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An Efficient and Adaptive Approach for Noise Filtering of SAR Interferometric Phase Images

机译:SAR干涉相位图像噪声的高效自适应滤波方法。

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This letter presents a new efficient phase filtering algorithm for synthetic aperture radar interferometric phase images. Based on the additive noise model, we assume that the phase without noise is composed of principal phase components and residual phase components. A new two-step adaptive filtering algorithm based on this assumption is then developed. First, the principal phase components are adaptively estimated using the frequency spectrum with an adaptive bound and removed from the original noisy phase; thus, a residual noisy phase is obtained. Second, spatial filtering is carried out on this residual noisy phase image using four directional masks. The filter equals three other common filters when three different special bound parameters are set accordingly. This algorithm is effective, particularly for the interferometric phase images with tightly packed fringes or low coherence. Numerical results obtained with synthetic and real data show a significant improvement with respect to other conventional filtering algorithms in some situations of the proposed approach.
机译:这封信提出了一种用于合成孔径雷达干涉相位图像的新型高效相位滤波算法。基于加性噪声模型,我们假设无噪声的相位由主相位分量和剩余相位分量组成。然后,基于此假设,开发了一种新的两步自适应滤波算法。首先,使用具有自适应范围的频谱对主相位分量进行自适应估计,并将其从原始噪声相位中去除。因此,获得了残留的噪声相位。第二,使用四个定向掩模对该残留的噪声相位图像进行空间滤波。当相应地设置了三个不同的特殊绑定参数时,该过滤器等于其他三个公共过滤器。该算法特别适用于条纹紧密堆积或相干性低的干涉式相位图像。在所提出方法的某些情况下,使用合成数据和实际数据获得的数值结果显示出相对于其他常规滤波算法的显着改进。

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