• DocumentCode
    104975
  • Title

    Three-Dimensional Sheaf of Ultrasound Planes Reconstruction (SOUPR) of Ablated Volumes

  • Author

    Ingle, Atul ; Varghese, Tomy

  • Author_Institution
    Depts. of Electr. & Comput. Eng. & Med. Phys., Univ. of Wisconsin-Madison, Madison, WI, USA
  • Volume
    33
  • Issue
    8
  • fYear
    2014
  • fDate
    Aug. 2014
  • Firstpage
    1677
  • Lastpage
    1688
  • Abstract
    This paper presents an algorithm for 3-D reconstruction of tumor ablations using ultrasound shear wave imaging with electrode vibration elastography. Radio-frequency ultrasound data frames are acquired over imaging planes that form a subset of a sheaf of planes sharing a common axis of intersection. Shear wave velocity is estimated separately on each imaging plane using a piecewise linear function fitting technique with a fast optimization routine. An interpolation algorithm then computes velocity maps on a fine grid over a set of C-planes that are perpendicular to the axis of the sheaf. A full 3-D rendering of the ablation can then be created from this stack of C-planes; hence the name “Sheaf Of Ultrasound Planes Reconstruction” or SOUPR. The algorithm is evaluated through numerical simulations and also using data acquired from a tissue mimicking phantom. Reconstruction quality is gauged using contrast and contrast-to-noise ratio measurements and changes in quality from using increasing number of planes in the sheaf are quantified. The highest contrast of 5 dB is seen between the stiffest and softest regions of the phantom. Under certain idealizing assumptions on the true shape of the ablation, good reconstruction quality while maintaining fast processing rate can be obtained with as few as six imaging planes suggesting that the method is suited for parsimonious data acquisitions with very few sparsely chosen imaging planes.
  • Keywords
    biomedical electrodes; biomedical ultrasonics; data acquisition; image reconstruction; interpolation; medical image processing; optimisation; phantoms; piecewise linear techniques; rendering (computer graphics); tumours; ultrasonic waves; velocity measurement; 3D reconstruction algorithm; 3D rendering; C-planes; SOUPR; ablated volumes; contrast-to-noise ratio measurements; electrode vibration elastography; fast optimization routine; fast processing rate; gauged reconstruction quality; interpolation algorithm; numerical simulations; parsimonious data acquisitions; piecewise linear function fitting technique; radiofrequency ultrasound data frames; shear wave velocity estimation; three-dimensional sheaf-of-ultrasound plane reconstruction; tissue mimicking phantom; tumor ablations; ultrasound shear wave imaging; velocity map computation; Image reconstruction; Needles; Phantoms; Three-dimensional displays; Tumors; Ultrasonic imaging; Ablation; electrode vibration; sheaf; shear stiffness; shear wave elastography; three-dimensional (3-D) reconstruction; ultrasound;
  • fLanguage
    English
  • Journal_Title
    Medical Imaging, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0278-0062
  • Type

    jour

  • DOI
    10.1109/TMI.2014.2321285
  • Filename
    6809994