• DocumentCode
    1298484
  • Title

    Predicting Target Displacements Using Ultrasound Elastography and Finite Element Modeling

  • Author

    op den Buijs, Jorn ; Hansen, Hendrik H G ; Lopata, Richard G P ; De Korte, Chris L. ; Misra, Sarthak

  • Author_Institution
    Control Eng. Group, Univ. of Twente, Enschede, Netherlands
  • Volume
    58
  • Issue
    11
  • fYear
    2011
  • Firstpage
    3143
  • Lastpage
    3155
  • Abstract
    Soft tissue displacements during minimally invasive surgical procedures may cause target motion and subsequent misplacement of the surgical tool. A technique is presented to predict target displacements using a combination of ultrasound elastography and finite element (FE) modeling. A cubic gelatin/agar phantom with stiff targets was manufactured to obtain pre- and post-loading ultrasound radio frequency (RF) data from a linear array transducer. The RF data were used to compute displacement and strain images, from which the distribution of elasticity was reconstructed using an inverse FE-based approach. The FE model was subsequently used to predict target displacements upon application of different boundary and loading conditions to the phantom. The influence of geometry was investigated by application of the technique to a breast-shaped phantom. The distribution of elasticity in the phantoms as determined from the strain distribution agreed well with results from mechanical testing. Upon application of different boundary and loading conditions to the cubic phantom, the FE model-predicted target motion were consistent with ultrasound measurements. The FE-based approach could also accurately predict the displacement of the target upon compression and indentation of the breast-shaped phantom. This study provides experimental evidence that organ geometry and boundary conditions surrounding the organ are important factors influencing target motion. In future work, the technique presented in this paper could be used for preoperative planning of minimally invasive surgical interventions.
  • Keywords
    biological organs; biological tissues; biomechanics; biomedical transducers; biomedical ultrasonics; cellular biophysics; elasticity; finite element analysis; gelatin; gynaecology; image reconstruction; medical image processing; phantoms; surgery; boundary conditions; breast-shaped phantom; cubic gelatin-agar phantom; elasticity distribution; finite element modeling; indentation; linear array transducer; mechanical testing; minimally invasive surgical interventions; minimally invasive surgical procedures; organ geometry; post-loading ultrasound radio frequency data; predicting target displacements; preloading ultrasound radio frequency data; soft tissue displacements; strain distribution; strain imaging; surgical tool; target motion; ultrasound elastography; ultrasound measurements; Breast; Loading; Materials; Phantoms; Strain; Transducers; Ultrasonic imaging; Computer-assisted surgery; elastography; finite element analysis; minimally invasive surgery; preoperative planning; strain; ultrasound; Elasticity Imaging Techniques; Female; Finite Element Analysis; Humans; Models, Biological; Movement; Phantoms, Imaging; Stress, Mechanical; Surgery, Computer-Assisted; Ultrasonography, Mammary;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2011.2164917
  • Filename
    5985489