MdaIF: Robust One-Stop Multi-Degradation-Aware Image Fusion with Language-Driven Semantics

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Main Authors: Li, Jing, Wang, Yifan, Yan, Jiafeng, Zhang, Renlong, Yang, Bin
Format: Preprint
Published: 2025
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author Li, Jing
Wang, Yifan
Yan, Jiafeng
Zhang, Renlong
Yang, Bin
author_facet Li, Jing
Wang, Yifan
Yan, Jiafeng
Zhang, Renlong
Yang, Bin
contents Infrared and visible image fusion aims to integrate complementary multi-modal information into a single fused result. However, existing methods 1) fail to account for the degradation visible images under adverse weather conditions, thereby compromising fusion performance; and 2) rely on fixed network architectures, limiting their adaptability to diverse degradation scenarios. To address these issues, we propose a one-stop degradation-aware image fusion framework for multi-degradation scenarios driven by a large language model (MdaIF). Given the distinct scattering characteristics of different degradation scenarios (e.g., haze, rain, and snow) in atmospheric transmission, a mixture-of-experts (MoE) system is introduced to tackle image fusion across multiple degradation scenarios. To adaptively extract diverse weather-aware degradation knowledge and scene feature representations, collectively referred to as the semantic prior, we employ a pre-trained vision-language model (VLM) in our framework. Guided by the semantic prior, we propose degradation-aware channel attention module (DCAM), which employ degradation prototype decomposition to facilitate multi-modal feature interaction in channel domain. In addition, to achieve effective expert routing, the semantic prior and channel-domain modulated features are utilized to guide the MoE, enabling robust image fusion in complex degradation scenarios. Extensive experiments validate the effectiveness of our MdaIF, demonstrating superior performance over SOTA methods.
format Preprint
id arxiv_https___arxiv_org_abs_2511_12525
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle MdaIF: Robust One-Stop Multi-Degradation-Aware Image Fusion with Language-Driven Semantics
Li, Jing
Wang, Yifan
Yan, Jiafeng
Zhang, Renlong
Yang, Bin
Computer Vision and Pattern Recognition
I.4.3; I.4.4; I.4.9
Infrared and visible image fusion aims to integrate complementary multi-modal information into a single fused result. However, existing methods 1) fail to account for the degradation visible images under adverse weather conditions, thereby compromising fusion performance; and 2) rely on fixed network architectures, limiting their adaptability to diverse degradation scenarios. To address these issues, we propose a one-stop degradation-aware image fusion framework for multi-degradation scenarios driven by a large language model (MdaIF). Given the distinct scattering characteristics of different degradation scenarios (e.g., haze, rain, and snow) in atmospheric transmission, a mixture-of-experts (MoE) system is introduced to tackle image fusion across multiple degradation scenarios. To adaptively extract diverse weather-aware degradation knowledge and scene feature representations, collectively referred to as the semantic prior, we employ a pre-trained vision-language model (VLM) in our framework. Guided by the semantic prior, we propose degradation-aware channel attention module (DCAM), which employ degradation prototype decomposition to facilitate multi-modal feature interaction in channel domain. In addition, to achieve effective expert routing, the semantic prior and channel-domain modulated features are utilized to guide the MoE, enabling robust image fusion in complex degradation scenarios. Extensive experiments validate the effectiveness of our MdaIF, demonstrating superior performance over SOTA methods.
title MdaIF: Robust One-Stop Multi-Degradation-Aware Image Fusion with Language-Driven Semantics
topic Computer Vision and Pattern Recognition
I.4.3; I.4.4; I.4.9
url https://arxiv.org/abs/2511.12525