Progressive and Selective Fusion Network for High Dynamic Range Imaging
Qian Ye, Jun Xiao, Kin-Man Lam, Takayuki Okatani
摘要
This paper considers the problem of generating an HDR image of a scene from its LDR images. Recent studies employ deep learning and solve the problem in an end-to-end fashion, leading to significant performance improvements. However, it is still hard to generate a good quality image from LDR images of a dynamic scene captured by a hand-held camera, e.g., occlusion due to the large motion of foreground objects, causing ghosting artifacts. The key to success relies on how well we can fuse the input images in their feature space, where we wish to remove the factors leading to low-quality image generation while performing the fundamental computations for HDR image generation, e.g., selecting the best-exposed image/region. We propose a novel method that can better fuse the features based on two ideas. One is multi-step feature fusion; our network gradually fuses the features in a stack of blocks having the same structure. The other is the design of the component block that effectively performs two operations essential to the problem, i.e., comparing and selecting appropriate images/regions. Experimental results show that the proposed method outperforms the previous state-of-the-art methods on the standard benchmark tests.
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引用它的顶会 Paper6
- AFUNet: Cross-Iterative Alignment-Fusion Synergy for HDR Reconstruction via Deep Unfolding ParadigmXinyue Li, Zhangkai Ni, Wenhan YangICCV 2025 · 被引用 10 次
- S2R-HDR: A Large-Scale Rendered Dataset for HDR FusionYujin Wang, Jiarui Wu, Yichen Bian, Fan Zhang 等ICLR 2026 · 被引用 3 次
- F^2HDR: Two-Stage HDR Video Reconstruction via Flow Adapter and Physical Motion ModelingHuanjing Yue, Dawei Li, Shaoxiong Tu, Jingyu YangCVPR 2026
- SMAE: Few-shot Learning for HDR Deghosting with Saturation-Aware Masked AutoencodersQingsen Yan, Song Zhang, Weiye Chen, Hao Tang 等CVPR 2023
- A Unified HDR Imaging Method with Pixel and Patch LevelQingsen Yan, Weiye Chen, Song Zhang, Yu Zhu 等CVPR 2023
它引用的顶会 Paper1
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