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SAR Image Registration Using Phase Congruency and Nonlinear Diffusion-Based SIFT

机译:基于相位一致性和基于非线性扩散的SIFT的SAR图像配准

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摘要

The scale-invariant feature transform (SIFT) algorithm has been widely applied to optical image registration. However, mostly because of multiplicative speckle noise, SIFT has a limited performance when directly applied to synthetic aperture radar (SAR) image. In this letter, a novel SAR image registration method is proposed, which is based on the combination of SIFT, nonlinear diffusion, and phase congruency. In our proposed algorithm, the multiscale representation of a SAR image is generated by nonlinear diffusion, since it better preserves edges in the image as opposed to Gaussian smoothing, which is used in the original SIFT. To reduce the influence of multiplicative speckle noise, the ratio of exponential weighted average operator is used to compute the gradient information in the construction of nonlinear diffusion scale space. Moreover, phase congruency information is utilized to remove the erroneous keypoints within the initial keypoints. Experimental results on multipolarization, multiband, and multitemporal SAR images indicate that our algorithm can improve the match performance compared to the SIFT-based method, which leads to a subpixel accuracy for all the tested image pairs.
机译:尺度不变特征变换(SIFT)算法已广泛应用于光学图像配准。但是,主要是由于斑点噪声倍增,SIFT在直接应用于合成孔径雷达(SAR)图像时性能有限。在本文中,提出了一种新的SAR图像配准方法,该方法基于SIFT,非线性扩散和相位一致性的组合。在我们提出的算法中,SAR图像的多尺度表示是通过非线性扩散生成的,因为与原始SIFT中使用的高斯平滑相比,它可以更好地保留图像中的边缘。为了减少乘法斑点噪声的影响,在非线性扩散尺度空间的构造中,使用指数加权平均算子的比率来计算梯度信息。此外,相位一致性信息被用于去除初始关键点内的错误关键点。在多极化,多波段和多时间SAR图像上的实验结果表明,与基于SIFT的方法相比,我们的算法可以提高匹配性能,从而为所有测试图像对提供亚像素精度。

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