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Optimum morphological filtering to remove speckle noise from SAR images

机译:最佳形态过滤以消除SAR图像中的斑点噪声

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Abstract: Speckle together with usual additive noises cause severe degradation of Synthetic Aperture Radar (SAR) images. Spatial averaging is the commonly used technique for removing speckle noise. However, this technique reduces image resolution appreciably and as a result the image is blurred. Morphological closings and openings offer a better way to reduce the speckle noise without blurring the image. In this paper we have introduced new operators to remove dark or bright spots which can not fit inside the boundary of a convex 2D structuring element. Any region that can not fit inside the boundary is preserved. A multiscale filtering process is required to remove noise spots of different sizes. While using samples images for processing at higher scales, a preprocessing is required before the sampling to retain important image features that may be lost in sampling. Finally, the paper presents an algorithm that ensures that no distortion is introduced in the final image as a result of intermediate sampling and reconstruction steps. We have used this algorithm to filter the noise in SAR images obtained at different wavelengths. The present technique is remarkably more successful in restoring complex image details than either spatial averaging or morphological filtering using median operators.!8
机译:摘要:斑点和常见的附加噪声会导致合成孔径雷达(SAR)图像严重退化。空间平均是去除斑点噪声的常用技术。但是,该技术明显降低了图像分辨率,结果图像变得模糊。形态上的闭合和开口提供了一种更好的方式来减少斑点噪声而不会使图像模糊。在本文中,我们引入了新的算子,以去除无法容纳在凸面二维结构元素边界内的暗点或亮点。保留不适合边界的任何区域。需要多尺度滤波过程以去除不同大小的噪声点。在使用样本图像进行更高比例的处理时,需要在采样之前进行预处理,以保留可能在采样中丢失的重要图像特征。最后,本文提出了一种算法,该算法可确保由于中间采样和重构步骤而不会在最终图像中引入失真。我们已经使用此算法过滤了在不同波长获得的SAR图像中的噪声。与使用平均算子进行空间平均或形态滤波相比,本技术在恢复复杂图像细节方面非常成功!8

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