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Automated Vehicle Detection in a Nuclear Facility Using Low-Frequency Acoustic Sensors

机译:使用低频声学传感器的核设施中的自动车辆检测

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This article presents an analysis of the method of construction and results for a classifier intended to identify vehicles using low-frequency acoustic data collected by a distributed sensor network. This data is collected as part of a venture intended to explore data analytics and multisensor fusion techniques for the monitoring of activities at a test bed nuclear facility located at Oak Ridge National Laboratory in Oak Ridge, Tennessee. We describe the associated target signature and design a classifier based on a multilayer perceptron, followed by an analysis of its results. We discuss how overall accuracy is not the only consideration in constructing this classifier, and how for this application, it is actually desirable to operate at a lower level of accuracy in exchange for a reduction in the false alarm rate, as well as how this relates to the actual deployment of the classifier in practical use.
机译:本文介绍了一种分类器的构造方法和结果分析,该分类器旨在使用由分布式传感器网络收集的低频声学数据来识别车辆。收集这些数据是一项冒险活动的一部分,该冒险活动旨在探索数据分析和多传感器融合技术,以监控田纳西州橡树岭橡树岭国家实验室的测试台核设施的活动。我们描述相关的目标签名,并基于多层感知器设计分类器,然后对其结果进行分析。我们讨论了在构造此分类器时,不是唯一考虑整体准确性的问题,对于此应用程序,实际上希望如何以较低的准确性进行操作,以换取降低误报率的方法,以及这如何与之相关。到实际使用中分类器的部署。

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