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Application of Artificial Neural Networks to Reliable Nuclear Data for Nonproliferation Modeling and Simulation

机译:人工神经网络在可靠核数据中的防扩散建模与仿真应用

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Detection and identification of special nuclear materials (SNMs) are an essential part of the US nonproliferation effort. Modern cutting-edge SNM detection methodologies rely more and more on modeling and simulation techniques. Experiments with radiological samples in realistic configurations, is the ultimate tool that establishes the minimum detection limits of SNMs in a host of different geometries. Modern modeling and simulation approaches have the potential to significantly reduce the number of experiments with radioactive sources needed to determine these detection limits and reduce the financial barrier to SNM detection. Unreliable nuclear data is one of the principal causes of uncertainty in modeling and simulating nuclear systems. In particular, nuclear cross sections introduce a significant uncertainty in the nuclear data. The goal of this research is to develop a methodology that will autonomously extract the correct nuclear resonance characteristics of experimental data in a reliable way, a task previously left to expert judgement. Accurate nuclear data will in turn allow contemporary modeling and simulation to become far more reliable, de-escalating the extent of experimental testing. Consequently, modeling and simulation techniques reduce the use and distribution of radiological sources, while at the same time increase the reliability of the currently used methods for the detection and identification of SNMs.
机译:特殊核材料(SNM)的检测和识别是美国防扩散努力的重要组成部分。现代最先进的SNM检测方法越来越依赖于建模和仿真技术。在实际配置中对放射学样本进行实验是确定在许多不同几何形状中SNM的最低检测极限的终极工具。现代的建模和模拟方法有可能显着减少确定这些检测限所需的放射源实验数量,并减少SNM检测的财务障碍。不可靠的核数据是对核系统进行建模和模拟时不确定性的主要原因之一。特别是,核横截面给核数据带来了很大的不确定性。这项研究的目的是开发一种方法,该方法将以可靠的方式自主提取实验数据的正确核共振特征,这是以前由专家判断的任务。准确的核数据将使当代的建模和仿真变得更加可靠,从而降低了实验测试的范围。因此,建模和仿真技术减少了放射源的使用和分布,同时提高了当前用于检测和识别SNM的方法的可靠性。

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