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Discrimination of transmission line insulator contamination grades using visible light images

机译:使用可见光图像辨别传输线绝缘体污染等级

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Flashover occurs more easily on contaminated transmission line insulators, which causes great economic losses and has bad effects on power system stability. An accurate and safe detection of insulator contamination grades is required. In this paper, a new method is proposed to discriminate insulator contamination grades using visible light images. Firstly, ZSW-10/4 insulators are smeared in different contamination grades, and their visible light images are shot under illumination ranges from 10,000lux to 100,000lux. Secondly, both software methods and hardware methods are adopted and compared to eliminate the effects of illumination. After image processing, insulator surface color features in several color spaces are calculated. Results of Fisher criterion shows that hardware methods work better in eliminating illumination effects, and mean value of V component in YUV color space is selected for discriminating contamination grades. Finally, BP (Back Propagation) neural networks are established, whose testing accuracy rates are over 90% in discriminating contamination grades. Further, a general formula between mean value of V component and ESDD (Equivalent Salt Deposit Density) is obtained.
机译:闪受污染传输线路绝缘子更容易发生,这将导致巨大的经济损失和对电力系统稳定性的不良影响。需要绝缘体污染等级的精确和安全的检测。在本文中,一个新的方法是使用可见光图像提出判别绝缘体污染等级。首先,ZSW-10/4的绝缘体上有污点在不同污染等级,以及它们的可见光图像的照明下拍摄的范围从10,000lux到100,000lux。其次,这两种软件的方法和硬件方法是通过并比较以消除照明的影响。图像处理后,在若干颜色空间绝缘体表面的颜色特征进行计算。的Fisher准则显示,硬件方法在消除照明效果更好的工作,并且在YUV色彩空间V分量的平均值的结果,选择用于识别污染等级。最后,BP(反向传播)神经网络建立后,其检测准确率都在辨别污染等级超过90%。此外,获得V分量和ESDD(等值盐密度)的平均值之间的通式。

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