• DocumentCode
    1183948
  • Title

    Validation of nonrigid image registration using finite-element methods: application to breast MR images

  • Author

    Schnabel, Julia A. ; Tanner, Christine ; Castellano-Smith, Andy D. ; Degenhard, Andreas ; Leach, Martin O. ; Hose, D. Rodney ; Hill, Derek L G ; Hawkes, David J.

  • Author_Institution
    Comput. Imaging Sci. Group, King´´s Coll. London, UK
  • Volume
    22
  • Issue
    2
  • fYear
    2003
  • Firstpage
    238
  • Lastpage
    247
  • Abstract
    Presents a novel method for validation of nonrigid medical image registration. This method is based on the simulation of physically plausible, biomechanical tissue deformations using finite-element methods. Applying a range of displacements to finite-element models of different patient anatomies generates model solutions which simulate gold standard deformations. From these solutions, deformed images are generated with a range of deformations typical of those likely to occur in vivo. The registration accuracy with respect to the finite-element simulations is quantified by co-registering the deformed images with the original images and comparing the recovered voxel displacements with the biomechanically simulated ones. The functionality of the validation method is demonstrated for a previously described nonrigid image registration technique based on free-form deformations using B-splines and normalized mutual information as a voxel similarity measure, with an application to contrast-enhanced magnetic resonance mammography image pairs. The exemplar nonrigid registration technique is shown to be of subvoxel accuracy on average for this particular application. The validation method presented here is an important step toward more generic simulations of biomechanically plausible tissue deformations and quantification of tissue motion recovery using nonrigid image registration. It will provide a basis for improving and comparing different nonrigid registration techniques for a diversity of medical applications, such as intrasubject tissue deformation or motion correction in the brain, liver or heart.
  • Keywords
    biological organs; biological tissues; biomechanics; biomedical MRI; finite element analysis; image registration; mammography; medical image processing; physiological models; B-splines; biomechanical tissue deformations; brain; breast MR images; contrast-enhanced magnetic resonance mammography image pairs; deformed image co-registration; displacements; finite-element methods; free-form deformations; generic simulations; gold standard deformations; heart; intrasubject tissue deformation; liver; model solutions; motion correction; nonrigid medical image registration; normalized mutual information; patient anatomies; registration accuracy; simulation; subvoxel accuracy; voxel displacements; voxel similarity measure; Anatomy; Biomedical imaging; Breast; Deformable models; Finite element methods; Gold; Image generation; Image registration; In vivo; Medical simulation; Artifacts; Breast; Breast Neoplasms; Echo-Planar Imaging; Female; Finite Element Analysis; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Motion; Quality Control; Reproducibility of Results; Sensitivity and Specificity; Subtraction Technique;
  • fLanguage
    English
  • Journal_Title
    Medical Imaging, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0278-0062
  • Type

    jour

  • DOI
    10.1109/TMI.2002.808367
  • Filename
    1194634