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VocMatch: Efficient Multiview Correspondence for Structure from Motion

机译:VOCMATCH:从运动中有效的多视图对应

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Feature matching between pairs of images is a main bottleneck of structure-from-motion computation from large, unordered image sets. We propose an efficient way to establish point correspondences between all pairs of images in a dataset, without having to test each individual pair. The principal message of this paper is that, given a sufficiently large visual vocabulary, feature matching can be cast as image indexing, subject to the additional constraints that index words must be rare in the database and unique in each image. We demonstrate that the proposed matching method, in conjunction with a standard inverted file, is 2-3 orders of magnitude faster than conventional pairwise matching. The proposed vocabulary-based matching has been integrated into a standard SfM pipeline, and delivers results similar to those of the conventional method in much less time.
机译:图像对之间的特征匹配是来自大型无序图像集的结构 - 从运动计算的主要瓶颈。 我们提出了一种有效的方法来建立数据集中所有图像对之间的点对应关系,而无需测试每个单独的对。 本文的主要消息是,给定足够大的视觉词汇表,特征匹配可以作为图像索引来投射,但受到索引词必须在数据库中罕见并且在每个图像中唯一的约束。 我们证明,该匹配方法与标准反相文件相结合,比传统成对匹配快2-3个数量级。 已经将所提出的词汇基匹配集成到标准的SFM管道中,并在更少的时间内将结果类似于传统方法的结果。

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