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Multi-camera Very Wide Baseline Feature Matching Based on View-Adaptive Junction Detection

机译:基于视角自适应结点检测的多机位超宽基线特征匹配

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This paper presents a strategy for solving the feature matching problem in calibrated very wide-baseline camera settings. In this kind of settings, perspective distortion, depth discontinuities and occlusion represent enormous challenges. The proposed strategy addresses them by using geometrical information, specifically by exploiting epipolarconstraints. As a result it provides a sparse number of reliable feature points for which 3D position is accurately recovered. Special features known as junctions are used for robust matching. In particular, a strategy for refinement of junction end-point matching is proposed which enhances usual junction-based approaches. This allows to compute cross-correlation between perfectly aligned plane patches in both images, thus yielding better matching results. Evaluation of experimental results proves the effectiveness of the proposed algorithm in very wide-baseline environments.
机译:本文提出了一种解决方法,用于解决超宽基线校准相机设置中的特征匹配问题。在这种情况下,透视变形,深度不连续和遮挡是巨大的挑战。所提出的策略通过使用几何信息,特别是通过利用对极约束来解决这些问题。结果,它提供了稀疏的可靠特征点,可以针对这些特征点准确地恢复3D位置。称为结的特殊功能用于鲁棒匹配。特别是,提出了一种改进结点端点匹配的策略,该策略增强了通常基于结点的方法。这允许计算两个图像中完全对齐的平面补丁之间的互相关,从而产生更好的匹配结果。实验结果的评估证明了该算法在非常宽的基线环境下的有效性。

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