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Continuous phase corrections applied to SAR imagery

机译:应用于SAR图像的连续相位校正

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Phase error compensation is typically applied identically to every pixel in a Synthetic Aperture Radar (SAR) image. For certain modern systems and applications, this methodology is on the verge of becoming insufficient. We present Pixel-Unique Phase Adjustment (PUPA), an algorithm that performs an arbitrary spatially varying correction. We treat this as a deconvolution problem for which the goal is to minimize the cost function corresponding to the maximum likelihood estimate of the restored image. Our approach uses an iterative, gradient-based optimization algorithm. This method handles nonparametric phase errors and removes distortions exactly. We present results on real SAR data and demonstrate that quality is limited only by measurement noise. We analyze performance in terms of both computational complexity and memory requirements, and discuss two different implementations that allow a tradeoff to be made between these resources.
机译:通常将相位误差补偿以相同的方式应用于合成孔径雷达(SAR)图像中的每个像素。对于某些现代系统和应用程序,该方法论已接近不足。我们提出了像素唯一相位调整(PUPA),这是一种执行任意空间变化校正的算法。我们将此视为反卷积问题,其目标是最小化与恢复图像的最大似然估计相对应的代价函数。我们的方法使用基于梯度的迭代优化算法。此方法可处理非参数相位误差并准确消除失真。我们提供了有关实际SAR数据的结果,并证明了质量仅受测量噪声的限制。我们根据计算复杂性和内存要求来分析性能,并讨论两种允许在这些资源之间进行权衡的不同实现。

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