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Modeling Stochastic Processes in Gamma-Ray Imaging Detectors and Evaluation of a Multi-Anode PMT Scintillation Camera for Use with Maximum-Likelihood Estimation Methods

机译:在伽马射线成像探测器中建模随机过程并评估与最大似然估计方法一起使用的多阳极PMT闪烁相机

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摘要

Maximum-likelihood estimation or other probabilistic estimation methods are underused in many areas of applied gamma-ray imaging, particularly in biomedicine. In this work, we show how to use our understanding of stochastic processes in a scintillation camera and their effect on signal formation to better estimate gamma-ray interaction parameters such as interaction position or energy.To apply statistical estimation methods, we need an accurate description of the signal statistics as a function of the parameters to be estimated. First, we develop a probability model of the signals conditioned on the parameters to be estimated by carefully examining the signal generation process. Subsequently, the likelihood model is calibrated by measuring signal statistics for an ensemble of events as a function of the estimate parameters.In this work, we investigate the application of ML-estimation methods for three topics. First, we design, build, and evaluate a scintillation camera based on a multi-anode PMT readout for use with ML-estimation techniques. Next, we develop methods for calibrating the response statistics of a thick-detector gamma camera as a function of interaction depth. Finally, we demonstrate the use of ML estimation with a modified clinical Anger camera.
机译:在应用的伽马射线成像的许多领域,尤其是在生物医学中,最大似然估计或其他概率估计方法未得到充分利用。在这项工作中,我们将展示如何利用对闪烁照相机中随机过程的理解及其对信号形成的影响来更好地估计伽玛射线相互作用参数(例如相互作用位置或能量)。要应用统计估计方法,我们需要准确的描述信号统计量随待估计参数的变化而变化。首先,我们通过仔细检查信号生成过程来建立以要估计的参数为条件的信号的概率模型。随后,通过测量事件整体的信号统计量作为估计参数的函数来校准似然模型。在这项工作中,我们研究了ML估计方法在三个主题中的应用。首先,我们设计,构建和评估基于多阳极PMT读数的闪烁相机,以与ML估计技术配合使用。接下来,我们开发用于校准厚探测器伽马相机响应相互作用深度的函数的方法。最后,我们演示了如何使用改良的临床Anger相机进行ML估计。

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