Machine Printed Character Recognition Based on the Combination of Recognition Units Using Multiple Neural Networks


The KIPS Transactions:PartB , Vol. 10, No. 7, pp. 777-784, Dec. 2003
10.3745/KIPSTB.2003.10.7.777,   PDF Download:

Abstract

In this paper, we propose a recognition method of machine printed characters based on the combination of recognition units using multiple neural networks. In our recognition method, the input character is classified into one of 7 character types among which the first 6 types are for Hangul character and the last type is for non-Hangul characters. Hangul characters are recognized by several MLP (multilayer perceptron) neural networks through two stages. In the first stage, we divide Hangul character image into two or three recognition units (HRU : Hangul recognition unit) according to the combination fashion of graphemes. Each recognition unit composed of one or two graphemes is recognized by an MLP neural network with an input feature vector of pixel direction angles. In the second stage, the recognition aspect features of the HRU MLP recognizers in the first stage are extracted and forwarded to a subsequent MLP by which final recognition result is obtained. For the recognition of non-Hangul characters, a single MLP is employed. The recognition experiments had been performed on the character image database collected from 50,000 real letter envelope images. The experimental results have demonstrated the superiority of the proposed method.


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Cite this article
[IEEE Style]
I. G. Taeg, K. H. Yeon, N. Y. Seog, "Machine Printed Character Recognition Based on the Combination of Recognition Units Using Multiple Neural Networks," The KIPS Transactions:PartB , vol. 10, no. 7, pp. 777-784, 2003. DOI: 10.3745/KIPSTB.2003.10.7.777.

[ACM Style]
Im Gil Taeg, Kim Ho Yeon, and Nam Yun Seog. 2003. Machine Printed Character Recognition Based on the Combination of Recognition Units Using Multiple Neural Networks. The KIPS Transactions:PartB , 10, 7, (2003), 777-784. DOI: 10.3745/KIPSTB.2003.10.7.777.