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Augmenting analytic SFM filters with frame-to-frame features

机译:通过帧到帧功能增强分析SFM滤波器

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In Structure From Motion (SFM), image features are matched in either an extended number of frames or only in pairs of consecutive frames. Traditionally, SFM filters have been applied using only one of the two matching paradigms, with the Long Range (LR) feature technique being more popular because of the fact that features that are matched across multiple frames provide stronger constraints on structure and motion. Nevertheless, Frame-to-Frame (F2F) features possess the desirable property of being abundant because of the large similarity that exists between closely spaced frames. Although the use of such features has been limited mostly to the determination of inter-frame camera motion, we argue that significant improvements can be attained in online filter-based SFM by integrating the F2F features into filters that use LR features. The main contributions of this paper are twofold. First, it presents a new method that enables the incorporation of F2F information in any analytical filter in a fashion that requires minimal change to the existing filter. Our results show that by doing so, large increases in accuracy are achieved in both the structure and motion estimates. Second, thanks to mathematical simplifications we realize in the filter, we minimize the computational burden of F2F integration by two orders of magnitude, thereby enabling its real-time implementation. Experimental results on real and simulated data prove the success of the proposed approach.
机译:在“动态结构”(SFM)中,图像特征在扩展的帧数中匹配,或者仅在成对的连续帧中匹配。传统上,仅使用两种匹配范例中的一种来应用SFM滤波器,而长距离(LR)特征技术则更为流行,因为跨多个帧匹配的特征对结构和运动提供了更强的约束。然而,由于紧密间隔的帧之间存在很大的相似性,因此帧到帧(F2F)功能具有丰富的理想特性。尽管此类功能的使用主要限于确定帧间相机的运动,但我们认为通过将F2F功能集成到使用LR功能的滤镜中,可以在基于在线滤镜的SFM中获得显着改进。本文的主要贡献是双重的。首先,它提出了一种新方法,该方法能够以对现有过滤器的更改最少的方式将F2F信息合并到任何分析过滤器中。我们的结果表明,通过这样做,结构和运动估计的准确性均得到了大幅提高。其次,由于我们在滤波器中实现了数学简化,我们将F2F集成的计算负担减少了两个数量级,从而实现了实时实施。真实和模拟数据的实验结果证明了该方法的成功。

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