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Mobile Robotic Radiation Surveying Using Recursive Bayesian Estimation

机译:基于递归贝叶斯估计的移动机器人辐射测量

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摘要

Nuclear facilities require wide-area surveys and remote response to the detection of abnormal radiation levels. These typically require a large number of measurement locations using fixed search patterns. Such approaches are time-consuming, require extended radiation exposure, and are difficult to routinely replicate by technicians. This paper presents an automated method of detecting and locating single or multiple small gamma-ray sources in an unstructured environment, requiring significantly fewer measurements than traditional methods and without a need for post-processing. A mobile robot can collect higher-precision data than practically possible by a human and removes the technician from the radiation area. This is enabled by addressing complexities that previously made automation difficult including supervisory control, obstacle avoidance, sensor positioning over a large height range, recognizing environmental complexities (shielding, etc and modifying survey parameters based on aberrant readings. The developed solution uses a mobile platform with a height-adjustable (up to 2.44 meters) radiation detector. Recursive Bayesian Estimation (RBE) is used to update a probability distribution of the location and intensity of source(s) after each measurement. The likelihood function is determined using radiation transport and detector models. Isotopic identification via a gamma library search aids data analysis by distinguishing counts from different sources. Computation considerations are discussed including predicting and localizing multiple sources.
机译:核设施需要进行大范围调查,并对发现异常辐射水平进行远程响应。这些通常需要使用固定搜索模式的大量测量位置。这种方法很耗时,需要长时间的辐射暴露,并且很难被技术人员常规地复制。本文提出了一种在非结构化环境中检测和定位单个或多个小伽马射线源的自动化方法,与传统方法相比,该方法所需的测量量要少得多,并且不需要后处理。移动机器人可以收集比人类实际可能获得的精度更高的数据,并将技术人员从辐射区域移走。通过解决以前难以实现自动化的复杂性,包括监督控制,避障,传感器在较大高度范围内的定位,识别环境的复杂性(屏蔽等)以及根据异常读数修改测量参数,从而实现了这一目标。高度可调(最大2.44米)的辐射探测器,每次测量后使用递归贝叶斯估计(RBE)来更新源位置和强度的概率分布,并使用辐射传输和探测器确定似然函数通过伽马谱库搜索进行同位素识别可以通过区分不同来源的计数来帮助进行数据分析,并讨论了计算注意事项,包括预测和定位多个来源。

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