Diffusion MRI abnormalities detection with orientation distribution functions: a multiple sclerosis longitudinal study.
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Where this comes from
- Record sourced from PubMed, PMID 25867549.
- Also identified by DOI 10.1016/j.media.2015.02.005.
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Abstract
We propose a new algorithm for the voxelwise analysis of orientation distribution functions between one image and a group of reference images. It relies on a generic framework for the comparison of diffusion probabilities on the sphere, sampled from the underlying models. We demonstrate that this method, combined to dimensionality reduction through a principal component analysis, allows for more robust detection of lesions on simulated data when compared to classical tensor-based analysis. We then demonstrate the efficiency of this pipeline on the longitudinal comparison of multiple sclerosis patients at an early stage of the disease: right after their first clinically isolated syndrome (CIS) and three months later. We demonstrate the predictive value of ODF-based scores for the early detection of lesions that will appear or heal.
Medical subject headings
- Aging
- Brain
- Diffusion Tensor Imaging
- Image Interpretation, Computer-Assisted
- Multiple Sclerosis
- White Matter