Towards Unified Scene Text Spotting Based on Sequence Generation
Taeho Kil, Seonghyeon Kim, Sukmin Seo, Yoonsik Kim, Daehee Kim
摘要
Sequence generation models have recently made significant progress in unifying various vision tasks. Although some auto-regressive models have demonstrated promising results in end-to-end text spotting, they use specific detection formats while ignoring various text shapes and are limited in the maximum number of text instances that can be detected. To overcome these limitations, we propose a UNIfied scene Text Spotter, called UNITS. Our model unifies various detection formats, including quadrilaterals and polygons, allowing it to detect text in arbitrary shapes. Additionally, we apply starting-point prompting to enable the model to extract texts from an arbitrary starting point, thereby extracting more texts beyond the number of instances it was trained on. Experimental results demonstrate that our method achieves competitive performance compared to state-of-the-art methods. Further analysis shows that UNITS can extract a larger number of texts than it was trained on. We provide the code for our method at https://github.com/clovaai/units.
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引用它的顶会 Paper11
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它引用的顶会 Paper17
- Swin Transformer: Hierarchical Vision Transformer using Shifted WindowsZe Liu, Yutong Lin, Yue Cao, Han Hu 等ICCV 2021 · 被引用 31,683 次
- Real-Time Scene Text Detection with Differentiable BinarizationMinghui Liao, Zhaoyi Wan, Cong Yao, Kai Chen 等AAAI 2020 · 被引用 818 次
- VLMo: Unified Vision-Language Pre-Training with Mixture-of-Modality-ExpertsHangbo Bao, Wenhui Wang, Li Dong, Qiang Liu 等NeurIPS 2022 · 被引用 790 次
- Pix2seq: A Language Modeling Framework for Object DetectionTing Chen, Saurabh Saxena, Lala Li, David J. Fleet 等ICLR 2022 · 被引用 435 次
- TextDragon: An End-to-End Framework for Arbitrary Shaped Text SpottingWei Feng, Wenhao He, Fei Yin, Xu-Yao Zhang 等ICCV 2019 · 被引用 212 次
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