Rethinking Text Segmentation: A Novel Dataset and a Text-Specific Refinement Approach
Xingqian Xu, Zhifei Zhang, Zhaowen Wang, Brian L. Price, Zhonghao Wang, Humphrey Shi
摘要
Text segmentation is a prerequisite in many real-world text-related tasks, e.g., text style transfer, and scene text removal. However, facing the lack of high-quality datasets and dedicated investigations, this critical prerequisite has been left as an assumption in many works, and has been largely overlooked by current research. To bridge this gap, we proposed TextSeg, a large-scale fine-annotated text dataset with six types of annotations: word-and characterwise bounding polygons, masks and transcriptions. We also introduce Text Refinement Network (TexRNet), a novel text segmentation approach that adapts to the unique properties of text, e.g. non-convex boundary, diverse texture, etc., which often impose burdens on traditional segmentation models. In our TexRNet, we propose text specific network designs to address such challenges, including key features pooling and attention-based similarity checking. We also introduce trimap and discriminator losses that show significant improvement on text segmentation. Extensive experiments are carried out on both our TextSeg dataset and other existing datasets. We demonstrate that TexRNet consistently improves text segmentation performance by nearly 2% compared to other state-of-the-art segmentation methods. Our dataset and code will be made available at https://github.
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引用它的顶会 Paper16
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它引用的顶会 Paper3
- SSAP: Single-Shot Instance Segmentation With Affinity PyramidNaiyu Gao, Yanhu Shan, Yupei Wang, Xin Zhao 等ICCV 2019 · 被引用 246 次
- Controllable Artistic Text Style Transfer via Shape-Matching GANShuai Yang, Zhangyang Wang, Zhaowen Wang, Ning Xu 等ICCV 2019 · 被引用 110 次
- Sequential Attention GAN for Interactive Image EditingYu Cheng, Zhe Gan, Yitong Li, Jingjing Liu 等ACM MM 2020 · 被引用 74 次
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