Stereo Computation for a Single Mixture Image
August 27, 2018 Β· Declared Dead Β· π European Conference on Computer Vision
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Authors
Yiran Zhong, Yuchao Dai, Hongdong Li
arXiv ID
1808.08690
Category
cs.CV: Computer Vision
Citations
11
Venue
European Conference on Computer Vision
Last Checked
4 months ago
Abstract
This paper proposes an original problem of \emph{stereo computation from a single mixture image}-- a challenging problem that had not been researched before. The goal is to separate (\ie, unmix) a single mixture image into two constitute image layers, such that the two layers form a left-right stereo image pair, from which a valid disparity map can be recovered. This is a severely illposed problem, from one input image one effectively aims to recover three (\ie, left image, right image and a disparity map). In this work we give a novel deep-learning based solution, by jointly solving the two subtasks of image layer separation as well as stereo matching. Training our deep net is a simple task, as it does not need to have disparity maps. Extensive experiments demonstrate the efficacy of our method.
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