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June 1, 1995Radiology251 citationsOpen Access

Three-dimensional myocardial deformations: calculation with displacement field fitting to tagged MR images.

WOWalter G. O’DellCMCorey C. MooreWHWilliam C. Hunter

Key Points

  • This research aims to reconstruct three-dimensional myocardial deformations using tagged MR images.
  • Utilized displacement field fitting with data from orthogonal parallel-tagged MR images

Structured PICO

Does displacement field fitting to tagged MR images accurately reconstruct 3D myocardial deformations in healthy volunteers and computer models?

P
Population
10 healthy human volunteers and computer-generated models of the deformed left ventricle
I
Intervention
Three-dimensional (3D) myocardial deformation reconstruction using displacement field fitting to orthogonal sets of parallel-tagged MR images
C
Comparator
Observed one-dimensional displacements (for human subjects) and known deformations (for computer models)
O
Outcome
Error between estimated and observed displacements (3D tracking error for models, 1D displacement error for human subjects)surrogate

Displacement field fitting to parallel-tagged MR images accurately reconstructs 3D myocardial deformations, providing a valuable tool for cardiac mechanics research and clinical assessment.

Abstract

PURPOSE: To reconstruct three-dimensional (3D) myocardial deformations from orthogonal sets of parallel-tagged magnetic resonance (MR) images. MATERIALS AND METHODS: Displacement information in the direction normal to the undeformed tag planes was obtained at points along tag lines. Three independent sets of one-dimensional displacement data were used to fit an analytical series expression to describe 3D displacement as a function of deformed position. The technique was demonstrated with computer-generated models of the deformed left ventricle with data from healthy human volunteers. RESULTS: Model deformations were reconstructed with a 3D tracking error of less than 0.3 mm. Error between estimated and observed one-dimensional displacements along the tags in 10 human subjects was 0.00 mm +/- 0.36 (mean +/- standard deviation). Robustness to noise in the tag displacement data was demonstrated by using a Monte Carlo simulation. CONCLUSION: The combination of rapidly acquired parallel-tagged MR images and field-fitting analysis is a valuable tool in cardiac mechanics research and in the clinical assessment of cardiac mechanical function.

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Cite This Study

O’Dell et al. (1995) studied this question.

synapsesocial.com/papers/6a087e0fab15ea61dee8e1dfhttps://doi.org/10.1148/radiology.195.3.7754016
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