2022
DOI: 10.48550/arxiv.2203.14065
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Neural MoCon: Neural Motion Control for Physically Plausible Human Motion Capture

Abstract: Due to the visual ambiguity, purely kinematic formulations on monocular human motion capture are often physically incorrect, biomechanically implausible, and can not reconstruct accurate interactions. In this work, we focus on exploiting the high-precision and non-differentiable physics simulator to incorporate dynamical constraints in motion capture. Our key-idea is to use real physical supervisions to train a target pose distribution prior for sampling-based motion control to capture physically plausible hum… Show more

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