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A Robust Affine Invariant Point Extraction Algorithm for Image Registration

机译:用于图像配准的鲁棒仿射不变点提取算法

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Affine invariance is a critical property for control points in point based image registration. In this paper, a highly robust affine invariant point extraction algorithm is proposed. For a pair of two shapes, they are handled as the longitudinal segments parallel to the line connecting centroids of two shapes, and then some longitudinal segments with the uniformly sampled interception on y-axis are adopted to calculate a descriptor which reflects the relative attitude between two shapes. In the meantime, the intersection points of sampled longitudinal segments and the contours of the shapes are taken as control points. After the corresponding shapes are found based on minimal distance between descriptors, the affine invariant control points from corresponding shapes are then used to estimate the transformation between images. Experimental results on synthetic and real data show that, our algorithm outperforms SC with higher precision.
机译:仿射不变性是基于点的图像配准中控制点的关键属性。本文提出了一种高度鲁棒的仿射不变点提取算法。对于一对两个形状,将它们作为与连接两个形状的质心的线平行的纵向线段进行处理,然后采用一些在y轴上具有均匀采样截距的纵向线段来计算描述子之间的相对姿态的描述符。两种形状。同时,将采样的纵向节段的交点和形状的轮廓作为控制点。在基于描述符之间的最小距离找到相应的形状之后,然后使用来自相应形状的仿射不变控制点来估计图像之间的变换。综合和真实数据的实验结果表明,我们的算法在精度上优于SC。

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