ETRI Journal
- Volume 29 Issue 4
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- Pages.527-529
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- 2007
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- 1225-6463(pISSN)
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- 2233-7326(eISSN)
Decision-Tree-Based Markov Model for Phrase Break Prediction
- Kim, Sang-Hun (Embedded S/W Research Division, ETRI) ;
- Oh, Seung-Shin (Embedded S/W Research Division, ETRI)
- Received : 2007.01.08
- Published : 2007.08.31
Abstract
In this paper, a decision-tree-based Markov model for phrase break prediction is proposed. The model takes advantage of the non-homogeneous-features-based classification ability of decision tree and temporal break sequence modeling based on the Markov process. For this experiment, a text corpus tagged with parts-of-speech and three break strength levels is prepared and evaluated. The complex feature set, textual conditions, and prior knowledge are utilized; and chunking rules are applied to the search results. The proposed model shows an error reduction rate of about 11.6% compared to the conventional classification model.