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Image-based Synthesis and Re-Synthesis of Viewpoints Guided by 3D Models

2014-06-01CVPR 2014Unverified0· sign in to hype

Konstantinos Rematas, Tobias Ritschel, Mario Fritz, Tinne Tuytelaars

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Abstract

We propose a technique to use the structural information extracted from a set of 3D models of an object class to improve novel-view synthesis for images showing unknown instances of this class. These novel views can be used to "amplify" training image collections that typically contain only a low number of views or lack certain classes of views entirely (e.g. top views). We extract the correlation of position, normal, reflectance and appearance from computer-generated images of a few exemplars and use this information to infer new appearance for new instances. We show that our approach can improve performance of state-of-the-art detectors using real-world training data. Additional applications include guided versions of inpainting, 2D-to-3D conversion, super-resolution and non-local smoothing.

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