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Electricity Theft Detection Based on ReliefF Feature Selection Algorithm and BP Neural Network

Authors :
Li Yang
Jinyu Wang
Nianrong Zhou
Zexin Wang
Chuan Li
Source :
Journal of Circuits, Systems and Computers. 32
Publication Year :
2022
Publisher :
World Scientific Pub Co Pte Ltd, 2022.

Abstract

As China’s distributed energy is still in the development stage, energy transmission loss will inevitably occur in the transmission process from the source end to the load end. To reduce transmission energy loss, we should also beware of electricity theft. The principle of common electricity theft methods is analyzed to improve the accuracy of established electricity theft characteristics and electricity theft detection. The ReliefF multivariate characteristics selection algorithm optimizes the electricity theft characteristics. The back propagation (BP) neural network-based electricity theft detection model is built, and the optimized characteristics are selected as the model’s input. The experiment results show that the detection model has better electricity theft identification accuracy using the optimized characteristics for electricity theft detection.

Details

ISSN :
17936454 and 02181266
Volume :
32
Database :
OpenAIRE
Journal :
Journal of Circuits, Systems and Computers
Accession number :
edsair.doi...........f8280813c39e55b6a6c8ce9b56c91774