An irrotationality preserving total variation algorithm for phase unwrapping

B. Ghanekar, D. Narayan, U. Khankhoje
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引用次数: 2

Abstract

We propose an irrotationality-preserving total variation algorithm to solve the two dimensional (2D) phase unwrapping problem, which occurs in Interferometric Synthetic Aperture Radar (InSAR) imaging and other problems. Total variation methods aim at denoising the phase derivatives to reconstruct the absolute phase. We supplement these methods by adding an additional constraint driving the curl of the gradient of the 2D phase map to zero, i.e. imposing the irrotationality of the gradient map by suitably constructing a cost function which we then minimize. We test our method and compare with existing methods on several synthetic surfaces specific to the problem of InSAR imaging for different noise levels. We report better estimates of unwrapped phase maps for the terrains simulated and for all noise levels with a two-fold improvement in terms of root mean square (RMS) error in high noise level scenarios.
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相位展开的一种保持不旋转的全变分算法
针对干涉合成孔径雷达(InSAR)成像中出现的二维相位展开问题等问题,提出了一种保持不旋转的全变分算法。总变分法的目的是去噪相位导数,重建绝对相位。我们通过添加一个额外的约束来补充这些方法,该约束驱动二维相位映射的梯度旋度为零,即通过适当地构造一个成本函数来施加梯度映射的不旋转性,然后我们将其最小化。针对不同噪声水平下InSAR成像问题,我们测试了我们的方法,并与现有的几种合成表面方法进行了比较。我们报告了对模拟地形和所有噪声水平的未包裹相位图的更好估计,在高噪声水平的情况下,均方根(RMS)误差提高了两倍。
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