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An Extended Projection Data Depth and Its Applications to Discrimination

机译:扩展投影数据深度及其歧视的应用

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This article investigates the possible use of our newly defined extended projection depth (abbreviated to EPD) in nonparametric discriminant analysis. We propose a robust nonparametric classifier, which relies on the intuitively simple notion of EPD. The EPD-based classifier assigns an observation to the population with respect to which it has the maximum EPD. Asymptotic properties of misclassification rates and robust properties of EPD-based classifier are discussed. A few simulated data sets are used to compare the performance of EPD-based classifier with Fisher's linear discriminant rule, quadratic discriminant rule, and PD-based classifier. It is also found that when the underlying distributions are elliptically symmetric, EPD-based classifier is asymptotically equivalent to the optimal Bayes classifier.
机译:本文调查了在非参数判别分析中使用我们的新定义的扩展投影深度(缩写为EPD)。我们提出了一种强大的非参数分类器,它依赖于直观的EPD概念。基于EPD的分类器对其具有最大EPD的群体分配观察。讨论了错误分类率的渐近特性和基于EPD的分类器的鲁棒特性。一些模拟数据集用于比较与Fisher的线性判别规则,二次判别规则和基于PD的分类器的EPD类分类器的性能。还发现,当底层分布是椭圆对称的时,基于EPD的分类器是渐近的等同于最佳贝叶斯分类器。

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