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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Comprehensive Use of Curvature for Robust and Accurate Online Surface Reconstruction
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Comprehensive Use of Curvature for Robust and Accurate Online Surface Reconstruction

机译:综合利用曲率进行可靠,精确的在线曲面重建

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摘要

Interactive real-time scene acquisition from hand-held depth cameras has recently developed much momentum, enabling applications in ad-hoc object acquisition, augmented reality and other fields. A key challenge to online reconstruction remains error accumulation in the reconstructed camera trajectory, due to drift-inducing instabilities in the range scan alignments of the underlying iterative-closest-point (ICP) algorithm. Various strategies have been proposed to mitigate that drift, including SIFT-based pre-alignment, color-based weighting of ICP pairs, stronger weighting of edge features, and so on. In our work, we focus on surface curvature as a feature that is detectable on range scans alone and hence does not depend on accurate multi-sensor alignment. In contrast to previous work that took curvature into consideration, however, we treat curvature as an independent quantity that we consistently incorporate into every stage of the real-time reconstruction pipeline, including densely curvature-weighted ICP, range image fusion, local surface reconstruction, and rendering. Using multiple benchmark sequences, and in direct comparison to other state-of-the-art online acquisition systems, we show that our approach significantly reduces drift, both when analyzing individual pipeline stages in isolation, as well as seen across the online reconstruction pipeline as a whole.
机译:手持式深度摄像机的交互式实时场景采集近来发展迅猛,可用于临时对象采集,增强现实和其他领域。由于底层迭代最近点(ICP)算法的范围扫描路线中的漂移导致不稳定性,在线重建的关键挑战仍然是重建相机轨迹中的误差累积。已经提出了各种缓解该漂移的策略,包括基于SIFT的预对准,基于颜色的ICP对加权,更强的边缘特征加权等等。在我们的工作中,我们将重点放在表面曲率这一功能上,它仅在范围扫描中即可检测到,因此不依赖于精确的多传感器对齐。与之前考虑到曲率的工作相比,我们将曲率视为独立的量,我们始终将其纳入实时重建管线的每个阶段,包括密集的曲率加权ICP,距离图像融合,局部表面重建,和渲染。通过使用多个基准序列,并与其他最新的在线采集系统进行直接比较,我们证明了我们的方法显着减少了漂移,无论是在单独分析各个管线阶段时,还是在整个在线重建管线中,整个。

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