Multi-dimensional intelligent monitoring system and method for computer room environment based on edge computing

Through the multi-dimensional intelligent monitoring system of computer room environment based on edge computing, the use of intelligent robots for voltage regulation testing and fault evaluation, the problem of unstable line power supply and electrostatic boards in the wiring space at the bottom of the computer room is solved, and the operation efficiency and safety of the computer room are improved.

CN120256252BActive Publication Date: 2025-08-26SHANDONG KRAMER ELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202510742814.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-05
Publication Date
2025-08-26
Estimated Expiration
2045-06-05

AI Technical Summary

Technical Problem

In the prior art, there is a lack of attention to the intelligent monitoring of the wiring space at the bottom of the computer room, which leads to unstable power supply of the line, risk of electric shock, and the coating of the electrostatic plate falls off or deteriorates, affects the stability of the line and reduces the efficiency of the computer room.

Method used

A multi-dimensional intelligent monitoring system for computer room environment based on edge computing is adopted, including computer room wiring space monitoring module, threat analysis module and early warning processing module. Through intelligent robots, voltage regulation testing, line monitoring and threat assessment are carried out, fault lines are screened, and faulty lines are optimized.

Benefits of technology

It improves the monitoring efficiency of the wiring space at the bottom of the computer room, reduces manual damage, accurately locates the cause of the fault, optimizes the handling of fault lines, prevents further damage, and improves the operation efficiency of the computer room.

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Abstract

The present invention discloses a multi-dimensional intelligent monitoring system and method for a computer room environment based on edge computing, and relates to the field of intelligent monitoring technology. The present invention comprises: a computer room wiring space monitoring module, a computer room wiring space threat analysis module, a computer room wiring space early warning processing module and a local database. By dispatching an intelligent robot to monitor the wiring space at the bottom of the computer room, damage to staff is reduced and analysis efficiency is improved. By analyzing whether each fault line in the wiring space at the bottom of the computer room has problems such as line damage, electromagnetic interference and electrostatic plate failure, not only can the early warning range of each fault line be accurately located, but the fault cause of the fault line can also be analyzed from various aspects, thereby facilitating subsequent optimization processing. By performing optimization processing, further damage to the line early warning range can be prevented as much as possible, thereby improving the operation efficiency of the computer room.
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Description

Technical Field

[0001] The present invention relates to the field of intelligent monitoring technology, and in particular to a multi-dimensional intelligent monitoring system and method for a computer room environment based on edge computing. Background Art

[0002] With the continuous expansion of data centers and computer rooms, traditional manual inspection methods can no longer meet the needs of modern computer room operation and maintenance. In order to improve appearance and save space, computer rooms use electrostatic panels to separate a layer of wiring space at the bottom of the computer room and arrange the relevant wires in the wiring space. However, the inspection method of the wiring space is too dependent on manual labor, resulting in problems not being discovered in time, thereby reducing the operating efficiency of the computer room. Therefore, it is necessary to conduct intelligent monitoring of the wiring space in the computer room.

[0003] Prior art, such as the invention patent application with publication number: CN113311841B, discloses a data center computer room environment monitoring system, the system of which includes: controlling at least one of the n server cabinets to move within a predetermined range. This invention realizes full-range dynamic inspection and status control of the data center computer room. Prior art, such as the invention patent application with publication number: CN119669000A, discloses a communication room environment monitoring system and method based on edge computing, the system of which includes: This invention significantly improves the security and efficiency of communication room monitoring by combining the construction of communication room maps and risk assessment technology, can promptly detect and respond to abnormal situations, ensure the stable operation of the communication room, and enhance the reliability and security of the communication network.

[0004] From the above scheme, it can be seen that the current multi-dimensional intelligent monitoring system of the computer room environment lacks certain attention to the robot intelligent monitoring of the wiring space at the bottom of the computer room. The wiring space is not only complex and hidden, making it difficult for manual comprehensive detection, but also has a complex electromagnetic environment. Manual inspections pose a risk of electric shock. In addition, the distances between the lines in the wiring space are relatively close. When encountering strong electricity, it is very easy to affect the surrounding lines, resulting in unstable power supply. During long-term use, the electrostatic plate will also have problems such as coating shedding and coating deterioration, causing the lines in the wiring space to be affected by the electromagnetic influence of the upper communication equipment, thereby aggravating the problem of unstable power supply and reducing the work efficiency of the computer room. Summary of the Invention

[0005] The purpose of the present invention is to provide a multi-dimensional intelligent monitoring system and method for computer room environment based on edge computing, which solves the problems existing in the background technology.

[0006] In order to solve the above technical problems, the present invention adopts the following technical solutions: The first aspect of the present invention provides a multi-dimensional intelligent monitoring system for the computer room environment based on edge computing, including: a computer room wiring space monitoring module, which is used to perform voltage stabilization tests on each line in the wiring space at the bottom of the computer room at the target monitoring time point, and screen out each faulty line in the wiring space at the bottom of the computer room, and dispatch an intelligent robot into the bottom wiring space to perform line monitoring on each faulty line.

[0007] The computer room wiring space threat analysis module is used to analyze the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the computer room, and evaluate the line warning range and warning cause of each fault line in the wiring space at the bottom of the computer room.

[0008] The computer room wiring space warning processing module is used to optimize the warning range of each fault line in the wiring space at the bottom of the computer room, and determine whether the optimization of the fault lines in the wiring space at the bottom of the computer room is successful. If not, the disabled lines in the wiring space at the bottom of the computer room are screened, employees are prohibited from using the disabled lines in the wiring space at the bottom of the computer room, and the relevant data is sent to the person in charge of the computer room.

[0009] The second aspect of the present invention provides an intelligent monitoring method for executing the multi-dimensional intelligent monitoring system of the computer room environment based on edge computing, including: Step 1. Computer room wiring space monitoring: at the target monitoring time point, a voltage stabilization test is performed on each line in the wiring space at the bottom of the computer room, and each fault line in the wiring space at the bottom of the computer room is screened, and an intelligent robot is dispatched into the bottom wiring space to perform line monitoring on each fault line.

[0010] Step 2. Threat analysis of the wiring space in the equipment room: Analyze the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the equipment room, and evaluate the line warning range and warning cause of each fault line in the wiring space at the bottom of the equipment room.

[0011] Step 3. Warning processing of the wiring space in the computer room: Optimize the warning range of each fault line in the wiring space at the bottom of the computer room, and determine whether the optimization of each fault line in the wiring space at the bottom of the computer room is successful. If not, screen the disabled lines in the wiring space at the bottom of the computer room, prohibit employees from using the disabled lines in the wiring space at the bottom of the computer room, and send the relevant data to the person in charge of the computer room.

[0012] The beneficial effects of the present invention are as follows: (1) The wiring space monitoring module of the computer room of the present invention reduces harm to staff by dispatching intelligent robots to monitor the wiring space at the bottom of the computer room, and facilitates the acquisition of data from various monitoring experiments and the determination of faulty lines, thereby facilitating subsequent further analysis and improving analysis efficiency.

[0013] (2) The computer room wiring space threat analysis module of the present invention can accurately locate the warning range of each fault line in the wiring space at the bottom of the computer room by analyzing whether there are problems such as line damage, electromagnetic interference and electrostatic plate failure. It can also analyze the cause of the fault line from various aspects, thereby facilitating subsequent optimization processing.

[0014] (3) The computer room wiring space warning processing module of the present invention optimizes the warning range of each fault line in the wiring space at the bottom of the computer room to prevent the line warning range from being further damaged as much as possible, thereby improving the operating efficiency of the computer room. After the optimization process, a voltage stabilization experiment is performed again. If there is still a fault line that cannot be used normally, the fault line will be disabled and the relevant information will be sent to the person in charge of the computer room to facilitate him to dispatch personnel to inspect and repair the disabled lines. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0016] Figure 1 Schematic diagram of the system module of the present invention.

[0017] Figure 2 Schematic diagram of the method of the present invention. DETAILED DESCRIPTION

[0018] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0019] Reference Figure 1 As shown, the first aspect of the present invention provides a multi-dimensional intelligent monitoring system for a computer room environment based on edge computing, including: a computer room wiring space monitoring module, a computer room wiring space threat analysis module, a computer room wiring space early warning processing module and a local database.

[0020] It should be noted that the computer room wiring space monitoring module is connected to the computer room wiring space threat analysis module, the computer room wiring space threat analysis module is connected to the computer room wiring space early warning processing module, and the local database is connected to the computer room wiring space monitoring module, the computer room wiring space threat analysis module, and the computer room wiring space early warning processing module.

[0021] It should also be noted that the local database is used to store the target voltage transmission time, the test voltage of each line in the bottom wiring space, the appropriate output current value of each line in the bottom wiring space at the test voltage, the fault hazard coefficient threshold, the target step value, the appropriate dust content upper limit corresponding to the deformation coefficient interval of each line, the initial line surface image of each fault line in the bottom wiring space of the computer room at each monitoring point and the initial line thickness value in each direction, the line damage threat coefficient threshold, the allowable electric field strength value corresponding to each line damage threat coefficient interval, the allowable magnetic field strength value, the normal grayscale value of the electrostatic plate image, the normal thickness value of the electrostatic plate, the winding tape thickness corresponding to each line damage threat coefficient interval, and the electrostatic coating thickening value corresponding to each upper electrostatic plate failure threat coefficient interval.

[0022] The computer room wiring space monitoring module is used to perform voltage stabilization tests on each line in the wiring space at the bottom of the computer room at the target monitoring time point, screen out each faulty line in the wiring space at the bottom of the computer room, and dispatch an intelligent robot into the wiring space at the bottom to perform line monitoring on each faulty line.

[0023] In a specific embodiment of the present invention, the voltage stabilization test is performed by obtaining the target voltage transmission time and the test voltage of each line in the bottom wiring space from a local database.

[0024] At the target monitoring time point, the corresponding test voltage is continuously input into each line in the wiring space at the bottom of the computer room until the target voltage transmission time has passed, and the output voltage value and output current value of each line in the wiring space at the bottom of the computer room at each monitoring time point are obtained.

[0025] In a specific embodiment, the output voltage value and output current value of each line in the wiring space at the bottom of the computer room at each monitoring time point are obtained by a specific acquisition method: the output voltage value and output current value of each line in the wiring space at the bottom of the computer room at each monitoring time point are obtained by a voltage sensor and a current sensor installed at the output end of the line.

[0026] In a specific embodiment of the present invention, the method for screening each fault line in the wiring space at the bottom of the equipment room is as follows: obtaining the appropriate output current value d of each line in the wiring space at the test voltage from the local database. x , where x represents the number of each line, x=1,2,…,y, and y is a positive integer greater than 2.

[0027] Based on the output voltage value a of each line in the wiring space at the bottom of the room at each monitoring time point xi and output current value b xi , where i represents the number of each monitoring time point, i=1,2,…,j, j is a positive integer greater than 2, and is based on the test voltage c of each line in the bottom wiring space. x , the fault hazard coefficient of each line in the wiring space at the bottom of the computer room , where j represents the number of monitoring time points.

[0028] A fault hazard coefficient threshold is obtained from a local database. If the fault hazard coefficient of a line in the wiring space at the bottom of the computer room is greater than the fault hazard coefficient threshold, the line is marked as a fault line, thereby screening out the fault lines in the wiring space at the bottom of the computer room.

[0029] In a specific embodiment of the present invention, the intelligent robot is dispatched into the bottom wiring space to perform line monitoring on each faulty line, and the specific method is: obtaining the target step value from the local database.

[0030] An intelligent robot is dispatched to enter the wiring space at the bottom of the computer room and reach the line access point of the nearest faulty line. The intelligent robot monitors the faulty line at every target step value according to the extension direction of the faulty line, and continuously inputs the corresponding test voltage to each line in the wiring space at the bottom of the computer room during this process until it reaches the line access point of the faulty line, and automatically searches for the line access point of the next nearest faulty line, and so on, thereby monitoring each faulty line in the wiring space at the bottom of the computer room, and obtaining the line surface image, electric field strength value, magnetic field strength value, dust content value, electrostatic plate image above the space, electrostatic plate thickness corresponding to each pixel point in the image, and line thickness value in each direction of each faulty line in the wiring space at the bottom of the computer room.

[0031] It should be noted that the distance between any two monitoring points of each fault line in the wiring space at the bottom of the equipment room can be set by the staff, for example: monitoring every 1 cm.

[0032] It should also be noted that the center point of the electrostatic plate image above the space is the point mapped on the electrostatic plate in the vertical direction at the corresponding monitoring point, and a square with a length and width of 2 cm is captured at the center point as the size of the electrostatic plate image above the space.

[0033] In a specific embodiment, the line surface images, electric field strength values, magnetic field strength values, dust content values, electrostatic plate images above the space, and electrostatic plate thicknesses corresponding to each pixel point in the images, and line thickness values ​​in each direction of each fault line in the wiring space at the bottom of the computer room are obtained. The specific acquisition method is: obtaining the line surface images and electrostatic plate images above the space of each fault line in the wiring space at the bottom of the computer room at each monitoring point through a camera, obtaining the electric field strength values, magnetic field strength values, and dust content values ​​of each fault line in the wiring space at the bottom of the computer room at each monitoring point through an electromagnetic sensor and a dust concentration meter, and obtaining the electrostatic plate thicknesses corresponding to each pixel point in the electrostatic plate images above the space of each monitoring point of each fault line in the wiring space at the bottom of the computer room and line thickness values ​​in each direction through an ultrasonic thickness detector.

[0034] The computer room wiring space monitoring module of the present invention reduces harm to staff by dispatching intelligent robots to monitor the wiring space at the bottom of the computer room, and facilitates the acquisition of data from various monitoring experiments to determine the faulty lines, thereby facilitating subsequent further analysis and improving analysis efficiency.

[0035] The computer room wiring space threat analysis module is used to analyze the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the computer room, and evaluate the line warning range and warning reason of each fault line in the wiring space at the bottom of the computer room.

[0036] In a specific embodiment of the present invention, the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the computer room is analyzed, and the specific analysis method is: based on the line surface image of each fault line in the wiring space at the bottom of the computer room at each monitoring point and the line thickness value in each direction, the line deformation coefficient of each fault line in the wiring space at the bottom of the computer room at each monitoring point.

[0037] Obtain the upper limit value of the appropriate dust content corresponding to each line deformation coefficient interval from the local database, and map it to obtain the upper limit value of the appropriate dust content at each monitoring point of each fault line in the wiring space at the bottom of the equipment room. xn , where x represents the number of each fault line, x=1,2,…,y, y is a positive integer greater than 2, and n represents the number of each monitoring point, n=1,2,…,m, m is a positive integer greater than 2.

[0038] According to the dust content value g of each fault line at each monitoring point in the wiring space at the bottom of the machine room xn , the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the computer room , where e is a natural constant.

[0039] It should be noted that the larger the line deformation coefficient, the smaller the corresponding upper limit of suitable dust content. This value can be obtained by scientific researchers through aging experiments based on the line used.

[0040] In a specific embodiment of the present invention, the line deformation coefficient of each fault line in the wiring space at the bottom of the computer room at each monitoring point is calculated by obtaining the initial line surface image and the initial line thickness value a in each direction of each fault line at each monitoring point in the wiring space at the bottom of the computer room from the local database. xni , where i represents the number of each direction, i=1,2,…,j, j is a positive integer greater than 2, and the gray value b of each pixel of the initial line surface image of each fault line at each monitoring point in the wiring space at the bottom of the equipment room is extracted xnp , p represents the number of each pixel, p=1,2,…,q, q is a positive integer greater than 2.

[0041] According to the line surface image of each fault line at each monitoring point in the wiring space at the bottom of the machine room, the gray value d of each pixel point of the line surface image of each fault line at each monitoring point in the wiring space at the bottom of the machine room is extracted. xnp , and based on the line thickness value c of each fault line in each direction of each monitoring point in the wiring space at the bottom of the machine room xni , the line deformation coefficient of each fault line at each monitoring point in the wiring space at the bottom of the computer room .

[0042] In a specific embodiment of the present invention, the line warning range and warning cause of each fault line in the wiring space at the bottom of the computer room are evaluated, and the specific evaluation method is: obtaining the line damage threat coefficient threshold from the local database, if the line damage threat coefficient of a monitoring point of a fault line in the wiring space at the bottom of the computer room is greater than the line damage threat coefficient threshold, then the monitoring point is marked as a damage monitoring point, thereby screening the damage monitoring points of each fault line in the wiring space at the bottom of the computer room, and based on this, the damaged line warning range of each fault line in the wiring space at the bottom of the computer room is obtained, and the line damage is used as the warning cause.

[0043] Obtain the allowable electric field strength value and allowable magnetic field strength value corresponding to each line damage threat coefficient interval from the local database. According to the line damage threat coefficient of each fault line at each monitoring point in the wiring space at the bottom of the computer room, map the allowable electric field strength value h of each fault line at each monitoring point in the wiring space at the bottom of the computer room. xn , allowable magnetic field strength value k xn , based on the electric field strength value l of each fault line at each monitoring point in the wiring space at the bottom of the equipment room xn , magnetic field strength value r xn , the electromagnetic field interference hazard coefficient of each fault line in the wiring space at the bottom of the computer room at each monitoring point .

[0044] It should be noted that the greater the line damage threat coefficient, the greater the corresponding allowable electric field strength value and the corresponding allowable magnetic field strength value. This size relationship is common knowledge, and the specific value can be set by the staff according to the specific experimental data of the line.

[0045] Based on the method of dividing the damaged line warning range of each fault line in the wiring space at the bottom of the computer room, the electromagnetic line warning range of each fault line in the wiring space at the bottom of the computer room is divided similarly, and electromagnetic interference is used as the warning cause.

[0046] Based on the electrostatic plate images above each monitoring point of each fault line in the wiring space at the bottom of the computer room and the thickness of the electrostatic plate corresponding to each pixel in the image, the failure threat coefficient of the electrostatic plate above each monitoring point of each fault line in the wiring space at the bottom of the computer room is analyzed. Similarly, the warning range of each electrostatic plate line of each fault line in the wiring space at the bottom of the computer room is obtained, and the failure of the electrostatic plate is used as the warning cause.

[0047] The damaged line warning ranges of each fault line in the wiring space at the bottom of the computer room, the electromagnetic line warning ranges, and the electrostatic board line warning ranges are summarized as the line warning ranges.

[0048] In a specific embodiment, the division obtains the damaged line warning ranges of each fault line in the wiring space at the bottom of the computer room, and the specific division method is: if a damaged monitoring point of a fault line in the wiring space at the bottom of the computer room is adjacent to another damaged monitoring point, then the damaged monitoring point and the other damaged monitoring point are divided into a damaged line warning range; if another damaged monitoring point is adjacent to any damaged monitoring point within this damaged line warning range, then the other damaged monitoring point is divided into this damaged line warning range, and so on, until the damaged line warning ranges of each fault line in the wiring space at the bottom of the computer room are obtained.

[0049] In a specific embodiment of the present invention, the failure threat coefficient of the electrostatic plate above each monitoring point of each fault line in the wiring space at the bottom of the computer room is analyzed. The specific analysis method is as follows: based on the electrostatic plate image of each fault line in the wiring space at the bottom of the computer room above the space of each monitoring point, the gray value D of each pixel point of the electrostatic plate image of each fault line in the wiring space at the bottom of the computer room above the space of each monitoring point is extracted. xnt , where t represents the number of each pixel of the electrostatic plate image, t=1,2,…,w, and w is a positive integer greater than 2.

[0050] Obtain the normal grayscale value A of the electrostatic plate image and the normal thickness value B of the electrostatic plate from the local database, and calculate the electrostatic plate thickness G corresponding to each pixel in the electrostatic plate image above each monitoring point based on the fault line in the wiring space at the bottom of the computer room. xnt , the electrostatic plate failure threat coefficient of each fault line in the wiring space at the bottom of the computer room above each monitoring point .

[0051] The computer room wiring space threat analysis module of the present invention analyzes whether the fault lines in the wiring space at the bottom of the computer room have problems such as line damage, electromagnetic interference and electrostatic board failure. It can not only accurately locate the warning range of each fault line, but also analyze the fault cause of the fault line from various aspects, thereby facilitating subsequent optimization processing.

[0052] The computer room wiring space warning processing module is used to optimize the warning range of each fault line in the wiring space at the bottom of the computer room, and determine whether the optimization processing of each fault line in the wiring space at the bottom of the computer room is successful. If not, the disabled lines in the wiring space at the bottom of the computer room are screened, employees are prohibited from using the disabled lines in the wiring space at the bottom of the computer room, and the relevant data is sent to the person in charge of the computer room.

[0053] In a specific embodiment of the present invention, the line warning range of each fault line in the wiring space at the bottom of the computer room is optimized, and the specific processing method is: if the warning cause of a certain line warning range of a fault line in the wiring space at the bottom of the computer room is line damage, then the maximum line damage threat coefficient in the line warning range is extracted, and the winding tape thickness corresponding to each line damage threat coefficient interval is obtained from the local database, and the winding tape thickness of the line warning range of the fault line in the wiring space at the bottom of the computer room is mapped, and the tape of corresponding thickness is wrapped around the line within the line warning range.

[0054] It should be noted that the greater the line damage threat factor, the thicker the corresponding wrapping tape, which is set by the staff.

[0055] If the cause of the warning within the warning range of a faulty line in the wiring space at the bottom of the equipment room is electromagnetic interference, install an anti-static partition on the line within the warning range.

[0056] If the warning reason of a certain line warning range of a fault line in the wiring space at the bottom of the computer room is the failure of the electrostatic board, the electrostatic coating thickening value corresponding to the failure threat coefficient interval of each electrostatic board above is obtained from the local database, and the electrostatic coating thickening value of the line warning range is mapped to obtain the electrostatic coating thickening value, and the electrostatic boards within the electrostatic board image range above each monitoring point in the line warning range are coated with anti-static coating with the corresponding electrostatic coating thickness value.

[0057] It should be noted that the greater the failure threat coefficient of the upper electrostatic plate, the greater the corresponding electrostatic coating thickness value, which is set by the staff.

[0058] In a specific embodiment, the judgment of whether the optimization treatment of each fault line in the wiring space at the bottom of the computer room is successful is determined by a specific method: after the optimization treatment, the voltage stabilization test is performed again on each fault line in the wiring space at the bottom of the computer room. If a fault line is still judged as a fault line after the voltage stabilization test is performed again, it is judged that the optimization treatment of the fault line in the wiring space at the bottom of the computer room is unsuccessful.

[0059] In a specific embodiment, the specific screening method for screening the disabled lines in the wiring space at the bottom of the computer room is as follows: if the optimization processing of a faulty line in the wiring space at the bottom of the computer room is judged to be unsuccessful, the faulty line is marked as a disabled line, thereby screening the disabled lines in the wiring space at the bottom of the computer room.

[0060] The computer room wiring space warning processing module of the present invention optimizes the warning range of each fault line in the wiring space at the bottom of the computer room to prevent the line warning range from being further damaged as much as possible, thereby improving the operating efficiency of the computer room. After the optimization process, a voltage stabilization experiment is performed again. If there is still a fault line that cannot be used normally, the fault line will be disabled and the relevant information will be sent to the person in charge of the computer room to facilitate him to dispatch personnel to inspect and repair the disabled lines.

[0061] Reference Figure 2 As shown, the second aspect of the present invention provides an intelligent monitoring method for executing the multi-dimensional intelligent monitoring system of the computer room environment based on edge computing, including: Step 1. Computer room wiring space monitoring: at the target monitoring time point, the voltage stabilization test is performed on each line in the wiring space at the bottom of the computer room, and the fault lines in the wiring space at the bottom of the computer room are screened, and an intelligent robot is dispatched into the bottom wiring space to perform line monitoring on each fault line.

[0062] Step 2. Threat analysis of the wiring space in the equipment room: Analyze the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the equipment room, and evaluate the line warning range and warning cause of each fault line in the wiring space at the bottom of the equipment room.

[0063] Step 3. Warning processing of the wiring space in the computer room: Optimize the warning range of each fault line in the wiring space at the bottom of the computer room, and determine whether the optimization of each fault line in the wiring space at the bottom of the computer room is successful. If not, screen the disabled lines in the wiring space at the bottom of the computer room, prohibit employees from using the disabled lines in the wiring space at the bottom of the computer room, and send the relevant data to the person in charge of the computer room.

[0064] The above contents are merely examples and explanations of the concept of the present invention. Those skilled in the art may make various modifications or additions to the described specific embodiments or replace them in a similar manner. As long as they do not deviate from the concept of the invention or exceed the scope defined by the present invention, they should all fall within the scope of protection of the present invention.

Claims

1. A multi-dimensional intelligent monitoring system for computer room environment based on edge computing, characterized by: include: The computer room wiring space monitoring module is used to perform voltage regulation tests on each line in the wiring space at the target monitoring time point, screen each faulty line in the wiring space at the bottom of the computer room, and send an intelligent robot into the wiring space to monitor each faulty line. The computer room wiring space threat analysis module is used to analyze the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the computer room, and evaluate the line warning range and warning cause of each fault line in the wiring space at the bottom of the computer room; The specific analysis method for analyzing the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the equipment room is as follows: Based on the line surface images of each fault line in the wiring space at the bottom of the computer room at each monitoring point and the line thickness values ​​in each direction, the line deformation coefficient of each fault line in the wiring space at the bottom of the computer room at each monitoring point; Obtain the upper limit value of the appropriate dust content corresponding to each line deformation coefficient interval from the local database, and map it to obtain the upper limit value of the appropriate dust content at each monitoring point of each fault line in the wiring space at the bottom of the equipment room. xn , where x represents the number of each fault line, x=1,2,…,y, y is a positive integer greater than 2, n represents the number of each monitoring point, n=1,2,…,m, m is a positive integer greater than 2; According to the dust content value g of each fault line at each monitoring point in the wiring space at the bottom of the machine room xn , the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the computer room , where e is a natural constant; The computer room wiring space warning processing module is used to optimize the warning range of each fault line in the wiring space at the bottom of the computer room, and determine whether the optimization of the fault lines in the wiring space at the bottom of the computer room is successful. If not, the disabled lines in the wiring space at the bottom of the computer room are screened, employees are prohibited from using the disabled lines in the wiring space at the bottom of the computer room, and the relevant data is sent to the person in charge of the computer room.

2. The multi-dimensional intelligent monitoring system for computer room environment based on edge computing according to claim 1 is characterized in that: The voltage stabilization test is performed as follows: Obtain the target voltage transmission time and the test voltage of each line in the bottom wiring space from the local database; At the target monitoring time point, the corresponding test voltage is continuously input into each line in the wiring space at the bottom of the computer room until the target voltage transmission time has passed, and the output voltage value and output current value of each line in the wiring space at the bottom of the computer room at each monitoring time point are obtained.

3. The multi-dimensional intelligent monitoring system for computer room environment based on edge computing according to claim 2 is characterized in that: The specific screening method for screening the faulty lines in the wiring space at the bottom of the equipment room is as follows: Obtain the appropriate output current value d of each line in the bottom routing space at the test voltage from the local database x , where x represents the number of each line, x=1,2,…,y, and y is a positive integer greater than 2; According to the output voltage value a of each line in the wiring space at the bottom of the room at each monitoring time point xi and output current value b xi , where i represents the number of each monitoring time point, i=1,2,…,j, j is a positive integer greater than 2, and is based on the test voltage c of each line in the bottom wiring space. x , the fault hazard coefficient of each line in the wiring space at the bottom of the computer room , where j represents the number of monitoring time points; A fault hazard coefficient threshold is obtained from a local database. If the fault hazard coefficient of a line in the wiring space at the bottom of the computer room is greater than the fault hazard coefficient threshold, the line is marked as a fault line, thereby screening out the fault lines in the wiring space at the bottom of the computer room.

4. The multi-dimensional intelligent monitoring system for computer room environment based on edge computing according to claim 2 is characterized in that: The specific method of sending the intelligent robot into the bottom wiring space to monitor each fault line is as follows: Get the target step value from the local database; An intelligent robot is dispatched to enter the wiring space at the bottom of the computer room and reach the line access point of the nearest faulty line. The intelligent robot monitors the faulty line at every target step value according to the extension direction of the faulty line, and continuously inputs the corresponding test voltage to each line in the wiring space at the bottom of the computer room during this process until it reaches the line access point of the faulty line, and automatically searches for the line access point of the next nearest faulty line, and so on, thereby monitoring each faulty line in the wiring space at the bottom of the computer room, and obtaining the line surface image, electric field strength value, magnetic field strength value, dust content value, electrostatic plate image above the space, electrostatic plate thickness corresponding to each pixel point in the image, and line thickness value in each direction of each faulty line in the wiring space at the bottom of the computer room.

5. The multi-dimensional intelligent monitoring system for computer room environment based on edge computing according to claim 1 is characterized in that: The line deformation coefficient of each fault line in the wiring space at the bottom of the computer room at each monitoring point is calculated as follows: Obtain the initial line surface images and initial line thickness values ​​a in each direction of each fault line at each monitoring point in the wiring space at the bottom of the equipment room from the local database xni , where i represents the number of each direction, i=1,2,…,j, j is a positive integer greater than 2, and the gray value b of each pixel of the initial line surface image of each fault line at each monitoring point in the wiring space at the bottom of the equipment room is extracted xnp , p represents the number of each pixel, p=1,2,…,q, q is a positive integer greater than 2; According to the line surface image of each fault line at each monitoring point in the wiring space at the bottom of the machine room, the gray value d of each pixel point of the line surface image of each fault line at each monitoring point in the wiring space at the bottom of the machine room is extracted. xnp , and based on the line thickness value c of each fault line in each direction of each monitoring point in the wiring space at the bottom of the machine room xni , the line deformation coefficient of each fault line at each monitoring point in the wiring space at the bottom of the computer room .

6. The multi-dimensional intelligent monitoring system for computer room environment based on edge computing according to claim 1 is characterized in that: The specific evaluation method for evaluating the warning range and warning cause of each fault line in the wiring space at the bottom of the equipment room is as follows: A line damage threat coefficient threshold is obtained from the local database. If the line damage threat coefficient of a monitoring point of a faulty line in the wiring space at the bottom of the computer room is greater than the line damage threat coefficient threshold, the monitoring point is marked as a damage monitoring point. This allows the damage monitoring points of each faulty line in the wiring space at the bottom of the computer room to be screened. Based on this, the damage line warning range of each faulty line in the wiring space at the bottom of the computer room is obtained, and line damage is used as the warning cause. Obtain the allowable electric field strength value and allowable magnetic field strength value corresponding to each line damage threat coefficient interval from the local database. According to the line damage threat coefficient of each fault line at each monitoring point in the wiring space at the bottom of the computer room, map the allowable electric field strength value h of each fault line at each monitoring point in the wiring space at the bottom of the computer room. xn , allowable magnetic field strength value k xn , based on the electric field strength value l of each fault line at each monitoring point in the wiring space at the bottom of the equipment room xn , magnetic field strength value r xn , the electromagnetic field interference hazard coefficient of each fault line in the wiring space at the bottom of the computer room at each monitoring point ; Based on the method of dividing the damaged line warning range of each fault line in the wiring space at the bottom of the computer room, the electromagnetic line warning range of each fault line in the wiring space at the bottom of the computer room is divided similarly, and electromagnetic interference is used as the warning cause; Based on the electrostatic plate images of each faulty line in the wiring space below the computer room at each monitoring point and the thickness of the electrostatic plate corresponding to each pixel in the images, the electrostatic plate failure threat coefficient of each faulty line above each monitoring point in the wiring space below the computer room is analyzed. Similarly, the warning range of each electrostatic plate for each faulty line in the wiring space below the computer room is divided, and the failure of the electrostatic plate is used as the warning cause. The damaged line warning ranges of each fault line in the wiring space at the bottom of the computer room, the electromagnetic line warning ranges, and the electrostatic board line warning ranges are summarized as the line warning ranges.

7. The multi-dimensional intelligent monitoring system for computer room environment based on edge computing according to claim 6 is characterized in that: The specific analysis method for analyzing the failure threat coefficient of the electrostatic plate above each monitoring point for each fault line in the wiring space at the bottom of the computer room is as follows: According to the electrostatic plate image of each fault line in the wiring space at the bottom of the computer room above the space of each monitoring point, the gray value D of each pixel point of the electrostatic plate image of each fault line in the wiring space at the bottom of the computer room above the space of each monitoring point is extracted. xnt , where t represents the number of each pixel of the electrostatic plate image, t=1,2,…,w, and w is a positive integer greater than 2; Obtain the normal grayscale value A of the electrostatic plate image and the normal thickness value B of the electrostatic plate from the local database, and calculate the electrostatic plate thickness G corresponding to each pixel in the electrostatic plate image above each monitoring point based on the fault line in the wiring space at the bottom of the computer room. xnt , the electrostatic plate failure threat coefficient of each fault line in the wiring space at the bottom of the computer room above each monitoring point 。 8. The multi-dimensional intelligent monitoring system for computer room environment based on edge computing according to claim 6 is characterized in that: The specific method for optimizing the warning range of each fault line in the wiring space at the bottom of the equipment room is as follows: If the warning cause of a certain line warning range of a faulty line in the wiring space at the bottom of the equipment room is line damage, extract the maximum line damage threat coefficient in the line warning range, obtain the wrapping tape thickness corresponding to each line damage threat coefficient interval from the local database, map it to obtain the wrapping tape thickness of the line warning range of the faulty line in the wiring space at the bottom of the equipment room, and wrap the tape of the corresponding thickness around the line within the line warning range; If the cause of the warning in the warning range of a faulty line in the wiring space at the bottom of the equipment room is electromagnetic interference, install anti-static partitions on the lines within the warning range. If the warning reason of a certain line warning range of a fault line in the wiring space at the bottom of the computer room is the failure of the electrostatic board, the electrostatic coating thickening value corresponding to the failure threat coefficient interval of each electrostatic board above is obtained from the local database, and the electrostatic coating thickening value of the line warning range is mapped to obtain the electrostatic coating thickening value, and the electrostatic boards within the electrostatic board image range above each monitoring point in the line warning range are coated with anti-static coating with the corresponding electrostatic coating thickness value.

9. An intelligent monitoring method performed by the multi-dimensional intelligent monitoring system for computer room environment based on edge computing according to any one of claims 1 to 8, characterized in that: include: Step 1. Monitoring the wiring space in the equipment room: At the target monitoring time, perform voltage regulation tests on each line in the wiring space at the bottom of the equipment room, identify any faulty lines in the wiring space, and dispatch an intelligent robot into the wiring space to monitor each faulty line. Step 2. Threat analysis of the wiring space at the bottom of the computer room: Analyze the line damage threat coefficient of each monitoring point of each fault line in the wiring space at the bottom of the computer room, and evaluate the warning range and warning cause of each fault line in the wiring space at the bottom of the computer room; Step 3. Warning processing of the wiring space in the computer room: Optimize the warning range of each fault line in the wiring space at the bottom of the computer room, and determine whether the optimization of each fault line in the wiring space at the bottom of the computer room is successful. If not, screen the disabled lines in the wiring space at the bottom of the computer room, prohibit employees from using the disabled lines in the wiring space at the bottom of the computer room, and send the relevant data to the person in charge of the computer room.

Citation Information

Patent Citations

  • A data center computer room environment monitoring system

    CN113311841B

  • Communication machine room environment monitoring system and method based on edge computing

    CN119669000A

  • Intelligent robot routing inspection system and method for railway machine room

    CN108388194A

  • Machine room monitoring method and system based on multi-dimensional data processing

    CN120045376A