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The electricity bill charge risk analysis in power supply company based on a novel predicting method

机译:基于新型预测方法的电力公司电力票据充电风险分析

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Risk Analysis of electricity bill charge has been both challenging and important in the field of electricity power supply in China. In this paper, a novel electricity bill charge risk predicting method is proposed. The SMOTE (synthetic minority oversampling technique) algorithm is first used to under-sampling the majority class and over-sampling the minority class, and then it is combined with some state-of-the-art classification methods to predict the electricity charge risk based on an imbalanced data set obtained from a power supply enterprise. The results of the empirical analysis demonstrate that a combination of SMOTE algorithm with Random Forest method achieves better classification performance under several criterions. Furthermore, five important variables are listed for power supply enterprises to take corresponding measures to avoid charge risk.
机译:电力票据的风险分析在中国电力供应领域一直在挑战和重要。本文提出了一种新型电费预测风险预测方法。 SMOTE(合成少数群体过采样技术)算法首先用于在大多数类和过度采样少数群体类别下进行采样,然后与某些最先进的分类方法相结合,以预测基于电力抵抗风险在从电源企业获得的不平衡数据集上。实证分析的结果表明,随机林法的粉碎算法的组合在若干标准下实现了更好的分类性能。此外,供电企业列出了五种重要变量采取相应的措施来避免抵抗风险。

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