MRFS: Mutually Reinforcing Image Fusion and Segmentation
Hao Zhang, Xuhui Zuo, Jie Jiang, Chunchao Guo, Jiayi Ma
摘要
This paper proposes a coupled learning framework to break the performance bottleneck of infrared-visible image fusion and segmentation, called MRFS. By leveraging the intrinsic consistency between vision and semantics, it emphasizes mutual reinforcement rather than treating these tasks as separate issues. First, we embed weakened information recovery and salient information integration into the image fusion task, employing the CNN-based interactive gated mixed attention (IGM-Att) module to extract highquality visual features. This aims to satisfy human visual perception, producing fused images with rich textures, high contrast, and vivid colors. Second, a transformer-based progressive cycle attention (PC-Att) module is developed to enhance semantic segmentation. It establishes single-modal self-reinforcement and cross-modal mutual complementarity, enabling more accurate decisions in machine semantic perception. Then, the cascade of IGM-Att and PC-Att couples image fusion and semantic segmentation tasks, implicitly bringing vision-related and semantics-related features into closer alignment. Therefore, they mutually provide learning priors to each other, resulting in visually satisfying fused images and more accurate segmentation decisions. Extensive experiments on public datasets showcase the advantages of our method in terms of visual satisfaction and decision accuracy. The code is publicly available at https://github.com/HaoZhang1018/MRFS .
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引用它的顶会 Paper21
- Text-DiFuse: An Interactive Multi-Modal Image Fusion Framework based on Text-modulated Diffusion ModelHao Zhang, Lei Cao, Jiayi MaNeurIPS 2024 · 被引用 69 次
- A Unified Solution to Video Fusion: From Multi-Frame Learning to BenchmarkingZixiang Zhao, Haowen Bai, Bingxin Ke, Yukun Cui 等NeurIPS 2025 · 被引用 21 次
- AMDANet: Attention-Driven Multi-Perspective Discrepancy Alignment for RGB-Infrared Image Fusion and SegmentationHaifeng Zhong, Fan Tang, Zhuo Chen, Hyung Jin Chang 等ICCV 2025 · 被引用 9 次
- Customized Fusion: A Closed-Loop Dynamic Network for Adaptive Multi-Task-Aware Infrared-Visible Image FusionZengyi Yang, Yu Liu, Juan Cheng, Zhiqin Zhu 等CVPR 2026 · 被引用 7 次
- The Source Image Is the Best Attention for Infrared and Visible Image FusionSong Wang, Xie Han, Liqun Kuang, Boying Wang 等ICCV 2025 · 被引用 6 次
它引用的顶会 Paper9
- SegFormer: Simple and Efficient Design for Semantic Segmentation with TransformersEnze Xie, Wenhai Wang, Zhiding Yu, Anima Anandkumar 等NeurIPS 2021 · 被引用 9,661 次
- Target-aware Dual Adversarial Learning and a Multi-scenario Multi-Modality Benchmark to Fuse Infrared and Visible for Object DetectionJinyuan Liu, Xin Fan, Zhanbo Huang, Guanyao Wu 等CVPR 2022 · 被引用 929 次
- Rethinking the Image Fusion: A Fast Unified Image Fusion Network based on Proportional Maintenance of Gradient and IntensityHao Zhang, Han Xu, Yang Xiao, Xiaojie Guo 等AAAI 2020 · 被引用 583 次
- Multi-interactive Feature Learning and a Full-time Multi-modality Benchmark for Image Fusion and SegmentationJinyuan Liu, Zhu Liu, Guanyao Wu, Long Ma 等ICCV 2023 · 被引用 287 次
- Diff-Retinex: Rethinking Low-light Image Enhancement with A Generative Diffusion ModelXunpeng Yi, Han Xu, Hao Zhang, Linfeng Tang 等ICCV 2023 · 被引用 260 次
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