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Improved Goldstein SAR Interferogram Filter Based on Empirical Mode Decomposition

机译:基于经验模态分解的改进型Goldstein SAR干涉图滤波器

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摘要

The Goldstein filter is one of the most commonly used synthetic aperture radar (SAR) interferogram filters. This letter proposes a new method to find filter parameters of the Goldestein filter based on noise level derived by the empirical mode decomposition (EMD) method. The filtering parameter determined by this method has a definite physical meaning. We used bidimensional empirical mode decomposition (BEMD) to extract features of an interferometric phase image into multiple scales of spatial frequencies, called intrinsic mode functions (IMF). We constructed a pseudo-SNR (signal-to-noise ratio) with the given IMF component, then the new parameter was applied to the Goldstein filtering method in place of the original fixed value ascertained artificially. The results from simulation and real data show that the performance of the new algorithm outperforms the original Goldstein filter, and its enhanced version, the Baran filter. The quantitative evaluation also shows that modification based on the EMD proposed in our paper minimizes the loss of phase while still reducing the level of noise in an interferogram.
机译:Goldstein滤波器是最常用的合成孔径雷达(SAR)干涉图滤波器之一。这封信提出了一种基于经验模态分解(EMD)方法得出的噪声级来查找Goldestein滤波器的滤波器参数的新方法。用这种方法确定的滤波参数具有确定的物理意义。我们使用了二维经验模式分解(BEMD),将干涉相图像的特征提取到多个尺度的空间频率中,称为固有模式函数(IMF)。我们使用给定的IMF分量构造了一个伪SNR(信噪比),然后将新参数代替了人工确定的原始固定值,应用于Goldstein滤波方法。从仿真和实际数据得出的结果表明,新算法的性能优于原始的Goldstein滤波器及其增强版本的Baran滤波器。定量评估还表明,基于本文提出的EMD进行的修改可以最大程度地减少相位损失,同时仍可以降低干涉图中的噪声水平。

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