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Geometrically Accurate Topology-Correction of Cortical Surfaces Using Nonseparating Loops

IEEE Transactions on Medical Imaging · 2007 · Vol. 26(4) · pp. 518–529
Florent SégonneJenni PachecoBruce Fischl

Abstract

In this paper, we focus on the retrospective topology correction of surfaces. We propose a technique to accurately correct the spherical topology of cortical surfaces. Specifically, we construct a mapping from the original surface onto the sphere to detect topological defects as minimal nonhomeomorphic regions. The topology of each defect is then corrected by opening and sealing the surface along a set of nonseparating loops that are selected in a Bayesian framework. The proposed method is a wholly self-contained topology correction algorithm, which determines geometrically accurate, topologically correct solutions based on the magnetic resonance imaging (MRI) intensity profile and the expected local curvature. Applied to real data, our method provides topological corrections similar to those made by a trained operator.

Medical Image Segmentation TechniquesAdvanced Vision and ImagingDigital Image Processing TechniquesTopology (electrical circuits)Focus (optics)Surface (topology)CurvatureComputer scienceOperator (biology)AlgorithmMathematicsPhysicsGeometry

MeSH terms

AlgorithmsArtificial IntelligenceBayes TheoremCerebral CortexHumansImage EnhancementImage Interpretation, Computer-AssistedMagnetic Resonance ImagingPattern Recognition, AutomatedSensitivity and SpecificityReproducibility of ResultsImaging, Three-Dimensional

Funding

  • National Institutes of Health
Citations
1,024
FWCI
16.11
field-weighted impact
References
70
Percentile
99%
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Citations per year
References
Whole Brain Segmentation
Neuron · 2002 · 8,910 citations
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Snakes: Active contour models
International Journal of Computer Vision · 1988 · 16,976 citations
Measuring the thickness of the human cerebral cortex from magnetic resonance images
Proceedings of the National Academy of Sciences · 2000 · 5,969 citations
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