JOURNAL ARTICLE

Text Perceptron: Towards End-to-End Arbitrary-Shaped Text Spotting

Qiao LiangSanli TangZhanzhan ChengYunlu XuYi NiuShiliang PuFei Wu

Year: 2020 Journal:   Proceedings of the AAAI Conference on Artificial Intelligence Vol: 34 (07)Pages: 11899-11907   Publisher: Association for the Advancement of Artificial Intelligence

Abstract

Many approaches have recently been proposed to detect irregular scene text and achieved promising results. However, their localization results may not well satisfy the following text recognition part mainly because of two reasons: 1) recognizing arbitrary shaped text is still a challenging task, and 2) prevalent non-trainable pipeline strategies between text detection and text recognition will lead to suboptimal performances. To handle this incompatibility problem, in this paper we propose an end-to-end trainable text spotting approach named Text Perceptron. Concretely, Text Perceptron first employs an efficient segmentation-based text detector that learns the latent text reading order and boundary information. Then a novel Shape Transform Module (abbr. STM) is designed to transform the detected feature regions into regular morphologies without extra parameters. It unites text detection and the following recognition part into a whole framework, and helps the whole network achieve global optimization. Experiments show that our method achieves competitive performance on two standard text benchmarks, i.e., ICDAR 2013 and ICDAR 2015, and also obviously outperforms existing methods on irregular text benchmarks SCUT-CTW1500 and Total-Text.

Keywords:
Spotting Computer science Pipeline (software) Artificial intelligence Pattern recognition (psychology) Perceptron Text recognition Segmentation End-to-end principle Text detection Detector Task (project management) Feature (linguistics) Natural language processing Image (mathematics) Artificial neural network

Metrics

109
Cited By
5.47
FWCI (Field Weighted Citation Impact)
64
Refs
0.96
Citation Normalized Percentile
Is in top 1%
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Citation History

Topics

Handwritten Text Recognition Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Vehicle License Plate Recognition
Physical Sciences →  Engineering →  Media Technology
Text and Document Classification Technologies
Physical Sciences →  Computer Science →  Artificial Intelligence

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