Back to Search Start Over

Accurate reconstruction of 3D cardiac geometry from coarsely-sliced MRI.

Authors :
Ringenberg, Jordan
Deo, Makarand
Devabhaktuni, Vijay
Berenfeld, Omer
Snyder, Brett
Boyers, Pamela
Gold, Jeffrey
Source :
Computer Methods & Programs in Biomedicine. Feb2014, Vol. 113 Issue 2, p483-493. 11p.
Publication Year :
2014

Abstract

Abstract: We present a comprehensive validation analysis to assess the geometric impact of using coarsely-sliced short-axis images to reconstruct patient-specific cardiac geometry. The methods utilize high-resolution diffusion tensor MRI (DTMRI) datasets as reference geometries from which synthesized coarsely-sliced datasets simulating in vivo MRI were produced. 3D models are reconstructed from the coarse data using variational implicit surfaces through a commonly used modeling tool, CardioViz3D. The resulting geometries were then compared to the reference DTMRI models from which they were derived to analyze how well the synthesized geometries approximate the reference anatomy. Averaged over seven hearts, 95% spatial overlap, less than 3% volume variability, and normal-to-surface distance of 0.32mm was observed between the synthesized myocardial geometries reconstructed from 8mm sliced images and the reference data. The results provide strong supportive evidence to validate the hypothesis that coarsely-sliced MRI may be used to accurately reconstruct geometric ventricular models. Furthermore, the use of DTMRI for validation of in vivo MRI presents a novel benchmark procedure for studies which aim to substantiate their modeling and simulation methods using coarsely-sliced cardiac data. In addition, the paper outlines a suggested original procedure for deriving image-based ventricular models using the CardioViz3D software. [Copyright &y& Elsevier]

Details

Language :
English
ISSN :
01692607
Volume :
113
Issue :
2
Database :
Academic Search Index
Journal :
Computer Methods & Programs in Biomedicine
Publication Type :
Academic Journal
Accession number :
94023370
Full Text :
https://doi.org/10.1016/j.cmpb.2013.11.013