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Induction of the Common-Sense Hierarchies in Lexical Data

机译:词汇数据中常识层次的归纳

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Unsupervised organization of a set of lexical concepts that captures common-sense knowledge inducting meaningful partitioning of data is described. Projection of data on principal components allow for identification of clusters with wide margins, and the procedure is recursively repeated within each cluster. Application of this idea to a simple dataset describing animals created hierarchical partitioning with each clusters related to a set of features that have common-sense interpretation.
机译:描述了一组词汇概念的无监督组织,这些词汇概念捕获了常识性知识,这些常识引起了有意义的数据分区。将数据投影到主成分上可以识别出具有较大边距的聚类,并且在每个聚类中以递归方式重复该过程。将此想法应用于描述动物的简单数据集,该动物创建了具有与具有常识解释的一组特征相关的每个聚类的分层分区。

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