DocumentCode :
1216825
Title :
Quantitative cardiac SPECT reconstruction with reduced image degradation due to patient anatomy
Author :
Tsui, B.M.W. ; Zhao, X.D. ; Gregoriou, G.K. ; Lalush, D.S. ; Frey, E.C. ; Johnston, R.E. ; McCartney, W.H.
Author_Institution :
Dept. of Biomed. Eng., North Carolina Univ., Chapel Hill, NC, USA
Volume :
41
Issue :
6
fYear :
1994
Firstpage :
2838
Lastpage :
2844
Abstract :
Patient anatomy has complicated effects on cardiac SPECT images. The authors investigated reconstruction methods which substantially reduced these effects for improved image quality. A 3D mathematical cardiac-torso (MCAT) phantom which models the anatomical structures in the thorax region were used in the study. The phantom was modified to simulate variations in patient anatomy including regions of natural thinning along the myocardium, body size, diaphragmatic shape, gender, and size and shape of breasts for female patients. Distributions of attenuation coefficients and Tl-201 uptake in different organs in a normal patient were also simulated. Emission projection data were generated from the phantoms including effects of attenuation and detector response. The authors have observed the attenuation-induced artifacts caused by patient anatomy in the conventional FBP reconstructed images. Accurate attenuation compensation using iterative reconstruction algorithms and attenuation maps substantially reduced the image artifacts and improved quantitative accuracy. The authors conclude that reconstruction methods which accurately compensate for nonuniform attenuation can substantially reduce image degradation caused by variations in patient anatomy in cardiac SPECT.<>
Keywords :
image reconstruction; medical image processing; single photon emission computed tomography; 3D mathematical cardiac-torso phantom; Tl; Tl-201 uptake; attenuation coefficients distributions; breasts; emission projection data; female patients; medical diagnostic imaging; natural thinning regions; nuclear medicine; organs; patient anatomy; quantitative cardiac SPECT reconstruction; reduced image degradation; Anatomical structure; Anatomy; Attenuation; Image quality; Image reconstruction; Imaging phantoms; Mathematical model; Reconstruction algorithms; Shape; Thorax;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/23.340655
Filename :
340655
Link To Document :
بازگشت