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Improved brain pattern recovery through ranking approaches

  • Fabian Pedregosa
  • , Elodie Cauvet
  • , Gaël Varoquaux
  • , Christophe Pallier
  • , Bertrand Thirion
  • , Alexandre Gramfort
  • INRIA
  • CEA/UVSQ/CNRS
  • INRIA Rocquencourt
  • INSERM U869

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

2 Citations (Scopus)

Abstract

Inferring the functional specificity of brain regions from functional Magnetic Resonance Images (fMRI) data is a challenging statistical problem. While the General Linear Model (GLM) remains the standard approach for brain mapping, supervised learning techniques (a.k.a. decoding) have proven to be useful to capture multivariate statistical effects distributed across voxels and brain regions. Up to now, much effort has been made to improve decoding by incorporating prior knowledge in the form of a particular regularization term. In this paper we demonstrate that further improvement can be made by accounting for non-linearities using a ranking approach rather than the commonly used least-square regression. Through simulation, we compare the recovery properties of our approach to linear models commonly used in fMRI based decoding. We demonstrate the superiority of ranking with a real fMRI dataset.

Original languageEnglish
Title of host publicationProceedings - 2012 2nd International Workshop on Pattern Recognition in NeuroImaging, PRNI 2012
Pages9-12
Number of pages4
DOIs
Publication statusPublished - 29 Oct 2012
Externally publishedYes
Event2012 2nd International Workshop on Pattern Recognition in NeuroImaging, PRNI 2012 - London, United Kingdom
Duration: 2 Jul 20124 Jul 2012

Publication series

NameProceedings - 2012 2nd International Workshop on Pattern Recognition in NeuroImaging, PRNI 2012

Conference

Conference2012 2nd International Workshop on Pattern Recognition in NeuroImaging, PRNI 2012
Country/TerritoryUnited Kingdom
CityLondon
Period2/07/124/07/12

Keywords

  • decoding
  • fMRI
  • ranking
  • supervised learning

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