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A Quantitative Analysis Method for the Influence of Three-phase Unevenness on Line Loss Based on K-Means Clustering

机译:基于K-Means聚类的三相不均匀性影响的定量分析方法

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Firstly, the three-phase load is taken as the characteristic value, and the K-Means algorithm is used to cluster the unbalanced situation. Then, aiming at the problem of less sample data in the course of experiment, the adversarial generation network is used to increase the sample data. Then we calculate the increment coefficient of three-phase unbalance for the result of three-phase unbalance phenomenon. Finally, according to the relationship between the three-phase unbalance and the line loss increment coefficient, the line loss increment caused by different types of three-phase unbalance is estimated. The experimental results show that the three-phase unbalance can be classified effectively by using K-Means clustering, and the calculation of the line loss increment coefficient is improved accuracy, in which the use of adversarial generation network to increase sample data can further improve the experimental accuracy.
机译:首先,将三相负载视为特征值,并且k均值算法用于聚类不平衡情况。然后,针对实验过程中的样本数据较少的问题,使用对抗生成网络来增加样本数据。然后,我们计算三相不平衡现象的三相不平衡的增量系数。最后,根据三相不平衡与线路损耗增量系数之间的关系,估计由不同类型的三相不平衡引起的线损增加。实验结果表明,通过使用K-means聚类可以有效地分类三相不平衡,并且线路损耗增量系数的计算提高了精度,其中使用对抗生成网络来增加样本数据可以进一步改善实验准确性。

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