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Clustering by inhomogeneous chaotic maps in landmine detection

机译:在地雷检测中通过非均匀混沌映射聚类

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A method has been recently proposed that provides a higherachical solution to the clustering problem under very general assumptions, relying on the cooperative behavior of an inhomogeneous lattice of chaotic coupled maps. The physical system can be seen as a chaotic neural network where neurons update is performed by logistic maps. The mutual information between couples of map acts as a similarity index to get partitions of a data set, corresponding to different resolution levels. As a result a full hierarchy of clusters is generated. Esperiments on artificial and real-life problems show the effectiveness of the proposed algorithm. Here we report the results of an application to landmine detection by dynamic thermogrpahy. Dynamic thermography allows to discriminate among objects with different thermal properties by sequential IR imaging. Detection is then obtained through segmentation of temporal sequences of infrared images. An approach is propsoed that gives the correct classification by analysing very short image sequence, thus allowing a fast acquisition time. The algorithm has been successfully tested on image sequences of plastic anti-personnel mines taken from realistic inefields.
机译:最近已经提出了一种方法,为在非常一般的假设下对聚类问题提供了一种非常谨慎的解决方案,依赖于混沌耦合映射的非均匀晶格的协同行为。物理系统可以被视为混沌神经网络,其中神经元更新由逻辑图执行。地图夫妇之间的互信息用作相似性索引,以获取数据集的分区,对应于不同的分辨率级别。结果,生成了群集的完整层次结构。人工和现实问题的跃迁显示了所提出的算法的有效性。在这里,我们将应用程序的应用结果报告以通过动态ThermoGRPAHY进行地雷检测。动态热成像允许通过顺序IR成像在具有不同热性质的物体之间区分。然后通过对红外图像的时间序列分割获得检测。通过分析非常短的图像序列来提出一种方法,其给出了正确的分类,从而允许快速采集时间。该算法已成功测试塑料杀伤人员矿山的图像序列,从现实终极中取出。

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