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Smart grid energy fraud detection using artificial neural networks

机译:使用人工神经网络的智能电网能源欺诈检测

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Energy fraud detection is a critical aspect of smart grid security and privacy preservation. Machine learning and data mining have been widely used by researchers for extensive intelligent analysis of data to recognize normal patterns of behavior such that deviations can be detected as anomalies. This paper discusses a novel application of a machine learning technique for examining the energy consumption data to report energy fraud using artificial neural networks and smart meter fine-grained data. Our approach achieves a higher energy fraud detection rate than similar works in this field. The proposed technique successfully identifies diverse forms of fraudulent activities resulting from unauthorized energy usage.
机译:能源欺诈检测是智能电网安全和隐私保护的关键方面。研究人员已广泛使用机器学习和数据挖掘来对数据进行广泛的智能分析,以识别正常的行为模式,从而可以将偏差检测为异常。本文讨论了机器学习技术在检查能耗数据以使用人工神经网络和智能电表细粒度数据报告能耗欺诈的新型应用。与该领域的类似工作相比,我们的方法实现了更高的能源欺诈检测率。所提出的技术成功地识别了由于未经授权的能源使用而导致的各种形式的欺诈活动。

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