A Clustering Method Based on K-Means Algorithm 论文

2012Physics Procedia引用 408
Advanced Algorithms and ApplicationsAdvanced Computational Techniques and ApplicationsAdvanced Sensor and Control Systems

摘要

In this paper we combine the largest minimum distance algorithm and the traditional K-Means algorithm to propose an improved K-Means clustering algorithm. This improved algorithm can make up the shortcomings for the traditional K-Means algorithm to determine the initial focal point. The improved K-Means algorithm effectively solved two disadvantages of the traditional algorithm, the first one is greater dependence to choice the initial focal point, and another one is easy to be trapped in local minimum[1], [2].

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