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DoubleFusion: Real-Time Capture of Human Performances with Inner Body Shapes from a Single Depth Sensor

机译:DoubleFusion:从单个深度传感器实时捕获具有人体形状的人体表演

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We propose DoubleFusion, a new real-time system that combines volumetric dynamic reconstruction with data-driven template fitting to simultaneously reconstruct detailed geometry, non-rigid motion and the inner human body shape from a single depth camera. One of the key contributions of this method is a double layer representation consisting of a complete parametric body shape inside, and a gradually fused outer surface layer. A pre-defined node graph on the body surface parameterizes the non-rigid deformations near the body, and a free-form dynamically changing graph parameterizes the outer surface layer far from the body, which allows more general reconstruction. We further propose a joint motion tracking method based on the double layer representation to enable robust and fast motion tracking performance. Moreover, the inner body shape is optimized online and forced to fit inside the outer surface layer. Overall, our method enables increasingly denoised, detailed and complete surface reconstructions, fast motion tracking performance and plausible inner body shape reconstruction in real-time. In particular, experiments show improved fast motion tracking and loop closure performance on more challenging scenarios.
机译:我们提出DoubleFusion,这是一种新的实时系统,该系统将体积动态重建与数据驱动的模板拟合相结合,可以从单个深度相机同时重建详细的几何形状,非刚性运动和人体内部形状。该方法的主要贡献之一是双层表示,它由内部完整的参数化体形和逐渐融合的外表面层组成。身体表面上的预定义节点图可以对身体附近的非刚性变形进行参数化,而自由形式的动态变化图可以对远离身体的外表面层进行参数化,从而可以进行更一般的重构。我们进一步提出了一种基于双层表示的联合运动跟踪方法,以实现强大而快速的运动跟踪性能。此外,在线优化了车身内部形状,并迫使其适应外表面层内部。总的来说,我们的方法能够实现越来越多的去噪,详细和完整的表面重建,快速运动跟踪性能以及实时的合理的内部形状重建。特别是,实验表明,在更具挑战性的情况下,改进了快速运动跟踪和闭环性能。

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