• DocumentCode
    48551
  • Title

    3D Strain Assessment in Ultrasound (Straus): A Synthetic Comparison of Five Tracking Methodologies

  • Author

    De Craene, Mathieu ; Marchesseau, S. ; Heyde, Brecht ; Gao, Huijun ; Alessandrini, M. ; Bernard, O. ; Piella, Gemma ; Porras, Antonio R. ; Tautz, L. ; Hennemuth, A. ; Prakosa, A. ; Liebgott, H. ; Somphone, O. ; Allain, Pascal ; Makram Ebeid, S. ; Delinget

  • Author_Institution
    Philips Res., Medisys, Suresnes, France
  • Volume
    32
  • Issue
    9
  • fYear
    2013
  • fDate
    Sept. 2013
  • Firstpage
    1632
  • Lastpage
    1646
  • Abstract
    This paper evaluates five 3D ultrasound tracking algorithms regarding their ability to quantify abnormal deformation in timing or amplitude. A synthetic database of B-mode image sequences modeling healthy, ischemic and dyssynchrony cases was generated for that purpose. This database is made publicly available to the community. It combines recent advances in electromechanical and ultrasound modeling. For modeling heart mechanics, the Bestel-Clement-Sorine electromechanical model was applied to a realistic geometry. For ultrasound modeling, we applied a fast simulation technique to produce realistic images on a set of scatterers moving according to the electromechanical simulation result. Tracking and strain accuracies were computed and compared for all evaluated algorithms. For tracking, all methods were estimating myocardial displacements with an error below 1 mm on the ischemic sequences. The introduction of a dilated geometry was found to have a significant impact on accuracy. Regarding strain, all methods were able to recover timing differences between segments, as well as low strain values. On all cases, radial strain was found to have a low accuracy in comparison to longitudinal and circumferential components.
  • Keywords
    biomechanics; biomedical ultrasonics; cardiology; deformation; electromechanical effects; geometry; image motion analysis; medical image processing; 3D strain assessment; 3D ultrasound tracking algorithm; B-mode image sequence; Bestel-Clement-Sorine electromechanical model; circumferential component; deformation; dyssynchrony sequence; heart mechanics; ischemic sequence; longitudinal component; motion accuracy; myocardial displacement; realistic geometry; Imaging; Myocardium; Speckle; Strain; Three-dimensional displays; Tracking; Ultrasonic imaging; Biomechanical modeling; heart; three-dimensional (3D) ultrasound; tracking; validation; Algorithms; Biomechanical Phenomena; Computer Simulation; Echocardiography, Three-Dimensional; Heart; Humans; Models, Cardiovascular; Myocardial Ischemia; Myocardium; Reproducibility of Results;
  • fLanguage
    English
  • Journal_Title
    Medical Imaging, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0278-0062
  • Type

    jour

  • DOI
    10.1109/TMI.2013.2261823
  • Filename
    6514046