• DocumentCode
    3685395
  • Title

    Scatterer reconstruction and parametrization of homogeneous tissue for ultrasound image simulation

  • Author

    Oliver Mattausch;Orcun Goksel

  • Author_Institution
    Computer-assisted Applications in Medicine Group, Computer Vision Lab, ETH Zurich, Switzerland
  • fYear
    2015
  • Firstpage
    6350
  • Lastpage
    6353
  • Abstract
    Numerical simulation of ultrasound images can facilitate the training of sonographers. A realistic appearance of simulated ultrasonic speckle is essential for a plausible ultrasound simulation. An efficient and realistic model for ultrasonic speckle is the convolution of the ultrasound point-spread function with a parametrized distribution of point scatterers. Nevertheless, for a given arbitrary tissue, such scatterer distributions that would generate a realistic image are not known a priori, and currently there is no principled method to extract such scatterer patterns for given target tissues to be simulated. In this paper we propose to solve the inverse problem, in which an underlying scatterer map for a given sample ultrasound image is estimated. From such scatterer maps, it is also shown that a parametrization distribution model can be built, using which other instances of the same tissue can be simulated by feeding into a standard speckle generation method. This enables us to synthesize images of different tissue types from actual ultrasound images to be used in simulations with arbitrary view angles and transducer settings. We show in numerical and physical tissue-mimicking phantoms and actual physical tissue that the appearance of the synthesized images closely match the real images.
  • Keywords
    "Ultrasonic imaging","Speckle","Image reconstruction","Image resolution","Convolution","Imaging","Computational modeling"
  • Publisher
    ieee
  • Conference_Titel
    Engineering in Medicine and Biology Society (EMBC), 2015 37th Annual International Conference of the IEEE
  • ISSN
    1094-687X
  • Electronic_ISBN
    1558-4615
  • Type

    conf

  • DOI
    10.1109/EMBC.2015.7319845
  • Filename
    7319845