Earthquake emergency detection adjustment method and system
By receiving earthquake early warning information and dynamically adjusting the detection frequency, the problem of mismatched detection frequencies in the earthquake emergency detection system has been solved, enabling flexible detection of communication equipment in different buildings, ensuring timely transmission of early warning signals and reducing resource waste.
Patent Information
- Application Number
- CN202310564245.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-18
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2043-05-18
AI Technical Summary
The existing earthquake emergency detection system cannot flexibly adjust the detection frequency according to the seismic resistance of communication equipment in different buildings and the earthquake intensity level, resulting in the detection frequency being too low or too high, which affects the transmission of early warning signals and wastes resources.
By receiving earthquake early warning information, the system obtains the preset seismic resistance level of communication equipment inside buildings, determines whether the earthquake intensity level exceeds the preset value, adjusts the detection frequency to the preset peak value or calculates the frequency value to be adjusted based on the level ratio, and dynamically adjusts the detection frequency by combining the building importance and equipment importance scores.
To meet the testing needs of communication equipment in different buildings under different earthquake magnitudes, ensure timely transmission of early warning signals, reduce resource waste, and improve the reliability and stability of the communication system.
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Figure CN116736407B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of communication equipment detection, in particular to a seismic emergency detection adjustment method and system. BACKGROUND
[0002] Earthquake is a natural phenomenon caused by the vibration during the rapid release of energy of the crust, during which seismic waves are generated. The mutual extrusion and collision between the plates on the earth cause the dislocation and rupture of the plate edges and the plate interior, which is the main cause of earthquakes.
[0003] As an indispensable infrastructure for people's life and production in modern society, in order to fully play the role of science and technology in disaster reduction, improve the earthquake prevention and disaster reduction capacity of hydropower stations, and minimize the casualties and property losses caused by earthquakes, it is often necessary to construct an earthquake emergency warning system according to the environmental conditions, seismic risk, and earthquake warning characteristics and engineering earthquake warning needs of the hydropower station. During the earthquake warning process, it is particularly important to ensure the normal operation of the communication equipment. In the hydropower station, each building will be equipped with corresponding communication equipment to meet the communication needs of the hydropower station. For buildings with high importance and high grade, the communication equipment will be more complete and stable, and the anti-seismic ability will be stronger.
[0004] At present, since the earthquake may cause serious damage to the communication equipment in the hydropower station, thereby affecting the warning notification of the warning system and the timely response of some personnel, it is necessary to detect the working state of the communication equipment in each building through a detection system and maintain it in time when an abnormal situation occurs, so as to ensure the timely transmission of the warning signal and the normal operation of the business communication.
[0005] For the related technologies in the above, the inventors find that: in the process of detecting the communication equipment in each building, the detection frequency configured is usually a fixed frequency, but since the anti-seismic ability of the communication equipment in different buildings is not the same, and the possibility of damage to the communication equipment caused by different earthquake magnitudes is also different, therefore, the common detection system cannot meet the detection needs of the communication equipment in different buildings at the same time when facing different earthquake magnitudes, which may lead to the situation that the communication state information is not obtained in time due to the low detection frequency setting of the communication equipment in some buildings, or the situation of large cost and resource waste due to the high detection frequency setting of the communication equipment in some buildings. SUMMARY
[0006] In order to meet the detection needs of the communication equipment in different buildings at the same time when facing different earthquake magnitudes, the present application provides a seismic emergency detection adjustment method and system.
[0007] In a first aspect, the application provides a seismic emergency detection adjustment method, which adopts the following technical scheme:
[0008] A seismic emergency detection adjustment method, the detection adjustment method comprising:
[0009] receiving a seismic early warning information; the seismic early warning information comprising a seismic intensity level;
[0010] obtaining a preset seismic resistance level of a communication device in each building in a hydropower station;
[0011] respectively judging whether the seismic intensity level exceeds the preset seismic resistance level of the communication device in each building, and if yes, adjusting a detection frequency of the communication device in the building to a corresponding preset detection frequency peak value;
[0012] if no, calculating a level ratio according to the seismic intensity level and a preset seismic resistance level threshold, obtaining a to-be-adjusted detection frequency value according to the level ratio and the preset detection frequency peak value, and adjusting the detection frequency of the communication device in the building according to the to-be-adjusted detection frequency value.
[0013] By adopting the above technical scheme, in combination with actual situations such as historical seismic data and communication device damage situations in each building, the preset seismic resistance level of the communication device in each building is pre-evaluated and determined. After receiving the seismic early warning information sent by a seismic station or a seismic early warning center, if the seismic intensity level exceeds the preset seismic resistance level of the communication device in a building, the detection frequency of the communication device in the building is adjusted to the preset detection frequency peak value, so as to timely detect and maintain the communication device in the building, thereby ensuring that the communication device in the building can timely respond to and cope with an emergency event. If the seismic intensity level does not exceed the preset seismic resistance level of the communication device in a building, a level ratio is calculated according to the seismic intensity level and a preset seismic resistance level threshold, and a to-be-adjusted detection frequency value is obtained according to the preset detection frequency peak value with reference to the level ratio, so as to adjust the detection frequency of the communication device in the building. Thus, when facing different seismic levels, the detection requirements of the communication devices in different buildings can be met at the same time, so as to ensure that the early warning signals in part of the buildings can be timely conveyed, and the situation that the detection frequency of the communication devices in part of the buildings is too frequent and causes resource waste is reduced.
[0014] Optionally, the step of obtaining the preset detection frequency peak value comprises:
[0015] determining a building importance level of the building according to building information of the building;
[0016] determining a corresponding preset detection frequency peak value according to the building importance level of the building based on a first preset mapping table.
[0017] By adopting the technical scheme, for the communication equipment in different buildings of the hydropower station, the preset detection frequency peak value corresponding to the communication equipment needs to be flexibly set and adjusted according to the actual situation and demand. For a building with a high building importance level, a higher preset detection frequency peak value can be set to ensure that the communication equipment in the building can respond to and cope with emergencies in time. For a building with a low building importance level, the preset detection frequency peak value configured can be appropriately reduced to reduce the work cost and burden.
[0018] Optionally, the step of obtaining the preset detection frequency peak value comprises:
[0019] determining the building importance level of the building according to the building information of the building;
[0020] obtaining the equipment types of the communication equipment in the building, and determining the equipment importance level of each communication equipment according to the equipment types;
[0021] calculating the comprehensive importance score of the communication equipment according to the building importance level of the building and the equipment importance level of the communication equipment in the building based on a preset calculation formula;
[0022] determining the preset detection frequency peak value corresponding to the communication equipment according to the comprehensive importance score of the communication equipment based on a second preset mapping table.
[0023] By adopting the technical scheme, the importance levels of different types of communication equipment in the same building are usually not the same. Therefore, when there are multiple communication equipment with different importance levels in the same building, the comprehensive importance score of each communication equipment can be calculated according to the preset calculation formula. Then, multiple score intervals are preset, each interval is allocated with a proper preset detection frequency peak value, and a second preset mapping table is obtained. According to the second preset mapping table, the preset detection frequency peak value corresponding to each communication equipment is matched, so as to obtain the preset detection frequency peak value corresponding to the building importance level of different buildings and the equipment importance level of different communication equipment, so as to meet the detection requirements of the communication equipment with different importance levels in each building.
[0024] Optionally, the detection adjustment method further comprises:
[0025] detecting whether the communication equipment in each building appears abnormal detection condition;
[0026] if yes, obtaining the comprehensive importance score of each communication equipment with abnormal detection condition and sorting the comprehensive importance scores to obtain a repair priority order;
[0027] Obtain current position information of each maintenance terminal respectively;
[0028] According to the current position information of each maintenance terminal, send maintenance prompt information to the maintenance terminal closest to the communication device with the detection abnormality in sequence based on the maintenance priority ranking.
[0029] By adopting the above technical solution, when multiple communication devices have detection abnormality, the maintenance priority ranking is performed according to the comprehensive importance score of each communication device with detection abnormality, the position information of each maintenance terminal is obtained, the position of each maintenance personnel can be known, the maintenance terminal closest to the communication device is determined, and the maintenance prompt information is sent to the maintenance terminal closest to the communication device with detection abnormality in sequence according to the maintenance priority ranking. The maintenance personnel corresponding to the maintenance terminal can go to the position of the communication device for maintenance, thereby reducing the situation that the current position of the allocated maintenance personnel is far away from the communication device with detection abnormality, improving the patrol efficiency to a certain extent, and ensuring that the more important communication device can be maintained and repaired in time, improving the reliability of the communication system, and providing strong guarantee for the maintenance work of the communication device.
[0030] Optionally, the step of obtaining the to-be-adjusted detection frequency value according to the grade ratio and the preset detection frequency peak value comprises:
[0031] According to the third preset mapping table, the corresponding grade ratio interval is determined according to the grade ratio, and the corresponding preset detection frequency adjustment ratio is determined according to the grade ratio interval;
[0032] The to-be-adjusted detection frequency value is calculated according to the preset detection frequency adjustment ratio and the preset detection frequency peak value.
[0033] By adopting the above technical solution, multiple grade ratio intervals are set in advance and appropriate preset detection frequency adjustment ratios are allocated to each interval to obtain the third preset mapping table. The to-be-adjusted detection frequency value is calculated according to the preset detection frequency adjustment ratio and the preset detection frequency peak value, and the detection frequency is adjusted, thereby reducing the situation that the detection frequency is adjusted too frequently, and the detection requirement can be better met.
[0034] Optionally, the step of adjusting the detection frequency of the communication device in the building according to the to-be-adjusted detection frequency value comprises:
[0035] The detection frequency of the communication device in the building is adjusted to the to-be-adjusted detection frequency value.
[0036] Optionally, the detecting the communication equipment in the building comprises any one or more of signal strength detection, signal-to-noise ratio detection, fault detection, anti-interference capability detection and network call detection.
[0037] By using the above technical solution, the working conditions of the communication equipment are detected by using various detection methods alone or in combination, which not only helps to discover communication faults in time and improves the reliability and stability of the communication system, but also ensures the timely transmission of early warning signals and the normal operation of business communication.
[0038] In a second aspect, the application provides a seismic emergency detection adjustment system, which adopts the following technical solution:
[0039] A seismic emergency detection adjustment system, the detection adjustment system comprises:
[0040] A receiving module for receiving seismic early warning information; the seismic early warning information comprises a seismic intensity level;
[0041] An acquisition module for acquiring a preset seismic resistance level of communication equipment in each building in a hydropower station;
[0042] A judgment module for judging whether the seismic intensity level exceeds the preset seismic resistance level of the communication equipment in each building, respectively, and outputting a first judgment result if yes, and outputting a second judgment result if no;
[0043] A detection frequency adjustment module for adjusting the detection frequency of the communication equipment in the building to a preset detection frequency peak value corresponding to the building in response to the first judgment result;
[0044] A calculation module for calculating a level ratio value according to the seismic intensity level and a preset seismic resistance level threshold value in response to the second judgment result, and obtaining a to-be-adjusted detection frequency value according to the level ratio value and the preset detection frequency peak value corresponding to the building;
[0045] The detection frequency adjustment module is further configured to adjust the detection frequency of the communication equipment in the building according to the to-be-adjusted detection frequency value.
[0046] By adopting the technical scheme, in combination with actual situations such as historical earthquake data and communication equipment damage in each building, the preset seismic grade corresponding to the communication equipment in each building is pre-evaluated and determined, after receiving the earthquake warning information sent by the earthquake bureau or the earthquake warning center, if the seismic intensity grade exceeds the preset seismic grade of the communication equipment in a building, the detection frequency of the communication equipment in the building is adjusted to the preset detection frequency peak, so as to timely detect and maintain the communication equipment in the building, thereby ensuring that the communication equipment in the building can timely respond to and cope with emergencies; if the seismic intensity grade does not exceed the preset seismic grade of the communication equipment in a building, the grade ratio is calculated according to the seismic intensity grade and the preset seismic grade threshold, and the adjusted detection frequency value is obtained according to the preset detection frequency peak with reference to the grade ratio, so as to adjust the detection frequency of the communication equipment in the building, thereby meeting the detection requirements of the communication equipment in different buildings at the same time when facing different seismic intensities, so as to ensure that the warning signals in part of the buildings can be timely conveyed, and meanwhile, the situation that the detection frequency of the communication equipment in part of the buildings is too frequent and causes resource waste is reduced.
[0047] In a third aspect, the present application provides a computer device, which adopts the following technical scheme:
[0048] A computer device includes a memory, a processor, and a computer program stored in the memory and executable on the processor, and the processor executes the program to implement the method of the first aspect.
[0049] In a fourth aspect, the present application provides a computer readable storage medium, which adopts the following technical scheme:
[0050] A computer readable storage medium stores a computer program capable of being loaded and executed by a processor to implement any one of the methods in the first aspect.
[0051] In summary, the present application has at least one of the following beneficial technical effects: when facing different seismic intensities, the detection requirements of the communication equipment in different buildings can be met at the same time, so as to ensure that the warning signals in part of the buildings can be timely conveyed, and meanwhile, the situation that the detection frequency of the communication equipment in part of the buildings is too frequent and causes resource waste is reduced. BRIEF DESCRIPTION OF DRAWINGS
[0052] Figure 1 FIG. 1 is a first flowchart of a seismic emergency detection adjustment method according to an embodiment of the present application.
[0053] Figure 2 FIG. 2 is a second flowchart of a seismic emergency detection adjustment method according to an embodiment of the present application.
[0054] Figure 3 FIG. 4 is a third flowchart of a method for earthquake emergency detection and adjustment according to an embodiment of the present application.
[0055] Figure 4 FIG. 5 is a fourth flowchart of a method for earthquake emergency detection and adjustment according to an embodiment of the present application.
[0056] Figure 5 FIG. 6 is a fifth flowchart of a method for earthquake emergency detection and adjustment according to an embodiment of the present application.
[0057] Figure 6 FIG. 7 is a structural block diagram of a system for earthquake emergency detection and adjustment according to an embodiment of the present application.
[0058] Figure 7 FIG. 8 is a structural block diagram of a system for earthquake emergency detection and adjustment according to another embodiment of the present application.
[0059] Legend of reference signs: 101, receiving module; 102, obtaining module; 103, judging module; 104, detection frequency adjustment module; 105, calculating module; 201, detection module; 202, comprehensive importance degree score calculating module; 203, repair priority ranking module; 204, current position information obtaining module; 205, repair prompt information sending module. DETAILED DESCRIPTION
[0060] In order to make the objects, technical solutions, and advantages of the present application clearer, the following will further describe the present application with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and should not be used to limit the present application. Figures 1-7
[0061] The embodiments of the present application disclose a method for earthquake emergency detection and adjustment.
[0062] With reference to Figure 1 A method for earthquake emergency detection and adjustment, the detection and adjustment method comprising:
[0063] Step S101, receiving earthquake early warning information;
[0064] Wherein, when a earthquake above a preset earthquake intensity threshold occurs, the earthquake early warning information sent by a local earthquake office or a earthquake early warning center is received, and the earthquake early warning information comprises a earthquake intensity level;
[0065] Step S102, obtaining a preset seismic resistance level of a communication device in each building in a hydropower station;
[0066] The specific type of the communication device in each building can be different due to the size, structure and function of each building of the hydropower station; in addition, the communication device in the building can include a telephone, a intercom, a radio system, a data network system, a radio measurement and navigation system, a satellite communication device and the like, and the embodiments of the present application are not limited thereto;
[0067] It can be understood that the preset seismic grade of the communication device in each building needs to consider multiple factors, such as the building structure, the installation of the communication device, the geological conditions of the area where the building is located, and historical earthquake factors; specifically, the preset seismic grade can be evaluated and determined in combination with the actual situation such as historical earthquake data and communication device damage in the building;
[0068] Generally speaking, since the building where the communication device is located is the first protection of the communication device, the seismic capacity of the building is also a major standard for measuring the preset seismic grade of the communication device, the higher the seismic capacity of the building, the smaller the impact on the communication device in the building, that is, the smaller the possibility of damage to the communication device; and correspondingly, for some important buildings with high grade, the seismic capacity of the building itself needs to be higher than other buildings, and the communication device configured needs to be more perfect and stable; therefore, it can be known that for important buildings with high grade, the preset seismic grade of the communication device is usually relatively high to ensure normal communication during an earthquake;
[0069] Step S103, respectively judge whether the seismic intensity grade exceeds the preset seismic grade of the communication device in each building, if yes, jump to step S104; if not, jump to step S105;
[0070] Step S104, adjust the detection frequency of the communication device in the building to the corresponding preset detection frequency peak value;
[0071] Step S105, calculate a grade ratio according to the seismic intensity grade and the preset seismic grade threshold value, obtain a to-be-adjusted detection frequency value according to the grade ratio and the preset detection frequency peak value, and adjust the detection frequency of the communication device in the building according to the to-be-adjusted detection frequency value.
[0072] The grade ratio is the ratio of the seismic intensity grade to the preset seismic grade threshold value, and the grade ratio is used as a reference ratio to calculate the grade ratio and the preset detection frequency peak value to obtain the to-be-adjusted detection frequency value.
[0073] In the above embodiments, in combination with the actual situation such as historical earthquake data and communication equipment damage in each building, the preset seismic grade corresponding to the communication equipment in each building is pre-evaluated and determined. After receiving the earthquake warning information sent by the earthquake bureau or the earthquake warning center, if the seismic intensity level exceeds the preset seismic grade of the communication equipment in a certain building, the detection frequency of the communication equipment in the building is adjusted to the preset detection frequency peak value, so as to timely detect and maintain the communication equipment in the building, thereby ensuring that the communication equipment in the building can respond and cope with emergencies in time. If the seismic intensity level does not exceed the preset seismic grade of the communication equipment in a certain building, the grade ratio is calculated according to the seismic intensity level and the preset seismic grade threshold, and the adjusted detection frequency value is obtained according to the preset detection frequency peak value with reference to the grade ratio, so as to adjust the detection frequency of the communication equipment in the building. Therefore, when facing different seismic levels, the detection requirements of the communication equipment in different buildings can be met at the same time, so as to ensure that the warning signals in part of the buildings can be timely conveyed, and the situation that the detection frequency of the communication equipment in part of the buildings is too frequent and causes resource waste is reduced.
[0074] As an embodiment of step S105, the step of adjusting the detection frequency of the communication equipment in the building according to the adjusted detection frequency value is: adjusting the detection frequency of the communication equipment in the building to the adjusted detection frequency value.
[0075] As an embodiment of the earthquake emergency detection adjustment method, the detection of the communication equipment in the building includes any one or several of signal strength detection, signal-to-noise ratio detection, fault detection, anti-interference capability detection, and network call detection.
[0076] Among them, the signal strength detection is to measure the strength of the signal through the signal strength instrument; the signal-to-noise ratio detection is to measure the proportion of the signal and the noise; the fault detection is to detect the fault of the communication equipment through the fault detection tool, for example, using the spectrum analyzer to detect antenna fault, line fault, amplifier fault, etc.; the anti-interference capability detection is to simulate the communication channel under different conditions, such as electromagnetic interference, multi-channel signal concurrency, etc., to detect the anti-interference capability of the communication system; the network call detection is to test whether the communication network works normally by testing call, and to test the reaction time and response quality of the network by using audio or data call.
[0077] In the above embodiments, the working condition of the communication equipment is detected by using a variety of detection methods alone or in combination, which not only can help to timely find communication faults and improve the reliability and stability of the communication system, but also can ensure the timely transmission of the warning signal and the normal operation of the business communication.
[0078] Reference Figure 2As an embodiment of step S104, the step of obtaining the preset detection frequency peak value comprises:
[0079] Step S201, according to the building information of the building, determine the building importance level of the building;
[0080] Among them, the corresponding importance level can be set according to the importance of the building. The higher the building importance level, the higher the risk of some key areas or safety warning of the building. The lower the building importance level, the lower the risk of some general areas or safety warning of the building;
[0081] Step S202, based on the first preset mapping table, determine the corresponding preset detection frequency peak value according to the building importance level of the building.
[0082] Among them, the first preset mapping table pre-stores the preset detection frequency peak value corresponding to each building importance level. The higher the building importance level, the higher the corresponding preset detection frequency peak value. In addition, the preset detection frequency peak value corresponding to each building importance level can be pre-set according to the actual situation, so as to ensure the timeliness of detection.
[0083] In the above embodiment, for the communication equipment in different buildings in the hydropower station, the corresponding preset detection frequency peak value needs to be flexibly set and adjusted according to the actual situation and demand. For the building with high building importance level, a higher preset detection frequency peak value can be set to ensure that the communication equipment in the building can respond and cope with the emergency in time. For the building with low building importance level, the preset detection frequency peak value can be appropriately reduced to reduce the cost and burden.
[0084] Referring to Figure 3 As another embodiment of step S104, the step of obtaining the preset detection frequency peak value comprises:
[0085] Step S301, according to the building information of the building, determine the building importance level of the building;
[0086] Step S302, obtain the device type of each communication equipment in the building, and determine the device importance level corresponding to each communication equipment according to the device type;
[0087] The device type with high importance level is, for example, a wireless communication device for exchanging information with the outside world, a power carrier communication device, and the like, the device type with medium importance level is, for example, an IP telephone system for providing voice, video and the like communication, a switch, a router and the like network communication device for connecting internal devices and external communication networks, and the like, and the device type with low importance level is, for example, a fax machine for internal file transfer and the like. It should be noted that the importance level of each device type can be pre-set according to actual conditions, and the embodiments of the present application are not limited thereto.
[0088] In step S303, based on a pre-designed calculation formula, the comprehensive importance score of the communication device is calculated according to the building importance level of the building and the device importance level corresponding to the communication device in the building.
[0089] The pre-designed calculation formula is: comprehensive importance score = building importance level * building preset weight + device importance level * device preset weight, wherein the building preset weight and the device preset weight are used to balance the importance relationship between the building importance level and the device importance level, and can be pre-set and adjusted according to actual conditions. For example, the building preset weight can be set to 0.6, and the device preset weight can be set to 0.4, so that the importance of the building importance level is higher.
[0090] In step S304, based on the second preset mapping table, the corresponding score interval of the communication device is determined according to the comprehensive importance score corresponding to the communication device, and the preset detection frequency peak value corresponding to the communication device is determined according to the score interval.
[0091] The second preset mapping table includes a plurality of corresponding relationships between score intervals and preset detection frequency peak values, and each score interval corresponds to a preset detection frequency peak value. In addition, the preset detection frequency peak value corresponding to the selected score interval can be the best detection frequency peak value that can achieve the desired effect after optimization and adjustment according to actual conditions, and it can be understood that the higher the comprehensive importance score interval, the greater the corresponding preset frequency peak value.
[0092] It should be noted that each score interval is mutually exclusive, and the opening and closing of the endpoints of each interval, the interval length and the number of intervals can be pre-set and adjusted according to actual conditions.
[0093] In the above embodiments, the importance levels of different types of communication devices in the same building are usually different, so when there are multiple communication devices with different importance levels in the same building, the comprehensive importance scores of each communication device can be calculated according to the pre-designed calculation formula, and then a second preset mapping table can be obtained by pre-setting multiple score intervals and assigning appropriate preset detection frequency peaks to each interval, and the corresponding preset detection frequency peak of each communication device can be matched according to the second preset mapping table, so as to obtain the corresponding preset detection frequency peak by comprehensively considering the building importance levels of different buildings and the device importance levels of different communication devices, so as to meet the detection requirements of communication devices with different importance levels in each building.
[0094] Referring to Figure 4 As a further embodiment of the earthquake emergency detection adjustment method, the detection adjustment method further comprises:
[0095] In step S401, it is detected whether the communication devices in each building have detection abnormality; if yes, go to step S402; if no, it is determined that the communication devices in the current building do not have detection abnormality, and step S401 is re-executed for the communication devices in the next building.
[0096] In step S402, the comprehensive importance scores corresponding to each detection abnormality communication device are obtained and sorted to obtain a repair priority order.
[0097] Wherein, the higher the comprehensive importance score of the communication device, the higher the corresponding repair priority, i.e. the earlier the repair priority order.
[0098] In step S403, the current position information of each repair terminal is obtained.
[0099] In the process of equipment maintenance in a hydropower station, usually multiple repair maintenance personnel are arranged, and each repair maintenance personnel is equipped with a corresponding repair terminal. In addition, the repair terminal can be a smart mobile terminal of the repair maintenance personnel, such as a mobile phone, a tablet computer, etc.
[0100] In step S404, according to the current position information of each repair terminal, repair prompt information is sent to the repair terminal closest to the detection abnormality communication device based on the repair priority order.
[0101] By comparing the distances between each repair terminal and the communication device, the repair maintenance personnel closest to the communication device can be determined.
[0102] In the above embodiment, when multiple communication devices appear detection abnormal situations, the repair priority is ranked according to the comprehensive importance score of each detection abnormal communication device, the position information of each repair terminal is obtained, the position of each repair and maintenance personnel is known, the repair terminal closest to the communication device is determined, the repair prompt information is sent to the repair terminal closest to the detection abnormal communication device according to the repair priority ranking, and the repair and maintenance personnel corresponding to the repair terminal can go to the position of the communication device for repair and maintenance, thereby reducing the situation that the current position of the allocated repair and maintenance personnel is far away from the detection abnormal communication device, improving the patrol efficiency to a certain extent, and ensuring that more important communication devices can be repaired and maintained in time to improve the reliability of the communication system and provide a strong guarantee for the maintenance work of the communication device.
[0103] With reference to Figure 5 As an embodiment of step S105, the step of obtaining the to-be-adjusted detection frequency value according to the grade ratio and the preset detection frequency peak value includes:
[0104] S1051, determining a corresponding grade ratio interval according to the grade ratio based on a third preset mapping table, and determining a preset detection frequency adjustment ratio according to the grade ratio interval;
[0105] The third preset mapping table includes a corresponding relationship between multiple groups of grade ratio intervals and preset detection frequency adjustment ratios, each grade ratio interval corresponds to a preset detection frequency adjustment ratio, and in addition, the preset detection frequency adjustment ratio corresponding to the selected grade ratio interval can be an optimal detection frequency adjustment ratio that can achieve an expected effect after being optimized and adjusted according to actual conditions.
[0106] S1052, calculating the to-be-adjusted detection frequency value according to the preset detection frequency adjustment ratio and the preset detection frequency peak value.
[0107] It should be noted that each grade ratio interval does not intersect with each other, and the opening and closing of the endpoints of each interval, the interval length and the number of intervals can be pre-set and adjusted according to actual conditions.
[0108] In the above embodiment, multiple grade ratio intervals are pre-set and each interval is assigned an appropriate preset detection frequency adjustment ratio to obtain a third preset mapping table, and then the to-be-adjusted detection frequency value is calculated according to the preset detection frequency adjustment ratio and the preset detection frequency peak value to adjust the detection frequency, thereby reducing the situation that the detection frequency is adjusted too frequently, and better meeting the detection requirements.
[0109] The application discloses a seismic emergency detection adjustment system.
[0110] Referring to Figure 6 An earthquake emergency detection adjustment system, the detection adjustment system comprising:
[0111] A receiving module 101 is configured to receive earthquake early warning information.
[0112] The earthquake early warning information comprises an earthquake intensity level.
[0113] An obtaining module 102 is configured to obtain a preset seismic level of a communication device in each building in a hydropower station.
[0114] A judging module 103 is configured to judge whether the earthquake intensity level exceeds the preset seismic level of the communication device in each building, respectively, and output a first judgment result if yes, or a second judgment result if no.
[0115] A detection frequency adjustment module 104 is configured to adjust the detection frequency of the communication device in the building to a preset detection frequency peak value corresponding to the building in response to the first judgment result.
[0116] A calculation module 105 is configured to calculate a level ratio according to the earthquake intensity level and a preset seismic level threshold value in response to the second judgment result, and obtain a to-be-adjusted detection frequency value according to the level ratio and the preset detection frequency peak value corresponding to the building.
[0117] The detection frequency adjustment module 104 is further configured to adjust the detection frequency of the communication device in the building according to the to-be-adjusted detection frequency value.
[0118] In the above embodiment, when facing different earthquake magnitudes, the detection requirements of the communication devices in different buildings can be met at the same time to ensure that the early warning signals in some buildings can be timely conveyed, and the situation that the detection frequency of the communication devices in some buildings is too frequent to cause resource waste is reduced.
[0119] As an embodiment of the detection frequency adjustment module 104, the detection frequency adjustment module 104 comprises:
[0120] A building importance level determination unit is configured to determine a building importance level of a building according to building information of the building.
[0121] A preset detection frequency peak value determination unit is configured to determine a corresponding preset detection frequency peak value according to the building importance level of the building based on a first preset mapping table.
[0122] In the above embodiment, the corresponding preset detection frequency peak value of the communication device in different buildings in the hydropower station needs to be flexibly set and adjusted according to the actual situation and requirements.
[0123] As another implementation of the detection frequency adjustment module 104, the detection frequency adjustment module 104 comprises:
[0124] The building importance level determination unit is configured to determine the building importance level of the building according to the building information of the building.
[0125] The device importance level determination unit is configured to obtain the device type of each communication device in the building, and determine the device importance level corresponding to each communication device according to the device type.
[0126] The comprehensive importance score calculation unit is configured to calculate the comprehensive importance score corresponding to each communication device according to the building importance level of the building and the device importance level corresponding to each communication device in the building based on a preset calculation formula.
[0127] The preset detection frequency peak value determination unit is configured to determine the score interval corresponding to each communication device according to the comprehensive importance score corresponding to each communication device based on a second preset mapping table, and determine the preset detection frequency peak value corresponding to each communication device according to the score interval.
[0128] In the above implementation, the building importance level of different buildings and the device importance level of different communication devices are comprehensively considered to obtain the preset detection frequency peak value corresponding to each communication device, so as to meet the detection requirements of communication devices with different importance levels in each building at the same time.
[0129] Referring to Figure 7 , as a further implementation of the earthquake emergency detection adjustment system, the detection adjustment system further comprises:
[0130] The detection module 201 is configured to detect whether the communication device in each building has a detection abnormality, and output a detection abnormality result if the communication device has the detection abnormality.
[0131] The comprehensive importance score calculation module 202 is configured to obtain the comprehensive importance score corresponding to each detection abnormality communication device.
[0132] The repair priority sorting module 203 is configured to sort the comprehensive importance score corresponding to each detection abnormality communication device to obtain a repair priority sorting.
[0133] The current position information acquisition module 204 is configured to obtain the current position information of each repair terminal.
[0134] The repair prompt information sending module 205 is configured to send repair prompt information to the repair terminal closest to the detection abnormality communication device according to the current position information of each repair terminal based on the repair priority sorting.
[0135] In the above embodiment, when multiple communication devices appear to have detection abnormality, the repair priority is ranked according to the comprehensive importance score of each detection abnormality communication device, and the position information of each repair terminal is obtained to know the position of each repair and maintenance personnel, the repair terminal closest to the communication device is determined, and the repair prompt information is sent to the repair terminal closest to the detection abnormality communication device according to the repair priority ranking. The repair and maintenance personnel corresponding to the repair terminal can go to the position of the communication device for repair and maintenance, thereby reducing the situation that the current position of the allocated repair and maintenance personnel is far away from the detection abnormality communication device, improving the patrol efficiency to a certain extent. At the same time, the repair is arranged in turn according to the repair priority ranking to ensure that more important communication devices can be repaired and maintained most timely, improve the reliability of the communication system, and provide a strong guarantee for the maintenance work of the communication device.
[0136] As an embodiment of the computing module 105, the computing module 105 includes:
[0137] The grade ratio interval determination unit determines the corresponding grade ratio interval according to the grade ratio based on the third preset mapping table, and determines the corresponding preset detection frequency adjustment ratio according to the grade ratio interval.
[0138] The to-be-adjusted detection frequency value calculation unit calculates the to-be-adjusted detection frequency value according to the preset detection frequency adjustment ratio and the preset detection frequency peak value.
[0139] In the above embodiment, when facing different magnitudes, the detection requirements of the communication devices in different buildings can be met at the same time to ensure that the early warning signals in some buildings can be timely conveyed, and the situation that the detection frequency of the communication devices in some buildings is too frequent to cause resource waste is reduced.
[0140] The earthquake emergency detection adjustment system provided in the embodiment of the application can implement any one of the above earthquake emergency detection adjustment methods, and the specific working process of each module in the earthquake emergency detection adjustment system can refer to the corresponding process in the above method embodiment.
[0141] In several embodiments provided in the present application, it should be understood that the provided method and system can be implemented in other ways. For example, the system embodiments described above are only illustrative; for example, the division of a certain module is only a logical function division, and actual implementation can have another division manner, for example, multiple modules can be combined or integrated into another system, or some features can be ignored or not executed.
[0142] The embodiment of the application also discloses a computer device.
[0143] The computer device comprises a memory, a processor, and a computer program stored in the memory and executable on the processor, and the processor implements the earthquake emergency detection adjustment method as described above when executing the computer program.
[0144] The application further discloses a computer readable storage medium.
[0145] The computer readable storage medium stores a computer program capable of being loaded and executed by the processor to implement any one of the earthquake emergency detection adjustment methods as described above.
[0146] The computer readable storage medium can be any tangible medium containing or storing a program, which can be used by or in combination with an instruction execution system, device or apparatus; the program code contained in the computer readable medium can be transmitted by any appropriate medium, including but not limited to wireless, wire, optical cable, RF, etc., or any appropriate combination of the above.
[0147] It should be noted that in the above embodiments, the description of each embodiment has its own emphasis, and the parts not described in detail in a certain embodiment can be referred to the relevant description of other embodiments.
[0148] The above are preferred embodiments of the application, and are not intended to limit the protection scope of the application, any feature disclosed in the specification (including the abstract and the drawings) can be replaced by other equivalent or similar features unless specifically described, that is, each feature is only an example of a series of equivalent or similar features.
Claims
1. A seismic emergency detection adjustment method, characterized by, The detection adjustment method comprises: receiving earthquake early warning information; the earthquake early warning information comprises an earthquake intensity level; obtaining a preset seismic level of communication equipment in each building in the hydropower station; respectively judging whether the earthquake intensity level exceeds the preset seismic level of the communication equipment in each building, and if so, adjusting the detection frequency of the communication equipment in the building to a corresponding preset detection frequency peak value; if not, calculating a level ratio according to the earthquake intensity level and a preset seismic level threshold, obtaining a to-be-adjusted detection frequency value according to the level ratio and the preset detection frequency peak value, and adjusting the detection frequency of the communication equipment in the building according to the to-be-adjusted detection frequency value; the step of obtaining the preset detection frequency peak value comprises: determining the building importance level of the building according to the building information of the building; obtaining the equipment type of each communication equipment in the building, and determining the equipment importance level corresponding to each communication equipment according to the equipment type; calculating the comprehensive importance score corresponding to the communication equipment according to the building importance level of the building and the equipment importance level corresponding to the communication equipment in the building based on a preset calculation formula; wherein the preset calculation formula is: comprehensive importance score = building importance level * building preset weight + equipment importance level * equipment preset weight; determining the score interval corresponding to the communication equipment according to the comprehensive importance score corresponding to the communication equipment based on a second preset mapping table, and determining the preset detection frequency peak value corresponding to the communication equipment according to the score interval.
2. The method of claim 1, wherein: the step of obtaining the preset detection frequency peak value comprises: determining the building importance level of the building according to the building information of the building; determining the preset detection frequency peak value corresponding to the building importance level of the building based on a first preset mapping table.
3. The method of claim 1, wherein: The detection adjustment method further comprises: detecting whether the communication equipment in each building appears a detection abnormality; if so, obtaining the comprehensive importance score corresponding to each detection abnormality and sorting, to obtain a maintenance priority order; respectively obtaining the current position information of each maintenance terminal; according to the current position information of each maintenance terminal, sending a maintenance prompt information to the maintenance terminal closest to the detection abnormality communication equipment in turn based on the maintenance priority order.
4. The method of claim 1, wherein: The step of obtaining the to-be-adjusted detection frequency value according to the level ratio and the preset detection frequency peak value comprises: determining the level ratio interval corresponding to the level ratio based on a third preset mapping table, and determining the preset detection frequency adjustment proportion corresponding to the level ratio interval; calculating the to-be-adjusted detection frequency value according to the preset detection frequency adjustment proportion and the preset detection frequency peak value.
5. The method of claim 1, wherein: The step of adjusting the detection frequency of the communication equipment in the building according to the to-be-adjusted detection frequency value comprises: adjusting the detection frequency of the communication equipment in the building to the to-be-adjusted detection frequency value.
6. The method of claim 1 to 5, wherein: The detection of the communication equipment in the building comprises any one or several of signal strength detection, signal-to-noise ratio detection, fault detection, anti-interference capability detection and network call detection.
7. A seismic emergency detection adjustment system, characterized by, A method for performing the method of any one of claims 1 to 6, the detection adjustment system comprising: a receiving module (101) configured to receive earthquake warning information, wherein the earthquake warning information comprises an earthquake intensity level; an obtaining module (102) configured to obtain a preset seismic level of a communication device in each building in the hydropower station; a judging module (103) configured to judge whether the earthquake intensity level exceeds the preset seismic level of the communication device in each building, and output a first judgment result if yes, or a second judgment result if no; a detection frequency adjustment module (104) configured to adjust the detection frequency of the communication device in the building to a preset detection frequency peak corresponding to the building in response to the first judgment result; a calculating module (105) configured to calculate a level ratio according to the earthquake intensity level and a preset seismic level threshold in response to the second judgment result, and obtain a to-be-adjusted detection frequency value according to the level ratio and the preset detection frequency peak corresponding to the building; the detection frequency adjustment module (104) is further configured to adjust the detection frequency of the communication device in the building according to the to-be-adjusted detection frequency value.
8. A computer device, comprising: A computer program product comprising a memory, a processor, and a computer program stored on the memory and executable on the processor, wherein the processor implements the method of any one of claims 1 to 6 when executing the program.
9. A computer-readable storage medium, characterized in that: A computer program product comprising a memory, a processor, and a computer program stored on the memory and executable on the processor, wherein the processor implements the method of any one of claims 1 to 6 when executing the program.
Citation Information
Patent Citations
Power grid shock evaluation method and related equipment
CN115480307A