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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Genetic clustering for automatic evolution of clusters and application to image classification
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Genetic clustering for automatic evolution of clusters and application to image classification

机译:遗传聚类用于聚类的自动进化及其在图像分类中的应用

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摘要

In this article the searching capability of genetic algorithms has been exploited for automatically evolving the number of clusters as well as Proper Clustering of any data set. A new string representation, comprising both real numbers and the do not care symbol, is used in order to encode a variable number of clusters. The Davies-Bouldin index is used as a measure of the validity of the clusters. Effectiveness of the genetic clustering scheme is demonstrated for both artificial and real-life data sets. Utility of the genetic clustering technique is also demonstrated for a satellite image of a part of the city Calcutta. The proposed technique is able to distinguish some characteristic landcover types in the image. (C) 2002 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved. [References: 30]
机译:在本文中,已经利用遗传算法的搜索功能来自动演化聚类的数量以及任何数据集的正确聚类。为了对可变数目的簇进行编码,使用了包括实数和无关符号的新的字符串表示形式。 Davies-Bouldin指数用作衡量聚类有效性的指标。遗传聚类方案对人工和现实数据集的有效性都得到了证明。遗传聚类技术的效用也被用于加尔各答城市一部分的卫星图像。所提出的技术能够区分图像中某些特征性的土地覆被类型。 (C)2002模式识别学会。由Elsevier Science Ltd.出版。保留所有权利。 [参考:30]

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