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Statistical features based character recognition for offline handwritten Tamil document images using HMM

S. Abirami V. Essakiammal R. Baskaran

刊行年
2015-01-01
収録
『International Journal of Computational Vision and Robotics』 5(4) pp. 422-422
出版
Inderscience Publishers
言語
英語
OpenAlex
W2193794526
DOI
10.1504/ijcvr.2015.072192
MAG
2193794526
ISSN
1752-9131
URL
https://doi.org/10.1504/ijcvr.2015.072192

要旨

Offline handwritten recognition has been one of the active and challenging research areas in the field of pattern recognition. More research work has been done for English, Chinese, Arabic, Japanese languages and numerals recognition but limited for Indian scripts. With respect to Tamil language, handwriting recognition is still an open challenge due to richness of language and versatile shapes. In this paper, the problem of recognising offline Tamil handwritten characters has been addressed by using a symbol-modelling HMM. Here, we propose six different statistical features which are extracted from the character boundaries, to classify a character using symbol-modelling HMM. Data samples are collected from HP data sets pertaining to 60 Tamil characters for training. For testing purpose, ten different samples are collected for every character addressing four different varieties of writers from HP data sets to evaluate the recognition performance. An accuracy of 85% has been achieved through this system.

主題

この書誌の出所

  • openalex— W2193794526(2026-08-14取得)

引用

S. Abirami・V. Essakiammal・R. Baskaran(2015-01-01) Statistical features based character recognition for offline handwritten Tamil document images using HMM 『International Journal of Computational Vision and Robotics』 5(4) pp. 422-422 Inderscience Publishers

Abirami2015StatisticalFeaturesBased
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