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Reciprocal Feature Learning via Explicit and Implicit Tasks in Scene Text Recognition

Authors :
Wenqi Ren
Shiliang Pu
Yunlu Xu
Wenming Tan
Hui Jiang
Fei Wu
Zhanzhan Cheng
Yi Niu
Source :
Document Analysis and Recognition – ICDAR 2021 ISBN: 9783030865481, ICDAR (1)
Publication Year :
2021
Publisher :
Springer International Publishing, 2021.

Abstract

Text recognition is a popular topic for its broad applications. In this work, we excavate the implicit task, character counting within the traditional text recognition, without additional labor annotation cost. The implicit task plays as an auxiliary branch for complementing the sequential recognition. We design a two-branch reciprocal feature learning framework in order to adequately utilize the features from both the tasks. Through exploiting the complementary effect between explicit and implicit tasks, the feature is reliably enhanced. Extensive experiments on 7 benchmarks show the advantages of the proposed methods in both text recognition and the new-built character counting tasks. In addition, it is convenient yet effective to equip with variable networks and tasks. We offer abundant ablation studies, generalizing experiments with deeper understanding on the tasks. Code is available.

Details

ISBN :
978-3-030-86548-1
ISBNs :
9783030865481
Database :
OpenAIRE
Journal :
Document Analysis and Recognition – ICDAR 2021 ISBN: 9783030865481, ICDAR (1)
Accession number :
edsair.doi...........e6c3a65c7b4fb1a9701f1179d329b889
Full Text :
https://doi.org/10.1007/978-3-030-86549-8_19