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Supervised Optimum Path Forest Algorithm for Fault Diagnosis of Photovoltaic Array

机译:光伏阵列故障诊断的监督最优路径森林算法

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When the photovoltaic (PV) system fails, the power generation efficiency is greatly reduced or even leads to incidents, that is why the fault diagnosis of the PV system is very necessary. This paper proposed an optimum-path forest (OPF) photovoltaic arrays fault diagnosis method. According to the characteristics of the photovoltaic panel, seven factors were selected as the characteristic parameters for studying the fault diagnosis of PV system. Then, combined with the actual measurement data and the simulated measurement data, the complete graphs and the minimum spanning trees were obtained in turn, and finally the OPF classifier was obtained which was used for fault diagnosis and classification. At the same time, this paper also compared the OPF algorithm with other algorithms such as Linear SVM, Fine KNN, Linear discriminant and Boosted Trees that showed the OPF algorithm has very high speed and accuracy and is more suitable for fault diagnosis of PV system in practical application. In addition, this paper also optimized the traditional OPF method which improves the speed of classification. Finally, the actual fault detection of PV system was built and achieved good fault diagnosis effect.
机译:当光伏(PV)系统发生故障时,发电效率会大大降低甚至导致事故的发生,这就是为什么光伏系统的故障诊断非常必要的原因。提出了一种最优路径森林光伏阵列故障诊断方法。根据光伏板的特点,选择七个因素作为特征参数,用于研究光伏系统的故障诊断。然后,结合实际的测量数据和模拟的测量数据,依次得到完整的图和最小生成树,最后得到用于故障诊断和分类的OPF分类器。同时,本文还比较了OPF算法与线性SVM,精细KNN,线性判别和Boosted树等算法,表明OPF算法具有很高的速度和准确性,更适用于光伏系统的故障诊断。实际应用。此外,本文还优化了传统的OPF方法,提高了分类速度。最后,建立了光伏系统的实际故障检测方法,取得了良好的故障诊断效果。

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