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Efficient and Scalable 4th-Order Match Propagation

机译:高效且可扩展的四阶匹配传播

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We propose a robust method to match image feature points taking into account geometric consistency. It is a careful adaptation of the match propagation principle to 4th-order geometric constraints (match quadruple consistency). With our method, a set of matches is explained by a network of locally-similar affinities. This approach is useful when simple descriptor-based matching strategies fail, in particular for highly ambiguous data, e.g., with repetitive patterns or where texture is lacking. As it scales easily to hundreds of thousands of matches, it is also useful when denser point distributions are sought, e.g., for high-precision rigid model estimation. Experiments show that our method is competitive (efficient, scalable, accurate, robust) against state-of-the-art methods in deformable object matching, camera calibration and pattern detection.
机译:考虑到几何一致性,我们提出了一种鲁棒的方法来匹配图像特征点。这是匹配传播原理对四阶几何约束(匹配四重一致性)的精心调整。使用我们的方法,一组匹配项由本地相似性相似性网络解释。当基于简单描述符的匹配策略失败时,尤其是对于高度含糊的数据(例如具有重复图案或缺少纹理的数据),这种方法很有用。由于它可以轻松缩放至数十万个匹配项,因此在寻求更密集的点分布(例如用于高精度刚性模型估计)时也很有用。实验表明,我们的方法在可变形对象匹配,相机校准和模式检测方面与最新技术相比具有竞争力(高效,可扩展,准确,鲁棒)。

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