Multi-Type Self-Attention Guided Degraded Saliency Detection
Ziqi Zhou, Zheng Wang, Huchuan Lu, Song Wang, Meijun Sun
Abstract
Existing saliency detection techniques are sensitive to image quality and perform poorly on degraded images. In this paper, we systematically analyze the current status of the research on detecting salient objects from degraded images and then propose a new multi-type self-attention network, namely MSANet, for degraded saliency detection. The main contributions include: 1) Applying attention transfer learning to promote semantic detail perception and internal feature mining of the target network on degraded images; 2) Developing a multi-type self-attention mechanism to achieve the weight recalculation of multi-scale features. By computing global and local attention scores, we obtain the weighted features of different scales, effectively suppress the interference of noise and redundant information, and achieve a more complete boundary extraction. The proposed MSANet converts low-quality inputs to high-quality saliency maps directly in an end-to-end fashion. Experiments on seven widely-used datasets show that our approach produces good performance on both clear and degraded images.
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Cited by top-tier papers4
- Pyramid Grafting Network for One-Stage High Resolution Saliency DetectionChenxi Xie, Changqun Xia, Mingcan Ma, Zhirui Zhao et al.CVPR 2022 · 112 citations
- Disentangled High Quality Salient Object DetectionLv Tang, Bo Li, Yijie Zhong, Shouhong Ding et al.ICCV 2021 · 86 citations
- Democracy Does Matter: Comprehensive Feature Mining for Co-Salient Object DetectionSiyue Yu, Jimin Xiao, Bingfeng Zhang, Eng Gee LimCVPR 2022 · 76 citations
- RobustSAM: Segment Anything Robustly on Degraded ImagesWei-Ting Chen, Yu-Jiet Vong, Sy-Yen Kuo, Sizhuo Ma et al.CVPR 2024
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