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Electrical Load Pattern Grouping Based on Centroid Model With Ant Colony Clustering

机译:基于质心模型的蚁群聚类的电力负荷模式分组

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Load pattern clustering based on the shape of the electricity consumption is a key tool to provide enhanced knowledge on the nature of the consumption and assist meaningful customer partitioning. This paper presents new developments to group the load patterns using an initial set of centroids specified according to a user-defined centroid model. The original Electrical Pattern Ant Colony Clustering (EPACC) algorithm is illustrated, highlighting its characteristics and parameters, with centroids evolution during the iterative process until stabilization. The EPACC results are compared with those obtained from the classical k-means algorithm to group the representative load patterns taken from a set of non-residential customers in typical weekdays.
机译:基于用电量形状的负载模式聚类是一种关键工具,可提供有关用电量性质的增强知识并协助有意义的客户划分。本文介绍了根据用户定义的质心模型使用一组初始质心对载荷模式进行分组的新技术。说明了原始的电子模式蚁群聚类(EPACC)算法,突出了它的特性和参数,在迭代过程中直至质稳定为止,质心都有所演变。将EPACC结果与从经典k均值算法获得的结果进行比较,以对典型工作日中一组非住宅客户的代表性负荷模式进行分组。

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