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Analyse multivariée de patrons×Analyse des réseaux cérébraux par graphes×
DomaineNeuro-imagerieNeuro-imagerie
FamilleProcess / pipelineProcess / pipeline
Année d'origine20012009
Auteur d'origineJames V. HaxbyEd Bullmore
TypefMRI pattern classification pipelineBrain network graph analysis pipeline
Source fondatriceNorman, K. A., Polyn, S. M., Detre, G. J., & Haxby, J. V. (2006). Beyond mind-reading: multi-voxel pattern analysis of fMRI data. Trends in Cognitive Sciences, 10(9), 424–430. DOI ↗Bullmore, E., & Sporns, O. (2009). Complex brain networks: graph theoretical analysis of structural and functional systems. Nature Reviews Neuroscience, 10(3), 186–198. DOI ↗
AliasMVPA, brain decoding, pattern classificationgraph theory, brain network analysis, network neuroscience
Apparentées33
RésuméMultivariate Pattern Analysis (MVPA) is a machine learning approach to fMRI that decodes cognitive states, stimuli, or behavior from whole-brain spatial patterns of neural activity. Pioneered by Haxby and colleagues in 2001, MVPA treats fMRI as a classification problem: can a trained decoder predict what a person is perceiving or thinking based solely on their brain activity pattern?Graph Theoretical Brain Network Analysis applies network science to understand brain organization, treating the brain as a complex network of interconnected nodes (regions) and edges (connections). Formalized by Bullmore and Sporns in 2009, graph analysis reveals fundamental organizational principles—modularity, efficiency, resilience—that characterize healthy and diseased brains.
ScholarGateJeu de données
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ScholarGateComparer des méthodes: Multivariate Pattern Analysis · Graph Brain Network Analysis. Consulté le 2026-06-15 sur https://scholargate.app/fr/compare