DocumentCode
764005
Title
A hybrid attenuation correction technique to compensate for lung density in 3-D total body PET
Author
Tai, Y.C. ; Lin, K.P. ; Dahlbom, M. ; Hoffman, E.J.
Author_Institution
Dept. of Radiol. Sci., California Univ., Los Angeles, CA, USA
Volume
43
Issue
1
fYear
1996
fDate
2/1/1996 12:00:00 AM
Firstpage
323
Lastpage
330
Abstract
A hybrid attenuation correction technique (ACT) is under development for 18F-FDG total body positron emission tomography (PET). With a short transmission scan of the thorax, any time within a few days of the imaging session, this technique can correct for attenuation in the entire body. Segmentation, registration, and active contour finding techniques are applied to both emission and short transmission images to locate and map the major attenuating structures in the body. This technique eliminates the need for the patient to remain still from the start of the transmission scan to the end of the emission scan without the added noise of simultaneous or post emission transmission scan measurements. The results of volunteer studies are comparable to standard measured ACT, both visually and quantitatively. The efficient use of scanner time and improved patient comfort make this technique particularly suitable for clinical imaging
Keywords
biomedical imaging; image registration; image segmentation; lung; medical image processing; positron emission tomography; 3D total body PET; 18F-FDG total body PET; active contour finding techniques; attenuating structures; clinical imaging; emission images; hybrid ACT; hybrid attenuation correction technique; lung density compensation; patient; positron emission tomography; registration; segmentation; short transmission scan; thorax; transmission images; Active contours; Attenuation; Biomedical imaging; Distortion measurement; Image segmentation; Lungs; Measurement standards; Positron emission tomography; Thorax; Time measurement;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/23.485973
Filename
485973
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