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A unified approach to change analysis and despeckle of multitemporal ERS-1

机译:统一的多时间ERS-1变化分析和去斑方法

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Local-statistics speckle filtering has been extended to multitemporal SAR data by exploiting the space-varying temporal correlation of speckle noise between two images of the same scene taken at different tiems. A nonlinear transformation aimed at decorrelating the data across time while retaining the multiplicative noise model is defined from the pixel geometric mean and ratio of a couple of spatially overlapped observations. The average temporal correlation coefficient is estiamted from the scatter-plots of local standard deviation to local mean calculated on transformed couples of images, through an unsupervised clustering procedure. The images are filtered in the transformed domain and reversely transformed to yield despeckled observation in which seaonal changes are preserved, or even highlighted, and texture analysis is expedited. Tests on SAR images from repeat-pass ERS-1 are presented to corroborate the underlying assumptions.
机译:通过利用同一场景在不同结点处拍摄的两个场景之间的斑点噪声随时间变化的时空相关性,局部统计斑点滤波已扩展到多时间SAR数据。根据像素几何平均值和几个空间重叠的观测值的比率,定义了一个非线性变换,旨在跨时间对数据进行解相关,同时保留乘法噪声模型。通过无监督聚类过程,从局部标准偏差到局部均值的散点图估计了平均时间相关系数,该散点图是在变换后的图像对上计算得到的。图像在转换后的域中进行过滤,然后反向转换以产生无斑点的观察结果,其中保留或什至突出显示季节性变化,并加快纹理分析。提出了对来自重复通过ERS-1的SAR图像的测试,以证实基本假设。

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