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      Art2Real: Unfolding the Reality of Artworks via Semantically-Aware Image-to-Image Translation

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          Abstract

          The applicability of computer vision to real paintings and artworks has been rarely investigated, even though a vast heritage would greatly benefit from techniques which can understand and process data from the artistic domain. This is partially due to the small amount of annotated artistic data, which is not even comparable to that of natural images captured by cameras. In this paper, we propose a semantic-aware architecture which can translate artworks to photo-realistic visualizations, thus reducing the gap between visual features of artistic and realistic data. Our architecture can generate natural images by retrieving and learning details from real photos through a similarity matching strategy which leverages a weakly-supervised semantic understanding of the scene. Experimental results show that the proposed technique leads to increased realism and to a reduction in domain shift, which improves the performance of pre-trained architectures for classification, detection, and segmentation. Code will be made publicly available.

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          Most cited references21

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          Image-to-Image Translation with Conditional Adversarial Networks

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            Photo-Realistic Single Image Super-Resolution Using a Generative Adversarial Network

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              Deep Learning Face Attributes in the Wild

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                Author and article information

                Journal
                26 November 2018
                Article
                1811.10666
                1d777647-243d-4b26-8daf-8f0fc2ec76ad

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                cs.CV

                Computer vision & Pattern recognition
                Computer vision & Pattern recognition

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