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Fuzzy clustering for land mine detection

机译:模糊聚类在地雷检测中的应用

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Fuzzy clustering is applied to the problem of detecting landmines. Sensor data generated by a Ground Penetrating Radar (GPR) is processed to detect the mines. The GPR produces a three dimensional array of intensity values, representing a volume below the surface of the ground. Features are computed from this array and clustered using a fuzzy competitive agglomerative (CA) algorithm. Prototypes are produced by the clustering algorithms and used to detect landmines. A novel aspect of this work is that the prototypes are not used in a nearest prototype style classifier, which would be the standard approach. Rather, the prototypes are used to provide a reliable indicator of the strength and pattern of a return at a location beneath the surface. Results on real, difficult data are provided that indicate that the fuzzy clustering produces more reliable detection outputs. In particular, the false alarm rates are much lower than those of the existing system.
机译:模糊聚类应用于地雷检测问题。处理由探地雷达(GPR)生成的传感器数据以检测地雷。 GPR生成强度值的三维阵列,表示地面以下的体积。从该数组计算特征,并使用模糊竞争性聚集(CA)算法对其进行聚类。原型是由聚类算法产生的,用于检测地雷。这项工作的新颖之处在于,原型没有在最近的原型样式分类器中使用,这将是标准方法。而是,原型用于提供可靠的指示器,用于指示表面下方某个位置的强度和返回样式。提供了真实,困难数据的结果,这些结果表明模糊聚类产生了更可靠的检测输出。特别是,误报率远低于现有系统。

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