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Fast Multistage Algorithm for K-NN Classifiers

机译:K-NN分类器的快速多级算法

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In this paper we present a way to reduce the computational cost of k-NN classifiers without losing classification power. Hierarchical or multistage classifiers have been built with this purpose. These classifiers are designed putting incrementally trained classifiers into a hierarchy and using rejection techniques in all the levels of the hierarchy apart from the last. Results are presented for different benchmark data sets: some standard data sets taken from the UCI Repository and the Statlog Project, and NIST Special Databases (digits and upper-case and lower-case letters). In all the cases a computational cost reduction is obtained maintaining the recognition rate of the best individual classifier obtained.
机译:在本文中,我们提出了一种方法来降低K-NN分类器的计算成本而不失去分类功率。使用此目的构建了分层或多级分类器。这些分类器设计将递增训练的分类器置于层次结构中,并在最后一个层次结构中使用所有级别中的抑制技术。结果显示为不同的基准数据集:从UCI存储库和Statlog项目中获取的某些标准数据集,以及NIST特殊数据库(数字和大写和小写字母)。在所有情况下,获得计算成本降低,维持获得的最佳单个分类器的识别率。

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