Deep Multi-Model Fusion for Single-Image Dehazing
Zijun Deng, Lei Zhu, Xiaowei Hu, Chi-Wing Fu, Xuemiao Xu, Qing Zhang, Jing Qin, Pheng-Ann Heng
Abstract
This paper presents a deep multi-model fusion network to attentively integrate multiple models to separate layers and boost the performance in single-image dehazing. To do so, we first formulate the attentional feature integration module to maximize the integration of the convolutional neural network (CNN) features at different CNN layers and generate the attentional multi-level integrated features (AMLIF). Then, from the AMLIF, we further predict a haze-free result for an atmospheric scattering model, as well as for four haze-layer separation models, and then fuse the results together to produce the final haze-free image. To evaluate the effectiveness of our method, we compare our network with several state-of-the-art methods on two widely-used dehazing benchmark datasets, as well as on two sets of real-world hazy images. Experimental results demonstrate clear quantitative and qualitative improvements of our method over the state-of-the-arts.
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Install the CLIlune papers fulltext 3ada25d6-a415-477f-ad59-e4a8f5ceea67Cited by top-tier papers3
- From Synthetic to Real: Image Dehazing Collaborating with Unlabeled Real DataYe Liu, Lei Zhu, Shunda Pei, Huazhu Fu et al.ACM MM 2021 · 197 citations
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- Depth-Centric Dehazing and Depth-Estimation from Real-World Hazy Driving VideoJunkai Fan, Kun Wang, Zhiqiang Yan, Xiang Chen et al.AAAI 2025 · 15 citations
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