文件名称:src
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k-means 算法接受参数 k ;然后将事先输入的n个数据对象划分为 k个聚类以便使得所获得的聚类满足:同一聚类中的对象相似度较高;而不同聚类中的对象相似度较小。聚类相似度是利用各聚类中对象的均值所获得一个“中心对象”(引力中心)来进行计算的。-k-means algorithm accepts parameters k n and the previously input data is divided into k-clustering objects in order to make the obtained cluster met: the same high similarity clustering objects objects and different clustering Similarity small. The use of the cluster similarity clustering objects obtained by a mean of " central object" (center of gravity) to be calculated for.
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下载文件列表
src
...\.DS_Store
__MACOSX
........\src
........\...\._.DS_Store
src\Kahans.java
...\KMeans.java
__MACOSX\src\._KMeans.java
src\test.java
...\vector.java