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Corner-Based Image Alignment using Pyramid Structure with Gradient Vector Similarity

机译:使用具有梯度矢量相似性的金字塔结构的基于角点的图像对齐

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This paper presents a corner-based image alignment algorithm based on the procedures of corner-based template matching and geometric parameter estimation. This algorithm consists of two stages: 1) training phase, and 2) matching phase. In the training phase, a corner detection algorithm is used to extract the corners. These corners are then used to build the pyramid images. In the matching phase, the corners are obtained using the same corner detection algorithm. The similarity measure is then determined by the differences of gradient vector between the corners obtained in the template image and the inspection image, respectively. A parabolic function is further applied to evaluate the geometric relationship between the template and the inspection images. Results show that the corner-based template matching outperforms the original edge-based template matching in efficiency, and both of them are robust against non-liner light changes. The accuracy and precision of the corner-based image alignment are competitive to that of edge-based image alignment under the same environment. In practice, the proposed algorithm demonstrates its precision, efficiency and robustness in image alignment for real world applications.
机译:本文提出了一种基于角点的模板匹配和几何参数估计的基于角点的图像对齐算法。该算法包括两个阶段:1)训练阶段,以及2)匹配阶段。在训练阶段,使用角点检测算法提取角点。然后将这些角用于构建金字塔图像。在匹配阶段,使用相同的角点检测算法获得角点。然后通过分别在模板图像和检查图像中获得的角之间的梯度矢量的差来确定相似性度量。还使用抛物线函数来评估模板和检查图像之间的几何关系。结果表明,基于拐角的模板匹配在效率上胜于原始的基于边缘的模板匹配,并且两者都对非线性光线变化具有鲁棒性。在相同环境下,基于角点的图像对齐方式的精度和精确度与基于边缘的图像对齐方式的竞争性相当。在实践中,所提出的算法证明了其在实际应用中的图像对准中的精度,效率和鲁棒性。

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