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Combination of Correlated Phase Error Correction and Sparsity Models for SAR

机译:SAR相关相位误差校正和稀疏模型的组合

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Direct image formation in synthetic aperture radar (SAR) involves processing of data modeled as Fourier coefficients that lie on a polar grid. Often in such data acquisition processes, imperfections in the data cannot simply be modeled as additive or even multiplicative noise errors. In the case of SAR, errors in the data can exist due to the imprecise estimation of the round trip wave propagation time, which manifests as linearly varying phase errors in the antenna data across the pulses. To correct for these errors, we propose a phase correction scheme that relies on both the on smoothness characteristics of the image and the phase corrections associated with neighboring pulses, which are possibly highly correlated due to the nature of the data offsetting. Our model takes advantage of these correlations and smoothness characteristics simultaneously for a new autofocusing approach. Our algorithm for the proposed model alternates between approximation of image features and phase error estimates according to the model.
机译:合成孔径雷达(SAR)中的直接图像形成涉及将数据建模的数据用于位于极性网格上的傅立叶系数。通常在这样的数据采集过程中,数据中的缺陷不能简单地被建模为附加甚至乘法噪声错误。在SAR的情况下,由于往返波传播时间的不精确估计,可以存在数据中的误差,这在脉冲横跨脉冲中显示在天线数据中的线性变化的相位误差。为了校正这些错误,我们提出了一种相位校正方案,其依赖于图像的平滑度特性和与相邻脉冲相关联的相位校正,这可能由于数据偏移的性质而可能高度相关。我们的模型同时利用了这些相关性和平滑度特性,以实现新的自动聚焦方法。我们的算法用于所提出的模型在根据模型的图像特征和相位误差估计的近似之间交替。

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