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ONLINE BANGLA HANDWRITTEN WORD RECOGNITION
- Source :
- Malaysian Journal of Computer Science. 31:300-310
- Publication Year :
- 2018
- Publisher :
- Univ. of Malaya, 2018.
-
Abstract
- Bangla word recognition is extremely challenging and a limited number of works has been reported on online cursive Bangla word recognition. Bangla is a complicated script and it requires rigorous investigations to implement a better recognition system. While we have sophisticated classifiers like Hidden Markov Models or BLSTM Neural Networks for recognition of complicated scripts, there has been a limited number of comparative studies about the appropriate feature sets for such scripts. In this paper, our aim is to implement an appropriate recognition system for writer-independent unconstrained Bangla online words where a modified feature set is proposed. To construct the modified feature set, we have modified the existing feature sets and included new features to improve the recognition accuracy. We have tested the performances of various existing feature sets and the proposed feature set on a single dataset for fair comparison and reported the comparative results using various lexicons up to 20,000-word lexicon. An HMM-based classifier has been used to test each feature set. Finally, a recognition system is built over the combination of existing and modified feature sets.
- Subjects :
- General Computer Science
Artificial neural network
business.industry
Computer science
02 engineering and technology
Lexicon
computer.software_genre
ComputingMethodologies_PATTERNRECOGNITION
Scripting language
020204 information systems
Classifier (linguistics)
Word recognition
0202 electrical engineering, electronic engineering, information engineering
Feature (machine learning)
020201 artificial intelligence & image processing
Artificial intelligence
business
Hidden Markov model
computer
Cursive
Natural language processing
Subjects
Details
- ISSN :
- 01279084
- Volume :
- 31
- Database :
- OpenAIRE
- Journal :
- Malaysian Journal of Computer Science
- Accession number :
- edsair.doi...........542960e8100799ac59dd6e2516c84a2e
- Full Text :
- https://doi.org/10.22452/mjcs.vol31no4.4