DocumentCode
1137971
Title
Reconstruction From Uniformly Attenuated SPECT Projection Data Using the DBH Method
Author
Huang, Qiu ; You, Jiangsheng ; Zeng, Gengsheng L. ; Gullberg, Grant T.
Author_Institution
Lawrence Berkeley Nat. Lab., Berkeley, CA
Volume
28
Issue
1
fYear
2009
Firstpage
17
Lastpage
29
Abstract
An algorithm was developed for the 2-D reconstruction of truncated and nontruncated uniformly attenuated data acquired from single photon emission computed tomography (SPECT). The algorithm is able to reconstruct data from half-scan (180deg) and short-scan (180deg+fan angle) acquisitions for parallel- and fan-beam geometries, respectively, as well as data from full-scan (360deg) acquisitions. The algorithm is a derivative, backprojection, and Hilbert transform (DBH) method, which involves the backprojection of differentiated projection data followed by an inversion of the finite weighted Hilbert transform. The kernel of the inverse weighted Hilbert transform is solved numerically using matrix inversion. Numerical simulations confirm that the DBH method provides accurate reconstructions from half-scan and short-scan data, even when there is truncation. However, as the attenuation increases, finer data sampling is required.
Keywords
Hilbert transforms; image reconstruction; inverse problems; matrix algebra; medical image processing; single photon emission computed tomography; 2D reconstruction; DBH method; derivative backprojection Hilbert transform method; fan beam geometry; full scan acquisition data reconstruction; half scan acquisition data reconstruction; image reconstruction; inverse weighted Hilbert transform; matrix inversion; parallel beam geometry; short scan acquisition data reconstruction; single photon emission computed tomography; uniformly attenuated SPECT projection data; Algorithm design and analysis; Attenuation; Biomedical imaging; Biomedical measurements; Geometry; Image analysis; Image reconstruction; Iterative algorithms; Reconstruction algorithms; Single photon emission computed tomography; Attenuation; Image reconstruction; SPECT; attenuation; fan-beam; half-scan; image reconstruction; short-scan; single photon emission computed tomography (SPECT); truncation; Artifacts; Data Compression; Fourier Analysis; Phantoms, Imaging; Sample Size; Signal Processing, Computer-Assisted; Tomography, Emission-Computed, Single-Photon;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/TMI.2008.923974
Filename
4494443
Link To Document