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MR Diffusion-Based Inference of a Fiber Bundle Model from a Population of Subjects.

Authors :
Duncan, James S.
Gerig, Guido
Kouby, V. El
Cointepas, Y.
Poupon, C.
Rivière, D.
Golestani, N.
Poline, J.-B.
Bihan, D.
Mangin, J.-F.
Source :
Medical Image Computing & Computer-Assisted Intervention - MICCAI 2005; 2005, p196-204, 9p
Publication Year :
2005

Abstract

This paper proposes a method to infer a high level model of the white matter organization from a population of subjects using MR diffusion imaging. This method takes as input for each subject a set of trajectories stemming from any tracking algorithm. Then the inference results from two nested clustering stages. The first clustering converts each individual set of trajectories into a set of bundles supposed to represent large white matter pathways. The second clustering matches these bundles across subjects in order to provide a list of candidates for the bundle model. The method is applied on a population of eleven subjects and leads to the inference of 17 such candidates. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISBNs :
9783540293279
Database :
Supplemental Index
Journal :
Medical Image Computing & Computer-Assisted Intervention - MICCAI 2005
Publication Type :
Book
Accession number :
32906256
Full Text :
https://doi.org/10.1007/11566465_25