A note on the choice of the number of slices in sliced inverse regression

C. Becker, U. Gather
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引用次数: 3

Abstract

Sliced inverse regression (SIR) is a clever technique for reducing the dimension of the predictor in regression problems, thus avoiding the curse of dimensionality. There exist many contributions on various aspects of the performance of SIR. Up to now, few attention has been paid to the problem of choosing the number of slices within the SIR procedure appropriately. The aim of this paper is to show that especially the estimation of the reduced dimension can be strongly in?uenced by the chosen number of slices.
关于切片逆回归中切片数目选择的说明
切片逆回归(SIR)是一种在回归问题中降低预测器维数从而避免维数诅咒的聪明技术。关于SIR性能的各个方面都有很多的研究成果,但是对于SIR过程中切片数量的合理选择问题,目前很少有人关注。本文的目的是证明,特别是对降维的估计可以在?按所选的片数进行排序。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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