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Multi-view Supervision for Single-view Reconstruction via Differentiable Ray Consistency

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arxiv 1704.06254 v1 pith:GUW73GBC submitted 2017-04-20 cs.CV

classification cs.CV
keywords consistencydifferentiablesingle-viewallowsformulationlearningmulti-viewobservation
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We study the notion of consistency between a 3D shape and a 2D observation and propose a differentiable formulation which allows computing gradients of the 3D shape given an observation from an arbitrary view. We do so by reformulating view consistency using a differentiable ray consistency (DRC) term. We show that this formulation can be incorporated in a learning framework to leverage different types of multi-view observations e.g. foreground masks, depth, color images, semantics etc. as supervision for learning single-view 3D prediction. We present empirical analysis of our technique in a controlled setting. We also show that this approach allows us to improve over existing techniques for single-view reconstruction of objects from the PASCAL VOC dataset.

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Cited by 1 Pith paper

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  1. DeepSketchHair: Deep Sketch-based 3D Hair Modeling

    cs.GR 2019-08 conditional novelty 6.0 of 10

    DeepSketchHair is the first deep learning pipeline that converts 2D sketch inputs into strand-level 3D hair models using three GAN-based networks trained on synthetic data.

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