论文标题

使用beta-Diverences从单光子激光雷达对动态场景的强大3D重建

Robust 3D reconstruction of dynamic scenes from single-photon lidar using Beta-divergences

论文作者

Legros, Quentin, Tachella, Julian, Tobin, Rachael, McCarthy, Aongus, Meignen, Sylvain, Buller, Gerald S., Altmann, Yoann, McLaughlin, Stephen, Davies, Michael E.

论文摘要

在本文中,我们提出了一种新算法,用于使用单光子检测器阵列记录的光子到达的时间快速,在线3D重建动态场景。在实际应用中使用单光子激光雷达的3D成像中的主要挑战之一是存在强烈的环境照明,该照明会破坏数据并可能危害信号中峰/表面的检测。这种背景噪声不仅使经典用于3D重建的观察模型复杂化,还使需要迭代方法的估计过程复杂化。在这项工作中,我们考虑了一个新的相似性度量,以实现强大的深度估计,这使我们能够使用一个简单的观察模型和非著作估计程序,同时对背景照明模型的错误指定进行了强大的指定。此选择导致了一个具有计算吸引力的深度估计程序,而没有重大性能的重大降低。这种新的深度估计过程与时空模型相结合,以捕获相邻像素和连续帧之间的自然相关性,以进行动态场景分析。由此产生的在线推理过程是可扩展的,非常适合并行实现。通过模拟和真实的单光子激光镜视频进行的一系列实验证明了该方法的好处,从而可以在极端环境照明条件下观察到的325 m的动态场景分析。

In this paper, we present a new algorithm for fast, online 3D reconstruction of dynamic scenes using times of arrival of photons recorded by single-photon detector arrays. One of the main challenges in 3D imaging using single-photon lidar in practical applications is the presence of strong ambient illumination which corrupts the data and can jeopardize the detection of peaks/surface in the signals. This background noise not only complicates the observation model classically used for 3D reconstruction but also the estimation procedure which requires iterative methods. In this work, we consider a new similarity measure for robust depth estimation, which allows us to use a simple observation model and a non-iterative estimation procedure while being robust to mis-specification of the background illumination model. This choice leads to a computationally attractive depth estimation procedure without significant degradation of the reconstruction performance. This new depth estimation procedure is coupled with a spatio-temporal model to capture the natural correlation between neighboring pixels and successive frames for dynamic scene analysis. The resulting online inference process is scalable and well suited for parallel implementation. The benefits of the proposed method are demonstrated through a series of experiments conducted with simulated and real single-photon lidar videos, allowing the analysis of dynamic scenes at 325 m observed under extreme ambient illumination conditions.

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