DocumentCode :
1123536
Title :
Gap Filling Strategies for 3-D-FBP Reconstructions of High-Resolution Research Tomograph Scans
Author :
Van Velden, Floris H P ; Kloet, Reina W. ; van Berckel, Bart N.M. ; Molthoff, Carla F.M. ; Lammertsma, Adriaan A. ; Boellaard, Ronald
Author_Institution :
Dept. of Nucl. Med. & PET Res., VU Univ. Med. Center, Amsterdam
Volume :
27
Issue :
7
fYear :
2008
fDate :
7/1/2008 12:00:00 AM
Firstpage :
934
Lastpage :
942
Abstract :
The high-resolution research tomograph (HRRT) is a dedicated human brain positron emission tomography scanner. Currently available iterative reconstruction algorithms show bias due to nonnegativity constraints. Consequently, implementation of 3-D filtered backprojection (3-D-FBP) is of interest. To apply 3-D-FBP all missing data including those due to gaps between detector heads need to be estimated. The aim of this study was to evaluate various gap filling strategies for 3-D-FBP reconstructions of HRRT data, such as linear and bilinear interpolation or constraint Fourier space gap filling (confosp). Furthermore, missing planes were estimated using segment 0 image data only (noniterative) or by using reconstructed images based on all previous segments (iterative method). Use of bilinear interpolation showed worst correspondence between reconstructed and true activity concentration, especially for small structures. Moreover, phantom data indicated that use of linear interpolation resulted in artifacts in planes located near the edge of the field-of-view. Use of confosp did not show these artifacts. Iterative estimations of the missing planes for |segments| > 0 improved image quality at the cost of more computation time. Therefore, use of confosp for filling sinogram gaps with both iterative and noniterative estimation of missing planes are recommended for quantitative 3-D-FBP of HRRT studies.
Keywords :
brain; image reconstruction; image resolution; interpolation; iterative methods; medical image processing; organic compounds; phantoms; positron emission tomography; 3-D filtered backprojection reconstructions; all missing data estimation; bilinear interpolation; computation time; constraint Fourier space gap filling; filling sinogram gaps; gap filling strategies; high-resolution research tomograph scans; human brain positron emission tomography scanner; image quality; iterative reconstruction algorithms; linear interpolation; missing planes correction strategies; noniterative estimation; phantom data; Detectors; Filling; Head; Humans; Image reconstruction; Image segmentation; Interpolation; Iterative methods; Positron emission tomography; Reconstruction algorithms; HRRT; High-Resolution Research Tomograph (HRRT); Image reconstruction; Missing data estimation; Positron emission tomography; image reconstruction; missing data estimation; positron emission tomography; Algorithms; Artifacts; Brain; Feedback; Fourier Analysis; Humans; Imaging, Three-Dimensional; Positron-Emission Tomography; Predictive Value of Tests; Reference Values; Regression Analysis; Signal Processing, Computer-Assisted;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2008.922702
Filename :
4483776
Link To Document :
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