• DocumentCode
    1833309
  • Title

    Extension of the 4D NCAT phantom to dynamic X-ray CT simulation

  • Author

    Segars, W. Paul ; Tsui, Benjamin M W ; Frey, E.C. ; Fishman, E.K.

  • Author_Institution
    Johns Hopkins Univ., Baltimore, MD, USA
  • Volume
    5
  • fYear
    2003
  • fDate
    19-25 Oct. 2003
  • Firstpage
    3195
  • Abstract
    The 4D NCAT phantom, developed to provide a realistic model of the human anatomy and physiology, is widely used in SPECT imaging research, but lacks anatomical details for application to high-resolution imaging such as X-ray CT and MRI. At the same time, current phantoms used in these areas lack the sufficient realism and flexibility to depict the complex shapes of real human organs and the deformations of those shapes due to anatomical variation and normal physiologic motion. We seek to fill that void by building upon the existing 4D NCAT phantom. Tissues distinguishable in X-ray CT imaging, including small details such as the pulmonary artery tree in the lungs and vasculature in the organs and body, were modeled based on segmented visible human CT data and high-resolution multi-slice spiral CT (MSCT) data. The models were created using a combination of NURBS and subdivision (SD) surfaces. The anatomy was extended to include structures in the head and abdomen for brain and prostate imaging applications. To efficiently simulate high-resolution X-ray CT images, we developed a new analytic projection algorithm to accurately calculate the projections (parallel, fan, or cone-beam geometries) directly from the surface definition of the phantom without using voxelization. The projection data were reconstructed using algorithms developed in our laboratory for fan- and cone-beam reconstruction of X-ray CT projection images. We conclude that the new 4D NCAT with its enhanced anatomy and physiology will provide an important tool in high-resolution imaging research.
  • Keywords
    biomechanics; brain; computerised tomography; deformation; image reconstruction; image resolution; lung; medical image processing; phantoms; physiological models; 4D NCAT phantom; abdomen; analytic projection algorithm; anatomical variation; brain; data reconstruction; deformations; dynamic X-ray CT simulation; head; high-resolution imaging; high-resolution multislice spiral CT; human organs; lungs; normal physiologic motion; prostate; pulmonary artery tree; segmented visible human CT data; tissues; Biological system modeling; Computed tomography; High-resolution imaging; Humans; Imaging phantoms; Optical imaging; Physiology; Shape; Surface reconstruction; X-ray imaging;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nuclear Science Symposium Conference Record, 2003 IEEE
  • ISSN
    1082-3654
  • Print_ISBN
    0-7803-8257-9
  • Type

    conf

  • DOI
    10.1109/NSSMIC.2003.1352577
  • Filename
    1352577