ContourNet: Taking a Further Step Toward Accurate Arbitrary-Shaped Scene Text Detection
Yuxin Wang, Hongtao Xie, Zheng-Jun Zha, Mengting Xing, Zilong Fu, Yongdong Zhang
摘要
Scene text detection has witnessed rapid development in recent years. However, there still exists two main challenges: 1) many methods suffer from false positives in their text representations; 2) the large scale variance of scene texts makes it hard for network to learn samples. In this paper, we propose the ContourNet, which effectively handles these two problems taking a further step toward accurate arbitrary-shaped text detection. At first, a scaleinsensitive Adaptive Region Proposal Network (Adaptive-RPN) is proposed to generate text proposals by only focusing on the Intersection over Union (IoU) values between predicted and ground-truth bounding boxes. Then a novel Local Orthogonal Texture-aware Module (LOTM) models the local texture information of proposal features in two orthogonal directions and represents text region with a set of contour points. Considering that the strong unidirectional or weakly orthogonal activation is usually caused by the monotonous texture characteristic of false-positive patterns (e.g. streaks.), our method effectively suppresses these false positives by only outputting predictions with high response value in both orthogonal directions. This gives more accurate description of text regions. Extensive experiments on three challenging datasets (Total-Text, CTW1500 and ICDAR2015) verify that our method achieves the stateof-the-art performance. Code is available at https:// github.com/wangyuxin87/ContourNet.
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引用它的顶会 Paper28
- From Two to One: A New Scene Text Recognizer with Visual Language Modeling NetworkYuxin Wang, Hongtao Xie, Shancheng Fang, Jing Wang 等ICCV 2021 · 被引用 184 次
- TextRay: Contour-based Geometric Modeling for Arbitrary-shaped Scene Text DetectionFangfang Wang, Yifeng Chen, Fei Wu, Xi LiACM MM 2020 · 被引用 112 次
- Adaptive Boundary Proposal Network for Arbitrary Shape Text DetectionShi-Xue Zhang, Xiaobin Zhu, Chun Yang, Hongfa Wang 等ICCV 2021 · 被引用 112 次
- Few Could Be Better Than All: Feature Sampling and Grouping for Scene Text DetectionJingqun Tang, Wenqing Zhang, Hongye Liu, Mingkun Yang 等CVPR 2022 · 被引用 103 次
- ESTextSpotter: Towards Better Scene Text Spotting with Explicit Synergy in TransformerMingxin Huang, Jiaxin Zhang, Dezhi Peng, Hao Lu 等ICCV 2023 · 被引用 44 次
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