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通过设计线性分类器;最小风险贝叶斯分类器;监督学习法分层聚类分析;K-L变换提取有效特征,设计支持向量机对给定样本进行有效分类并分析结果。-By designing a linear classifier minimum risk Bayes classifier supervised learning method hierarchical cluster analysis K-L transform to extract efficient features, designed to
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Hierarchical clustering algorithm for intensity based cluster merging
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使用SPSS实施常用聚类算法:系统聚类法和谱系聚类法,可进行各种聚类方法结果的分析比较-SPSS implementation of the commonly used clustering algorithms: clustering method and the hierarchical clustering method, the analysis of the results of various clustering methods
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DBSCAN(Density-Based Spatial Clustering of Applications with Noise)是一个比较有代表性的基于密度的聚类算法。与划分和层次聚类方法不同,它将簇定义为密度相连的点的最大集合,能够把具有足够高密度的区域划分为簇,并可在噪声的空间数据库中发现任意形状的聚类。
-DBSCAN (Density-Based Spatial Clustering of Applications with Noise) is a more represent
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