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Quantification and uncertainty analysis of low-resolution gamma-ray spectrometry using Bayesian inference

机译:贝叶斯推断的低分辨率伽马射线光谱法的定量和不确定性分析

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Analyses of gamma spectra to identify and quantify radioactive materials are increasingly important for many practical radiation detection applications. However, two problems commonly emerge during these quantitative analyses: (1) existing methods that are based on frequentist inference ignore the concept of uncertainty invariably associated with statistical fluctuations in physical processes, and (2) the performance of such an analysis is poor, especially when evaluating complex low-resolution spectra composed of a greater variety of isotopes. In this manuscript, we propose a Bayesian approach in which the estimate of uncertainty in the activity ratio of isotopes is described in terms of the probability distribution for isotope identification and a quantitative analysis. To evaluate the proposed method, we acquired several complex spectra with mixture configurations of up to eight isotopes based on a two-inch thallium-doped sodium iodide (NaI(Tl)) detector via a simulation and experimentally. From the results, we show that incorporating the uncertainty in the activity ratio by means of Bayesian inference can provide both accurate and reliable estimates and that the level of these results can be preserved even for the highly fluctuating spectra. Furthermore, we demonstrate that the uncertainty estimates allow us to identify isotopes that do not contribute to the gamma spectrum when the isotopes are not included in the isotope library, thus leading to a reduction in the number of false alarms.
机译:对伽玛光谱进行分析以识别和量化放射性物质对于许多实际的辐射检测应用而言越来越重要。但是,在这些定量分析过程中通常会出现两个问题:(1)基于频繁推断的现有方法会忽略与物理过程中统计波动始终相关的不确定性的概念,(2)这种分析的性能较差,尤其是在评估由多种同位素组成的复杂的低分辨率光谱时。在本手稿中,我们提出了一种贝叶斯方法,其中根据同位素识别和定量分析的概率分布描述了同位素活度比的不确定性估计。为了评估所提出的方法,我们基于一个2英寸th掺杂的碘化钠(NaI(Tl))检测器,通过仿真和实验获得了几个具有多达8个同位素的混合构型的复杂光谱。从结果可以看出,通过贝叶斯推断将活度比的不确定性纳入考虑范围可以提供准确而可靠的估计,并且即使对于高度波动的光谱,也可以保留这些结果的水平。此外,我们证明了不确定性估计值使我们能够识别出当同位素未包含在同位素库中时对伽马光谱没有贡献的同位素,从而减少了误报的数量。

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