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Ship detection using SAR and AIS raw data for maritime surveillance

机译:使用SAR和AIS原始数据进行船舶检测以进行海上监视

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This paper studies a maritime vessel detection method based on the fusion of data obtained from two different sensors, namely a synthetic aperture radar (SAR) and an automatic identification system (AIS) embedded in a satellite. Contrary to most methods widely used in the literature, the present work proposes to jointly exploit information from SAR and AIS raw data in order to detect the absence or presence of a ship using a binary hypothesis testing problem. This detection problem is handled by a generalized likelihood ratio detector whose test statistics has a simple closed form expression. The distribution of the test statistics is derived under both hypotheses, allowing the corresponding receiver operational characteristics (ROCs) to be computed. The ROCs are then used to compare the detection performance obtained with different sensors showing the interest of combining information from AIS and radar.
机译:本文研究了一种基于从两个不同传感器(合成孔径雷达(SAR)和嵌入卫星的自动识别系统(AIS))获得的数据融合的海上船只检测方法。与文献中广泛使用的大多数方法相反,本工作建议联合利用SAR和AIS原始数据中的信息,以便使用二元假设检验问题来检测船舶是否存在。该检测问题由广义似然比检测器处理,该检测器的检验统计量具有简单的封闭式表达式。测试统计量的分布是在两个假设下得出的,从而可以计算相应的接收器工作特性(ROC)。然后将ROC用于比较使用不同传感器获得的检测性能,这表明有兴趣结合AIS和雷达的信息。

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