Papers › Gated Context Aggregation Network for Image Dehazing and Deraining

Gated Context Aggregation Network for Image Dehazing and Deraining

21 Nov 2018arXiv:1811.08747archive 2025-07-28

Dongdong Chen, Mingming He, Qingnan Fan, Jing Liao, Liheng Zhang, Dongdong Hou, Lu Yuan, Gang Hua

Image dehazing aims to recover the uncorrupted content from a hazy image. Instead of leveraging traditional low-level or handcrafted image priors as the restoration constraints, e.g., dark channels and increased contrast, we propose an end-to-end gated context aggregation network to directly restore the final haze-free image. In this network, we adopt the latest smoothed dilation technique to help remove the gridding artifacts caused by the widely-used dilated convolution with negligible extra parameters, and leverage a gated sub-network to fuse the features from different levels. Extensive experiments demonstrate that our method can surpass previous state-of-the-art methods by a large margin both quantitatively and qualitatively. In addition, to demonstrate the generality of the proposed method, we further apply it to the image deraining task, which also achieves the state-of-the-art performance. Code has been made available at https://github.com/cddlyf/GCANet.

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Code

cddlyf/GCANet officialmentioned in paperpytorch report

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Tasks

Image DehazingRain Removal

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Image Dehazing RS-Haze GCANet PSNR 34.41 #6 of 7 Archive leaderboard report
Image Dehazing RS-Haze GCANet SSIM 0.949 #6 of 7 Archive leaderboard report
Image Dehazing SOTS Indoor GCANet PSNR 30.23 #27 of 34 Archive leaderboard report
Image Dehazing SOTS Indoor GCANet SSIM 0.98 #27 of 34 Archive leaderboard report
Rain Removal DID-MDN GCANet PSNR 31.68 #2 of 2 Archive leaderboard report

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Methods

Convolution

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