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Automatic Image Registration Through Image Segmentation and SIFT

机译:通过图像分割和SIFT自动进行图像配准

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摘要

Automatic image registration (AIR) is still a present challenge for the remote sensing community. Although a wide variety of AIR methods have been proposed in the last few years, there are several drawbacks which avoid their common use in practice. The recently proposed scale invariant feature transform (SIFT) approach has already revealed to be a powerful tool for the obtention of tie points in general image processing tasks, but it has a limited performance when directly applied to remote sensing images. In this paper, a new AIR method is proposed, based on the combination of image segmentation and SIFT, complemented by a robust procedure of outlier removal. This combination allows for an accurate obtention of tie points for a pair of remote sensing images, being a powerful scheme for AIR. Both synthetic and real data have been considered in this work for the evaluation of the proposed methodology, comprising medium and high spatial resolution images, and single-band, multispectral, and hyperspectral images. A set of measures which allow for an objective evaluation of the geometric correction process quality has been used. The proposed methodology allows for a fully automatic registration of pairs of remote sensing images, leading to a subpixel accuracy for the whole considered data set. Furthermore, it is able to account for differences in spectral content, rotation, scale, translation, different viewpoint, and change in illumination.
机译:对于遥感界来说,自动图像配准(AIR)仍然是当前的挑战。尽管最近几年已经提出了各种各样的AIR方法,但是存在一些缺点,这些缺点避免了它们在实践中的普遍使用。最近提出的尺度不变特征变换(SIFT)方法已经证明是在一般图像处理任务中获得联络点的强大工具,但是当直接应用于遥感图像时,其性能有限。本文提出了一种新的AIR方法,该方法基于图像分割和SIFT的结合,并辅以鲁棒的离群值去除程序。这种组合可以准确获取一对遥感影像的联络点,这是AIR的强大方案。在这项工作中已经考虑了合成数据和真实数据,以评估所提出的方法,包括中,高空间分辨率图像以及单波段,多光谱和高光谱图像。已经使用了一组可以客观评估几何校正过程质量的措施。所提出的方法允许对成对的遥感图像进行全自动配准,从而为整个考虑的数据集提供亚像素精度。此外,它能够解决光谱含量,旋转,比例,平移,不同视点和照明变化方面的差异。

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