| Literature DB >> 33354175 |
Hossein Rajabi1, Hadi Taleshi Ahangari2, Iraj Mohammadi3,4, Alireza Mohammadkarim2, Mohammad Ali Tajik-Mansoury2.
Abstract
Single photon emission tomography is widely used to detect photons emitted from the patient. Some of these emitted photons suffer from scattering and absorption because of the attenuation occurred through their path in patient's body. Therefore, the attenuation is the most important problem in single-photon emission computed tomography (SPECT) imaging. Some of the radioisotopes emit gamma rays in different energy levels, and consequently, they have different counts and attenuation coefficients. Calculation of the parameters used in the attenuation equation N out=αNin = e- μ l Nin by mathematical methods is useful for the attenuation correction. Nurbs-based cardiac-torso (NCAT) phantom with an adequate attenuation coefficient and activity distribution is used in this study. Simulations were done using SimSET in 20-70 and 20-167 keV. A total of 128 projections were acquired over 360°. The corrected and reference images were compared using a universal image quality index (UIQI). The simulation repeated using NCAT phantom by SimSET. In the first group, no attenuation correction was used, but the Zubal coefficients were used for attenuation correction in the second image group. After the image reconstruction, a comparison between image groups was done using optimized UIQI to determine the quality of used reconstruction methods. Similarities of images were investigated by considering the average sinogram for every block size. The results showed that the proposed method improved the image quality. This study showed that simulation studies are useful tools in the investigation of nuclear medicine researches. We produced a nonattenuated model using Monte Carlo simulation method and compared it with an attenuated model. The proposed reconstruction method improved image resolution and contrast. Regional and general similarities of images could be determined, respectively, from acquired UIQI of small and large block sizes. Resulted curves from both small and large block sizes showed a good similarity between reconstructed and ideal images. Copyright:Entities:
Keywords: Attenuation correction; SimSET; nurbs-based cardiac-torso phantom; single photon emission computed tomography; universal image quality index
Year: 2020 PMID: 33354175 PMCID: PMC7745872 DOI: 10.4103/wjnm.WJNM_55_19
Source DB: PubMed Journal: World J Nucl Med ISSN: 1450-1147
Figure 1Imaging; the anterior and posterior views of the patient
Figure 2Imaging; thickness of the organ in the anterior and posterior views
Figure 3Some reconstructed slices of Tl-201 myocardial perfusion scan without photon attenuation
Figure 4Some reconstructed slices of Tl-201 myocardial perfusion scan with photon attenuation, without attenuation correction
Figure 5Some reconstructed slices of Tl-201 myocardial perfusion scan with photon attenuation, with attenuation correction using the proposed method
Figure 6The similarity of the reconstructed slices of Tl-201 myocardial perfusion scan between images without photon attenuation and with photon attenuation without attenuation correction
Figure 7Similarity of the reconstructed slices of Tl-201 myocardial perfusion scan between images without photon attenuation and with photon attenuation with attenuation correction using the proposed method