DocumentCode
985237
Title
Incorporation of system resolution compensation (RC) in the ordered-subset transmission (OSTR) algorithm for transmission imaging in SPECT
Author
Feng, Bing ; Fessler, Jeffrey A. ; King, Michael A.
Author_Institution
Univ. of Massachusetts Med. Sch., Worcester, MA
Volume
25
Issue
7
fYear
2006
fDate
7/1/2006 12:00:00 AM
Firstpage
941
Lastpage
949
Abstract
In order to reconstruct attenuation maps with improved spatial resolution and quantitative accuracy, we developed an approximate method of incorporating system resolution compensation (RC) in the ordered-subset transmission (OSTR) algorithm for transmission reconstruction. Our method approximately models the blur caused by the finite intrinsic detector resolution, the nonideal source collimation and detector collimation. We derived the formulation using the optimization transfer principle as in the derivation of the OSTR algorithm. The formulation includes one forward-blur step and one back-blur step, which do not severely slow down reconstruction. The formulation could be applicable to various transmission geometries, such as point-source, line-source, and sheet-source systems. Through computer simulations of the MCAT phantom and transmission measurements of the air-filled Data Spectrum Deluxe single photo emission computed tomography (SPECT) Phantom on a system which employed a cone-beam geometry and a system which employed a scanning-line-source geometry, we showed that incorporation of RC increased spatial resolution and improved the quantitative accuracy of reconstruction. In simulation studies, attenuation maps reconstructed with RC correction improved the quantitative accuracy of emission reconstruction
Keywords
image reconstruction; image resolution; medical image processing; optimisation; phantoms; single photon emission computed tomography; SPECT; air-filled Data Spectrum Deluxe single photo emission computed tomography phantom; attenuation map reconstruction; back-blur step; cone-beam geometry; detector collimation; finite intrinsic detector resolution; forward-blur step; line-source system; nonideal source collimation; optimization transfer principle; ordered-subset transmission; point-source system; quantitative accuracy; scanning-line-source geometry; sheet-source system; spatial resolution; system resolution compensation; transmission reconstruction; Attenuation; Collimators; Computational geometry; Computed tomography; Computer simulation; Detectors; Image reconstruction; Image resolution; Imaging phantoms; Spatial resolution; Ordered-subset transmission (OSTR); resolution compensation; transmission imaging;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/TMI.2006.876151
Filename
1644809
Link To Document