• DocumentCode
    1148922
  • Title

    Shear modulus estimation using parallelized partial volumetric reconstruction

  • Author

    Doyley, Marvin M. ; Van Houten, Elijah E. ; Weaver, John B. ; Poplack, Steven ; Duncan, Laura ; Kennedy, Francis ; Paulsen, Keith D.

  • Author_Institution
    Dept. of Radiol., Dartmouth-Hitchcock Med. Center, Lebanon, NH, USA
  • Volume
    23
  • Issue
    11
  • fYear
    2004
  • Firstpage
    1404
  • Lastpage
    1416
  • Abstract
    Magnetic resonance elastography can be limited by the computationally intensive nonlinear inversion schemes that are sometimes employed to estimate shear modulus from externally induced internal tissue displacements. Consequently, we have developed a parallelized partial volume reconstruction approach to overcome this limitation. In this paper, we report results from experiments conducted on breast phantoms and human volunteers to validate the proposed technique. More specifically, we demonstrate that computational cost is linearly related to the number of subzones used during image recovery and that both subzone parallelization and partial volume domain reduction decrease execution time accordingly. Importantly, elastograms computed based on the parallelized partial volume technique are not degraded in terms of either image quality or accuracy relative to their full volume counterparts provided that the estimation domain is sufficiently large to negate the effects of boundary conditions. The clinical results presented in this paper are clearly preliminary; however, the parallelized partial volume reconstruction approach performs sufficiently well to warrant more in-depth clinical evaluation.
  • Keywords
    biological organs; biological tissues; biomechanics; biomedical MRI; image reconstruction; medical image processing; shear modulus; breast phantoms; computationally intensive nonlinear inversion schemes; externally induced internal tissue displacements; image recovery; magnetic resonance elastography; parallelized partial volumetric reconstruction; shear modulus; subzone parallelization; Boundary conditions; Breast; Computational efficiency; Concurrent computing; Degradation; Humans; Image quality; Image reconstruction; Imaging phantoms; Magnetic resonance; Breast cancer detection; elasticity imaging; elastography; inverse elasticity problem; magnetic resonance imaging; parallel computing; shear modulus estimation; Breast Neoplasms; Computing Methodologies; Elasticity; Humans; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Magnetic Resonance Imaging; Phantoms, Imaging; Reproducibility of Results; Sensitivity and Specificity; Shear Strength;
  • fLanguage
    English
  • Journal_Title
    Medical Imaging, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0278-0062
  • Type

    jour

  • DOI
    10.1109/TMI.2004.834624
  • Filename
    1350898