Literature DB >> 28957026

An Initialization Method Based on Hybrid Distance for k-Means Algorithm.

Jie Yang1, Yan Ma2, Xiangfen Zhang3, Shunbao Li4, Yuping Zhang5.   

Abstract

The traditional [Formula: see text]-means algorithm has been widely used as a simple and efficient clustering method. However, the performance of this algorithm is highly dependent on the selection of initial cluster centers. Therefore, the method adopted for choosing initial cluster centers is extremely important. In this letter, we redefine the density of points according to the number of its neighbors, as well as the distance between points and their neighbors. In addition, we define a new distance measure that considers both Euclidean distance and density. Based on that, we propose an algorithm for selecting initial cluster centers that can dynamically adjust the weighting parameter. Furthermore, we propose a new internal clustering validation measure, the clustering validation index based on the neighbors (CVN), which can be exploited to select the optimal result among multiple clustering results. Experimental results show that the proposed algorithm outperforms existing initialization methods on real-world data sets and demonstrates the adaptability of the proposed algorithm to data sets with various characteristics.

Year:  2017        PMID: 28957026     DOI: 10.1162/neco_a_01014

Source DB:  PubMed          Journal:  Neural Comput        ISSN: 0899-7667            Impact factor:   2.026


  5 in total

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3.  A Novel Model on Reinforce K-Means Using Location Division Model and Outlier of Initial Value for Lowering Data Cost.

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Journal:  Entropy (Basel)       Date:  2020-08-17       Impact factor: 2.524

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Journal:  J Healthc Eng       Date:  2022-01-13       Impact factor: 2.682

5.  An Analysis of the Motivation Mechanism of the Formation of Corporate Health Strategic Innovation Capability Based on the K-Means Algorithm.

Authors:  Tingting Shang
Journal:  Comput Intell Neurosci       Date:  2022-01-30
  5 in total

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