Literature DB >> 27330652

WAVELET-DOMAIN REGRESSION AND PREDICTIVE INFERENCE IN PSYCHIATRIC NEUROIMAGING.

Philip T Reiss1, Lan Huo, Yihong Zhao, Clare Kelly, R Todd Ogden.   

Abstract

An increasingly important goal of psychiatry is the use of brain imaging data to develop predictive models. Here we present two contributions to statistical methodology for this purpose. First, we propose and compare a set of wavelet-domain procedures for fitting generalized linear models with scalar responses and image predictors: sparse variants of principal component regression and of partial least squares, and the elastic net. Second, we consider assessing the contribution of image predictors over and above available scalar predictors, in particular via permutation tests and an extension of the idea of confounding to the case of functional or image predictors. Using the proposed methods, we assess whether maps of a spontaneous brain activity measure, derived from functional magnetic resonance imaging, can meaningfully predict presence or absence of attention deficit/hyperactivity disorder (ADHD). Our results shed light on the role of confounding in the surprising outcome of the recent ADHD-200 Global Competition, which challenged researchers to develop algorithms for automated image-based diagnosis of the disorder.

Entities:  

Keywords:  ADHD-200; elastic net; functional confounding; functional magnetic resonance imaging; functional regression; sparse partial least squares; sparse principal component regression

Year:  2015        PMID: 27330652      PMCID: PMC4912166          DOI: 10.1214/15-AOAS829

Source DB:  PubMed          Journal:  Ann Appl Stat        ISSN: 1932-6157            Impact factor:   2.083


  36 in total

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8.  WAVELET-DOMAIN REGRESSION AND PREDICTIVE INFERENCE IN PSYCHIATRIC NEUROIMAGING.

Authors:  Philip T Reiss; Lan Huo; Yihong Zhao; Clare Kelly; R Todd Ogden
Journal:  Ann Appl Stat       Date:  2015-07-20       Impact factor: 2.083

9.  A bayesian hierarchical model for classification with selection of functional predictors.

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10.  Elucidating a magnetic resonance imaging-based neuroanatomic biomarker for psychosis: classification analysis using probabilistic brain atlas and machine learning algorithms.

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  7 in total

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4.  WAVELET-DOMAIN REGRESSION AND PREDICTIVE INFERENCE IN PSYCHIATRIC NEUROIMAGING.

Authors:  Philip T Reiss; Lan Huo; Yihong Zhao; Clare Kelly; R Todd Ogden
Journal:  Ann Appl Stat       Date:  2015-07-20       Impact factor: 2.083

5.  Generalized Scalar-on-Image Regression Models via Total Variation.

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  7 in total

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