CRRN: Multi-scale guided concurrent reflection removal network
Removing the undesired reflections from images taken through the glass is of broad application to various computer vision tasks. Non-learning based methods utilize different handcrafted priors such as the separable sparse gradients caused by different levels of blurs, which often fail due to their l...
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sg-smu-ink.sis_research-70782021-09-29T13:03:04Z CRRN: Multi-scale guided concurrent reflection removal network WAN, Renjie SHI, Boxin DUAN, Ling-Yu TAN, Ah-hwee KOT, Alex C. Removing the undesired reflections from images taken through the glass is of broad application to various computer vision tasks. Non-learning based methods utilize different handcrafted priors such as the separable sparse gradients caused by different levels of blurs, which often fail due to their limited description capability to the properties of real-world reflections. In this paper, we propose the Concurrent Reflection Removal Network (CRRN) to tackle this problem in a unified framework. Our proposed network integrates image appearance information and multi-scale gradient information with human perception inspired loss function, and is trained on a new dataset with 3250 reflection images taken under diverse real-world scenes. Extensive experiments on a public benchmark dataset show that the proposed method performs favorably against state-of-the-art methods. 2018-06-01T07:00:00Z text application/pdf https://ink.library.smu.edu.sg/sis_research/6075 info:doi/10.1109/CVPR.2018.00502 https://ink.library.smu.edu.sg/context/sis_research/article/7078/viewcontent/Wan_CRRN_Multi_Scale_Guided_CVPR_2018_paper.pdf http://creativecommons.org/licenses/by-nc-nd/4.0/ Research Collection School Of Computing and Information Systems eng Institutional Knowledge at Singapore Management University Databases and Information Systems OS and Networks |
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Databases and Information Systems OS and Networks WAN, Renjie SHI, Boxin DUAN, Ling-Yu TAN, Ah-hwee KOT, Alex C. CRRN: Multi-scale guided concurrent reflection removal network |
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Removing the undesired reflections from images taken through the glass is of broad application to various computer vision tasks. Non-learning based methods utilize different handcrafted priors such as the separable sparse gradients caused by different levels of blurs, which often fail due to their limited description capability to the properties of real-world reflections. In this paper, we propose the Concurrent Reflection Removal Network (CRRN) to tackle this problem in a unified framework. Our proposed network integrates image appearance information and multi-scale gradient information with human perception inspired loss function, and is trained on a new dataset with 3250 reflection images taken under diverse real-world scenes. Extensive experiments on a public benchmark dataset show that the proposed method performs favorably against state-of-the-art methods. |
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WAN, Renjie SHI, Boxin DUAN, Ling-Yu TAN, Ah-hwee KOT, Alex C. |
author_facet |
WAN, Renjie SHI, Boxin DUAN, Ling-Yu TAN, Ah-hwee KOT, Alex C. |
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WAN, Renjie |
title |
CRRN: Multi-scale guided concurrent reflection removal network |
title_short |
CRRN: Multi-scale guided concurrent reflection removal network |
title_full |
CRRN: Multi-scale guided concurrent reflection removal network |
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CRRN: Multi-scale guided concurrent reflection removal network |
title_full_unstemmed |
CRRN: Multi-scale guided concurrent reflection removal network |
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crrn: multi-scale guided concurrent reflection removal network |
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Institutional Knowledge at Singapore Management University |
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2018 |
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https://ink.library.smu.edu.sg/sis_research/6075 https://ink.library.smu.edu.sg/context/sis_research/article/7078/viewcontent/Wan_CRRN_Multi_Scale_Guided_CVPR_2018_paper.pdf |
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