On Finite Difference Jacobian Computation in Deformable Image Registration

Abstract

Producing spatial transformations that are diffeomorphic has been a central problem in deformable image registration. As a diffeomorphic transformation should have positive Jacobian determinant ∣J∣|J| everywhere, the number of voxels with ∣J∣<0|J|<0 has been used to test for diffeomorphism and also to measure the irregularity of the transformation. For digital transformations, ∣J∣|J| is commonly approximated using central difference, but this strategy can yield positive ∣J∣|J|'s for transformations that are clearly not diffeomorphic -- even at the voxel resolution level. To show this, we first investigate the geometric meaning of different finite difference approximations of ∣J∣|J|. We show that to determine diffeomorphism for digital images, use of any individual finite difference approximations of ∣J∣|J| is insufficient. We show that for a 2D transformation, four unique finite difference approximations of ∣J∣|J|'s must be positive to ensure the entire domain is invertible and free of folding at the pixel level. We also show that in 3D, ten unique finite differences approximations of ∣J∣|J|'s are required to be positive. Our proposed digital diffeomorphism criteria solves several errors inherent in the central difference approximation of ∣J∣|J| and accurately detects non-diffeomorphic digital transformations

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