Location-aware Single Image Reflection Removal
Zheng Dong, Ke Xu, Yin Yang, Hujun Bao, Weiwei Xu, Rynson W. H. Lau
Abstract
This paper proposes a novel location-aware deep-learning-based single image reflection removal method. Our network has a reflection detection module to regress a probabilistic reflection confidence map, taking multi-scale Laplacian features as inputs. This probabilistic map tells if a region is reflection-dominated or transmission-dominated, and it is used as a cue for the network to control the feature flow when predicting the reflection and transmission layers. We design our network as a recurrent network to progressively refine reflection removal results at each iteration. The novelty is that we leverage Laplacian kernel parameters to emphasize the boundaries of strong reflections. It is beneficial to strong reflection detection and substantially improves the quality of reflection removal results. Extensive experiments verify the superior performance of the proposed method over state-of-the-art approaches. Our code and the pre-trained model can be found at https://github.com/zdlarr/Location-aware-SIRR.
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Install the CLIlune papers fulltext 3c9bfc46-20d3-477f-a976-989982b043c2Cited by top-tier papers29
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- Mask-ShadowGAN: Learning to Remove Shadows From Unpaired DataXiaowei Hu, Yitong Jiang, Chi-Wing Fu, Pheng-Ann HengICCV 2019 · 255 citations
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- Polarized Reflection Removal With Perfect Alignment in the WildChenyang Lei, Xuhua Huang, Mengdi Zhang, Qiong Yan et al.CVPR 2020
- Single Image Reflection Removal With Physically-Based Training ImagesSoomin Kim, Yuchi Huo, Sung-Eui YoonCVPR 2020
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