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Assessment of the health condition of oil-immersed transformers using logistic regression and poisson distribution

机译:利用逻辑回归和泊松分布评估油浸式变压器的健康状况

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In this paper, a method is proposed to assess the health condition of oil-immersed transformers using a logistic regression analysis and Poisson distribution. The parameters of the regression model are estimated by using a maximum-likelihood cost function developed based on Poisson distribution for modeling transformer health condition that include oil breakdown voltage (BDV), acidity of oil, 2-Furaldehyde content, water content in oil, dissolved combustible gas (DCG), and dissipation factor (DF). The minimization of the criterion function is carried out by the Gradient Descent technique. The values of the health indices of 30 working power transformers below 110 kV are obtained from the regression model. Using preset ranges of health indices, the transformers are classified into four different health conditions. It is shown that the results are close to expert evaluations and on par with recently reported ones in the literature, thus signifying a reliable and effective assessment of transformer health.
机译:本文提出了一种使用逻辑回归分析和泊松分布评估油浸式变压器健康状况的方法。通过使用基于Poisson分布开发的最大似然成本函数来估算回归模型的参数,该函数用于建模变压器的健康状况,包括油击穿电压(BDV),油的酸度,2-甲醛含量,油中的水含量,溶解的可燃气体(DCG)和耗散因数(DF)。准则函数的最小化是通过“梯度下降”技术实现的。从回归模型中获得了30台110 kV以下的工作电力变压器的健康指数值。使用预设的健康指标范围,将变压器分类为四种不同的健康状况。结果表明,该结果接近专家评估,并且与文献中最近报道的评估结果相当,从而表明了对变压器健康状况的可靠而有效的评估。

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