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Evaluation of Shiryaev-Roberts Procedure for On-line Environmental Radiation Monitoring.

机译:在线环境辐射监测的Shiryaev-Roberts程序评估。

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摘要

An on-line radiation monitoring system that simultaneously concentrates and detects radioactivity is needed to detect an accidental leakage from a nuclear waste disposal facility or clandestine nuclear activity. Previous studies have shown that classical control chart methods can be applied to on-line radiation monitoring data to quickly detect these events as they occur; however, Bayesian control chart methods were not included in these studies. This work will evaluate the performance of a Bayesian control chart method, the Shiryaev-Roberts (SR) procedure, compared to classical control chart methods, Shewhart 3-sigma and cumulative sum (CUSUM), for use in on-line radiation monitoring of 99Tc in water using extractive scintillating resin. Measurements were collected by pumping solutions containing 0.1-5 Bq/L of 99Tc, as 99T cO4-, through a flow cell packed with extractive scintillating resin coupled to a Beta-RAM Model 5 HPLC detector. While 99T cO4- accumulated on the resin, simultaneous measurements were acquired in 10-s intervals and then re-binned to 100-s intervals. The Bayesian statistical method, Shiryaev-Roberts procedure, and classical control chart methods, Shewhart 3-sigma and cumulative sum (CUSUM), were applied to the data using statistical algorithms developed in MATLAB RTM. Two SR control charts were constructed using Poisson distributions and Gaussian distributions to estimate the likelihood ratio, and are referred to as Poisson SR and Gaussian SR to indicate the distribution used to calculate the statistic. The Poisson and Gaussian SR methods required as little as 28.9 mL less solution at 5 Bq/L and as much as 170 mL less solution at 0.5 Bq/L to exceed the control limit than the Shewhart 3-sigma method. The Poisson SR method needed as little as 6.20 mL less solution at 5 Bq/L and up to 125 mL less solution at 0.5 Bq/L to exceed the control limit than the CUSUM method. The Gaussian SR and CUSUM method required comparable solution volumes for test solutions containing at least 1.5 Bq/L of 99T c. For activity concentrations less than 1.5 Bq/L, the Gaussian SR method required as much as 40.8 mL less solution at 0.5 Bq/L to exceed the control limit than the CUSUM method. Both SR methods were able to consistently detect test solutions containing 0.1 Bq/L, unlike the Shewhart 3-sigma and CUSUM methods. Although the Poisson SR method required as much as 178 mL less solution to exceed the control limit than the Gaussian SR method, the Gaussian SR false positive of 0% was much lower than the Poisson SR false positive rate of 1.14%. A lower false positive rate made it easier to differentiate between a false positive and an increase in mean count rate caused by activity accumulating on the resin. The SR procedure is thus the ideal tool for low-level on-line radiation monitoring using extractive scintillating resin, because it needed less volume in most cases to detect an upward shift in the mean count rate than the Shewhart 3-sigma and CUSUM methods and consistently detected lower activity concentrations. The desired results for the monitoring scheme, however, need to be considered prior to choosing between the Poisson and Gaussian distribution to estimate the likelihood ratio, because each was advantageous under different circumstances.;Once the control limit was exceeded, activity concentrations were estimated from the SR control chart using the slope of the control chart on a semi-logarithmic plot. Five of nine test solutions for the Poisson SR control chart produced concentration estimates within 30% of the actual value, but the worst case was 263.2% different than the actual value. The estimations for the Gaussian SR control chart were much more precise, with six of eight solutions producing estimates within 30%. Although the activity concentrations estimations were only mediocre for the Poisson SR control chart and satisfactory for the Gaussian SR control chart, these results demonstrate that a relationship exists between activity concentration and the SR control chart magnitude that can be exploited to determine the activity concentration from the SR control chart. More complex methods should be investigated to improve activity concentration estimations from the SR control charts.
机译:需要同时集中和检测放射性的在线辐射监测系统,以检测核废料处置设施或秘密核活动的意外泄漏。以前的研究表明,经典的控制图方法可以应用于在线辐射监测数据,以在事件发生时快速检测到这些事件。但是,这些研究未包括贝叶斯控制图方法。这项工作将评估贝叶斯控制图方法Shiryaev-Roberts(SR)程序与传统控制图方法Shewhart 3-sigma和累积和(CUSUM)的性能,以用于在线99Tc辐射监测使用萃取闪烁树脂在水中。通过将装有0.1-5 Bq / L的99Tc的溶液(99T cO4-)泵入装有耦合到Beta-RAM 5型HPLC检测器的萃取闪烁树脂的流通池中,收集测量值。当99T cO4-累积在树脂上时,以10秒的间隔进行同时测量,然后重新绑定到100秒的间隔。使用在MATLAB RTM中开发的统计算法,将贝叶斯统计方法,Shiryaev-Roberts过程以及经典控制图方法Shewhart 3-sigma和累积和(CUSUM)应用于数据。使用泊松分布和高斯分布构造了两个SR控制图以估计似然比,并将其称为泊松SR和高斯SR来表示用于计算统计量的分布。与Shewhart 3-sigma方法相比,Poisson和Gaussian SR方法在5 Bq / L时仅需少28.9 mL的溶液,而在0.5 Bq / L时最多需少170 mL的溶液。与CUSUM方法相比,Poisson SR方法在5 Bq / L时少需少6.20 mL的溶液,而在0.5 Bq / L时少需最多125 mL的溶液。对于至少含有1.5 Bq / L的99T c的测试溶液,高斯SR和CUSUM方法需要相当的溶液体积。对于低于1.5 Bq / L的活度浓度,与CUSUM方法相比,高斯SR方法在0.5 Bq / L时要比对照极限少多达40.8 mL的溶液。与Shewhart 3-sigma和CUSUM方法不同,两种SR方法都能稳定地检测出含0.1 Bq / L的测试溶液。尽管Poisson SR方法比高斯SR方法所需的溶液少超过178 mL才能超过控制极限,但0%的高斯SR假阳性率远低于1.14%的Poisson SR假阳性率。较低的假阳性率使得更容易区分假阳性和由树脂上积聚的活性引起的平均计数率增加。因此,SR程序是使用萃取闪烁树脂进行低水平在线辐射监测的理想工具,因为与Shewhart 3-sigma和CUSUM方法相比,在大多数情况下,SR程序需要较小的体积来检测平均计数率的上移和始终检测到较低的活动浓度。但是,在Poisson和Gaussian分布之间进行选择以估计似然比之前,需要考虑监控方案的预期结果,因为每种情况在不同的情况下都是有利的;一旦超出控制极限,就会从SR控制图使用半对数图上控制图的斜率来表示。泊松SR控制图的9个测试溶液中有5个产生的浓度估计值在实际值的30%以内,但最坏的情况是与实际值相差263.2%。高斯SR控制图的估计要精确得多,八个解决方案中有六个产生的估计在30%以内。尽管对于Poisson SR控制图而言,活动浓度估计值仅中等,对于高斯SR控制图而言,活动浓度估计值并不令人满意,但这些结果表明,在活动浓度和SR控制图幅值之间存在关系,可以利用此关系来确定活动浓度。 SR控制图。应该研究更复杂的方法以改善SR控制图中的活动浓度估算值。

著录项

  • 作者

    Watson, Mara Mae.;

  • 作者单位

    Clemson University.;

  • 授予单位 Clemson University.;
  • 学科 Nuclear engineering.;Environmental engineering.;Statistics.
  • 学位 M.S.
  • 年度 2015
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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