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An Approach to Fine Coregistration Between Very High Resolution Multispectral Images Based on Registration Noise Distribution

机译:基于配准噪声分布的超高分辨率多光谱图像之间精细配准的方法

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Even after applying effective coregistration methods, multitemporal images are likely to show a residual misalignment, which is referred to as registration noise (RN). This is because coregistration methods from the literature cannot fully handle the local dissimilarities induced by differences in the acquisition conditions (e.g., the stability of the acquisition platform, the off-nadir angle of the sensor, the structure of the considered scene, etc.). This paper addresses the problem of reducing such a residual misalignment by proposing a fine automatic coregistration approach for very high resolution (VHR) multispectral images. The proposed method takes advantage of the properties of the residual misalignment itself. To this end, RN is first extracted in the change vector analysis (CVA) polar domain according to the behaviors of the specific multitemporal images considered. Then, a local analysis of RN pixels (i.e., those showing residual misalignment) is conducted for automatically extracting control points (CPs) and matching them according to their estimated displacement. Matched CPs are used for generating a deformation map by interpolation. Finally, one VHR image is warped to the coordinates of the other through a deformation map. Experiments carried out on simulated and real multitemporal VHR images confirm the effectiveness of the proposed approach.
机译:即使在应用了有效的配准方法之后,多时相图像也可能会显示出残留的未对准现象,这被称为配准噪声(RN)。这是因为文献中的配准方法无法完全处理由于采集条件的差异(例如,采集平台的稳定性,传感器的下底角,所考虑场景的结构等)而引起的局部差异。 。本文提出了一种针对超高分辨率(VHR)多光谱图像的精细自动配准方法,以减少此类残留配准问题。所提出的方法利用了残余未对准本身的特性。为此,首先根据所考虑的特定多时相图像的行为在变化矢量分析(CVA)极性域中提取RN。然后,对RN像素(即,显示残留未对准的那些像素)进行局部分析,以自动提取控制点(CP)并根据其估计的位移来匹配它们。匹配的CP用于通过插值生成变形图。最后,通过变形图将一个VHR图像扭曲到另一个VHR图像的坐标。在模拟和真实的多时间VHR图像上进行的实验证实了该方法的有效性。

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