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A flocking based method for brain tractography

delete2014-04-01
delete13
PRE
AI
R
Ramón Aranda *
M
Mariano Rivera
A
Alonso Ramírez-Manzanares
DOI:10.1016/j.media.2014.01.009delete
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Abstract

Abstract

En 中文
We propose a new method to estimate axonal fiber pathways from Multiple Intra-Voxel Diffusion Orientations. Our method uses the multiple local orientation information for leading stochastic walks of particles. These stochastic particles are modeled with mass and thus they are subject to gravitational and inertial forces. As result, we obtain smooth, filtered and compact trajectory bundles. This gravitational interaction can be seen as a flocking behavior among particles that promotes better and robust axon fiber estimations because they use collective information to move. However, the stochastic walks may generate paths with low support (outliers), generally associated to incorrect brain connections. In order to eliminate the outlier pathways, we propose a filtering procedure based on principal component analysis and spectral clustering. The performance of the proposal is evaluated on Multiple Intra-Voxel Diffusion Orientations from two realistic numeric diffusion phantoms and a physical diffusion phantom. Additionally, we qualitatively demonstrate the performance on in vivo human brain data. (C) 2014 Elsevier B.V. All rights reserved.
Keywords:
Tractography
Diffusion tensor
Stochastic walks
Anatomical brain connectivity
Flocking

Journal

Medical Image Analysis cover
Medical Image Analysis
IF:
11.8
Papers:
3.8K
Citations:
2.4W

Organization

C
cimat - centro de investigacion en matematicas
Scholars:
179
Papers: 177
Citations: 0
Universidad de Guanajuato cover
Universidad de Guanajuato
Scholars:
3.8K
Papers: 2.8K
Citations: 1.9K