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Publication Detail
Automatic prone to supine haustral fold matching in CT colonography using a Markov random field model
  • Publication Type:
    Journal article
  • Publication Sub Type:
    Conference Proceeding
  • Authors:
    Hampshire T, Roth H, Hu M, Boone D, Slabaugh G, Punwani S, Halligan S, Hawkes D
  • Publication date:
    11/10/2011
  • Pagination:
    508, 515
  • Journal:
    Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
  • Volume:
    6891 LNCS
  • Issue:
    PART 1
  • Status:
    Published
  • Print ISSN:
    0302-9743
Abstract
CT colonography is routinely performed with the patient prone and supine to differentiate fixed colonic pathology from mobile faecal residue. We propose a novel method to automatically establish correspondence. Haustral folds are detected using a graph cut method applied to a surface curvature-based metric, where image patches are generated using endoluminal CT colonography surface rendering. The intensity difference between image pairs, along with additional neighbourhood information to enforce geometric constraints, are used with a Markov Random Field (MRF) model to estimate the fold labelling assignment. The method achieved fold matching accuracy of 83.1% and 88.5% with and without local colonic collapse. Moreover, it improves an existing surface-based registration algorithm, decreasing mean registration error from 9.7mm to 7.7mm in cases exhibiting collapse. © 2011 Springer-Verlag.
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Experimental & Translational Medicine
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Dept of Med Phys & Biomedical Eng
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Dept of Med Phys & Biomedical Eng
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Experimental & Translational Medicine
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