Literature DB >> 30686828

Scalar-on-Image Regression via the Soft-Thresholded Gaussian Process.

Jian Kang1, Brian J Reich2, Ana-Maria Staicu3.   

Abstract

This work concerns spatial variable selection for scalar-on-image regression. We propose a new class of Bayesian nonparametric models and develop an efficient posterior computational aigorithm. The proposed soft-thresholded Gaussian process provides large prior support over the class of piecewise-smooth, sparse, and continuous spatially-varying regression coefficient functions. In addition, under some mild regularity conditions the soft-thresholded Gaussian proess prior leads to the posterior consistency for parameter estimation and variable selection for scalar-on-image regression, even when the number of predictors is larger than the sample size. The proposed method is compared to alternatives via simulation and applied to an electroen-cephalography study of alcoholism.

Entities:  

Keywords:  Electroencephalography; Gaussian processes; Posterior consistency; Spatial variable selection

Year:  2018        PMID: 30686828      PMCID: PMC6345249          DOI: 10.1093/biomet/asx075

Source DB:  PubMed          Journal:  Biometrika        ISSN: 0006-3444            Impact factor:   2.445


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