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Automated Photogrammetric Image Matching with Sift Algorithm and Delaunay Triangulation

机译:基于sift算法和Delaunay三角剖分的自动摄影测量图像匹配

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摘要

An algorithm for image matching of multi-sensor and multi-temporal satellite images is developed. The method is based on the SIFT feature detector proposed by Lowe in (Lowe, 1999). First, SIFT feature points are detected independently in two images (reference and sensed image). The features detected are invariant to image rotations, translations, scaling and also to changes in illumination, brightness and 3-dimensional viewpoint. Afterwards, each feature of the reference image is matched with one in the sensed image if, and only if, the distance between them multiplied by a threshold is shorter than the distances between the point and all the other points in the sensed image. Then, the matched features are used to compute the parameters of the homography that transforms the coordinate system of the sensed image to the coordinate system of the reference image. The Delaunay triangulations of each feature set for each image are computed. The isomorphism of the Delaunay triangulations is determined to guarantee the quality of the image matching. The algorithm is implemented in Matlab and tested on World-View 2, SPOT6 and TerraSAR-X image patches.
机译:提出了一种多传感器多时相卫星图像的图像匹配算法。该方法基于Lowe in(Lowe,1999)提出的SIFT特征检测器。首先,在两个图像(参考图像和感测图像)中独立检测SIFT特征点。检测到的特征不随图像旋转,平移,缩放以及照明,亮度和3维视点的变化而变化。之后,当且仅当参考图像的每个特征之间的距离乘以阈值短于该点与感测图像中的所有其他点之间的距离时,才将参考图像的每个特征与感测图像中的一个特征进行匹配。然后,使用匹配的特征来计算单应性的参数,从而将感测图像的坐标系转换为参考图像的坐标系。计算每个图像的每个特征集的Delaunay三角剖分。确定Delaunay三角剖分的同构性以确保图像匹配的质量。该算法在Matlab中实现,并在World-View 2,SPOT6和TerraSAR-X图像补丁上进行了测试。

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