Difference between revisions of "Projects:LesionSegmentation"

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= Publications =
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* Marcel Prastawa and Guido Gerig. Automatic MS Lesion Segmentation by Outlier Detection and Information Theoretic Region Partitioning. 3D Segmentation in the Clinic: A Grand Challenge II Workshop at Medical Image Computing and Computer Assisted Intervention (MICCAI) 2008. Insight Journal.
  
 
= Key Investigators =
 
= Key Investigators =
  
Utah: Marcel Prastawa, Guido Gerig
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*Utah Algorithms: Marcel Prastawa, Guido Gerig
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*Clinical Collaborators
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**MIND: Jeremy Bockholt, Mark Scully

Revision as of 20:13, 2 September 2008

Home < Projects:LesionSegmentation
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Lesion Segmentation

Quantification, analysis and display of brain pathology such as white matter lesions as observed in MRI is important for diagnosis, monitoring of disease progression, improved understanding of pathological processes and for developing new therapies. The Utah Neuroimage Analysis Group develops new methodology for extraction of brain lesions from volumetric MRI scans and for characterization of lesion patterns over time. The images show white matter lesions (yellow) displayed with ventricles (blue) and transparent brain surface in a patient with an autoimmune disease (lupus). Lesions in white matter and possible correlations with cognitive deficits are also studied in patients with multiple sclerosis (MS), chronic depression, Alzheimer’s disease (AD) and in older persons.

Segmentation of a lupus case with large lesions
Segmentation of a 3T lupus case with small lesions

Publications

  • Marcel Prastawa and Guido Gerig. Automatic MS Lesion Segmentation by Outlier Detection and Information Theoretic Region Partitioning. 3D Segmentation in the Clinic: A Grand Challenge II Workshop at Medical Image Computing and Computer Assisted Intervention (MICCAI) 2008. Insight Journal.

Key Investigators

  • Utah Algorithms: Marcel Prastawa, Guido Gerig
  • Clinical Collaborators
    • MIND: Jeremy Bockholt, Mark Scully