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WIENER PREDICTION-BASED CHANGE DETECTION FOR LOCATING MINES IN MULTILOOK SAR IMAGERY

机译:基于维纳预测的变更检测,用于定位Mullook SAR图像中的地雷

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In this paper, we present a Wiener-based change detection method and compare its performance with several other methods for a pair of multi-look synthetic aperture radar (SAR) images of the same scene. We implement and compare several techniques which vary in complexity. Among the simple methods that are implemented are differencing, Euclidean distance, and image ratioing. These methods require minimal processing time, with little computational complexity, and incorporate no statistical information. We also implemented methods which incorporate second order statistic calculations in making a change decision in efforts to mitigate false alarms arising from the speckle noise, misregistration errors, and nonlinear variations in SAR images. These methods include a Wiener prediction-based method, Mahalanobis distance measure and subspace projection method. We compare the performance of these methods using multi-look SAR images containing several targets (mines). We present results in the form of receiver operating characteristics (ROC) curves.
机译:在本文中,我们介绍了一种基于维纳的变化检测方法,并将其性能与同一场景的一对多外观合成孔径雷达(SAR)图像的几种其他方法进行比较。我们实施并比较了几种在复杂性中变化的技术。在实现的简单方法中,差异,欧几里德距离和图像比例。这些方法需要最小的处理时间,几乎没有计算复杂性,并不包含统计信息。我们还实现了在进行中制定改变决定的第二阶统计计算的方法,以减轻来自SAR图像中的散斑噪声,误报和非线性变化产生的误报。这些方法包括维纳预测的方法,Mahalanobis距离测量和子空间投影方法。我们使用包含多个目标(MINES)的多外观SAR图像进行比较这些方法的性能。我们呈现了接收器操作特性(ROC)曲线的形式。

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