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Absolute Gamma Source Positioning with Position-sensitive Scintillation Detector Arrays

机译:带有位置敏感闪烁探测器阵列的绝对伽马源定位

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Radioactive sources are widely used in industrial and medical applications. In home-land security, it is important to monitor radioactive source in public areas such as airport to prevent public hazard. Traditional radiation detection devices such as Geiger counter cannot provide position information. Exist imaging devices including Gamma cameras with mechanical collimators, or Compton cameras can only determine directional information of the radioactive sources over the 4π angular space, which is not enough for accurate source positioning in the crowded areas with high population density.In this work, we propose a novel method to achieve 3-D imaging capability of the absolute radioactive sources position with position-sensitive scintillator detector arrays. Targeting at application in a typical public places such as airports, we propose a 6-detector imaging system setup. The detector design is based on a pixilated dual-ended GAGG scintillation detector block that has been developed in our lab. The measured photon count distribution of all the six detectors are combined together to form the projection data. A ML-EM algorithm is used reconstruct the source intensity image in Cartesian coordinates. In Monte Carlo simulation, a 511 keV point source was placed at four different positions in the FOV to measure the projection data. Both the positioning accuracy and the FWHM image resolution were calculated from the reconstructed image to evaluate the performance of the proposed imaging method. The reconstructed images converge to desired point-type distribution with certain spread observed in both the simulation and the experimental study. Accurate positioning accuracy is achievable in all cases.In conclusion, the proposed method demonstrates feasibility for absolute positioning of the radioactive sources in 3-D Cartesian space. We believe that it is promisingly useful in public safety applications.
机译:放射源广泛用于工业和医疗应用。在国土安全中,重要的是监视公共场所(例如机场)的放射源,以防止公共危害。传统的辐射检测设备(如盖革计数器)无法提供位置信息。现有的成像设备(包括带有机械准直仪的伽玛相机或康普顿相机)只能确定4π角空间内放射源的方向信息,这不足以在人口密度高的拥挤区域中准确定位放射源。提出了一种新的方法来实现具有位置敏感闪烁体探测器阵列的放射源绝对位置的3D成像能力。针对在典型的公共场所(例如机场)中的应用,我们提出了一种6探测器成像系统设置。检测器设计基于我们实验室开发的像素化双端GAGG闪烁检测器模块。将所有六个检测器的测得的光子计数分布组合在一起以形成投影数据。使用ML-EM算法在笛卡尔坐标中重建源强度图像。在蒙特卡洛模拟中,将511 keV点源放置在FOV中的四个不同位置处,以测量投影数据。从重建图像中计算定位精度和FWHM图像分辨率,以评估所提出的成像方法的性能。在仿真和实验研究中,重建的图像都收敛到所需的点类型分布,并具有一定的扩展性。在所有情况下都可以达到精确的定位精度。总之,所提出的方法证明了在3D笛卡尔空间中对放射源进行绝对定位的可行性。我们相信,它在公共安全应用中很有希望。

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