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Quad-tree Based Finite Volume Method for Diffusion Equations with Application to SAR Imaged Filtering

机译:基于四叉树的扩散方程有限体积法在SAR成像滤波中的应用

摘要

summary:In this paper we present a method to remove the noise by applying the Perona Malik algorithm working on an irregular computational grid. This grid is obtained with a quad-tree technique and is adapted to the image intensities—pixels with similar intensities can form large elements. We apply this algorithm to remove the speckle noise present in SAR images, i.e., images obtained by radars with a synthetic aperture enabling to increase their resolution in an electronic way. The presence of the speckle in an image degrades the quality of the image and makes interpretation of features more difficult. Our purpose is to remove this noise to such a degree that the edge detection or landscape elements detection can be performed with relatively simple tools. The progress of smoothing leads to grids with significantly less number of elements than the original number of pixels. The results are compared with measurements performed on an inspected area of interest. At the end we show the possibility to modify the scheme to the adaptive mean curvature flow filter which can be used to smooth the boundaries.
机译:摘要:在本文中,我们提出了一种通过在不规则计算网格上应用Perona Malik算法来消除噪声的方法。该网格是通过四叉树技术获得的,并且适合于图像强度-具有相似强度的像素可以形成较大的元素。我们应用此算法来消除SAR图像中存在的斑点噪声,即由具有合成孔径的雷达获得的图像可以以电子方式提高其分辨率。图像中斑点的存在降低了图像的质量,并使特征的解释更加困难。我们的目的是将噪声消除到可以使用相对简单的工具执行边缘检测或景观元素检测的程度。平滑的进展导致网格的元素数量明显少于原始像素数量。将结果与在检查的感兴趣区域上执行的测量进行比较。最后,我们展示了将方案修改为可用于平滑边界的自适应平均曲率流量滤波器的可能性。

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