Representing Diffusion MRI in 5D for Segmentation of White Matter Tracts with a Level Set Method

نویسندگان

  • Lisa Jonasson
  • Patric Hagmann
  • Xavier Bresson
  • Jean-Philippe Thiran
  • Van J. Wedeen
چکیده

We present a method for segmenting white matter tracts from high angular resolution diffusion MR. images by representing the data in a 5 dimensional space of position and orientation. Whereas crossing fiber tracts cannot be separated in 3D position space, they clearly disentangle in 5D position-orientation space. The segmentation is done using a 5D level set method applied to hyper-surfaces evolving in 5D position-orientation space. In this paper we present a methodology for constructing the position-orientation space. We then show how to implement the standard level set method in such a non-Euclidean high dimensional space. The level set theory is basically defined for N-dimensions but there are several practical implementation details to consider, such as mean curvature. Finally, we will show results from a synthetic model and a few preliminary results on real data of a human brain acquired by high angular resolution diffusion MRI.

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عنوان ژورنال:
  • Information processing in medical imaging : proceedings of the ... conference

دوره 19  شماره 

صفحات  -

تاریخ انتشار 2005