Development of a 3D position sensitive scintillation detector using neural networks

D. Clement, R. Frei, J. Loude, C. Morel
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引用次数: 41

Abstract

This work presents a novel method of exploiting light division in a scintillating crystal to localise in three-dimensions the point of interaction of an impinging photon. For this, light output of a detector block is mapped for known irradiation positions of a collimated photon beam and used to train a set of three independent multilayer neural networks. Spatial resolutions obtained with a Monte Carlo simulation of a cubic 2/spl times/2/spl times/2 cm/sup 3/ CsI(Tl) crystal fully covered with 24 Si PIN photodiodes are better than 2 mm fwhm in the three directions over the entire volume of the detector block. For comparison, the spatial resolution reconstructed in two dimensions from a simple Anger logic based on the photodetectors coupled to the rear side of the crystal is about 3.5 mm fwhm for the same experimental setup.
基于神经网络的三维位置敏感闪烁探测器的研制
这项工作提出了一种利用闪烁晶体中的光分裂来定位撞击光子相互作用点的三维方法。为此,将探测器块的光输出映射为准直光子束的已知照射位置,并用于训练一组三个独立的多层神经网络。用蒙特卡罗模拟得到的空间分辨率在探测器块的整个体积上,覆盖了24个Si PIN光电二极管的立方2/spl倍/2/spl倍/2 cm/sup 3/ CsI(Tl)晶体在三个方向上都优于2 mm fwhm。相比之下,在相同的实验装置下,基于光电探测器耦合到晶体背面的简单Anger逻辑在二维上重建的空间分辨率约为3.5 mm fwhm。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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