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Speckle filtering and coherence estimation of polarimetric SAR interferometry data for forest applications

机译:森林应用极化SAR干涉测量数据的斑点滤波和相干估计

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摘要

Recently, polarimetric synthetic aperture radar (SAR) interferometry has generated much interest for forest applications. Forest heights and ground topography can be extracted based on interferometric coherence using a random volume over ground coherent mixture model. The coherence estimation is of paramount importance for the accuracy of forest height estimation. The coherence (or correlation coefficient) is a statistical average of neighboring pixels of similar scattering characteristics. The commonly used algorithm is the boxcar filter, which has the deficiency of indiscriminate averaging of neighboring pixels. The result is that coherence values are lower than they should be. In this paper, we propose a new algorithm to improve the accuracy in the coherence estimation based on speckle filtering of the 6/spl times/6 polarimetric interferometry matrix. Simulated images are used to verify the effectiveness of this adaptive algorithm. German Aerospace Center (DLR) L-Band E-SAR data are applied to demonstrate the improved accuracy in coherence and in forest height estimation.
机译:最近,极化合成孔径雷达(SAR)干涉仪引起了森林应用的极大兴趣。可以基于干涉相干性,使用地面相干混合模型上的随机体积来提取森林高度和地面地形。相干估计对于森林高度估计的准确性至关重要。相干性(或相关系数)是具有相似散射特性的相邻像素的统计平均值。常用的算法是Boxcar滤波器,它缺乏对相邻像素进行随意平均的缺点。结果是相干值低于应有的值。在本文中,我们提出了一种基于6 / spl次/ 6偏振干涉法矩阵的斑点滤波来提高相干估计精度的新算法。仿真图像用于验证该自适应算法的有效性。德国航空航天中心(DLR)的L波段E-SAR数据用于证明相干性和森林高度估计的准确性提高。

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