Title :
3D image reconstruction for a Compton SPECT camera model
Author :
Sauve, Anne C. ; Hero, Alfred O. ; Rogers, W. Leslie ; Wilderman, Scott J. ; Clinthorne, Neal H.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Michigan Univ., Ann Arbor, MI, USA
Abstract :
Proposes a 3D image reconstruction algorithm for a 3D Compton camera being developed at the University of Michigan. The authors present a mathematical model of the transition matrix of the camera which exploits symmetries by using an adapted spatial sampling pattern in the object domain. For each projection angle, the sampling pattern is uniform over a set of equispaced nested hemispheres. By using this sampling pattern the system matrix is reduced to a product of a (approximately) block circulant matrix and a sparse interpolation matrix. This representation reduces the very high storage and computation requirement inherent to 3D reconstruction using transition matrix inversion methods. The authors geometrically optimize their hemispherical sampling and propose a 3D volumetric interpolation. Finally, the authors present a 3D image reconstruction method which uses the Gauss-Seidel algorithm to minimize a penalized least square objective.
Keywords :
Compton effect; cameras; image reconstruction; interpolation; matrix inversion; medical image processing; modelling; single photon emission computed tomography; 3D image reconstruction; 3D volumetric interpolation; Compton SPECT camera model; Gauss-Seidel algorithm; University of Michigan; camera transition matrix mathematical model; geometrical optimization; hemispherical sampling; medical diagnostic imaging; nuclear medicine; penalized least square objective minimization; transition matrix inversion methods; Cameras; Gaussian processes; Image reconstruction; Image sampling; Interpolation; Least squares approximation; Least squares methods; Mathematical model; Sampling methods; Sparse matrices;
Journal_Title :
Nuclear Science, IEEE Transactions on