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Comparison of least-squares vs. maximum likelihood estimation for standard spectrum technique of β-γ coincidence spectrum analysis

机译:β-γ重合谱分析标准谱技术的最小二乘与最大似然估计的比较

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摘要

The spectrum deconvolution analysis tool (SDAT) software code was written and tested at The University of Texas at Austin utilizing the standard spectrum technique to determine activity levels of Xe-131m, Xe-133m, Xe-133, and Xe-135 in β-γ coincidence spectra. SDAT was originally written to utilize the method of least-squares to calculate the activity of each radionuclide component in the spectrum. Recently, maximum likelihood estimation was also incorporated into the SDAT tool. This is a robust statistical technique to determine the parameters that maximize the Poisson distribution likelihood function of the sample data. In this case it is used to parameterize the activity level of each of the radioxenon components in the spectra. A new test dataset was constructed utilizing Xe-131m placed on a Xe-133 background to compare the robustness of the least-squares and maximum likelihood estimation methods for low counting statistics data. The Xe-131 m spectra were collected independently from the Xe-133 spectra and added to generate the spectra in the test dataset. The true independent counts of Xe-131m and Xe-133 are known, as they were calculated before the spectra were added together. Spectra with both high and low counting statistics are analyzed. Studies are also performed by analyzing only the 30 keV X-ray region of the p-y coincidence spectra. Results show that maximum likelihood estimation slightly outperforms least-squares for low counting statistics data.
机译:光谱解卷积分析工具(SDAT)软件代码是在德克萨斯大学奥斯汀分校使用标准光谱技术编写和测试的,用于确定X-131m,Xe-133m,Xe-133和Xe-135在β- γ重合谱。 SDAT最初被编写为利用最小二乘法来计算光谱中每个放射性核素组分的活性。最近,最大似然估计也被合并到SDAT工具中。这是一种强大的统计技术,可以确定使样本数据的泊松分布似然函数最大化的参数。在这种情况下,它用于参数化光谱中每个放射性氙组分的活性水平。利用放置在Xe-133背景上的Xe-131m构建了一个新的测试数据集,以比较最小二乘方法和最大似然估计方法对低计数统计数据的鲁棒性。 Xe-131 m光谱独立于Xe-133光谱收集,并添加到测试数据集中以生成光谱。 Xe-131m和Xe-133的真实独立计数是已知的,因为它们是在将光谱加在一起之前计算出来的。分析具有高计数统计和低计数统计的光谱。通过仅分析p-y符合光谱的30 keV X射线区域也可以进行研究。结果表明,对于低计数统计数据,最大似然估计略胜于最小二乘。

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