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Efficient Scene Text Detection with Textual Attention Tower

Citation Author(s):
Liang Zhang, Yufei Liu, Hang Xiao, Guangming zhu, Syed Afaq Shah, Mohammed Bennamoun, Peiyi Shen
Submitted by:
Lu Yang
Last updated:
14 May 2020 - 7:47am
Document Type:
Presentation Slides
Document Year:
2020
Event:
Presenters:
Lu Yang
Paper Code:
MLSP-P16.1
 

Scene text detection has received attention for years and achieved an impressive performance across various benchmarks. In this work, we propose an efficient and accurate approach to detect multi-oriented text in scene images. The proposed feature fusion mechanism allows us to use a shallower network to reduce the computational complexity. A self-attention mechanism is adopted to suppress false positive detections. Experiments on public benchmarks including ICDAR 2013, ICDAR 2015 and MSRA-TD500 show that our proposed approach can achieve better or comparable performances with fewer parameters and less computational cost.

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