Bayesian penalized-likelihood reconstruction algorithm suppresses edge artifacts in PET reconstruction based on point-spread-function

PET images and profile curves of the spheres with diameters of 38 and 27 mm that were reconstructed using 3D-OSEM and BPL. The BPL suppressed edge artifacts and caused central uptake to become flatter than 3D-OSEM. [Display omitted] •We evaluated the effects of suppression on edge artifacts using BP...

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Veröffentlicht in:Physica medica 2018-03, Vol.47, p.73-79
Hauptverfasser: Yamaguchi, Shotaro, Wagatsuma, Kei, Miwa, Kenta, Ishii, Kenji, Inoue, Kazumasa, Fukushi, Masahiro
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Sprache:eng
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Zusammenfassung:PET images and profile curves of the spheres with diameters of 38 and 27 mm that were reconstructed using 3D-OSEM and BPL. The BPL suppressed edge artifacts and caused central uptake to become flatter than 3D-OSEM. [Display omitted] •We evaluated the effects of suppression on edge artifacts using BPL.•BPL suppressed edge artifacts using RDP smoothing.•BPL had good contrast.•Overshoot associated with BPL caused overestimation in small spheres.•Higher penalty parameter in BPL can suppress overshoot. The Bayesian penalized-likelihood reconstruction algorithm (BPL), Q.Clear, uses relative difference penalty as a regularization function to control image noise and the degree of edge-preservation in PET images. The present study aimed to determine the effects of suppression on edge artifacts due to point-spread-function (PSF) correction using a Q.Clear. Spheres of a cylindrical phantom contained a background of 5.3 kBq/mL of [18F]FDG and sphere-to-background ratios (SBR) of 16, 8, 4 and 2. The background also contained water and spheres containing 21.2 kBq/mL of [18F]FDG as non-background. All data were acquired using a Discovery PET/CT 710 and were reconstructed using three-dimensional ordered-subset expectation maximization with time-of-flight (TOF) and PSF correction (3D-OSEM), and Q.Clear with TOF (BPL). We investigated β-values of 200–800 using BPL. The PET images were analyzed using visual assessment and profile curves, edge variability and contrast recovery coefficients were measured. The 38- and 27-mm spheres were surrounded by higher radioactivity concentration when reconstructed with 3D-OSEM as opposed to BPL, which suppressed edge artifacts. Images of 10-mm spheres had sharper overshoot at high SBR and non-background when reconstructed with BPL. Although contrast recovery coefficients of 10-mm spheres in BPL decreased as a function of increasing β, higher penalty parameter decreased the overshoot. BPL is a feasible method for the suppression of edge artifacts of PSF correction, although this depends on SBR and sphere size. Overshoot associated with BPL caused overestimation in small spheres at high SBR. Higher penalty parameter in BPL can suppress overshoot more effectively.
ISSN:1120-1797
1724-191X
DOI:10.1016/j.ejmp.2018.02.013