文件名称:kmeans
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- 上传时间:2014-11-30
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文件大小:22.35kb
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k-means clustering is a method of vector quantization, originally signal processing, that is popular for cluster analysis in data mining. k-means clustering aims to partition n observations into k clusters in which each observation belongs to the cluster with the nearest mean, serving as a prototype of the cluster. This results in a partitioning of the data space into Voronoi cells.-k-means clustering is a method of vector quantization, originally signal processing, that is popular for cluster analysis in data mining. k-means clustering aims to partition n observations into k clusters in which each observation belongs to the cluster with the nearest mean, serving as a prototype of the cluster. This results in a partitioning of the data space into Voronoi cells.
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下载文件列表
kmeans/Centroid.java
kmeans/Clustering.java
kmeans/ComparisonFrame.java
kmeans/DataPoint.java
kmeans/EMCluster.java
kmeans/EMFrame.java
kmeans/HierarchicalClustering.java
kmeans/HierarchicalFrame.java
kmeans/JCA.java
kmeans/KMeansFrame.java
kmeans/Main.java
kmeans/MainFrame.java
kmeans/Preprocess.java
kmeans/SOMCluster.java
kmeans/SOMFrame.java
kmeans/TermFrequency.java
kmeans
kmeans/Clustering.java
kmeans/ComparisonFrame.java
kmeans/DataPoint.java
kmeans/EMCluster.java
kmeans/EMFrame.java
kmeans/HierarchicalClustering.java
kmeans/HierarchicalFrame.java
kmeans/JCA.java
kmeans/KMeansFrame.java
kmeans/Main.java
kmeans/MainFrame.java
kmeans/Preprocess.java
kmeans/SOMCluster.java
kmeans/SOMFrame.java
kmeans/TermFrequency.java
kmeans
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