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Multi-spectral remote sensing image registration via spatial relationship analysis on SIFT keypoints

机译:通过SIFT关键点的空间关系分析进行多光谱遥感影像配准

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摘要

Multi-sensor image registration is a challenging task in remote sensing. Considering the fact that multi-sensor devices capture the images at different times, multi-spectral image registration is necessary for data fusion of the images. Several conventional methods for image registration suffer from poor performance due to their sensitivity to scale and intensity variation. The scale invariant feature transform (SIFT) is widely used for image registration and object recognition to address these problems. However, directly applying SIFT to remote sensing image registration often results in a very large number of feature points or keypoints but a small number of matching points with a high false alarm rate. We argue that this is due to the fact that spatial information is not considered during the SIFT-based matching process. This paper proposes a method to improve SIFT-based matching by taking advantage of neighborhood information. The proposed method generates more correct matching points as the relative structure in different remote sensing images are almost static.
机译:在遥感中,多传感器图像配准是一项艰巨的任务。考虑到多传感器设备在不同时间捕获图像这一事实,多光谱图像配准对于图像的数据融合是必要的。几种用于图像配准的常规方法由于它们对规模和强度变化的敏感性而遭受不良的性能。尺度不变特征变换(SIFT)被广泛用于图像配准和对象识别,以解决这些问题。但是,直接将SIFT应用于遥感图像配准通常会导致大量特征点或关键点,但会导致少量匹配点且误报率很高。我们认为这是由于以下事实:在基于SIFT的匹配过程中未考虑空间信息。本文提出了一种利用邻域信息来改善基于SIFT的匹配的方法。由于不同遥感图像中的相对结构几乎是静态的,因此所提出的方法会生成更多正确的匹配点。

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