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Statistical sensor fusion analysis of near-IR polarimetric and thermal imagery for the detection of minelike targets

机译:近红外偏振和热图像的统计传感器融合分析,用于检测Minelike目标

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We present an analysis of statistical model based data-level fusion for near-IR polarimetric and thermal data, particularly for the detection of mines and mine-like targets. Typical detection-level data fusion methods, approaches that fuse detections from individual sensors rather than fusing at the level of the raw data, do not account rationally for the relative reliability of different sensors, nor the redundancy often inherent in multiple sensors. Representative examples of such detection-level techniques include logical AND/OR operations on detections from individual sensors and majority vote methods. In this work, we exploit a statistical data model for the detection of mines and mine-like targets to compare and fuse multiple sensor channels. Our purpose is to quantify the amount of knowledge that each polarimetric or thermal channel supplies to the detection process. With this information, we can make reasonable decisions about the usefulness of each channel. We can use this information to improve the detection process, or we can use it to reduce the number of required channels.
机译:我们对近红外偏振和热数据进行了基于统计模型的数据级融合分析,特别是用于检测矿山和矿山的靶标。典型的检测级数据融合方法,从各个传感器的熔断器检测而不是在原始数据的水平下融合,不可理由地占用不同传感器的相对可靠性,也不是多个传感器中固有的冗余。这种检测级别技术的代表性示例包括来自各个传感器和多数投票方法的检测的逻辑和/或操作。在这项工作中,我们利用统计数据模型来检测地雷和矿山的目标,以比较和保险丝多个传感器通道。我们的目的是量化每个偏振或热通道供应到检测过程的知识量。通过这些信息,我们可以对每个渠道的有用性做出合理的决定。我们可以使用此信息来改进检测过程,或者我们可以使用它来减少所需频道的数量。

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