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首页> 外文期刊>Nuclear Science, IEEE Transactions on >A Novel Markov Random Field-Based Clustering Algorithm to Detect High-Z Objects With Cosmic Rays
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A Novel Markov Random Field-Based Clustering Algorithm to Detect High-Z Objects With Cosmic Rays

机译:一种新的基于马尔可夫随机场的聚类算法,通过宇宙射线检测高Z物体

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摘要

We have developed a novel algorithm based on Markov random fields that uses cosmic ray muons to detect high-Z material, such as special nuclear material, in large-scale volumes, such as cargo containers. Since the amount of muon scattering is approximately dependent on the and the density of the material traversed, strong scattering in a localized area is indicative of high-Z material being present. For scanning purposes in freight harbors and similar, a decision should be made in minute. The performance of our algorithm has been evaluated on a variety of scenarios reflecting the composition of real-life cargo, using simulations tuned with our detector performance; we show that the algorithm can clear 64% of these containers using 60 seconds of cosmic muon exposure, and 88% using 90 seconds, with a run-time of the algorithm between 1 and 5 seconds.
机译:我们已经开发了一种基于马尔可夫随机场的新颖算法,该算法使用宇宙射线μ子来检测大体积(例如货柜)中的高Z材料(例如特殊核材料)。由于μ子的散射量大约取决于的和材料的密度,因此在局部区域中的强散射表明存在高Z材料。为了在货运港口及类似地点进行扫描,应在几分钟内做出决定。我们的算法的性能已在各种情况下进行了评估,这些场景反映了真实货物的组成,并使用了根据我们的探测器性能进行调整的仿真;我们证明了该算法使用60秒的宇宙μ子暴露可以清除这些容器中的64%,使用90秒清除88%的容器,算法的运行时间为1-5秒。

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