Overlapping sliced inverse regression for dimension reduction

Author:

Zhang Ning1,Yu Zhou2,Wu Qiang3

Affiliation:

1. Computational Science PhD Program, Middle Tennessee State University, 1301 E Main Street, Murfreesboro, TN 37132, USA

2. School of Statistics, East China Normal University, Shanghai 200241, P. R. China

3. Department of Mathematical Sciences and Computational Science PhD Program, Middle Tennessee State University, 1301 E Main Street, Murfreesboro, TN 37132, USA

Abstract

Sliced inverse regression (SIR) is a pioneer tool for supervised dimension reduction. It identifies the effective dimension reduction space, the subspace of significant factors with intrinsic lower dimensionality. In this paper, we propose to refine the SIR algorithm through an overlapping slicing scheme. The new algorithm, called overlapping SIR (OSIR), is able to estimate the effective dimension reduction space and determine the number of effective factors more accurately. We show that such overlapping procedure has the potential to identify the information contained in the derivatives of the inverse regression curve, which helps to explain the superiority of OSIR. We also prove that OSIR algorithm is [Formula: see text]-consistent and verify its effectiveness by simulations and real applications.

Publisher

World Scientific Pub Co Pte Lt

Subject

Applied Mathematics,Analysis

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