Seamless manga inpainting with semantics awareness
Minshan Xie, Menghan Xia, Xueting Liu, Chengze Li, Tien-Tsin Wong
Abstract
Manga inpainting fills up the disoccluded pixels due to the removal of dialogue balloons or "sound effect" text. This process is long needed by the industry for the language localization and the conversion to animated manga. It is mostly done manually, as existing methods (mostly for natural image inpainting) cannot produce satisfying results. Manga inpainting is more tricky than natural image inpainting because its highly abstract illustration using structural lines and screentone patterns, which confuses the semantic interpretation and visual content synthesis. In this paper, we present the first manga inpainting method, a deep learning model, that generates high-quality results. Instead of direct inpainting, we propose to separate the complicated inpainting into two major phases, semantic inpainting and appearance synthesis. This separation eases both the feature understanding and hence the training of the learning model. A key idea is to disentangle the structural line and screentone, that helps the network to better distinguish the structural line and the screentone features for semantic interpretation. Both the visual comparison and the quantitative experiments evidence the effectiveness of our method and justify its superiority over existing state-of-the-art methods in the application of manga inpainting.
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Install the CLIlune papers fulltext 3efc3e00-7ea2-4665-afd8-48d8d1ccb9fdCited by top-tier papers2
- Thin-Plate Spline-based Interpolation for Animation Line InbetweeningTianyi Zhu, Wei Shang, Dongwei RenAAAI 2025
- Advancing Manga Analysis: Comprehensive Segmentation Annotations for the Manga109 DatasetMinshan Xie, Jian Lin, Hanyuan Liu, Chengze Li et al.CVPR 2025
Builds on3
- Coherent Semantic Attention for Image InpaintingHongyu Liu, Bin Jiang, Yi Xiao, Chao YangICCV 2019 · 395 citations
- StructureFlow: Image Inpainting via Structure-Aware Appearance FlowYurui Ren, Xiaoming Yu, Ruonan Zhang, Thomas H. Li et al.ICCV 2019 · 356 citations
- Onion-Peel Networks for Deep Video CompletionSeoung Wug Oh, Sungho Lee, Joon-Young Lee, Seon Joo KimICCV 2019 · 112 citations
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