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PMID: 15907293 Published · ppublish English Journal Article

Support vector machines for temporal classification of block design fMRI data.

NeuroImage ·Vol. 26 ·No. 2 ·2005-06-00 ·Pages 317-29

LaConte S, Strother S, Cherkassky V, Anderson J, Hu X

Abstract

This paper treats support vector machine (SVM) classification applied to block design fMRI, extending our previous work with linear discriminant analysis [LaConte, S., Anderson, J., Muley, S., Ashe, J., Frutiger, S., Rehm, K., Hansen, L.K., Yacoub, E., Hu, X., Rottenberg, D., Strother S., 2003a. The evaluation of preprocessing choices in single-subject BOLD fMRI using NPAIRS performance metrics. NeuroImage 18, 10-27; Strother, S.C., Anderson, J., Hansen, L.K., Kjems, U., Kustra, R., Siditis, J., Frutiger, S., Muley, S., LaConte, S., Rottenberg, D. 2002. The quantitative evaluation of functional neuroimaging experiments: the NPAIRS data analysis framework. NeuroImage 15, 747-771]. We compare SVM to canonical variates analysis (CVA) by examining the relative sensitivity of each method to ten combinations of preprocessing choices consisting of spatial smoothing, temporal detrending, and motion correction. Important to the discussion are the issues of classification performance, model interpretation, and validation in the context of fMRI. As the SVM has many unique properties, we examine the interpretation of support vector models with respect to neuroimaging data. We propose four methods for extracting activation maps from SVM models, and we examine one of these in detail. For both CVA and SVM, we have classified individual time samples of whole brain data, with TRs of roughly 4 s, thirty slices, and nearly 30,000 brain voxels, with no averaging of scans or prior feature selection.

MeSH Terms
Algorithms Artificial Intelligence Brain/anatomy & histology Computer Graphics Image Interpretation, Computer-Assisted/methods Magnetic Resonance Imaging/methods Models, Statistical
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
LaConte Stephen
Biomedical Engineering, Georgia Institute of Technology, Emory University, Atlanta, 30322, USA.
Strother Stephen
Cherkassky Vladimir
Anderson Jon
Hu Xiaoping
Article Info
Journal
NeuroImage
Abbr.
Neuroimage
ISSN
1053-8119
Published
2005-06-00
Epub
2005-00-24
Pages
317-29
Language
English
Region
United States
NLM ID
9215515
Subset
IM
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