{"title":"基于最大似然的DE-SPECT数据预处理的实验评估:一个由CZT成像探测器构建的临床SPECT系统","authors":"Yifei Jin;E. M. Zannoni;Ling-Jian Meng","doi":"10.1109/TRPMS.2024.3520668","DOIUrl":null,"url":null,"abstract":"This study introduces a novel maximum-likelihood-based data preconditioning method for a 3-D position sensitive cadmium zinc telluride (CZT) detector used in the dynamic extremity-single photon emission computed tomography imaging system, an organ-dedicated Single-Photon Emission computed tomography system optimized for imaging peripheral vascular diseases in lower extremities. The 3-D CZT detectors offer subpixel resolution of ~0.5 mm FWHM in X-Y-Z directions and an ultrahigh energy resolution of 3 keV at 200 keV, 4.5 keV at 450 keV, and 5.4 keV at 511 keV. Given the intrinsic challenges posed by pixel boundary issues, spatial distortions, and nonuniformity inherent in large-volume, high-resolution CZT detectors, we proposed a Maximum-Likelihood-based preconditioning technique to reconstruct the projection, which effectively mitigates the pixel boundary issue and deconvolves the distortions and nonuniformity in detector responses. To facilitate the preconditioning step, we used sheet-beam scanning to measure the distortion map of the CZT detectors. We have evaluated our data preconditioning technique through extensive experimental evaluations, including Tc-99m sheet-beam scanning and image reconstruction of an image quality phantom. These results not only demonstrated the efficacy of the technique in reducing the impact of pixel boundary issues and correcting for spatial distortions. 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引用次数: 0
摘要
本文介绍了一种基于最大似然的三维位置敏感碲化镉锌(CZT)探测器的数据预处理方法,该探测器用于动态四肢单光子发射计算机断层成像系统,这是一种针对下肢周围血管疾病成像优化的器官专用单光子发射计算机断层成像系统。三维CZT探测器在X-Y-Z方向上提供了~0.5 mm FWHM的亚像素分辨率,以及200 keV时3 keV, 450 keV时4.5 keV和511 keV时5.4 keV的超高能量分辨率。考虑到大体积高分辨率CZT探测器中像素边界问题、空间畸变和非均匀性所带来的固有挑战,我们提出了一种基于最大似然的预处理技术来重建投影,该技术有效地缓解了像素边界问题,并解卷积了探测器响应中的畸变和非均匀性。为了便于预处理步骤,我们使用板束扫描来测量CZT探测器的畸变图。我们通过广泛的实验评估评估了我们的数据预处理技术,包括Tc-99m板束扫描和图像质量幻象的图像重建。这些结果不仅证明了该技术在减少像素边界问题的影响和纠正空间扭曲方面的有效性。所提出的数据预处理技术可以潜在地应用于各种类型的成像传感器。
Experimental Evaluation of Maximum-Likelihood-Based Data Preconditioning for DE-SPECT: A Clinical SPECT System Constructed With CZT Imaging Detectors
This study introduces a novel maximum-likelihood-based data preconditioning method for a 3-D position sensitive cadmium zinc telluride (CZT) detector used in the dynamic extremity-single photon emission computed tomography imaging system, an organ-dedicated Single-Photon Emission computed tomography system optimized for imaging peripheral vascular diseases in lower extremities. The 3-D CZT detectors offer subpixel resolution of ~0.5 mm FWHM in X-Y-Z directions and an ultrahigh energy resolution of 3 keV at 200 keV, 4.5 keV at 450 keV, and 5.4 keV at 511 keV. Given the intrinsic challenges posed by pixel boundary issues, spatial distortions, and nonuniformity inherent in large-volume, high-resolution CZT detectors, we proposed a Maximum-Likelihood-based preconditioning technique to reconstruct the projection, which effectively mitigates the pixel boundary issue and deconvolves the distortions and nonuniformity in detector responses. To facilitate the preconditioning step, we used sheet-beam scanning to measure the distortion map of the CZT detectors. We have evaluated our data preconditioning technique through extensive experimental evaluations, including Tc-99m sheet-beam scanning and image reconstruction of an image quality phantom. These results not only demonstrated the efficacy of the technique in reducing the impact of pixel boundary issues and correcting for spatial distortions. The proposed data preconditioning technique could potentially be applied across various types of imaging sensors.