Image Optimization in Single Photon Emission Computed Tomography by Hardware Modifications with Monte Carlo Simulation

Introduction: In Single Photon Emission Computed Tomography (SPECT), the projection data used for image reconstruction are distorted by several factors, including attenuation and scattering of gamma rays, collimator structure, data acquisition method, organ motion, and washout of radiopharmaceutical...

Full description

Bibliographic Details
Main Authors: Mohammad Taghi Bahreyni Toossi, Jalil Pirayesh Islamian, Mahdi Momennezhad, Seyed Rasoul Zakavi, Ramin Sadeghi, Lejonberg M
Format: Article
Language:English
Published: Mashhad University of Medical Sciences 2010-06-01
Series:Iranian Journal of Medical Physics
Subjects:
Online Access:http://ijmp.mums.ac.ir/article_7258_7d6c7ce4fc578ff02cff3309cfb02a01.pdf
id doaj-52b55fee82b74a13ae23d94e991088c1
record_format Article
spelling doaj-52b55fee82b74a13ae23d94e991088c12020-11-25T00:03:21ZengMashhad University of Medical SciencesIranian Journal of Medical Physics2345-36722345-36722010-06-017292010.22038/ijmp.2010.72587258Image Optimization in Single Photon Emission Computed Tomography by Hardware Modifications with Monte Carlo SimulationMohammad Taghi Bahreyni Toossi0Jalil Pirayesh Islamian1Mahdi Momennezhad2Seyed Rasoul Zakavi3Ramin Sadeghi4Lejonberg M5Professor, Medical Physics Research Center, Faculty of Medicine, Mashhad University of Medical Sciences, Mashhad, IranAssistant Professor, Medical Physics Dept., Faculty of Medicine, Tabriz University of Medical Sciences, Tabriz, IranAssistant Professor, Nuclear Medicine Dept., Imam Reza Hospital, Mashhad University of Medical Sciences, Mashhad, IranAssociate Professor, Nuclear Medicine Dept., Imam Reza Hospital, Mashhad University of Medical Sciences, Mashhad, IranAssistant Professor, Nuclear Medicine Dept., Imam Reza Hospital, Mashhad University of Medical Sciences, Mashhad, IranProfessor, Medical Radiation Physics Dept., Clinical Sciences-Lund, Lund University, Lund, SwedenIntroduction: In Single Photon Emission Computed Tomography (SPECT), the projection data used for image reconstruction are distorted by several factors, including attenuation and scattering of gamma rays, collimator structure, data acquisition method, organ motion, and washout of radiopharmaceuticals. All these make reconstruction of a quantitative SPECT image very difficult. Simulation of a SPECT system is a convenient method to assess the impact of these factors on the image quality. Materials and Methods: The SIMIND Monte Carlo program was employed to simulate a Siemens E.CAM SPECT system. Verification of the simulation was performed by comparing the performance parameters of the system. The verified system was used for SPECT simulations of homogenous and inhomogeneous voxelized phantoms in conjugation with hardware modifications. The resulting data were compared with those obtained from the simulated system without any modifications. Image quality was assessed by comparing the Structural SIMularity index (SSIM), contrast, and resolution of images. Results: The energy spectra acquired from both simulated and real SPECT systems demonstrated similar energy peak regions. The resulting full-widths-at-half-maximums were 13.92 keV for the simulation and 13.58 keV for experimental data, corresponding to energy resolutions of 9.95% and 9.61%, and with calculated sensitivities of 85.39 and 85.11 cps/MBq, respectively. Better performance parameters were obtained with a hardware-modified system constructed using a 0.944 cm thickness NaI(Tl) crystal covered by a layer of 0.24 cm aluminum, a  slat of 4.5 cm Pyrex as a backscattering medium, and a parallel hole collimator of Pb-Sb alloy with 2.405 cm thickness. Conclusion: The modeling of a Siemens E.CAM SPECT system was performed with the SIMIND Monte Carlo code. Results obtained with the code are in good agreement with experimental results. The findings demonstrate that the proposed hardware modifications in the system appear to be suitable for further improvement of the performance parameters of the system, indicating that future investigations can be conducted on using the system for supplementary studies on image improvement in the field of nuclear medicine.http://ijmp.mums.ac.ir/article_7258_7d6c7ce4fc578ff02cff3309cfb02a01.pdfMonte Carlo SimulationPhantom SPECT Imaging SystemSIMIND Program
collection DOAJ
language English
format Article
sources DOAJ
author Mohammad Taghi Bahreyni Toossi
Jalil Pirayesh Islamian
Mahdi Momennezhad
Seyed Rasoul Zakavi
Ramin Sadeghi
Lejonberg M
spellingShingle Mohammad Taghi Bahreyni Toossi
Jalil Pirayesh Islamian
Mahdi Momennezhad
Seyed Rasoul Zakavi
Ramin Sadeghi
Lejonberg M
Image Optimization in Single Photon Emission Computed Tomography by Hardware Modifications with Monte Carlo Simulation
Iranian Journal of Medical Physics
Monte Carlo Simulation
Phantom SPECT Imaging System
SIMIND Program
author_facet Mohammad Taghi Bahreyni Toossi
Jalil Pirayesh Islamian
Mahdi Momennezhad
Seyed Rasoul Zakavi
Ramin Sadeghi
Lejonberg M
author_sort Mohammad Taghi Bahreyni Toossi
title Image Optimization in Single Photon Emission Computed Tomography by Hardware Modifications with Monte Carlo Simulation
title_short Image Optimization in Single Photon Emission Computed Tomography by Hardware Modifications with Monte Carlo Simulation
title_full Image Optimization in Single Photon Emission Computed Tomography by Hardware Modifications with Monte Carlo Simulation
title_fullStr Image Optimization in Single Photon Emission Computed Tomography by Hardware Modifications with Monte Carlo Simulation
title_full_unstemmed Image Optimization in Single Photon Emission Computed Tomography by Hardware Modifications with Monte Carlo Simulation
title_sort image optimization in single photon emission computed tomography by hardware modifications with monte carlo simulation
publisher Mashhad University of Medical Sciences
series Iranian Journal of Medical Physics
issn 2345-3672
2345-3672
publishDate 2010-06-01
description Introduction: In Single Photon Emission Computed Tomography (SPECT), the projection data used for image reconstruction are distorted by several factors, including attenuation and scattering of gamma rays, collimator structure, data acquisition method, organ motion, and washout of radiopharmaceuticals. All these make reconstruction of a quantitative SPECT image very difficult. Simulation of a SPECT system is a convenient method to assess the impact of these factors on the image quality. Materials and Methods: The SIMIND Monte Carlo program was employed to simulate a Siemens E.CAM SPECT system. Verification of the simulation was performed by comparing the performance parameters of the system. The verified system was used for SPECT simulations of homogenous and inhomogeneous voxelized phantoms in conjugation with hardware modifications. The resulting data were compared with those obtained from the simulated system without any modifications. Image quality was assessed by comparing the Structural SIMularity index (SSIM), contrast, and resolution of images. Results: The energy spectra acquired from both simulated and real SPECT systems demonstrated similar energy peak regions. The resulting full-widths-at-half-maximums were 13.92 keV for the simulation and 13.58 keV for experimental data, corresponding to energy resolutions of 9.95% and 9.61%, and with calculated sensitivities of 85.39 and 85.11 cps/MBq, respectively. Better performance parameters were obtained with a hardware-modified system constructed using a 0.944 cm thickness NaI(Tl) crystal covered by a layer of 0.24 cm aluminum, a  slat of 4.5 cm Pyrex as a backscattering medium, and a parallel hole collimator of Pb-Sb alloy with 2.405 cm thickness. Conclusion: The modeling of a Siemens E.CAM SPECT system was performed with the SIMIND Monte Carlo code. Results obtained with the code are in good agreement with experimental results. The findings demonstrate that the proposed hardware modifications in the system appear to be suitable for further improvement of the performance parameters of the system, indicating that future investigations can be conducted on using the system for supplementary studies on image improvement in the field of nuclear medicine.
topic Monte Carlo Simulation
Phantom SPECT Imaging System
SIMIND Program
url http://ijmp.mums.ac.ir/article_7258_7d6c7ce4fc578ff02cff3309cfb02a01.pdf
work_keys_str_mv AT mohammadtaghibahreynitoossi imageoptimizationinsinglephotonemissioncomputedtomographybyhardwaremodificationswithmontecarlosimulation
AT jalilpirayeshislamian imageoptimizationinsinglephotonemissioncomputedtomographybyhardwaremodificationswithmontecarlosimulation
AT mahdimomennezhad imageoptimizationinsinglephotonemissioncomputedtomographybyhardwaremodificationswithmontecarlosimulation
AT seyedrasoulzakavi imageoptimizationinsinglephotonemissioncomputedtomographybyhardwaremodificationswithmontecarlosimulation
AT raminsadeghi imageoptimizationinsinglephotonemissioncomputedtomographybyhardwaremodificationswithmontecarlosimulation
AT lejonbergm imageoptimizationinsinglephotonemissioncomputedtomographybyhardwaremodificationswithmontecarlosimulation
_version_ 1725434593276854272