DocumentCode :
1108496
Title :
Improved SPECT quantitation using fully three-dimensional iterative spatially variant scatter response compensation
Author :
Beekman, Freek J. ; Kamphuis, Chris ; Viergever, Max A.
Author_Institution :
Dept. of Radiol. & Nuclear. Med., Univ. Hosp. Utrecht, Netherlands
Volume :
15
Issue :
4
fYear :
1996
fDate :
8/1/1996 12:00:00 AM
Firstpage :
491
Lastpage :
499
Abstract :
The quality and quantitative accuracy of iteratively reconstructed SPECT images improves when better point spread function (PSF) models of the gamma camera are used during reconstruction. Here, inclusion in the PSF model of photon crosstalk between different slices caused by limited gamma camera resolution and scatter is examined. A three-dimensional (3-D) projector back-projector (proback) has been developed which models both the distance dependent detector point spread function and the object shape-dependent scatter point spread function of single photon emission computed tomography (SPECT). A table occupying only a few megabytes of memory is sufficient to represent this scatter model. The contents of this table are obtained by evaluating an analytical expression for object shape-dependent scatter. The proposed approach avoids the huge memory requirements of storing the full transition matrix needed for 3-D reconstruction including object shape-dependent scatter. In addition, the method avoids the need for lengthy Monte Carlo simulations to generate such a matrix. In order to assess the quantitative accuracy of the method, reconstructions of a water filled cylinder containing regions of different activity levels and of simulated 3-D brain projection data have been evaluated for technetium-99m. It is shown that fully 3-D reconstruction including complete detector response and object shape-dependent scatter modeling clearly outperforms simpler methods that lack a complete detector response and/or a complete scatter response model. Fully 3-D scatter correction yields the best quantitation of volumes of interest and the best contrast-to-noise curves
Keywords :
image reconstruction; iterative methods; medical image processing; single photon emission computed tomography; Tc; analytical expression; contrast-to-noise curves; full transition matrix; fully 3D iterative spatially variant scatter response compensation; improved SPECT quantitation; lengthy Monte Carlo simulations; limited gamma camera resolution; medical diagnostic imaging; nuclear medicine; simulated 3D brain projection data; technetium-99m; volumes of interest quantitation; water filled cylinder; Brain modeling; Cameras; Crosstalk; Detectors; Electromagnetic scattering; Image reconstruction; Object detection; Particle scattering; Single photon emission computed tomography; Three dimensional displays;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/42.511752
Filename :
511752
Link To Document :
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