Interpolation and fraud detection on data collected by automatic meter reading

taylan. cemgil, Burak Kurutmaz, A. Cezayirli, Ezgi Bingol, Sait Sener
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引用次数: 5

Abstract

Automatic and remote reading systems of energy meters are spreading more each day. However, electricity meter data sometimes bear missing elements and outliers, due to communication faults, device faults, or energy fraud. We set up mathematical models in order to be able to interpolate missing data and detect fraud. In this work, two models are developed and compared in terms of performance, using long-term real consumption data.
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对自动抄表收集的数据进行插补和欺诈检测
电能表自动和远程抄表系统日益普及。然而,由于通信故障、设备故障或能源欺诈等原因,电能表数据有时会出现缺失元素和异常值。我们建立了数学模型,以便能够插入缺失的数据并检测欺诈。在这项工作中,开发了两个模型,并使用长期实际消费数据在性能方面进行了比较。
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