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論文 ·日本語 ·未確認

Combining a two-step conditional random field model and a joint source channel model for machine transliteration

Dong Yang Paul R. Dixon Yicheng Pan Tasuku Oonishi Masanobu Nakamura Sadaoki Furui

刊行年
2009-01-01
言語
英語
OpenAlex
W2134091544
DOI
10.3115/1699705.1699724
MAG
2134091544
URL
http://dl.acm.org/ft_gateway.cfm?id=1699724&type=pdf

要旨

This paper describes our system for "NEWS 2009 Machine Transliteration Shared Task" (NEWS 2009). We only participated in the standard run, which is a direct orthographical mapping (DOP) between two languages without using any intermediate phonemic mapping. We propose a new two-step conditional random field (CRF) model for DOP machine transliteration, in which the first CRF segments a source word into chunks and the second CRF maps the chunks to a word in the target language. The two-step CRF model obtains a slightly lower top-1 accuracy when compared to a state-of-the-art n-gram joint source-channel model. The combination of the CRF model with the joint source-channel leads to improvements in all the tasks. The official result of our system in the NEWS 2009 shared task confirms the effectiveness of our system; where we achieved 0.627 top-1 accuracy for Japanese transliterated to Japanese Kanji(JJ), 0.713 for English-to-Chinese(E2C) and 0.510 for English-to-Japanese Katakana(E2J).

主題

この書誌の出所

  • openalex— W2134091544(2026-08-14取得)

引用

Dong Yang・Paul R. Dixon・Yicheng Pan・Tasuku Oonishi・Masanobu Nakamura・Sadaoki Furui(2009-01-01) Combining a two-step conditional random field model and a joint source channel model for machine transliteration pp. 72-72

Yang2009CombiningTwoStep
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