energy saved and its adjacent cells belong by judging whether the cell to be energy saved and its adjacent cells are abnormal, thereby solving the technical problem that in the prior art, when the call quality of the terminal in the cell to be energy saved and its adjacent cells obviously decreases, the base station alarm caused by cell energy saving in the base station to which the cell to be energy saved and its adjacent cells belong can be determined through KPI index. BRIEF DESCRIPTION OF DRAWINGS
[0030] Figure 1 A structural schematic diagram of a cell energy saving management system provided for an embodiment of the application is shown in FIG. 1.
[0031] Figure 2 A structural schematic diagram of another cell energy saving management system provided for an embodiment of the application is shown in FIG. 2.
[0032] Figure 3 A hardware structural schematic diagram of a cell energy saving management device provided for an embodiment of the application is shown in FIG. 3.
[0033] Figure 4 Another hardware structural schematic diagram of a cell energy saving management device provided for an embodiment of the application is shown in FIG. 4.
[0034] Figure 5 A flow schematic diagram of a cell energy saving management method provided for an embodiment of the application is shown in FIG. 5.
[0035] Figure 6 A flow schematic diagram of another cell energy saving management method provided for an embodiment of the application is shown in FIG. 6.
[0036] Figure 7 A flow schematic diagram of another cell energy saving management method provided for an embodiment of the application is shown in FIG. 7.
[0037] Figure 8 A flow schematic diagram of another cell energy saving management method provided for an embodiment of the application is shown in FIG. 8.
[0038] Figure 9 A flow schematic diagram of another cell energy saving management method provided for an embodiment of the application is shown in FIG. 9.
[0039] Figure 10 A flow schematic diagram of another cell energy saving management method provided for an embodiment of the application is shown in FIG. 10.
[0040] Figure 11 A flow schematic diagram of another cell energy saving management method provided for an embodiment of the application is shown in FIG. 11.
[0041] Figure 12 A structural schematic diagram of a cell energy saving management device provided for an embodiment of the application is shown in FIG. 12. DETAILED DESCRIPTION
[0042] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the present application.
[0043] It should be noted that in the embodiments of the present application, the words such as “exemplary” or “for example” are used to represent an example, illustration or description. Any embodiment or design scheme described as “exemplary” or “for example” in the embodiments of the present application should not be interpreted as more preferred or more advantageous than other embodiments or design schemes. Rather, the words such as “exemplary” or “for example” are intended to present the relevant concept in a specific manner.
[0044] In order to clearly describe the technical solutions in the embodiments of the present application, in the embodiments of the present application, the words “first”, “second” and the like are used to distinguish the same items or similar items with basically the same function and role, and a person skilled in the art can understand that the words “first”, “second” and the like are not used to limit the quantity and execution order.
[0045] Before the cell energy-saving management method provided by the present application is described in detail, the background involved in the present application is briefly introduced.
[0046] With the popularization of the fifth generation mobile communication technology (5th generation mobile communication technology, 5G), the energy consumption of mobile communication networks is becoming larger and larger. Since 5G needs to arrange high-density and large-range active antennas, the power consumption of a 5G base station is 2.5 times that of a traditional base station.
[0047] It is predicted that in 2025, the power consumption of the communication industry will account for 20% of the total global power consumption, and the power consumption of the base station will account for 60%-70% of the total power consumption of the communication industry. Therefore, how to reduce the energy consumption of the 5G base station under the premise of ensuring that the call quality of the base station does not decrease has important practical significance for the current development of mobile communication technology.
[0048] The traditional energy-saving means usually determines which base station can save energy by relying on traffic statistics, but the base station alarm after energy saving is not judged and processed, and only relies on the determination of KPI indicators to determine whether the base station alarm occurs.
[0049] However, whether the base station alarm occurs in the base station to which the cell belongs is determined by monitoring the KPI indicators of the cell. However, the above method has a certain lag, that is, when the call quality of the terminal in the cell obviously decreases, the base station alarm occurring in the base station to which the cell belongs can be determined by the KPI indicators.
[0050] To solve the above problems, the embodiments of the present application provide a cell energy saving management method, which can obtain a first cell state of a to-be-energy-saving cell. The to-be-energy-saving cell is a cell receiving an energy saving start instruction. Since the characteristic of the first cell state is that the abnormality of the to-be-energy-saving cell can be represented in time and quickly before the call quality of the terminal in the to-be-energy-saving cell decreases, the present application can discover the base station alarm occurring in the base station to which the to-be-energy-saving cell belongs in time when the first cell state is an abnormal state, and control the to-be-energy-saving cell to exit the energy saving state. In this way, the present application can discover the base station alarm occurring in the base station to which the to-be-energy-saving cell belongs quickly in the case that the call quality of the terminal in the to-be-energy-saving cell has no change perception, and improve the user experience.
[0051] Secondly, when the first cell state is a normal state, the electronic device can obtain a second cell state of a neighboring cell of the to-be-energy-saving cell. Since the neighboring cell of the to-be-energy-saving cell will carry the terminal service of the to-be-energy-saving cell after the to-be-energy-saving cell enters the energy saving state, the second cell state can also represent the abnormality of the neighboring cell of the to-be-energy-saving cell in time and quickly.
[0052] In summary, the present application can determine whether the base station alarm occurs in the base station to which the to-be-energy-saving cell and its neighboring cell belong by judging whether the to-be-energy-saving cell and its neighboring cell are abnormal, thereby solving the technical problem that the base station alarm occurs in the base station to which the to-be-energy-saving cell and its neighboring cell belong due to cell energy saving when the call quality of the terminal in the to-be-energy-saving cell and its neighboring cell obviously decreases.
[0053] The cell energy saving management method is applicable to Figure 1 The cell energy saving management system is shown. Figure 1 The structure of the cell energy saving management system is shown. As Figure 1 The cell energy saving management system includes an electronic device 101 and a base station 102.
[0054] The electronic device 101 and the base station 102 are in communication connection.
[0055] In actual application, the electronic device 101 can be connected to multiple base stations. For ease of understanding, the present application takes one electronic device 101 connected to one base station 102 as an example for description.
[0056] The coverage area of the base station 102 can include a cell 1 and a cell 2 adjacent to the cell 1.
[0057] In the embodiment of the application, the base station 102 controls the cell 1 to perform energy saving after receiving the energy saving start energy saving instruction for the cell 1 to perform energy saving.
[0058] The electronic device 101 is configured to acquire the first cell state of the cell 1 from the base station 102.
[0059] When the first cell state is the abnormal state, the electronic device 101 is further configured to control the cell 1 to exit the energy saving state through the base station 102.
[0060] Optionally, the electronic device 101 can also be an internal module integrated in the base station 102.
[0061] It is easy to understand that when the electronic device 101 is an internal module integrated in the base station 102, the communication mode between the electronic device 101 and the base station 102 is the communication between internal modules of the base station 102. In this case, the communication process between the two is the same as the communication process between the electronic device 101 and the base station 102 when they are independent of each other.
[0062] For ease of understanding, the electronic device 101 and the base station 102 are independent of each other in the application.
[0063] Optionally, the entity device of the electronic device 101 can be a terminal, a server, or other types of electronic devices.
[0064] Optionally, when the entity device of the electronic device 101 is a terminal, the terminal can be a device that provides voice and / or data connectivity to a user, a handheld device with a wireless connection function, or other processing devices connected to a wireless modem. The terminal can communicate with one or more core networks through a radio access network (RAN). The terminal can be a mobile terminal, such as a mobile phone (or called "cellular" phone) and a computer with a mobile terminal, and can also be a portable, pocket, handheld, built-in or vehicle-mounted mobile device that exchanges voice and / or data with a radio access network. For example, a mobile phone, a tablet computer, a notebook computer, a netbook computer, a personal digital assistant (PDA).
[0065] Optionally, when the entity device of the electronic device 101 is a server, the server can be one of a server cluster (composed of multiple servers), a chip in the server, a system on chip in the server, or implemented through a virtual machine (VM) deployed on a physical machine, and the present embodiment is not limited in this regard.
[0066] Optionally, the base station 102 can be a base station or a base station controller of wireless communication. In the present embodiment, the base station can be a base station (base transceiver station, BTS) in global system for mobile communication (GSM), code division multiple access (CDMA), a base station (nodeB) in wideband code division multiple access (WCDMA), a base station (eNB) in internet of things (IoT) or narrow band-internet of things (NB-IoT), a base station in future 5G mobile communication network or future evolved public land mobile network (PLMN), and the present embodiment is not limited in this regard.
[0067] The cell energy saving management method is also applicable to Figure 2 A cell energy saving management system is shown. Figure 2 Another structure of the cell energy saving management system is shown. As Figure 2 The cell energy saving management system includes an electronic device 201, a base station 202, and a service server 203.
[0068] The electronic device 201 and the service server 203 are in communication connection, and the base station 202 and the service server 203 are in communication connection.
[0069] In actual application, the electronic device 201 can be connected to multiple service servers, and the service server 203 can be connected to multiple base stations. For ease of understanding, the present application takes one electronic device 201 connected to one service server 203 and one electronic device 201 connected to one base station 202 as an example for illustration.
[0070] As Figure 2As shown, the service server 203 can belong to an operation maintenance center (OMC). The coverage area of the base station 202 can include a cell 1 and a cell 2 adjacent to the cell 1.
[0071] In the embodiment of the present application, the base station 202 receives the energy saving start instruction for enabling the cell 1 to save energy, and controls the cell 1 to save energy.
[0072] The electronic device 201 is configured to acquire, by the service server 203, the first cell state of the cell 1 from the base station 202.
[0073] When the first cell state is the abnormal state, the electronic device 201 is further configured to control, by the service server 203, the cell 1 to exit the energy saving state.
[0074] Optionally, the electronic device 201 can also be an internal module integrated in the service server 203.
[0075] It is easy to understand that when the electronic device 201 is an internal module integrated in the service server 203, the communication mode between the electronic device 201 and the service server 203 is the communication between internal modules of the service server 203. In this case, the communication process between the two is the same as the communication process between the electronic device 201 and the service server 203 when they are independent of each other.
[0076] For ease of understanding, the present application takes the electronic device 201 and the service server 203 as independent of each other as an example for description.
[0077] Optionally, the entity device of the electronic device 201 can be a terminal, a server, or other types of electronic devices.
[0078] Optionally, when the entity device of the electronic device 201 is a terminal, the terminal can be a device that provides voice and / or data connectivity to a user, a handheld device with a wireless connection function, or other processing devices connected to a wireless modem. The terminal can communicate with one or more core networks through a radio access network (RAN). The terminal can be a mobile terminal, such as a mobile phone (or called "cellular" phone) and a computer with a mobile terminal, and can also be a portable, pocket, handheld, built-in computer, or vehicle-mounted mobile device that exchanges voice and / or data with a radio access network. For example, a mobile phone, a tablet computer, a notebook computer, a netbook, a personal digital assistant (PDA).
[0079] Optionally, when the electronic device 201 and the entity device of the service server 203 are both servers, the server can be one of the servers in a server cluster (composed of multiple servers), can be a chip in the server, can be a system on chip in the server, or can be implemented through a virtual machine (VM) deployed on a physical machine, and the embodiments of the present application do not limit this.
[0080] Optionally, the base station 202 can be a base station or a base station controller of wireless communication. In the embodiments of the present application, the base station can be a base station (base transceiver station, BTS) in a global system for mobile communication (GSM), a code division multiple access (CDMA), a base station (nodeB) in a wideband code division multiple access (WCDMA), a base station (eNB) in an internet of things (IoT) or a narrow band-internet of things (NB-IoT), a base station in a future 5G mobile communication network or a future evolved public land mobile network (PLMN), and the embodiments of the present application do not limit this.
[0081] The basic hardware structure of the electronic device 101 and the electronic device 201 in the cell energy saving management system is similar, and both include Figure 3 or Figure 4 The elements included in the cell energy saving device. Next, taking the cell energy saving device shown in Figure 3 and Figure 4 as an example, the hardware structure of the electronic device 101 is introduced.
[0082] As shown in Figure 3 , it is a hardware structure schematic diagram of the cell energy saving device provided in the embodiments of the present application. The cell energy saving device includes a processor 31, a memory 32, a communication interface 33, and a bus 34. The processor 31, the memory 32, and the communication interface 33 can be connected through the bus 34.
[0083] The processor 31 is a control center of the cell energy saving device, and can be one processor or a collective term of multiple processing elements. For example, the processor 31 can be a general central processing unit (CPU), or other general-purpose processor, etc. The general-purpose processor can be a microprocessor or any conventional processor, etc.
[0084] As an embodiment, the processor 31 can include one or more CPUs, such as the CPU 0 and the CPU 1 shown in FIG. 1. Figure 3
[0085] The memory 32 can be a read-only memory (ROM) or other type of static storage device that can store static information and instructions, a random access memory (RAM) or other type of dynamic storage device that can store information and instructions, an electrically erasable programmable read-only memory (EEPROM), a magnetic disk storage medium or other magnetic storage device, or any other medium that can be used to carry or store desired program code in the form of instructions or data structures and that can be accessed by a computer, but is not limited thereto.
[0086] In a possible implementation, the memory 32 can exist independently of the processor 31, and the memory 32 can be connected to the processor 31 through the bus 34, for storing instructions or program code. When the processor 31 invokes and executes the instructions or program code stored in the memory 32, the cell energy saving management method provided in the embodiments described below can be implemented.
[0087] In the embodiments of the present application, the software programs stored in the memory 32 of the electronic device 101 and the electronic device 201 are different, so the functions implemented by the electronic device 101 and the electronic device 201 are different. The functions performed by the devices will be described in conjunction with the flowcharts below.
[0088] In another possible implementation, the memory 32 can also be integrated with the processor 31.
[0089] The communication interface 33 is used for connecting the cell energy saving device to other devices through a communication network, and the communication network can be an Ethernet, a wireless access network, a wireless local area network (WLAN), etc. The communication interface 33 can include a receiving unit for receiving data, and a sending unit for sending data.
[0090] The bus 34 can be an industry standard architecture (ISA) bus, a peripheral component interconnect (PCI) bus, an extended industry standard architecture (EISA) bus, or the like. The bus can be divided into an address bus, a data bus, a control bus, and the like. For ease of representation, Figure 3 Only one thick line is used to represent the bus in the drawings, but this does not mean that there is only one bus or only one type of bus.
[0091] Figure 4 Another hardware structure of the cell energy saving device in the embodiments of the present application is shown. As shown in Figure 4 the cell energy saving device can include a processor 41 and a communication interface 42. The processor 41 is coupled to the communication interface 42.
[0092] The functions of the processor 41 can refer to the description of the processor 31 described above. In addition, the processor 41 also has a storage function, which can function as the memory 32 described above.
[0093] The communication interface 42 is used to provide data for the processor 41. The communication interface 42 can be an internal interface of the cell energy saving device, or an external interface of the cell energy saving device (equivalent to the communication interface 33).
[0094] It should be noted that Figure 3 the structure shown in (or Figure 4 ) does not constitute a limitation on the cell energy saving device. In addition to the components shown in (or Figure 3 (or Figure 4 ), the cell energy saving device can include more or fewer components than shown, or combine certain components, or different component arrangements.
[0095] The cell energy saving management method provided by the embodiments of the present application will be described in detail below in conjunction with the drawings.
[0096] As shown in Figure 5 the cell energy saving management method provided by the embodiments of the present application is applied to an electronic device, and the cell energy saving management method includes S501-S502.
[0097] S501, the electronic device acquires a first cell state of a cell to be energy saved.
[0098] Among them, the cell to be energy saved is a cell receiving an energy saving start instruction.
[0099] Optionally, the first cell state is used to indicate that the to-be-energy-conserving cell is in a normal state or in an abnormal state after receiving the energy-conserving start instruction.
[0100] Optionally, when it is determined that the to-be-energy-conserving cell needs to be energy-conserved, the base station to which the to-be-energy-conserving cell belongs can receive an energy-conserving start instruction. Then, the base station to which the to-be-energy-conserving cell belongs can respond to the energy-conserving start instruction and control the to-be-energy-conserving cell to enter an energy-conserving state. However, the to-be-energy-conserving cell in the energy-conserving state can have a reduced amount of traffic that can be carried. Therefore, the base station to which the to-be-energy-conserving cell belongs can have an alarm because the original amount of traffic cannot be carried.
[0101] In this case, the electronic device needs to acquire the first cell state of the to-be-energy-conserving cell and then determine whether the to-be-energy-conserving cell is normal according to the acquired first cell state of the to-be-energy-conserving cell.
[0102] Optionally, one implementation of the electronic device acquiring the first cell state of the to-be-energy-conserving cell is that the electronic device can send a request for querying the first cell state information of the to-be-energy-conserving cell to the base station to which the to-be-energy-conserving cell belongs. Then, the base station to which the to-be-energy-conserving cell belongs can respond to the request for querying the first cell state information of the to-be-energy-conserving cell and send the first cell state information of the to-be-energy-conserving cell to the electronic device.
[0103] The first cell state information of the to-be-energy-conserving cell includes information used to indicate that the first cell state of the to-be-energy-conserving cell is in an abnormal state or in a normal state, information used to limit the operable time of the to-be-energy-conserving cell, and information used to indicate whether the to-be-energy-conserving cell is in an energy-conserving state.
[0104] Then, the electronic device can determine, according to the first cell state information of the to-be-energy-conserving cell, that the first cell state of the to-be-energy-conserving cell is in an abnormal state or in a normal state.
[0105] For example, in combination with Figure 1 The electronic device 101 can send a request for querying the first cell state information of the cell 1 to the base station 102. Then, the base station 102 can respond to the request for querying the first cell state information of the cell 1 and send the first cell state information of the cell 1 to the electronic device 101. Then, the electronic device 101 can determine, according to the first cell state information of the cell 1, that the first cell state of the cell 1 is in an abnormal state or in a normal state.
[0106] Optionally, another implementation of the electronic device obtaining the first cell state of the to-be-energy-conserving cell is that the electronic device can send a request for querying the first cell state information of the to-be-energy-conserving cell to a service server in the OMC. Then, the service server in the OMC can send a request for querying the first cell state information of the to-be-energy-conserving cell to a base station to which the to-be-energy-conserving cell belongs in response to the request for querying the first cell state information of the to-be-energy-conserving cell.
[0107] In this case, the process after the service server in the OMC obtains the first cell state information of the to-be-energy-conserving cell is similar to the process of the electronic device directly obtaining the first cell state information of the to-be-energy-conserving cell from the base station to which the to-be-energy-conserving cell belongs. Therefore, the process of the service server in the OMC obtaining the first cell state information of the to-be-energy-conserving cell can refer to the process of the electronic device directly obtaining the first cell state information of the to-be-energy-conserving cell from the base station to which the to-be-energy-conserving cell belongs, which will not be described here.
[0108] Then, the service server in the OMC can send the obtained first cell state information of the to-be-energy-conserving cell to the electronic device. Then, the electronic device can receive the first cell state information of the to-be-energy-conserving cell. The electronic device can determine the first cell state of the to-be-energy-conserving cell as the abnormal state or the normal state through the first cell state information of the to-be-energy-conserving cell.
[0109] For example, in combination with Figure 2 The electronic device 201 can send a request for querying the first cell state information of the cell 1 to the base station 202 through the service server 203. Then, the base station 202 can send the first cell state information of the cell 1 to the electronic device 201 in response to the request for querying the first cell state information of the cell 1. Then, the electronic device 201 can determine the first cell state of the cell 1 as the abnormal state or the normal state according to the first cell state information of the cell 1.
[0110] S502, when the first cell state is the abnormal state, the electronic device controls the to-be-energy-conserving cell to exit the energy-conserving state.
[0111] Optionally, when the first cell state is the abnormal state, it indicates that the base station to which the to-be-energy-conserving cell belongs has a base station alarm after receiving the energy-conserving start instruction in the to-be-energy-conserving cell. Therefore, the electronic device can control the to-be-energy-conserving cell to exit the energy-conserving state, so that the first cell state of the to-be-energy-conserving cell returns to the normal state.
[0112] Optionally, when the first cell state is the abnormal state, one implementation of the electronic device controlling the to-be-energy-conserving cell to exit the energy conservation state is that the electronic device can send an energy conservation exit instruction to the base station to which the to-be-energy-conserving cell belongs. Then, the base station to which the to-be-energy-conserving cell belongs can respond to the energy conservation exit instruction and control the to-be-energy-conserving cell to exit the energy conservation state. In this case, the electronic device can control the to-be-energy-conserving cell to exit the energy conservation state through the base station to which the to-be-energy-conserving cell belongs.
[0113] For example, in combination with Figure 1 , the electronic device 101 can send an energy conservation exit instruction to the base station 102. Then, the base station 102 can respond to the energy conservation exit instruction and control the cell 1 to exit the energy conservation state. In this case, the electronic device can control the cell 1 to exit the energy conservation state through the base station 102.
[0114] S503, when the first cell state is the normal state, the electronic device acquires a second cell state of a cell adjacent to the to-be-energy-conserving cell.
[0115] Optionally, when the first cell state is the normal state, it indicates that, after the to-be-energy-conserving cell enters the energy conservation state, the base station to which the to-be-energy-conserving cell belongs does not have a base station alarm. However, because the to-be-energy-conserving cell enters the energy conservation state, the amount of traffic borne by the to-be-energy-conserving cell decreases, which can cause the cell adjacent to the to-be-energy-conserving cell to bear more traffic, thereby causing the base station to which the cell adjacent to the to-be-energy-conserving cell belongs to have a base station alarm. Therefore, the electronic device needs to acquire the second cell state of the cell adjacent to the to-be-energy-conserving cell. Then, the electronic device can determine, according to the second cell state of the cell adjacent to the to-be-energy-conserving cell, whether the working state of the cell adjacent to the to-be-energy-conserving cell is normal after the to-be-energy-conserving cell enters the energy conservation state.
[0116] Optionally, the operation step of the electronic device acquiring the second cell state of the cell adjacent to the to-be-energy-conserving cell is similar to the operation step of the electronic device acquiring the first cell state of the to-be-energy-conserving cell. Therefore, the operation step of the electronic device acquiring the second cell state of the cell adjacent to the to-be-energy-conserving cell can refer to the operation step of the electronic device acquiring the first cell state of the to-be-energy-conserving cell, which will not be described herein again.
[0117] For example, in combination with Figure 1 , the electronic device 101 can send a request for querying the second cell state information of the cell 2 to the base station 102. Then, the base station 102 can respond to the request for querying the second cell state information of the cell 2 and send the second cell state information of the cell 2 to the electronic device 101. Then, the electronic device 101 can determine, according to the second cell state information of the cell 2, that the second cell state of the cell 2 is the abnormal state or the normal state.
[0118] S504, when the second cell state is the abnormal state, the electronic device controls the to-be-energy-conserving cell to exit the energy conservation state.
[0119] Optionally, when the second cell state is the abnormal state, it indicates that the base station of the cell adjacent to the to-be-energy-conserving cell has an alarm after the to-be-energy-conserving cell enters the energy conservation state. Therefore, the electronic device can attempt to control the to-be-energy-conserving cell to exit the energy conservation state, and then determine whether the to-be-energy-conserving cell can make the second cell state of the cell adjacent to the to-be-energy-conserving cell return to the normal state by exiting the energy conservation state.
[0120] Optionally, when the second cell state is the abnormal state, the specific steps of the electronic device controlling the to-be-energy-conserving cell to exit the energy conservation state are similar to the specific steps of the electronic device controlling the to-be-energy-conserving cell to exit the energy conservation state when the first cell state is the abnormal state. Therefore, when the second cell state is the abnormal state, the specific steps of the electronic device controlling the to-be-energy-conserving cell to exit the energy conservation state can refer to the specific steps of the electronic device controlling the to-be-energy-conserving cell to exit the energy conservation state when the first cell state is the abnormal state, which will not be described here.
[0121] For example, in combination with Figure 1 , the electronic device 101 can send an energy conservation exit instruction to the base station 102. Then, the base station 102 can respond to the energy conservation exit instruction and control the cell 1 to exit the energy conservation state. In this case, the electronic device can control the cell 1 to exit the energy conservation state through the base station 102.
[0122] In some embodiments, in combination with Figure 5 , as shown in Figure 6 , before the electronic device obtains the first cell state of the to-be-energy-conserving cell, the cell energy conservation management method further includes S601-S604.
[0123] S601, the electronic device receives a control instruction.
[0124] The control instruction is used to instruct the to-be-energy-conserving cell to enter the energy conservation state.
[0125] Optionally, one implementation of the electronic device receiving the control instruction is that the communication operator can determine the time when the to-be-energy-conserving cell enters the energy conservation state according to human experience. Then, the communication operator can execute an operation of instructing the to-be-energy-conserving cell to enter the energy conservation state on the electronic device at the time when the to-be-energy-conserving cell needs to enter the energy conservation state. Correspondingly, the electronic device generates the control instruction in response to the operation executed by the communication operator.
[0126] Optionally, another implementation of the electronic device receiving the control instruction is that the service server stores the time when the to-be-energy-saving cell enters the energy-saving state. The service server sends the control instruction to the electronic device at the time. In this case, the electronic device can obtain the control instruction from the sending.
[0127] S602, in response to the control instruction, the electronic device obtains the third cell state of the to-be-energy-saving cell.
[0128] Optionally, before the electronic device sends the energy-saving start instruction to the to-be-energy-saving cell, the electronic device needs to evaluate the state of the to-be-energy-saving cell. In this case, the electronic device can first obtain the third cell state information of the to-be-energy-saving cell.
[0129] The third cell state information includes information indicating that the third cell state of the to-be-energy-saving cell is an abnormal state or a normal state, information limiting the operable time of the to-be-energy-saving cell, and information indicating whether the to-be-energy-saving cell is in an energy-saving state.
[0130] Then, the electronic device can determine whether the third cell state of the to-be-energy-saving cell is a normal state or an abnormal state according to the third cell state information of the to-be-energy-saving cell.
[0131] Optionally, the operation steps of the electronic device obtaining the third cell state of the to-be-energy-saving cell are similar to the operation steps of the electronic device obtaining the first cell state of the to-be-energy-saving cell, so the operation steps of the electronic device obtaining the third cell state of the to-be-energy-saving cell can refer to the operation steps of the electronic device obtaining the first cell state of the to-be-energy-saving cell, which will not be repeated here.
[0132] For example, in combination with Figure 1 The electronic device 101 can send a request to query the third cell state information of cell 1 to the base station 102. Then, the base station 102 can respond to the request to query the third cell state information of cell 1 and send the third cell state information of cell 1 to the electronic device 101. Then the electronic device 101 can determine whether the third cell state of cell 1 is an abnormal state or a normal state according to the third cell state information of cell 1.
[0133] S603, when the third cell state is an abnormal state, the electronic device sends an energy-saving prohibition instruction to the base station to which the to-be-energy-saving cell belongs.
[0134] The energy-saving prohibition instruction is used to prohibit the to-be-energy-saving cell from entering the energy-saving state.
[0135] Optionally, when the third cell status of the cell to be saved is abnormal, it indicates that the cell to be saved may be in an inoperable period, or the cell may already be in energy-saving mode, or the cell may be faulty. Therefore, it is not possible to control the cell to enter energy-saving mode. Therefore, the electronic equipment needs to send an energy-saving prohibition command to the base station to which the cell to be saved belongs to control the cell to be kept out of energy-saving mode for a preset time period.
[0136] Optionally, the electronic device can also record the energy-saving cells that have been prohibited from entering the energy-saving state, and will not send control energy-saving instructions to the energy-saving cells that have been prohibited from entering the energy-saving state for a preset time period, thereby improving the efficiency of the electronic device in managing energy saving in the cells.
[0137] S604. When the third cell is in a normal state, the electronic device sends an energy-saving activation command to the base station to which the cell to be saved belongs.
[0138] Among them, the energy-saving activation command is used to instruct the community to enter the energy-saving state.
[0139] Optionally, when the third cell status of the cell to be saved is normal, it indicates that the cell to be saved can enter the energy-saving state. Then, electronic devices can control the cell to enter the energy-saving state by sending an energy-saving activation command to the base station to which the cell belongs.
[0140] Specifically, when the third cell of the cell to be saved is in normal condition, the electronic device sends an energy-saving activation command to the base station to which the cell belongs, and controls the cell to enter the energy-saving state.
[0141] For example, in combination Figure 1 When the third cell status of cell 1 is normal, electronic device 101 sends an energy-saving activation command to base station 102 to control cell 1 to enter the energy-saving state.
[0142] In some embodiments, combined with Figure 6 ,like Figure 7 As shown, after the electronic device sends an energy-saving activation command to the base station to which the cell to be saved belongs, the above-mentioned cell energy-saving management method also includes: S701-S703.
[0143] S701. Electronic equipment determines whether the community to be saved has entered the energy-saving state.
[0144] Specifically, as can be seen from S501, after sending an energy-saving activation command to the base station to which the cell to be saved belongs, the electronic device can obtain the status information of the first cell.
[0145] As can be known from S501, the first cell state information includes information for indicating whether the to-be-energy-conserving cell is in the energy conservation state. Therefore, the electronic device can determine whether the to-be-energy-conserving cell enters the energy conservation state according to the information for indicating whether the to-be-energy-conserving cell is in the energy conservation state in the first cell state information of the to-be-energy-conserving cell.
[0146] S702, when the to-be-energy-conserving cell enters the energy conservation state, the electronic device determines the first cell state of the to-be-energy-conserving cell as the abnormal state or the normal state.
[0147] Optionally, when the energy-conserving cell enters the energy conservation state, the base station to which the to-be-energy-conserving cell belongs can not be able to bear the original traffic. Therefore, after receiving the energy conservation start instruction, the first cell state of the to-be-energy-conserving cell can become the abnormal state. In this case, the electronic device needs to acquire the first cell state information of the to-be-energy-conserving cell, and then determine the first cell state of the to-be-energy-conserving cell as the abnormal state or the normal state according to the information for indicating that the first cell state of the to-be-energy-conserving cell is the abnormal state or the normal state in the acquired first cell state information of the to-be-energy-conserving cell.
[0148] S703, when the to-be-energy-conserving cell does not enter the energy conservation state, the electronic device repeatedly sends the energy conservation start instruction to the base station to which the to-be-energy-conserving cell belongs until the to-be-energy-conserving cell enters the energy conservation state.
[0149] Optionally, the to-be-energy-conserving cell does not enter the energy conservation state, which can be because the base station to which the to-be-energy-conserving cell belongs does not respond to the energy conservation start instruction, or because the base station to which the to-be-energy-conserving cell belongs does not process messages in time, or because the base station to which the to-be-energy-conserving cell belongs cannot control the to-be-energy-conserving cell to enter the energy conservation state. Therefore, the electronic device needs to determine the reason why the to-be-energy-conserving cell does not enter the energy conservation state by repeatedly sending the energy conservation start instruction to the base station to which the to-be-energy-conserving cell belongs.
[0150] Optionally, assuming that the to-be-energy-conserving cell does not enter the energy conservation state because the base station to which the to-be-energy-conserving cell belongs does not respond to the energy conservation start instruction or the base station to which the to-be-energy-conserving cell belongs does not process messages in time, the electronic device can control the to-be-energy-conserving cell to enter the energy conservation state by repeatedly sending the energy conservation start instruction to the base station to which the to-be-energy-conserving cell belongs.
[0151] However, assuming that the to-be-energy-conserving cell does not enter the energy conservation state because the base station to which the to-be-energy-conserving cell belongs has a base station alarm, the electronic device cannot control the to-be-energy-conserving cell to enter the energy conservation state by repeatedly sending the energy conservation start instruction to the base station to which the to-be-energy-conserving cell belongs.
[0152] In some embodiments, in combination with Figure 7 For example, Figure 8As shown, the above-mentioned community energy-saving management methods also include: S801-S802.
[0153] S801, The electronic device acquires the first number of times it sends the energy-saving start command to the base station to which the cell to be saved belongs.
[0154] Optionally, if the electronic device keeps sending energy-saving enable commands to the base station to which the cell to be saved belongs, it may increase signaling overhead. Therefore, the electronic device can obtain the first number of times to send energy-saving enable commands to the base station to which the cell to be saved belongs.
[0155] S802. When the first number of transmissions exceeds the first preset number of transmissions, the electronic device outputs the first alarm message.
[0156] When the first number of transmissions exceeds the first preset number, in order to reduce the signaling overhead of the electronic device, the electronic device may output the first alarm information and stop sending energy-saving start instructions to the base station to which the cell to be saved belongs.
[0157] The first alarm message indicates that the base station to which the energy-saving cell belongs is unable to control the energy-saving cell to enter energy-saving mode.
[0158] For example, assuming the first preset number of times is 10 times, when the electronic device 101 sends the energy-saving start command to the cell 1 11 times, and the cell 1 still does not enter the energy-saving state, the electronic device 101 outputs the first alarm information.
[0159] Optionally, in practical applications, when the first number of transmissions exceeds the first preset number, the electronic device can usually output the first alarm information to the business server in the OMC.
[0160] In some embodiments, combined with Figure 8 ,like Figure 9 As shown, after the community to be saved exits the energy-saving state, the above community energy-saving management method also includes: S901-S902.
[0161] S901. Electronic equipment determines whether the community to be saved has exited the energy-saving state.
[0162] Optionally, the specific description of whether the electronic device determines whether the cell to be saved has exited the energy-saving state is similar to the specific description of whether the sub-device determines whether the cell to be saved has entered the energy-saving state. Therefore, the specific description of whether the electronic device determines whether the cell to be saved has exited the energy-saving state can refer to the specific description in S701, and will not be repeated here.
[0163] S902. When the cell to be saved has not exited the energy-saving state, the electronic equipment repeatedly sends the energy-saving exit instruction to the base station to which the cell to be saved belongs until the cell to be saved exits the energy-saving state.
[0164] Optionally, the to-be-energy-conserving cell does not exit the energy conservation state, which can be because the base station to which the to-be-energy-conserving cell belongs does not respond to the energy conservation exit instruction, can be because the base station to which the to-be-energy-conserving cell belongs does not process messages in time, or can be because the base station to which the to-be-energy-conserving cell belongs cannot control the to-be-energy-conserving cell to exit the energy conservation state. Therefore, the electronic device needs to repeatedly send the energy conservation exit instruction to the base station to which the to-be-energy-conserving cell belongs to determine the reason why the to-be-energy-conserving cell does not exit the energy conservation state.
[0165] Optionally, assuming that the to-be-energy-conserving cell does not exit the energy conservation state because the base station to which the to-be-energy-conserving cell belongs does not respond to the energy conservation exit instruction or the base station to which the to-be-energy-conserving cell belongs does not process messages in time, the electronic device can control the to-be-energy-conserving cell to exit the energy conservation state by repeatedly sending the energy conservation exit instruction to the base station to which the to-be-energy-conserving cell belongs.
[0166] However, assuming that the to-be-energy-conserving cell does not enter the energy conservation state because the base station to which the to-be-energy-conserving cell belongs has a base station alarm, the electronic device cannot control the to-be-energy-conserving cell to exit the energy conservation state by repeatedly sending the energy conservation exit instruction to the base station to which the to-be-energy-conserving cell belongs.
[0167] In some embodiments, in combination with Figure 9 As shown in Figure 10 The above cell energy conservation management method further includes S1001-S1002.
[0168] S1001, the electronic device acquires a second sending number of sending the energy conservation exit instruction to the base station to which the to-be-energy-conserving cell belongs.
[0169] Optionally, the electronic device can increase signaling overhead if it always sends the energy conservation exit instruction to the base station to which the to-be-energy-conserving cell belongs. Therefore, the electronic device can acquire the second sending number of sending the energy conservation exit instruction to the base station to which the to-be-energy-conserving cell belongs.
[0170] Optionally, the specific description of the electronic device acquiring the second sending number of sending the energy conservation exit instruction to the base station to which the to-be-energy-conserving cell belongs is similar to the specific description of the electronic device acquiring the first sending number of sending the energy conservation start instruction to the base station to which the to-be-energy-conserving cell belongs. Therefore, the specific description of the electronic device acquiring the second sending number of sending the energy conservation exit instruction to the base station to which the to-be-energy-conserving cell belongs can refer to the specific description of the electronic device acquiring the first sending number of sending the energy conservation start instruction to the base station to which the to-be-energy-conserving cell belongs in S801, and will not be described here.
[0171] S1002, when the second sending number is greater than a second preset number, the electronic device outputs second alarm information.
[0172] When the second sending number is greater than the second preset number, in order to reduce the signaling overhead of the electronic device, the electronic device can output the second alarm information and no longer send the energy saving exit instruction to the base station to which the energy saving cell belongs.
[0173] Optionally, when the second sending number is greater than the second preset number, the electronic device determines that the base station to which the energy saving cell belongs cannot control the energy saving cell to exit the energy saving state. In this case, the electronic device can output the second alarm information.
[0174] The first alarm information is that the base station to which the energy saving cell belongs cannot control the energy saving cell to exit the energy saving state.
[0175] For example, assuming that the second preset number is 10, when the electronic device 101 repeatedly sends the energy saving exit instruction to the cell 1 for 11 times and the cell 1 still does not exit the energy saving state, the electronic device 101 outputs the second alarm information.
[0176] Optionally, in actual application, when the second sending number is greater than the second preset number, the electronic device can generally output the second alarm information to the service server in the OMC.
[0177] In some embodiments, Figure 11 A whole flowchart of a cell energy saving management method provided by an embodiment of the present application is shown. As shown in Figure 11 The cell energy saving method provided by the embodiment of the present application includes:
[0178] S1101, the electronic device receives a control instruction.
[0179] For the related description of the electronic device receiving the control instruction, Figure 6 the related description can be referred to the related description of S601, which will not be repeated here.
[0180] S1102, in response to the control instruction, the electronic device acquires a third cell state of the energy saving cell.
[0181] For the related description of the electronic device acquiring the third cell state of the energy saving cell in response to the control instruction, Figure 6 the related description can be referred to the related description of S602, which will not be repeated here.
[0182] S1103, the electronic device determines whether the third cell state of the energy saving cell is a normal state.
[0183] For the related description of the electronic device determining whether the third cell state of the energy saving cell is the normal state, Figure 6 the related description can be referred to the related description of S602, which will not be repeated here.
[0184] S1104, when the third cell state is the abnormal state, the electronic device sends a power saving prohibition instruction to a base station to which the cell to be powered off belongs.
[0185] In combination Figure 6 When the third cell state is the abnormal state, the related description of the electronic device sending the power saving prohibition instruction to the base station to which the cell to be powered off belongs can refer to the related description of S603, which will not be repeated here.
[0186] S1105, when the third cell state is the normal state, the electronic device sends a power saving start instruction to a base station to which the cell to be powered off belongs.
[0187] In combination Figure 6 When the third cell state is the normal state, the related description of the electronic device sending the power saving start instruction to the base station to which the cell to be powered off belongs can refer to the related description of S604, which will not be repeated here.
[0188] S1106, the electronic device determines whether the cell to be powered off enters a power saving state.
[0189] In combination Figure 7 The related description of the electronic device determining whether the cell to be powered off enters the power saving state can refer to the related description of S701, which will not be repeated here.
[0190] S1107, when the cell to be powered off enters the power saving state, the electronic device determines that the first cell state of the cell to be powered off is the abnormal state or the normal state.
[0191] In combination Figure 7 When the cell to be powered off enters the power saving state, the related description of the electronic device determining that the first cell state of the cell to be powered off is the abnormal state or the normal state can refer to the related description of S702, which will not be repeated here.
[0192] S1108, the electronic device determines whether the first cell state of the cell to be powered off is the normal state.
[0193] In combination Figure 5 The related description of the electronic device determining whether the first cell state of the cell to be powered off is the normal state can refer to the related description of S501, which will not be repeated here.
[0194] S1109, when the cell to be powered off does not enter the power saving state, the electronic device repeatedly sends the power saving start instruction to the base station to which the cell to be powered off belongs until the cell to be powered off enters the power saving state.
[0195] In combination Figure 7When the to-be-energy-saving cell does not enter the energy-saving state, the electronic device repeatedly sends the energy-saving start instruction to the base station to which the to-be-energy-saving cell belongs until the to-be-energy-saving cell enters the energy-saving state. For related description, please refer to the related description of S703, which will not be repeated here.
[0196] S1110, the electronic device acquires the first sending number of the energy-saving start instruction sent to the base station to which the to-be-energy-saving cell belongs.
[0197] In combination with Figure 8 For related description of the electronic device acquiring the first sending number of the energy-saving start instruction sent to the base station to which the to-be-energy-saving cell belongs, please refer to the related description of S801, which will not be repeated here.
[0198] S1111, when the first sending number is greater than the first preset number, the electronic device outputs the first alarm information.
[0199] In combination with Figure 8 For related description of the electronic device outputting the first alarm information when the first sending number is greater than the first preset number, please refer to the related description of S802, which will not be repeated here.
[0200] S1112, when the first cell state is an abnormal state, the electronic device controls the to-be-energy-saving cell to exit the energy-saving state.
[0201] In combination with Figure 5 For related description of the electronic device controlling the to-be-energy-saving cell to exit the energy-saving state when the first cell state is an abnormal state, please refer to the related description of S502, which will not be repeated here.
[0202] S1113, when the first cell state is a normal state, the electronic device acquires a second cell state of a cell adjacent to the to-be-energy-saving cell.
[0203] In combination with Figure 5 For related description of the electronic device acquiring the second cell state of the cell adjacent to the to-be-energy-saving cell when the first cell state is a normal state, please refer to the related description of S503, which will not be repeated here.
[0204] S1114, the electronic device judges whether the second cell state of the cell adjacent to the to-be-energy-saving cell is a normal state.
[0205] In combination with Figure 5 For related description of the electronic device judging whether the second cell state of the cell adjacent to the to-be-energy-saving cell is a normal state, please refer to the related description of S503, which will not be repeated here.
[0206] S1115, when the second cell state is a normal state, the electronic device determines that the to-be-energy-saving cell remains in the energy-saving state.
[0207] S1116, when the second cell state is the abnormal state, the electronic device controls the cell to be energized to exit the energy saving state.
[0208] In combination Figure 5 The related description that when the second cell state is the abnormal state, the electronic device controls the cell to be energized to exit the energy saving state can refer to the related description of S504, which is not repeated here.
[0209] S1117, the electronic device determines whether the cell to be energized exits the energy saving state.
[0210] In combination Figure 9 The related description that the electronic device determines whether the cell to be energized exits the energy saving state can refer to the related description of S901, which is not repeated here.
[0211] S1118, when the cell to be energized does not exit the energy saving state, the electronic device repeatedly sends the energy saving exit instruction to the base station to which the cell to be energized belongs until the cell to be energized exits the energy saving state.
[0212] In combination Figure 9 The related description that when the cell to be energized does not exit the energy saving state, the electronic device repeatedly sends the energy saving exit instruction to the base station to which the cell to be energized belongs until the cell to be energized exits the energy saving state can refer to the related description of S902, which is not repeated here.
[0213] S1119, the electronic device obtains a second sending number of the energy saving exit instruction sent to the base station to which the cell to be energized belongs.
[0214] In combination Figure 10 The related description that the electronic device obtains the second sending number of the energy saving exit instruction sent to the base station to which the cell to be energized belongs can refer to the related description of S1001, which is not repeated here.
[0215] S1120, when the second sending number is greater than a second preset number, the electronic device outputs a second alarm information.
[0216] In combination Figure 10 The related description that when the second sending number is greater than the second preset number, the electronic device outputs the second alarm information can refer to the related description of S1002, which is not repeated here.
[0217] The foregoing mainly describes the solutions provided by the embodiments of this application from a methodological perspective. To achieve the above functions, it includes corresponding hardware structures and / or software modules for executing each function. Those skilled in the art should readily recognize that, based on the units and algorithm steps of the examples described in conjunction with the embodiments disclosed herein, this application can be implemented in hardware or a combination of hardware and computer software. Whether a function is executed in hardware or by computer software driving hardware depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.
[0218] This application embodiment can divide the community energy-saving management device into functional modules according to the above method example. For example, each function can be divided into a separate functional module, or two or more functions can be integrated into one processing module. The integrated module can be implemented in hardware or as a software functional module. Optionally, the module division in this application embodiment is illustrative and only represents one logical functional division; other division methods may be used in actual implementation.
[0219] like Figure 12 The diagram shown is a structural schematic of a community energy-saving management device provided in an embodiment of this application. This community energy-saving management device can be used to perform… Figures 5-11 The method for energy-saving management in the community is shown. Figure 12 The energy-saving management device for the community shown includes: an acquisition unit 1201 and a control unit 1202.
[0220] The acquisition unit 1201 is used to acquire the first cell status of the cell to be saved; the cell to be saved is the cell that receives the energy-saving activation command. The control unit 1202 is used to control the cell to be saved to exit the energy-saving state when the first cell status is abnormal. The acquisition unit 1201 is also used to acquire the second cell status of the cell adjacent to the cell to be saved when the first cell status is normal. The control unit 1202 is also used to control the cell to be saved to exit the energy-saving state when the second cell status is abnormal.
[0221] Optionally, the cell energy saving management apparatus further comprises a sending unit 1203. The obtaining unit 1201 is further configured to receive a control instruction, and the control instruction is used to instruct the cell to be energysaved to enter the energy saving state. The obtaining unit 1201 is further configured to obtain a third cell state of the cell to be energysaved in response to the control instruction. The sending unit 1203 is configured to send an energy saving prohibition instruction to a base station to which the cell to be energysaved belongs when the third cell state is the abnormal state, and the energy saving prohibition instruction is used to prohibit the cell to be energysaved from entering the energy saving state. The sending unit 1203 is further configured to send an energy saving start instruction to the base station to which the cell to be energysaved belongs when the third cell state is the normal state, and the energy saving start instruction is used to instruct the cell to be energysaved to enter the energy saving state.
[0222] Optionally, the cell energy saving management apparatus further comprises a determining unit 1204. The determining unit 1204 is configured to determine whether the cell to be energysaved enters the energy saving state. The determining unit 1204 is further configured to determine that the first cell state of the cell to be energysaved is the abnormal state or the normal state when the cell to be energysaved enters the energy saving state. The sending unit 1203 is further configured to repeatedly send the energy saving start instruction to the base station to which the cell to be energysaved belongs until the cell to be energysaved enters the energy saving state when the cell to be energysaved does not enter the energy saving state.
[0223] Optionally, the obtaining unit 1201 is further configured to obtain a first sending frequency of the energy saving start instruction sent to the base station to which the cell to be energysaved belongs. The sending unit 1203 is further configured to output first alarm information when the first sending frequency is greater than a first preset frequency.
[0224] Optionally, the determining unit 1204 is further configured to determine whether the cell to be energysaved exits the energy saving state. The sending unit 1203 is further configured to repeatedly send an energy saving exit instruction to the base station to which the cell to be energysaved belongs until the cell to be energysaved exits the energy saving state when the cell to be energysaved does not exit the energy saving state.
[0225] Optionally, the obtaining unit 1201 is further configured to obtain a second sending frequency of the energy saving exit instruction sent to the base station to which the cell to be energysaved belongs. The sending unit 1203 is further configured to output second alarm information when the second sending frequency is greater than a second preset frequency.
[0226] The embodiment of the present application further provides a computer readable storage medium, which comprises computer execution instructions. When the computer execution instructions run on a computer, the computer execution instructions make the computer execute the cell energy saving management method provided in the above embodiment.
[0227] The embodiment of the present application further provides a computer program, which can be directly loaded into a memory and contains software codes. The computer program can be loaded and executed by a computer to realize the cell energy saving management method provided in the above embodiment.
[0228] Those skilled in the art should clearly understand that, in one or more examples described above, the functions described in the present application can be implemented by hardware, software, firmware or any combination thereof. When implemented by software, the functions can be stored in a computer readable medium or transmitted as one or more instructions or codes on a computer readable medium. The computer readable medium includes a computer readable storage medium and a communication medium, wherein the communication medium includes any medium that facilitates the transfer of computer programs from one place to another. The storage medium can be any available medium that can be accessed by a general or special purpose computer.
[0229] Through the above description of the embodiments, those skilled in the art can clearly understand that, for the convenience and brevity of description, only the above division of functional modules is taken as an example, and in actual application, the above functions can be completed by different functional modules according to needs, that is, the internal structure of the device is divided into different functional modules to complete all or part of the functions described above.
[0230] In several embodiments provided in the present application, it should be understood that the disclosed devices and methods can be implemented in other ways. For example, the device embodiments described above are only illustrative, for example, the division of modules or units is only a logical function division, and actual implementation can have another division manner. For example, a plurality of units or components can be combined or integrated into another device, or some features can be omitted or not executed. In addition, the coupling or direct coupling or communication connection between the displayed or discussed units can be indirect coupling or communication connection through some interfaces, devices or units, which can be electrical, mechanical or other forms. The units described as separate components can be or can not be physically separated, and the components shown as units can be one physical unit or a plurality of physical units, that is, they can be located in one place or distributed in a plurality of different places. According to actual needs, part or all of the units can be selected to achieve the purpose of the embodiment scheme.
[0231] In addition, each function unit in each embodiment of the present application can be integrated in one processing unit, or each unit can be physically present separately, or two or more units can be integrated in one unit. The integrated unit can be realized in the form of hardware or in the form of a software function unit. When the integrated unit is realized in the form of a software function unit and sold or used as an independent product, it can be stored in a readable storage medium. Based on this understanding, the technical solutions of the embodiments of the present application essentially or say the part that contributes to the prior art or the whole or part of the technical solutions can be embodied in the form of a software product, which is stored in a storage medium and includes a plurality of instructions to make a device (which can be a single-chip microcomputer, a chip, etc.) or a processor execute all or part of the steps of the method of each embodiment of the present application. The foregoing storage medium includes: a U disk, a mobile hard disk, a ROM, a RAM, a magnetic disk or an optical disk and various storage medium that can store program codes.
[0232] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto, any person skilled in the art can easily think of changes or replacements within the technical scope disclosed in the present application, which should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A method for energy-saving management in residential communities, characterized in that, include: Receive control commands; the control commands are used to instruct the energy-saving cell to enter the energy-saving state. In response to the control command, the third cell status of the cell to be saved is obtained; the cell status is used to characterize whether the cell to be saved is abnormal before the call quality of the terminal in the cell deteriorates. When the third cell is in an abnormal state, an energy-saving prohibition instruction is sent to the base station to which the cell to be saved is located; the energy-saving prohibition instruction is used to prevent the cell to be saved from entering the energy-saving state. When the third cell is in a normal state, an energy-saving activation command is sent to the base station to which the cell to be saved is located; the energy-saving activation command is used to instruct the cell to be saved to enter the energy-saving state. After sending the energy-saving activation command to the base station to which the cell to be saved belongs, it is determined whether the cell to be saved has entered the energy-saving state; When the cell to be saved enters the energy-saving state, the first cell state of the cell to be saved is obtained, and the first cell state of the cell to be saved is determined to be either the abnormal state or the normal state; the cell to be saved is the cell that receives the energy-saving activation command; When the first cell is in an abnormal state, the cell to be saved is controlled to exit the energy-saving state; When the first cell is in a normal state, the state of the second cell adjacent to the cell to be saved is obtained; When the second cell is in the abnormal state, the cell to be saved is controlled to exit the energy-saving state; When the cell to be saved has not entered the energy-saving state, the energy-saving activation command is repeatedly sent to the base station to which the cell to be saved belongs until the cell to be saved enters the energy-saving state.
2. The community energy-saving management method according to claim 1, characterized in that, Also includes: Obtain the first number of times the energy-saving activation command is sent to the base station to which the cell to be saved belongs; When the first number of transmissions exceeds the first preset number of transmissions, the first alarm message is output.
3. The community energy-saving management method according to claim 1, characterized in that, After controlling the energy-saving cell to exit the energy-saving state, the method further includes: Determine whether the energy-saving community to be saved has exited the energy-saving state; When the cell to be saved has not exited the energy-saving state, the energy-saving exit instruction is repeatedly sent to the base station to which the cell to be saved belongs until the cell to be saved exits the energy-saving state.
4. The community energy-saving management method according to claim 3, characterized in that, Also includes: Obtain the second number of times the energy-saving exit instruction is sent to the base station to which the cell to be saved belongs; When the second number of transmissions exceeds the second preset number of transmissions, a second alarm message is output.
5. A community energy-saving management device, characterized in that, include: Acquisition unit and control unit; The acquisition unit is also used to receive control commands; the control commands are used to instruct the energy-saving cell to enter the energy-saving state. The acquisition unit is further configured to acquire the third cell status of the cell to be energy-saving in response to the control command; the cell status is used to characterize whether the cell to be energy-saving is abnormal before the call quality of the terminal in the cell deteriorates. The acquisition unit is further configured to send an energy-saving prohibition instruction to the base station to which the cell to be saved belongs when the state of the third cell is abnormal; the energy-saving prohibition instruction is used to prohibit the cell to be saved from entering the energy-saving state; The acquisition unit is further configured to send an energy-saving activation instruction to the base station to which the energy-saving cell belongs when the third cell is in a normal state; the energy-saving activation instruction is used to instruct the energy-saving cell to enter the energy-saving state. The control unit is further configured to determine whether the cell to be saved has entered the energy-saving state after sending the energy-saving activation command to the base station to which the cell to be saved belongs; The acquisition unit is used to acquire the first cell status of the cell to be energy-saving when the cell to be energy-saving enters the energy-saving state, and determine whether the first cell status of the cell to be energy-saving is the abnormal state or the normal state; the cell to be energy-saving is the cell that receives the energy-saving start command; The control unit is used to control the cell to be saved to exit the energy-saving state when the state of the first cell is abnormal. The acquisition unit is further configured to acquire the second cell status of the cell adjacent to the cell to be energy-saving when the first cell status is normal. The control unit is further configured to control the cell to be saved to exit the energy-saving state when the state of the second cell is the abnormal state; The control unit is further configured to repeatedly send the energy-saving activation command to the base station to which the cell to be saved belongs when the cell to be saved has not entered the energy-saving state, until the cell to be saved enters the energy-saving state.
6. A community energy-saving management device, characterized in that, It includes a memory and a processor; the memory is used to store computer execution instructions, and the processor is connected to the memory via a bus; when the community energy-saving management device is running, the processor executes the computer execution instructions stored in the memory, so that the community energy-saving management device performs the community energy-saving management method as described in any one of claims 1-4.
7. A computer-readable storage medium, characterized in that, The computer-readable storage medium includes computer-executable instructions that, when executed on a computer, cause the computer to perform the community energy-saving management method as described in any one of claims 1-4.
Citation Information
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Method and device for controlling carrier power
CN101873677A