Evaluation of Customer Behaviour Irregularities in Cameroon Electricity Network using Support Vector Machine

Journal Title: American Journal of Engineering and Applied Sciences - Year 2017, Vol 10, Issue 1

Abstract

Abstract Non-Technical Losses (NTLs) in the Cameroonians electricity network are approximately 30 to 40% of production and are estimated at several billion CFA francs per year for National Electricity Company (ENEO); Hence the importance of finding effective solutions to fight against these losses. The purpose of this work was to develop a tool for the fraud detection for Cameroon National Electricity Company (ENEO) using support vector machines which consisted in data preprocessing base on the load profile, development of a model for classification, parameter optimization and detection of customers irregularities and prediction. Copyright © 2017 Lekini Nkodo Claude Bernard, Ndzana Benoît and Oumarou Hamandjoda. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

Authors and Affiliations

Lekini Nkodo Claude Bernard, Ndzana Benoît, Oumarou Hamandjoda

Keywords

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Evaluation of Customer Behaviour Irregularities in Cameroon Electricity Network using Support Vector Machine

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  • EP ID EP200920
  • DOI 10.3844/ajeassp.2017.32.42
  • Views 91
  • Downloads 0

How To Cite

Lekini Nkodo Claude Bernard, Ndzana Benoît, Oumarou Hamandjoda (2017). Evaluation of Customer Behaviour Irregularities in Cameroon Electricity Network using Support Vector Machine. American Journal of Engineering and Applied Sciences, 10(1), 32-42. https://europub.co.uk/articles/-A-200920