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Novel Coplanar Line-Points Invariants for Robust Line Matching Across Views

机译:新颖的共面线点不变量,用于跨视图的稳健线匹配

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Robust line matching across wide-baseline views is a challenging task in computer vision. Most of the existing methods highly depend on the positional relationships between lines and the associated textures. These cues axe sensitive to various image transformations especially perspective deformations, and likely to fail in the scenarios where few texture present. In this paper, we construct a new coplanar line-points invariant upon a newly developed projective invariant, named characteristic number, and propose a line matching algorithm using the invariant. The construction of this invariant uses intersections of coplanar lines instead of endpoints, rendering more robust matching across views. Additionally, a series of line-points invariant values generate the similarity metric for matching that is less affected by mismatched interest points than traditional approaches. Accurate homography recovered from the invariant allows all lines, even those without interest points around them, a chance to be matched. Extensive comparisons with the state-of-the-art validate the matching accuracy and robustness of the proposed method to projective transformations. The method also performs well for image pairs with few textures and similar textures.
机译:在广泛的基线视图之间进行可靠的线匹配是计算机视觉中的一项艰巨任务。大多数现有方法高度依赖于线条与关联纹理之间的位置关系。这些提示对各种图像变换(尤其是透视变形)敏感,并且在纹理很少的情况下可能会失败。在本文中,我们基于新开发的射影不变量构造一个新的共面线点不变量,称为特征数,并提出了使用该不变量的线匹配算法。该不变式的构造使用共面线的交点而不是端点,从而在视图之间呈现出更强大的匹配。另外,一系列线点不变值生成用于匹配的相似性度量,与传统方法相比,该相似性度量受不匹配的兴趣点的影响较小。从不变式中获得的准确单应性可以使所有线条,甚至那些周围没有兴趣点的线条都有被匹配的机会。与最新技术进行的广泛比较验证了所提出方法与投影变换的匹配精度和鲁棒性。该方法对于具有很少纹理和相似纹理的图像对也表现良好。

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