Quality Dynamic Human Body Modeling Using a Single Low-Cost Depth Camera

CVPR(2014)

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摘要
In this paper we present a novel autonomous pipeline to build a personalized parametric model (pose-driven avatar) using a single depth sensor. Our method first captures a few high-quality scans of the user rotating herself at multiple poses from different views. We fit each incomplete scan using template fitting techniques with a generic human template, and register all scans to every pose using global consistency constraints. After registration, these watertight models with different poses are used to train a parametric model in a fashion similar to the SCAPE method. Once the parametric model is built, it can be used as an animitable avatar or more interestingly synthesizing dynamic 3D models from single-view depth videos. Experimental results demonstrate the effectiveness of our system to produce dynamic models.
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关键词
video signal processing,3d model, avatar, template fitting, scape, mesh registration,avatar,single-view depth videos,3d model,template fitting,single low-cost depth camera,scape,global consistency constraints,scape method,template fitting techniques,personalized parametric model,image sensors,dynamic 3d model synthesis,animitable avatar,cameras,generic human template,watertight models,solid modelling,quality dynamic human body modeling,image registration,registration,avatars,single depth sensor,mesh registration,pose-driven avatar,autonomous pipeline,shape,solid modeling,registers
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