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Variational Reconstruction of Left Cardiac Structure from CMR Images

Author

Listed:
  • Min Wan
  • Wei Huang
  • Jun-Mei Zhang
  • Xiaodan Zhao
  • Ru San Tan
  • Xiaofeng Wan
  • Liang Zhong

Abstract

Cardiovascular Disease (CVD), accounting for 17% of overall deaths in the USA, is the leading cause of death over the world. Advances in medical imaging techniques make the quantitative assessment of both the anatomy and function of heart possible. The cardiac modeling is an invariable prerequisite for quantitative analysis. In this study, a novel method is proposed to reconstruct the left cardiac structure from multi-planed cardiac magnetic resonance (CMR) images and contours. Routine CMR examination was performed to acquire both long axis and short axis images. Trained technologists delineated the endocardial contours. Multiple sets of two dimensional contours were projected into the three dimensional patient-based coordinate system and registered to each other. The union of the registered point sets was applied a variational surface reconstruction algorithm based on Delaunay triangulation and graph-cuts. The resulting triangulated surfaces were further post-processed. Quantitative evaluation on our method was performed via computing the overlapping ratio between the reconstructed model and the manually delineated long axis contours, which validates our method. We envisage that this method could be used by radiographers and cardiologists to diagnose and assess cardiac function in patients with diverse heart diseases.

Suggested Citation

  • Min Wan & Wei Huang & Jun-Mei Zhang & Xiaodan Zhao & Ru San Tan & Xiaofeng Wan & Liang Zhong, 2015. "Variational Reconstruction of Left Cardiac Structure from CMR Images," PLOS ONE, Public Library of Science, vol. 10(12), pages 1-17, December.
  • Handle: RePEc:plo:pone00:0145570
    DOI: 10.1371/journal.pone.0145570
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    Cited by:

    1. Steven Piantadosi, 2017. "Three dimensional mathematical modeling of violin plate surfaces: An approach based on an ensemble of contour lines," PLOS ONE, Public Library of Science, vol. 12(2), pages 1-14, February.

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