TY - JOUR
T1 - Validation of nonrigid image registration using finite-element methods
T2 - Application to breast MR images
AU - Schnabel, Julia A.
AU - Tanner, Christine
AU - Castellano-Smith, Andy D.
AU - Degenhard, Andreas
AU - Leach, Martin O.
AU - Hose, D. Rodney
AU - Hill, Derek L.G.
AU - Hawkes, David J.
N1 - Funding Information:
Manuscript received September 12, 2001; revised October 23, 2002. The work on biomechanical tissue modeling using ANSYS was supported by the EPSRC. The work of J. A. Schnabel was supported by EasyVision Advanced Development, Medical Imaging Information Technology (MIMIT), Philips Medical Systems, Best, The Netherlands. The work of C. Tanner was supported by the EPSRC under Grant GR/M52779 and Grant MIAS-IRC. The work of A. D. Castellano-Smith was supported by the EPSRC under Grant GR/M47294. The work of A. Degenhard was supported by the EPSRC under Grant GR/M52762. The Associate Editor responsible for coordinating the review of this paper and recommending its publication was M. Giger. Asterisk indicates corresponding author. *J. A. Schnabel is with the Computational Imaging Sciences Group, Division of Imaging Sciences, Guy’s, King’s and St. Thomas’ School of Medicine, King’s College London, London SE1 9RT, U.K. (e-mail: [email protected]).
PY - 2003/2
Y1 - 2003/2
N2 - This paper 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 non-rigid 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 non-rigid 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 non-rigid registration techniques for a diversity of medical applications.
AB - This paper 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 non-rigid 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 non-rigid 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 non-rigid registration techniques for a diversity of medical applications.
KW - Biomechanics
KW - Breast MR imaging
KW - Finite element methods
KW - Image registration
KW - Validation
UR - https://www.scopus.com/pages/publications/0038398635
U2 - 10.1109/TMI.2002.808367
DO - 10.1109/TMI.2002.808367
M3 - Article
C2 - 12716000
AN - SCOPUS:0038398635
SN - 0278-0062
VL - 22
SP - 238
EP - 247
JO - IEEE Transactions on Medical Imaging
JF - IEEE Transactions on Medical Imaging
IS - 2
ER -