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Walking on Thin Air: Environment-Free Physics-Based Markerless Motion Capture

机译:走在薄空气中:无环境的物理学无可比度运动捕获

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We propose a generative approach to physics-based motion capture. Unlike prior attempts to incorporate physics into tracking that assume the subject and scene geometry are calibrated and known a priori, our approach is automatic and online. This distinction is important since calibration of the environment is often difficult, especially for motions with props, uneven surfaces, or outdoor scenes. The use of physics in this context provides a natural framework to reason about contact and the plausibility of recovered motions. We propose a fast data-driven parametric body model, based on linear-blend skinning, which decouples deformations due to pose, anthropometrics and body shape. Pose (and shape) parameters are estimated using robust ICP optimization with physics-based dynamic priors that incorporate contact. Contact is estimated from torque trajectories and predictions of which contact points were active. To our knowledge, this is the first approach to take physics into account without explicit a priori knowledge of the environment or body dimensions. We demonstrate effective tracking from a noisy single depth camera, improving on state-of-the-art results quantitatively and producing better qualitative results, reducing visual artifacts like foot-skate and jitter.
机译:我们提出了一个生成方法基于物理的动作捕捉。不同于先前尝试纳入物理学到追踪该承担的主题和场景的几何形状进行校准,并事先知道的,我们的做法是自动和在线。这种区别很重要,因为环境的校准往往是困难的,尤其是对于道具,不平整的表面,或室外场景的运动。在这种情况下,使用物理提供了推理的接触和恢复运动的可信度自然的框架。我们提出了一个快速的数据驱动的参数化人体模型,基于线性混合蒙皮,该解耦由于姿势,人体测量学和身材变形。姿态(和形状)参数是使用与基于物理的动态先验掺入接触健壮ICP优化估计。联系从转矩轨迹和预测它的接触点是活跃的估计。据我们所知,这是采取物理考虑未对环境或人体尺寸的明确先验知识的第一种方法。我们证明从一个嘈杂的单个深度相机有效跟踪,定量地改善通状态的最先进的结果,并产生更好的定性结果,减少视觉伪影像尺滑冰和抖动。

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