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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Deformed contour segment matching for multi-source images
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Deformed contour segment matching for multi-source images

机译:用于多源图像的变形轮廓段匹配

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摘要

Robust and accurate multi-source matching is a difficult task due to significant nonlinear radiometric differences, background clutter, and geometric deformation in corresponding regions. Motivated by these existing problems, a discriminating yet robust combined descriptor for multi-source image matching, called deformed contour segment similarity (DCSS), is proposed in this work. First, the proposed DCSS, which is constructed by histogram of the combined contour features rather than the commonly used corner point and gradient, presents the accurate correspondence between image pairs and improves the descriptive ability to radiometric differences. Second, the deformed curve is presented via a finite-dimensional matrix Lie group to determine the similarity metric with an explicit geodesic solution. The geodesic distance, which indicates the nearest distance between curves in fluid space, is defined as the weight coefficient of the constructed histogram to enhance the robustness of the descriptor. The proposed algorithm utilizes the holistic contour information for the scoring and ranking of the shape similarity hypothesis, which can effectively reduce the influence of partially missing contours. Finally, a precise bilateral matching rule is used to perform the matching between the corresponding contour segments. Some experiments are carried out on various infrared-visible image data sets. The results demonstrate that the proposed DCSS achieves more robust and accurate matching performance than many popular multi-source image matching methods.
机译:由于存在显著的非线性辐射差异、背景杂波和相应区域的几何变形,鲁棒和精确的多源匹配是一项困难的任务。基于这些问题,本文提出了一种用于多源图像匹配的具有鉴别能力但鲁棒性强的组合描述符,称为变形轮廓段相似性(DCSS)。首先,所提出的DCSS是由组合轮廓特征的直方图而不是常用的角点和梯度构成的,它呈现了图像对之间的精确对应,并提高了对辐射差异的描述能力。其次,通过有限维矩阵李群给出变形曲线,以确定具有显式测地线解的相似度量。测地距离表示流体空间中曲线之间的最近距离,它被定义为构造的直方图的权重系数,以增强描述符的鲁棒性。该算法利用整体轮廓信息对形状相似性假设进行评分和排序,可以有效地减少部分缺失轮廓的影响。最后,使用精确的双边匹配规则在相应的轮廓段之间进行匹配。在各种红外-可见光图像数据集上进行了一些实验。实验结果表明,与目前流行的多源图像匹配方法相比,该算法具有更高的鲁棒性和精确性。

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