DocumentCode :
2143721
Title :
Co-training for Handwritten Word Recognition
Author :
Frinken, Volkmar ; Fischer, Andreas ; Bunke, Horst ; Foornes, A.
Author_Institution :
Inst. of Comput. Sci. & Appl. Math., Univ. of Bern, Bern, Switzerland
fYear :
2011
fDate :
18-21 Sept. 2011
Firstpage :
314
Lastpage :
318
Abstract :
To cope with the tremendous variations of writing styles encountered between different individuals, unconstrained automatic handwriting recognition systems need to be trained on large sets of labeled data. Traditionally, the training data has to be labeled manually, which is a laborious and costly process. Semi-supervised learning techniques offer methods to utilize unlabeled data, which can be obtained cheaply in large amounts in order, to reduce the need for labeled data. In this paper, we propose the use of Co-Training for improving the recognition accuracy of two weakly trained handwriting recognition systems. The first one is based on Recurrent Neural Networks while the second one is based on Hidden Markov Models. On the IAM off-line handwriting database we demonstrate a significant increase of the recognition accuracy can be achieved with Co-Training for single word recognition.
Keywords :
handwritten character recognition; hidden Markov models; learning (artificial intelligence); recurrent neural nets; automatic handwriting recognition systems; handwritten word recognition; hidden Markov models; recurrent neural networks; semisupervised learning; writing styles; Accuracy; Handwriting recognition; Hidden Markov models; Neural networks; Text recognition; Training; Training data; BLSTM NN; Co-Training; HMMs; Handwriting Recognition; Semi-supervised Learning; Single Word Recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Document Analysis and Recognition (ICDAR), 2011 International Conference on
Conference_Location :
Beijing
ISSN :
1520-5363
Print_ISBN :
978-1-4577-1350-7
Electronic_ISBN :
1520-5363
Type :
conf
DOI :
10.1109/ICDAR.2011.71
Filename :
6065326
Link To Document :
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