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Sliding window bag-of-visual-words for low computational power robotics scene matching

机译:滑动窗口视觉词袋,可实现低计算能力的机器人场景匹配

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In this paper, we introduce a new method, based on a sliding window geometrical extension to Bag-of-Visual-Words (called swBOVW) intended for application to low computational power robots. Benchmarked against RANSAC as a geometric validator to BOVW, three implementations of this technique are presented to improve either the performance or the computational cost. The three implementations are: as a replacement to RANSAC as a geometric validator; as a supplement to RANSAC; and as a replacement to traditional BOVW when the number of images in the database can be reduced. Seeking to utilise some of the geometric information ignored by traditional BOVW, this technique is developed from the use of sub-regions in Spatial Pyramids, and applied to the matching of whole images. This technique is applied in the context of humanoid robotic soccer to the problem of field end symmetry, and provides geometric validation along the horizontal axis of images. When applied, the technique has been able to either halve the cases of unresolved image queries, or halve the computational cost required to achieve comparable results to the benchmark.
机译:在本文中,我们介绍了一种新方法,该方法基于对可视化单词袋(swBOVW)的滑动窗口几何扩展,旨在应用于低计算能力的机器人。以RANSAC作为BOVW的几何验证器作为基准,提出了该技术的三种实现,以提高性能或计算成本。这三种实现是:作为RANSAC的几何验证器的替代;作为RANSAC的补充;当可以减少数据库中的图像数量时,可以替代传统的BOVW。为了利用传统BOVW忽略的一些几何信息,该技术是通过使用空间金字塔中的子区域而开发的,并应用于整个图像的匹配。该技术在类人机器人足球的背景下应用于场端对称性问题,并沿图像的水平轴提供了几何验证。当应用时,该技术能够将未解决的图像查询的情况减半,或者将获得与基准相当的结果所需的计算成本减半。

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