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Multi-surface simplex spine segmentation for spine surgery simulation and planning

Posted on:2016-03-01Degree:Ph.DType:Dissertation
University:Old Dominion UniversityCandidate:Haq, RabiaFull Text:PDF
GTID:1474390017981326Subject:Biomedical engineering
Abstract/Summary:
This research proposes to develop a knowledge-based multi-surface simplex deformable model for segmentation of healthy as well as pathological lumbar spine data. It aims to provide a more accurate and robust segmentation scheme for identification of intervertebral disc pathologies to assist with spine surgery planning. A robust technique that combines multi-surface and shape statistics-aware variants of the deformable simplex model is presented. Statistical shape variation within the dataset has been captured by application of principal component analysis and incorporated during the segmentation process to refine results. In the case where shape statistics hinder detection of the pathological region, user-assistance is allowed to disable the prior shape influence during deformation. Results have been validated against user-assisted expert segmentation.
Keywords/Search Tags:Segmentation, Multi-surface simplex, Spine surgery
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