A hidden Markov model for Persian part-of-speech tagging

Abstract One of the important actions in the processing of languages is part-of-speech tagging. Against of this importance, although numerous models have been presented in different languages but there is few works have been done in Persian language. In this paper, a part-of-speech tagging system on Persian corpus by using hidden Markov model is proposed. Achieving to this goal, the main aspects of Persian morphology is introduced and developed. To evaluate the accuracy of proposed approach, this approach is applied in simulations which are done on both homogeneous and heterogeneous Persian corpus. Getting results with 98.1% accuracy in the experiments demonstrate the suitable efficiency of the proposed approach on Persian corpus.

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A hidden Markov model for Persian part-of-speech tagging

Semantic Scholar · Computer Science · 2011

Abstract

Abstract One of the important actions in the processing of languages is part-of-speech tagging. Against of this importance, although numerous models have been presented in different languages but there is few works have been done in Persian language. In this paper, a part-of-speech tagging system on Persian corpus by using hidden Markov model is proposed. Achieving to this goal, the main aspects of Persian morphology is introduced and developed. To evaluate the accuracy of proposed approach, this approach is applied in simulations which are done on both homogeneous and heterogeneous Persian corpus. Getting results with 98.1% accuracy in the experiments demonstrate the suitable efficiency of the proposed approach on Persian corpus.

References (17)

09The Persian Morphological parser by Using POS Tagger2007 · the Proceedings of 2th Workshop on Computational Approaches to Arabic Script-Based Languages (CAASL-2)
10Persian Part of Speech Tagging, In the Proceedings of Workshop on Computational Approaches to Arabic Script-Based Languages2007
12Assumptions for Rapid Training and Execution of Rule-based Partof- Speech Taggers, In Proceedings of the 38th Annual Meeting of the Association for Computational Linguistics (ACL)2000 · Hong Kong

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