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Connectivity-Based Parcellation of the Cortical Mantle Using q-Ball Diffusion Imaging

This paper exploits the idea that each individual brain region has a specific connection profile to create parcellations of the cortical mantle using MR diffusion imaging. The parcellation is performed in two steps. First, the cortical mantle is split at a macroscopic level into 36 large gyri using...

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Detalles Bibliográficos
Autores principales: Perrin, Muriel, Cointepas, Yann, Cachia, Arnaud, Poupon, Cyril, Thirion, Bertrand, Rivière, Denis, Cathier, Pascal, El Kouby, Vincent, Constantinesco, André, Le Bihan, Denis, Mangin, Jean-François
Formato: Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2288697/
https://www.ncbi.nlm.nih.gov/pubmed/18401457
http://dx.doi.org/10.1155/2008/368406
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author Perrin, Muriel
Cointepas, Yann
Cachia, Arnaud
Poupon, Cyril
Thirion, Bertrand
Rivière, Denis
Cathier, Pascal
El Kouby, Vincent
Constantinesco, André
Le Bihan, Denis
Mangin, Jean-François
author_facet Perrin, Muriel
Cointepas, Yann
Cachia, Arnaud
Poupon, Cyril
Thirion, Bertrand
Rivière, Denis
Cathier, Pascal
El Kouby, Vincent
Constantinesco, André
Le Bihan, Denis
Mangin, Jean-François
author_sort Perrin, Muriel
collection PubMed
description This paper exploits the idea that each individual brain region has a specific connection profile to create parcellations of the cortical mantle using MR diffusion imaging. The parcellation is performed in two steps. First, the cortical mantle is split at a macroscopic level into 36 large gyri using a sulcus recognition system. Then, for each voxel of the cortex, a connection profile is computed using a probabilistic tractography framework. The tractography is performed from q fields using regularized particle trajectories. Fiber ODF are inferred from the q-balls using a sharpening process focusing the weight around the q-ball local maxima. A sophisticated mask of propagation computed from a T1-weighted image perfectly aligned with the diffusion data prevents the particles from crossing the cortical folds. During propagation, the particles father child particles in order to improve the sampling of the long fascicles. For each voxel, intersection of the particle trajectories with the gyri lead to a connectivity profile made up of only 36 connection strengths. These profiles are clustered on a gyrus by gyrus basis using a K-means approach including spatial regularization. The reproducibility of the results is studied for three subjects using spatial normalization.
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spelling pubmed-22886972008-04-09 Connectivity-Based Parcellation of the Cortical Mantle Using q-Ball Diffusion Imaging Perrin, Muriel Cointepas, Yann Cachia, Arnaud Poupon, Cyril Thirion, Bertrand Rivière, Denis Cathier, Pascal El Kouby, Vincent Constantinesco, André Le Bihan, Denis Mangin, Jean-François Int J Biomed Imaging Research Article This paper exploits the idea that each individual brain region has a specific connection profile to create parcellations of the cortical mantle using MR diffusion imaging. The parcellation is performed in two steps. First, the cortical mantle is split at a macroscopic level into 36 large gyri using a sulcus recognition system. Then, for each voxel of the cortex, a connection profile is computed using a probabilistic tractography framework. The tractography is performed from q fields using regularized particle trajectories. Fiber ODF are inferred from the q-balls using a sharpening process focusing the weight around the q-ball local maxima. A sophisticated mask of propagation computed from a T1-weighted image perfectly aligned with the diffusion data prevents the particles from crossing the cortical folds. During propagation, the particles father child particles in order to improve the sampling of the long fascicles. For each voxel, intersection of the particle trajectories with the gyri lead to a connectivity profile made up of only 36 connection strengths. These profiles are clustered on a gyrus by gyrus basis using a K-means approach including spatial regularization. The reproducibility of the results is studied for three subjects using spatial normalization. Hindawi Publishing Corporation 2008 2008-03-26 /pmc/articles/PMC2288697/ /pubmed/18401457 http://dx.doi.org/10.1155/2008/368406 Text en Copyright © 2008 Muriel Perrin et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Perrin, Muriel
Cointepas, Yann
Cachia, Arnaud
Poupon, Cyril
Thirion, Bertrand
Rivière, Denis
Cathier, Pascal
El Kouby, Vincent
Constantinesco, André
Le Bihan, Denis
Mangin, Jean-François
Connectivity-Based Parcellation of the Cortical Mantle Using q-Ball Diffusion Imaging
title Connectivity-Based Parcellation of the Cortical Mantle Using q-Ball Diffusion Imaging
title_full Connectivity-Based Parcellation of the Cortical Mantle Using q-Ball Diffusion Imaging
title_fullStr Connectivity-Based Parcellation of the Cortical Mantle Using q-Ball Diffusion Imaging
title_full_unstemmed Connectivity-Based Parcellation of the Cortical Mantle Using q-Ball Diffusion Imaging
title_short Connectivity-Based Parcellation of the Cortical Mantle Using q-Ball Diffusion Imaging
title_sort connectivity-based parcellation of the cortical mantle using q-ball diffusion imaging
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2288697/
https://www.ncbi.nlm.nih.gov/pubmed/18401457
http://dx.doi.org/10.1155/2008/368406
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