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Semi-parametric Object Synthesis

2019-07-24 18:01:51
Andrea Palazzi, Luca Bergamini, Simone Calderara, Rita Cucchiara

Abstract

We present a new semi-parametric approach to synthesize novel views of an object from a single monocular image. First, we exploit man-made object symmetry and piece-wise planarity to integrate rich a-priori visual information into the novel viewpoint synthesis process. An Image Completion Network (ICN) then leverages 2.5D sketches rendered from a 3D CAD as guidance to generate a realistic image. In contrast to concurrent works, we do not rely solely on synthetic data but leverage instead existing datasets for 3D object detection to operate in a real-world scenario. Differently from competitors, our semi-parametric framework allows the handling of a wide range of 3D transformations. Thorough experimental analysis against state-of-the-art baselines shows the efficacy of our method both from a quantitative and a perceptive point of view. Code and supplementary material are available at: https://github.com/ndrplz/semiparametric

Abstract (translated)

URL

https://arxiv.org/abs/1907.10634

PDF

https://arxiv.org/pdf/1907.10634.pdf


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