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ICPR
2010
IEEE

On-Line Fmri Data Classification Using Linear and Ensemble Classifiers

13 years 9 months ago
On-Line Fmri Data Classification Using Linear and Ensemble Classifiers
The advent of real-time fMRI pattern classification opens many avenues for interactive self-regulation where the brain's response is better modelled by multivariate, rather than univariate techniques. Here we test three on-line linear classifiers, applied to a real fMRI dataset, collected as part of an experiment on the cortical response to emotional stimuli. We propose a random subspace ensemble as a fast and more accurate alternative to component classifiers. The on-line linear discriminant classifier (O-LDC) was found to be a better base classifier than the on-line versions of the perceptron and the balanced winnow.
Catrin Oliver Plumpton, Ludmila I. Kuncheva, David
Added 02 Aug 2010
Updated 02 Aug 2010
Type Conference
Year 2010
Where ICPR
Authors Catrin Oliver Plumpton, Ludmila I. Kuncheva, David E. J. Linden, Stephen Jaye Johnston
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