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An electricity data cluster analysis method based on SAGA-FCM algorithm

机译:基于SAGA-FCM算法的电力数据聚类分析方法

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The key technology to analyzing electricity data is cluster methods, of which the traditional way has already lost its agility and quality due to the increasing data volume. To this end, this paper presented an electricity data mining structure: first the higher dimensional data should be reduced to lower ones, second the reduced-dimensional results should be classified into typical usage behavior using cluster methods. Conventional cluster methods cannot deal with large-scale data sets for its slow convergence and low accuracy. This paper proposed SAGA-FCM algorithm to improve the data processing results, which is a combination of Simulated Annealing, Generic algorithm and FCM (Fuzzy C Mean) algorithm. Two examples have been made to verify the algorithm: one is to prove its availability and the other is to compare its efficiency to conventional algorithm.
机译:分析电数据的关键技术是集群方法,由于数据量的增加,传统方法已经失去了敏捷性和质量。为此,本文提出了一种电力数据挖掘结构:首先应将高维数据缩减为低维数据,其次,应使用聚类方法将降维结果分类为典型的使用行为。传统的聚类方法由于收敛速度慢和准确性低而无法处理大规模数据集。本文提出了SAGA-FCM算法来提高数据处理效果,它是模拟退火,通用算法和FCM(模糊C均值)算法的结合。已经提出了两个例子来验证该算法:一个是证明其可用性,另一个是将其效率与常规算法进行比较。

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