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Application of Grey Prediction in a GA-BP Power Theft Algorithm

机译:灰色预测在GA-BP功率算法中的应用

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Statistics show that power theft is one of the main reasons for the dramatic increase in power grid line loss. In this paper, a genetic algorithm is used to optimize a neural network and establish a power theft prediction model. With the grey prediction model, the predicted values of variables are obtained and then applied to the prediction model of a GA-BP neural network to obtain relatively accurate predictions from limited samples, reducing the absolute error. Through the two levels of prediction and analysis, the model is demonstrated to have good universality in predicting power theft behavior, and is a practical and effective method for power companies to carry out power theft analysis.
机译:统计数据显示,电力盗窃是电网线损耗急剧增加的主要原因之一。 本文使用遗传算法用于优化神经网络并建立功率被盗预测模型。 利用灰度预测模型,获得预测的变量值,然后应用于GA-BP神经网络的预测模型,以获得来自有限样本的相对准确的预测,降低绝对误差。 通过两级的预测和分析,该模型被证明在预测电力盗窃行为方面具有良好的普遍性,是电力公司进行电力盗窃分析的实用有效的方法。

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