Clustering white matter fibers using support vector machines: a volumetric conformal mapping approach
White matter tractography is non-invasive method to study white matter microstructure within the brain and its connectivity across the different regions. Various neuro-degenerative diseases affect the white matter connectivity in the brain. In order to study the neurodegeneration and localize the af...
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Main Authors | , , |
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Format | Conference Proceeding |
Language | English |
Published |
SPIE
26.01.2017
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Online Access | Get full text |
ISBN | 9781510607781 1510607781 |
ISSN | 0277-786X |
DOI | 10.1117/12.2256974 |
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Abstract | White matter tractography is non-invasive method to study white matter microstructure within the brain and its connectivity across the different regions. Various neuro-degenerative diseases affect the white matter connectivity in the brain. In order to study the neurodegeneration and localize the affected fiber bundles, it is important to cluster the white matter fibers in an anatomically consistent manner. Clustering white matter fiber bundles in the brain is a challenging problem. The present approaches include region of interest (ROI) based clustering as well as template based clustering. A novel clustering technique using support vector machine framework is introduced. In this method, a conformal volumetric bijective mapping between the brain and the topologically equivalent sphere is established. The white matter fibers are then parameterized in this domain. Such a parameterization also introduces a spatial normalization without requiring any prior registration. We show that such a mapping is useful to learn statistical models of white matter fiber bundles and use it for clustering in a new subject. |
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AbstractList | White matter tractography is non-invasive method to study white matter microstructure within the brain and its connectivity across the different regions. Various neuro-degenerative diseases affect the white matter connectivity in the brain. In order to study the neurodegeneration and localize the affected fiber bundles, it is important to cluster the white matter fibers in an anatomically consistent manner. Clustering white matter fiber bundles in the brain is a challenging problem. The present approaches include region of interest (ROI) based clustering as well as template based clustering. A novel clustering technique using support vector machine framework is introduced. In this method, a conformal volumetric bijective mapping between the brain and the topologically equivalent sphere is established. The white matter fibers are then parameterized in this domain. Such a parameterization also introduces a spatial normalization without requiring any prior registration. We show that such a mapping is useful to learn statistical models of white matter fiber bundles and use it for clustering in a new subject. |
Author | Prasad, Gautam Thompson, Paul Gupta, Vikash |
Author_xml | – sequence: 1 givenname: Vikash surname: Gupta fullname: Gupta, Vikash organization: The Univ. of Southern California (United States) – sequence: 2 givenname: Gautam surname: Prasad fullname: Prasad, Gautam organization: Google Inc. (United States) – sequence: 3 givenname: Paul surname: Thompson fullname: Thompson, Paul organization: The Univ. of Southern California (United States) |
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Copyright | COPYRIGHT SPIE. Downloading of the abstract is permitted for personal use only. |
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DOI | 10.1117/12.2256974 |
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Editor | Lepore, Natasha Larrabide, Ignacio Brieva, Jorge Romero, Eduardo |
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Notes | Conference Date: 2016-12-05|2016-12-07 Conference Location: Tandil, Argentina |
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Title | Clustering white matter fibers using support vector machines: a volumetric conformal mapping approach |
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