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Chunking using conditional random fields in Korean texts SCIE SCOPUS

Title
Chunking using conditional random fields in Korean texts
Authors
Lee, YHKim, MYLee, JH
Date Issued
2005-01
Publisher
SPRINGER-VERLAG BERLIN
Abstract
We present a method of chunking in Korean texts using conditional random fields (CRFs), a recently introduced probabilistic model for labeling and segmenting sequence of data. In agglutinative languages such as Korean and Japanese, a rule-based chunking method is predominantly used for its simplicity and efficiency. A hybrid of a rule-based and machine learning method was also proposed to handle exceptional cases of the rules. In this paper, we present how CRFs can be applied to the task of chunking in Korean texts. Experiments using the STEP 2000 dataset show that the proposed method significantly improves the performance as well as outperforms previous systems.
URI
https://oasis.postech.ac.kr/handle/2014.oak/24318
DOI
10.1007/11562214_14
ISSN
0302-9743
Article Type
Article
Citation
LECTURE NOTES IN ARTIFICIAL INTELLIGENCE, vol. 3651, page. 155 - 164, 2005-01
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이종혁LEE, JONG HYEOK
Grad. School of AI
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