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An Improved InSAR Image Co-Registration Method for Pairs with Relatively Big Distortions or Large Incoherent Areas

机译:具有较大畸变或较大非相干区域的对的改进InSAR图像配准方法

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Co-registration is one of the most important steps in interferometric synthetic aperture radar (InSAR) data processing. The standard offset-measurement method based on cross-correlating uniformly distributed patches takes no account of specific geometric transformation between images or characteristics of ground scatterers. Hence, it is inefficient and difficult to obtain satisfying co-registration results for image pairs with relatively big distortion or large incoherent areas. Given this, an improved co-registration strategy is proposed in this paper which takes both the geometric features and image content into consideration. Firstly, some geometric transformations including scale, flip, rotation, and shear between images were eliminated based on the geometrical information, and the initial co-registration polynomial was obtained. Then the registration points were automatically detected by integrating the signal-to-clutter-ratio (SCR) thresholds and the amplitude information, and a further co-registration process was performed to refine the polynomial. Several comparison experiments were carried out using 2 TerraSAR-X data from the Hong Kong airport and 21 PALSAR data from the Donghai Bridge. Experiment results demonstrate that the proposed method brings accuracy and efficiency improvements for co-registration and processing abilities in the cases of big distortion between images or large incoherent areas in the images. For most co-registrations, the proposed method can enhance the reliability and applicability of co-registration and thus promote the automation to a higher level.
机译:共配准是干涉式合成孔径雷达(InSAR)数据处理中最重要的步骤之一。基于互相关均匀分布斑块的标准偏移测量方法没有考虑图像之间或地面散射体特征之间的特定几何变换。因此,对于具有相对较大的失真或较大的非相干区域的图像对来说,获得令人满意的共配准结果是低效率的并且困难的。鉴于此,本文提出了一种改进的共配准策略,该策略同时考虑了几何特征和图像内容。首先,基于几何信息消除了图像之间的比例,翻转,旋转和剪切等几何变换,并获得了初始共配准多项式。然后,通过整合信噪比(SCR)阈值和幅度信息自动检测配准点,然后执行进一步的配准过程以细化多项式。使用来自香港机场的2个TerraSAR-X数据和来自东海大桥的21个PALSAR数据进行了一些比较实验。实验结果表明,该方法在图像之间存在较大的畸变或较大的图像不相干区域时,可以提高配准和处理能力的准确性和效率。对于大多数共同注册,该方法可以提高共同注册的可靠性和适用性,从而将自动化提升到更高的水平。

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