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- W3206682510 abstract "Single-view 3D shapes generation has achieved great success in recent years. However, current methods always blind the learning of shapes and viewpoints. The generated shape only fit the observed viewpoints and would not be optimal from unknown viewpoints. In this paper, we propose a novel encoder–decoder based network which contains a disentangled transformer to generate the viewpoint-invariant 3D shapes. The differentiable and parametric Non-uniform B-spline (NURBS) surface generation and 3D-to-3D viewpoint transformation are incorporated to learn the viewpoint-invariant shape and the camera viewpoint, respectively. Our new framework allows us to learn the latent geometric parameters of shapes and viewpoints without knowing the ground truth viewpoint. That can simultaneously generate camera-viewpoint and viewpoint-invariant 3D shapes of the object. We analyze the effects of disentanglement and show both quantitative and qualitative results of shapes generated at various unknown viewpoints." @default.
- W3206682510 created "2021-10-25" @default.
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- W3206682510 date "2021-11-01" @default.
- W3206682510 modified "2023-09-24" @default.
- W3206682510 title "Shape transformer nets: Generating viewpoint-invariant 3D shapes from a single image" @default.
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- W3206682510 doi "https://doi.org/10.1016/j.jvcir.2021.103345" @default.
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