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Comparison of Characteristics of Gamma-Ray Imager Based on Coded Aperture by Varying the Thickness of the BGO Scintillator KCI 등재 SCOPUS
대한방사선방어학회 방사선방어학회지 VOLUME 47 NUMBER 4 2022.12 pp.214-225
Background: The conventional cerium-doped Gd2Al2Ga3O12 (GAGG(Ce)) scintillator-based gamma-ray imager has a bulky detector, which can lead to incorrect positioning of the gammaray source if the shielding against background radiation is not appropriately designed. In addition, portability is important in complex environments such as inside nuclear power plants, yet existing gamma-ray imager based on a tungsten mask tends to be weighty and therefore difficult to handle. Motivated by the need to develop a system that is not sensitive to background radiation and is portable, we changed the material of the scintillator and the coded aperture. Materials and Methods: The existing GAGG(Ce) was replaced with Bi4Ge3O12 (BGO), a scintillator with high gamma-ray detection efficiency but low energy resolution, and replaced the tungsten (W) used in the existing coded aperture with lead (Pb). Each BGO scintillator is pixelated with 144 elements (12 × 12), and each pixel has an area of 4 mm × 4 mm and the scintillator thickness ranges from 5 to 20 mm (5, 10, and 20 mm). A coded aperture consisting of Pb with a thickness of 20 mm was applied to the BGO scintillators of all thicknesses. Results and Discussion: Spectroscopic characterization, imaging performance, and image quality evaluation revealed the 10 mm-thick BGO scintillators enabled the portable gamma-ray imager to deliver optimal performance. Although its performance is slightly inferior to that of existing GAGG(Ce)-based gamma-ray imager, the results confirmed that the manufacturing cost and the system’s overall weight can be reduced. Conclusion: Despite the spectral characteristics, imaging system performance, and image quality is slightly lower than that of GAGG(Ce), the results show that BGO scintillators are preferable for gamma-ray imaging systems in terms of cost and ease of deployment, and the proposed design is well worth applying to systems intended for use in areas that do not require high precision.
Development of a Coded-aperture Gamma Camera for Monitoring of Radioactive Materials KCI 등재후보
대한방사선방어학회 방사선방어학회지 VOLUME 29 NUMBER 4 2004.12 pp.257-261
몬테칼로 전산모사를 이용한 대형 부호화구경 감마영상장치 최적화 설계
대한방사선방어학회 대한방사선방어학회 학술발표회 논문요약집 2018년도 대한방사선방어학회 추계 학술발표회 논문요약집 2018.11 pp.196-197
[Kisti 연계] 한국원자력학회 Nuclear Engineering and Technology Vol.53 No.4 2021 pp.1266-1276
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The mask parameters of a coded aperture are critical design features when optimizing the performance of a gamma-ray camera. In this paper, experiments and Monte Carlo simulations were performed to derive the minimum detectable activity (MDA) when one seeks a real-time imaging capability. First, the impact of the thickness of the modified uniformly redundant array (MURA) mask on the image quality is quantified, and the imaging of point, line, and surface radiation sources is demonstrated using both cross-correlation (CC) and maximum likelihood expectation maximization (MLEM) methods. Second, the minimum detectable activity is also derived for real-time imaging by altering the factors used in the image quality assessment, consisting of the peak-to-noise ratio (PSNR), the normalized mean square error (NMSE), the spatial resolution (full width at half maximum; FWHM), and the structural similarity (SSIM), all evaluated as a function of energy and mask thickness. Sufficiently sharp images were reconstructed when the mask thickness was approximately 2 cm for a source energy between 30 keV and 1.5 MeV and the minimum detectable activity for real-time imaging was 23.7 MBq at 1 m distance for a 1 s collection time.
[Kisti 연계] 한국원자력학회 Nuclear Engineering and Technology Vol.53 No.1 2021 pp.199-207
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This paper deals with accurate image reconstruction of gamma camera using a coded-aperture mask based on pixel-type CsI(Tl) scintillator coupled with silicon photomultipliers (SiPMs) array. Coded-aperture imaging (CAI) system typically has a smaller effective viewing angle than Compton camera. Thus, if the position of the gamma source to be searched is out of the fully-coded field-of-view (FCFOV) region of the CAI system, artifacts can be generated when the image is reconstructed by using the conventional cross-correlation (CC) method. In this work, we propose an effective method for more accurate reconstruction in CAI considering the source distribution of partially-coded field-of-view (PCFOV) in the reconstruction in attempt to overcome this drawback. We employed an iterative algorithm based on compressed-sensing (CS) and compared the reconstruction quality with that of the CC algorithm. Both algorithms were implemented and performed a systematic Monte Carlo simulation to demonstrate the possiblilty of the proposed method. The reconstructed image qualities were quantitatively evaluated in sense of the root mean square error (RMSE) and the peak signal-to-noise ratio (PSNR). Our simulation results indicate that the proposed method provides more accurate location information of the simulated gamma source than the CC-based method.
갑상선 영상 획득을 위한 부호화 구경 감마카메라: 몬테칼로 시뮬레이션 연구
[Kisti 연계] 한국의학물리학회 Korean journal of medical physics Vol.19 No.4 2008 pp.247-255
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부호화 구경 카메라는 바늘구멍 카메라의 고분해능 특성을 유지하면서 신호대잡음비를 향상시키기 위해 개발되었다. 이 연구의 목적은 몬테칼로 모사방법을 이용하여 부호화 구경 카메라의 최적화 및 성능 분석을 통해 갑상선 영상의 가능성을 평가하는 것이다. GATE 코드를 이용하여 부호화 구경의 두께에 따른 부호화 구경 카메라의 Tc-99 m 선원에 대한 공간분해능, 신호대잡음비, 균일도를 평가하였다. 그리고 부호화 구경 카메라와 바늘구멍 카메라의 영상 획득 성능을 비교하였다. 연구 결과 부호화 구경 마스크 두께에 따른 분해능 차이는 거의 없었으나, 신호대잡음비는 구경 두께가 두꺼워질수록 향상되어 최고값을 보인 뒤 다시 감소하는 추세를 보였다. 이는 두께에 따른 마스크의 투과율과 관계가 있었다. 균일도는 구경 두께가 두꺼워질수록 성능이 향상하였다. 부호화 구경 카메라의 공간분해능은 바늘구멍 카메라와 거의 비슷하였으나, 신호대잡음비는 약 30배 정도 향상되는 것을 확인하였고, 이는 부호화 구경 카메라로 고분해능, 고 신호대잡음비의 갑상선 영상 획득이 가능함을 보여준다.
A coded aperture camera has been developed to improve the signal-to-noise ratio (SNR) while keeping the spatial resolution of a pinhole gamma camera. The purpose of this study was to optimize a coded aperture camera and to evaluate its possibility for thyroid imaging by Monte Carlo simulation. A clinical gamma camera, a pinhole collimator with 1.0 mm hole diameter, and a $79{\times}79$ modified uniformly redundant array (MURA) mask were designed using GATE (Geant4 Application for Tomographic Emission). The penetration ratio, spatial resolution, integral uniformity and signal-to-noise ratio (SNR) were simulated and evaluated as a function of the mask thickness. The spatial resolution of the coded aperture camera was consistent with the various mask thickness, SNR showed a maximum value at 1.2 mm mask thickness and integral uniformity was improved by increasing mask thickness. Compare to the pinhole gamma camera, the coded aperture camera showed improved SNR by a factor of 30 while keeping almost the same spatial resolution. In this simulation study, the results indicated that high spatial resolution and ultra-high SNR of the thyroid imaging are feasible using a coded aperture camera.
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