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Auto correlation based elevator rope monitoring and fault detection approach with image processing

机译:基于自动相关的电梯绳监控和图像处理故障检测方法

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Elevators are the means that people often use in everyday life. From the past until nowadays many elevators have been used in many areas. Elevator systems with the formation of high-rise buildings in recent years has become more important. Early diagnosis of faults that may occur in the elevator system is very important. In this study, an approach has been proposed to monitor and detect faults on elevator ropes. The proposed method is based on image processing and auto correlation. Images are taken with the cameras fixed to the elevator system. The position of the elevator rope is determined by extracting the edges on the images. Thus, the elevator rope is monitored in real time. The detected rope is cut off from the gray format image. The elevator rope is observed by applying auto correlation to the obtained image. It is converted into image signals by using auto correlation method. The difference signal is generated by using the obtained auto correlation signal. High values in the difference signal are detected as rope fault. The proposed fault detection approach is quite fast because it has a signal processing base.
机译:电梯是人们经常在日常生活中使用的手段。从过去到目前为止,许多领域已经使用了许多电梯。电梯系统近年来形成高层建筑物变得更加重要。电梯系统中可能发生的故障的早期诊断非常重要。在本研究中,已经提出了一种方法来监测和检测电梯绳索的故障。该方法基于图像处理和自动相关性。使用固定在电梯系统的摄像机拍摄图像。通过在图像上提取边缘来确定电梯绳索的位置。因此,电梯绳子实时监测。检测到的绳索从灰色格式图像切断。通过施加与所获得的图像的自动相关性观察电梯绳索。通过使用自动相关方法将其转换为图像信号。通过使用所获得的自动相关信号来生成差分信号。差异信号中的高值被检测为绳子故障。所提出的故障检测方法非常快,因为它具有信号处理基础。

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