Prior-combined dehazing network based on mutual learning

被引:0
|
作者
Dong Qiao
Xiangtong Kong
Lingjian Kong
Jifang Liu
Wenpeng Mi
Shenghao Meng
机构
[1] High-tech Institute,
来源
Signal, Image and Video Processing | 2023年 / 17卷
关键词
Prior-combined dehazing; Mutual learning mechanism; Feature fusion;
D O I
暂无
中图分类号
学科分类号
摘要
Single-image dehazing is an important problem for high-level computer vision tasks since the existence of haze severely degrades the recognition ability of computers. Most recent works tend to combine prior-based dehazing method with a convolutional neural network to improve the dehazing effect in real scenes. However, these methods do not tackle with the color shifts caused by prior-based methods effectively. In this paper, we propose a prior-combined dehazing network based on mutual learning. Specifically, we build two sub-networks to achieve dehazing by both supervised and unsupervised ways. The supervised sub-network is optimized by ground truth, which provides color fidelity but may acquire under-dehazed images when applied to real scenes. The unsupervised sub-network is optimized by the dehazed images of dark channel prior, which improves the generalization ability but introduces some color shifts or artifacts. Since the dehazing of these two sub-networks shows complementary advantages, a mutual learning mechanism is built for the joint optimization. And we propose a feature fusion module based on the perceptual differences to acquire the final results. The experimental results demonstrate that our method surpasses previous state-of-the-arts on both synthetic and real-world datasets.
引用
收藏
页码:1935 / 1943
页数:8
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