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Using evolutionary computation for seismic signal detection: a homeland security application

机译:使用进化计算进行地震信号检测:国土安全应用

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Many organizations and governments have the need to monitor areas for intrusions and, once detected, to identify the type of potential intruder(s) present. Applications include perimeter security at installations such as airports and critical infrastructure, as well as military situation awareness in monitoring demilitarized zones, or other areas where activity of interest may occur. Seismic signal detectors can be used in many of these applications. Time-frequency response (TFR) signals are generated and must be classified as being generated by particular targets of interest. Experiments were conducted using real data collected at Marine Corps Base, Camp Pendleton, California, USA. Seismic signal detectors were used to monitor signals generated by individual people, groups of people, and vehicles of different types. Evolutionary computation was combined with neural networks to analyze the TFR signals and classify the acquired data. The results indicated the practical application of classifying signals based on their seismic signature.
机译:许多组织和政府都需要监视入侵区域,并且一旦发现,就必须确定存在的潜在入侵者的类型。应用包括机场和关键基础设施等设施的外围安全保护,以及在监视非军事区或可能发生感兴趣活动的其他区域中的军事情况意识。地震信号检测器可用于许多此类应用中。生成时频响应(TFR)信号,并且必须将其分类为由特定目标感兴趣的信号。实验是使用在美国加利福尼亚州彭德尔顿营的海军陆战队基地收集的真实数据进行的。地震信号检测器用于监视由个人,人群和不同类型的车辆产生的信号。进化计算与神经网络相结合来分析TFR信号并分类所获取的数据。结果表明基于信号的地震信号分类的实际应用。

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