Physica Medica: European Journal of Medical Physics
Volume 21, Supplement 1 , Pages 39-43, 2006

MRI/PET nonrigid breast-image registration using skin fiducial markers

  • Andrezej Krol

      Affiliations

    • Department of Radiology, SUNY Upstate Medical University, USA
    • Department of Electical Engineering and Computer Science, Syracuse University, USA
    • Department of Physics Syracuse University, USA
    • Corresponding Author InformationAddress for correspondence: Andrzej Krol, Ph. D., Associate Professor of Radiology, SUNY Upstate Medical University, Department of Radiology, 750 E. Adams St., Syracuse, NY 13210, Tel.: (315) 464-7054, Fax: (315) 464-7068.
  • ,
  • Mehmet Z. Unlu

      Affiliations

    • Department of Electical Engineering and Computer Science, Syracuse University, USA
  • ,
  • Karl G. Baum

      Affiliations

    • Department of Electical Engineering and Computer Science, Syracuse University, USA
  • ,
  • James A. Mandel

      Affiliations

    • Department of Civil and Environmental Engineering, Syracuse University, USA
  • ,
  • Wei Lee

      Affiliations

    • Department of Radiology, SUNY Upstate Medical University, USA
  • ,
  • Ioana L. Coman

      Affiliations

    • Department of Mathematics and Computer Science, Ithaca College, USA
    • Department of Radiology, SUNY Upstate Medical University, USA
    • Department of Electical Engineering and Computer Science, Syracuse University, USA
  • ,
  • Edward D. Lipson

      Affiliations

    • Department of Physics Syracuse University, USA
    • Department of Radiology, SUNY Upstate Medical University, USA
    • Department of Electical Engineering and Computer Science, Syracuse University, USA
  • ,
  • David H. Feiglin

      Affiliations

    • Department of Radiology, SUNY Upstate Medical University, USA

Abstract 

We propose a finite-element method (FEM) deformable breast model that does not require elastic breast data for nonrigid PET/MRI breast image registration. The model is applicable only if the stress conditions in the imaged breast are virtually the same in PET and MRI. Under these conditions, the observed intermodality displacements are solely due the imaging/reconstruction process. Similar stress conditions are assured by use of an MRI breast-antenna replica for breast support during PET, and use of the same positioning. The tetrahedral volume and triangular surface elements are used to construct the FEM mesh from the MRI image. Our model requires a number of fiducial skin markers (FSM) visible in PET and MRI. The displacement vectors of FSMs are measured followed by the dense displacement field estimation by first distributing the displacement, vectors linearly over the breast surface and then distributing them throughout the volume. Finally, the floating MRI image is warped to a fixed PET image, by using an appropriate shape function in the interpolation from mesh nodes to voxels. We tested our model on an elastic breast phantom with simulated internal lesions and on a small number of patients imaged, with FMS using PET and MRI. Using simulated lesions (in phantom) and real lesions (in patients) visible in both PET and MRI, we established that the target registration error (TRE) is below two pet voxels.

Nonrigid breast image registration, Deformable FEM breast model

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PII: S1120-1797(06)80022-0

doi:10.1016/S1120-1797(06)80022-0

Physica Medica: European Journal of Medical Physics
Volume 21, Supplement 1 , Pages 39-43, 2006