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Image registration and object recognition using affine invariants and convex hulls

机译:使用仿射不变式和凸包的图像配准和目标识别

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This paper is concerned with the problem of feature point registration and scene recognition from images under weak perspective transformations which are well approximated by affine transformations and under possible occlusion and/or appearance of new objects. It presents a set of local absolute affine invariants derived from the convex hull of scattered feature points (e.g., fiducial or marking points, corner points, inflection points, etc.) extracted from the image. The affine invariants are constructed from the areas of the triangles formed by connecting three vertices among a set of four consecutive vertices (quadruplets) of the convex hull, and hence do make direct use of the area invariance property associated with the affine transformation. Because they are locally constructed, they are very well suited to handle the occlusion and/or appearance of new objects. These invariants are used to establish the correspondences between the convex hull vertices of a test image with a reference image in order to undo the affine transformation between them. A point matching approach for recognition follows this. The time complexity for registering L feature points on the test image with N feature points of the reference image is of order O(N/spl times/L). The method has been tested on real indoor and outdoor images and performs well.
机译:本文关注的问题是,在弱视点变换(通过仿射变换很好地逼近)和可能的新对象遮挡和/或出现的情况下,从图像进行特征点配准和场景识别的问题。它呈现了一组从图像中提取的散乱特征点(例如基准点或标记点,拐角点,拐点等)的凸包导出的一组局部绝对仿射不变量。仿射不变式是通过将凸包的四个连续顶点(四倍体)的集合中的三个顶点连接起来而形成的三角形的面积构成的,因此,它们确实直接利用了与仿射变换相关的面积不变性。由于它们是本地构造的,因此非常适合处理新对象的遮挡和/或外观。这些不变量用于建立测试图像的凸包壳顶点与参考图像之间的对应关系,以消除它们之间的仿射变换。用于识别的点匹配方法遵循此方法。将测试图像上的L个特征点与参考图像的N个特征点配准的时间复杂度约为O(N / spl times / L)。该方法已在真实的室内和室外图像上进行了测试,性能良好。

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