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Offline Handwritten Text Recognition using Convolutional Recurrent Neural Network

conference contribution
posted on 2024-11-03, 13:59 authored by Phuong Tran, Andrew Smith, Eric Dimla
Offline handwriting recognition is an image-based sequence recognition task within computer vision. Traditional approaches rely on lexical segmentation, complex feature extraction techniques and considerable knowledge in the domain of linguistics. This paper presents a novel approach to handwriting recognition by using Convolutional Recurrent Neural Network combined with Connectionist Temporal Classification. The implemented method has the advantage of not being dependent on lexical segmentation and manual feature extraction. Moreover, applied methods are symbolic and character independent, making the model globally trainable and suitable to be applied to multiple languages.

History

Related Materials

  1. 1.
    DOI - Is published in 10.1109/ACOMP.2019.00015
  2. 2.
    ISBN - Is published in 9781728147246 (urn:isbn:9781728147246)

Number

9044224

Start page

51

End page

56

Total pages

6

Outlet

Proceedings of the 2019 International Conference on Advanced Computing and Applications (ACOMP 2019)

Editors

Lam-Son Lê, Tran Khanh Dang, Minh Quang Tran, Michel Toulouse, Dirk Draheim, Josef Küng

Name of conference

13th International Conference on Advanced Computing and Applications, ACOMP 2019

Publisher

IEEE

Place published

United States

Start date

2019-11-27

End date

2019-11-29

Language

English

Copyright

© 2019 IEEE.

Former Identifier

2006106399

Esploro creation date

2022-11-26