Lookup Table meets Local Laplacian Filter: Pyramid Reconstruction Network for Tone Mapping
Feng Zhang, Ming Tian, Zhiqiang Li, Bin Xu, Qingbo Lu, Changxin Gao, Nong Sang
摘要
Tone mapping aims to convert high dynamic range (HDR) images to low dynamic range (LDR) representations, a critical task in the camera imaging pipeline. In recent years, 3-Dimensional Look-Up Table (3D LUT) based methods have gained attention due to their ability to strike a favorable balance between enhancement performance and computational efficiency. However, these methods often fail to deliver satisfactory results in local areas since the look-up table is a global operator for tone mapping, which works based on pixel values and fails to incorporate crucial local information. To this end, this paper aims to address this issue by exploring a novel strategy that integrates global and local operators by utilizing closed-form Laplacian pyramid decomposition and reconstruction. Specifically, we employ image-adaptive 3D LUTs to manipulate the tone in the low-frequency image by leveraging the specific characteristics of the frequency information. Furthermore, we utilize local Laplacian filters to refine the edge details in the high-frequency components in an adaptive manner. Local Laplacian filters are widely used to preserve edge details in photographs, but their conventional usage involves manual tuning and fixed implementation within camera imaging pipelines or photo editing tools. We propose to learn parameter value maps progressively for local Laplacian filters from annotated data using a lightweight network. Our model achieves simultaneous global tone manipulation and local edge detail preservation in an end-to-end manner. Extensive experimental results on two benchmark datasets demonstrate that the proposed method performs favorably against state-of-the-art methods.
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引用它的顶会 Paper6
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它引用的顶会 Paper6
- Real-time Image Enhancer via Learnable Spatial-aware 3D Lookup TablesTao Wang, Yong Li, Jingyang Peng, Yipeng Ma 等ICCV 2021 · 被引用 109 次
- Unpaired Image Enhancement Featuring Reinforcement-Learning-Controlled Image Editing SoftwareSatoshi Kosugi, Toshihiko YamasakiAAAI 2020 · 被引用 104 次
- CLUT-Net: Learning Adaptively Compressed Representations of 3DLUTs for Lightweight Image EnhancementFengyi Zhang, Hui Zeng, Tianjun Zhang, Lin ZhangACM MM 2022 · 被引用 26 次
- DeepLPF: Deep Local Parametric Filters for Image EnhancementSean Moran, Pierre Marza, Steven McDonagh, Sarah Parisot 等CVPR 2020
- Image Demoireing with Learnable Bandpass FiltersBolun Zheng, Shanxin Yuan, Gregory G. Slabaugh, Ales LeonardisCVPR 2020
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