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Representing a Partially Observed Non-Rigid 3D Human Using Eigen-Texture and Eigen-Deformation

机译:代表使用特征纹理和特征变形的部分观察的非刚性3D人

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Reconstruction of the shape and motion of humans from RGB-D is a challenging problem, receiving much attention in recent years. Recent approaches for full-body reconstruction use a statistic shape model, which is built upon accurate full-body scans of people in skin-tight clothes, to complete invisible parts due to occlusion. Such a statistic model may still be fit to an RGB-D measurement with loose clothes but cannot describe its deformations, such as clothing wrinkles. Observed surfaces may be reconstructed precisely from actual measurements, while we have no cues for unobserved surfaces. For full-body reconstruction with loose clothes, we propose to use lower dimensional embeddings of texture and deformation referred to as eigen-texturing and eigen-deformation, to reproduce views of even unobserved surfaces. Provided a full-body reconstruction from a sequence of partial measurements as 3D meshes, the texture and deformation of each triangle are then embedded using eigen-decomposition. Combined with neural-network-based coefficient regression, our method synthesizes the texture and deformation from arbitrary viewpoints. We evaluate our method using simulated data and visually demonstrate how our method works on real data.
机译:从RGB-D重建人类的形状和动作是一个具有挑战性的问题,近年来受到了广泛的关注。用于全身重建的最新方法使用统计形状模型,该模型基于对穿着紧身衣服的人进行的精确全身扫描而建立,以完成由于咬合而导致的不可见部分。这样的统计模型可能仍适合使用宽松衣服进行的RGB-D测量,但无法描述其变形(例如衣服的皱纹)。可以从实际测量结果中精确地重建观察到的表面,而对于未观察到的表面我们没有任何提示。对于使用宽松衣服进行的全身重建,我们建议使用低维的纹理和变形嵌入(称为特征纹理和特征变形)来再现甚至未观察到的表面的视图。通过3D网格的一系列局部测量来提供全身重建,然后使用特征分解嵌入每个三角形的纹理和变形。结合基于神经网络的系数回归,我们的方法从任意角度综合了纹理和变形。我们使用模拟数据评估我们的方法,并在视觉上展示我们的方法如何在实际数据上工作。

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