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Nighttime Hazy Image Enhancement via Progressively and Mutually Reinforcing Night-Haze Priors

About

Enhancing the visibility of nighttime hazy images is challenging due to the complex degradation distributions. Existing methods mainly address a single type of degradation (e.g., haze or low-light) at a time, ignoring the interplay of different degradation types and resulting in limited visibility improvement. We observe that the domain knowledge shared between low-light and haze priors can be reinforced mutually for better visibility. Based on this key insight, in this paper, we propose a novel framework that enhances visibility in nighttime hazy images by reinforcing the intrinsic consistency between haze and low-light priors mutually and progressively. In particular, our model utilizes image-, patch-, and pixel-level experts that operate across visual and frequency domains to recover global scene structure, regional patterns, and fine-grained details progressively. A frequency-aware router is further introduced to adaptively guide the contribution of each expert, ensuring robust image restoration. Extensive experiments demonstrate the superior performance of our model on nighttime dehazing benchmarks both quantitatively and qualitatively. Moreover, we showcase the generalizability of our model in daytime dehazing and low-light enhancement tasks.

Chen Zhu, Huiwen Zhang, Mu He, Yujie Li, Xiaotian Qiao• 2026

Related benchmarks

TaskDatasetResultRank
Nighttime DehazingNHR (test)
PSNR25.197
38
Nighttime Image DehazingNHM
SSIM0.934
32
Nighttime Image DehazingNHCD
SSIM0.946
32
Nighttime Image DehazingUNREAL-NH
SSIM0.758
32
Nighttime Image DehazingNHCL
SSIM93.6
32
Nighttime Image DehazingNHCM
SSIM92.1
32
Low-light Image EnhancementMEF
NIQE3.67
23
Low-light Image EnhancementLIME (unpaired)
BRISQUE20.54
6
Low-light Image EnhancementNPE (unpaired)
BRISQUE25.31
6
Low-light Image EnhancementDCIM unpaired
BRISQUE Score29.09
6
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