Abstract
Presence of partial discharges implies the fault behavior on insulation system of medium voltage overhead lines, especially with covered conductors (CC). This paper covers the machine learning model based on features, which are derived from complex networks. These features are applied to predict whether the measured signal contains phenomenon indicating CC fault behavior or not. The comparison of different threshold levels of similarity values brings more information about complex network modeling. The final performance of the Random Forest classification algorithm shows valuable results for future research.
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Acknowledgment
This research was conducted within the framework of the project TUCENET Sustainable Development of Centre ENET LO1404 and Students Grant Competition project reg. no. SP2016/175, SP2016/177, SP2016/128.
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Vantuch, T., Gaura, J., Misak, S., Zelinka, I. (2017). A Complex Network Based Classification of Covered Conductors Faults Detection. In: Pan, JS., Snášel, V., Sung, TW., Wang, X. (eds) Intelligent Data Analysis and Applications. ECC 2016. Advances in Intelligent Systems and Computing, vol 535. Springer, Cham. https://doi.org/10.1007/978-3-319-48499-0_33
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DOI: https://doi.org/10.1007/978-3-319-48499-0_33
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