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Accurate Realtime Full-body Motion Capture Using a Single Depth Camera

机译:使用单深度摄像头进行准确的实时全身运动捕捉

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We present a fast, automatic method for accurately capturing fullbody motion data using a single depth camera. At the core of our system lies a realtime registration process that accurately reconstructs 3D human poses from single monocular depth images, even in the case of significant occlusions. The idea is to formulate the registration problem in a Maximum A Posteriori (MAP) framework and iteratively register a 3D articulated human body model with monocular depth cues via linear system solvers. We integrate depth data, silhouette information, full-body geometry, temporal pose priors, and occlusion reasoning into a unified MAP estimation framework. Our 3D tracking process, however, requires manual initialization and recovery from failures. We address this challenge by combining 3D tracking with 3D pose detection. This combination not only automates the whole process but also significantly improves the robustness and accuracy of the system. Our whole algorithm is highly parallel and is therefore easily implemented on a GPU. We demonstrate the power of our approach by capturing a wide range of human movements in real time and achieve state-ofthe- art accuracy in our comparison against alternative systems such as Kinect [2012].
机译:我们提出了一种快速,自动的方法,用于使用单深度相机精确捕获全身运动数据。我们系统的核心在于实时配准过程,即使在发生严重遮挡的情况下,该过程也可以从单眼深度图像中准确地重建3D人体姿势。该想法是在最大后验(MAP)框架中制定配准问题,并通过线性系统求解器以单眼深度提示迭代配准3D铰接人体模型。我们将深度数据,轮廓信息,全身几何形状,时间姿势先验和遮挡推理集成到统一的MAP估计框架中。但是,我们的3D跟踪过程需要手动初始化并从故障中恢复。我们通过将3D跟踪与3D姿态检测相结合来应对这一挑战。这种组合不仅使整个过程自动化,而且还大大提高了系统的鲁棒性和准确性。我们的整个算法是高度并行的,因此很容易在GPU上实现。通过与各种系统(如Kinect [2012])进行比较,我们通过实时捕获各种人体动作来展示我们的方法的力量,并达到了最新的准确性。

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