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UM-Corpus: A Large English-Chinese Parallel Corpus for Statistical Machine Translation

Proceedings of the Ninth International Conference on Language Resources and Evaluation (LREC 2014)

DOI:10.63317/5g372droqb3q

Abstract

Parallel corpus is a valuable resource for cross-language information retrieval and data-driven natural language processing systems, especially for Statistical Machine Translation (SMT). However, most existing parallel corpora to Chinese are subject to in-house use, while others are domain specific and limited in size. To a certain degree, this limits the SMT research. This paper describes the acquisition of a large scale and high quality parallel corpora for English and Chinese. The corpora constructed in this paper contain about 15 million English-Chinese (E-C) parallel sentences, and more than 2 million training data and 5,000 testing sentences are made publicly available. Different from previous work, the corpus is designed to embrace eight different domains. Some of them are further categorized into different topics. The corpus will be released to the research community, which is available at the NLP2CT website.

Details

Paper ID
lrec2014-main-604
Pages
pp. 1837-1842
BibKey
tian-etal-2014-um
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
2522-2686
ISBN
978-2-9517408-8-4
Conference
Ninth International Conference on Language Resources and Evaluation
Location
Reykjavik, Iceland
Date
26 May 2014 31 May 2014

Authors

  • LT

    Liang Tian

  • DW

    Derek F. Wong

  • LC

    Lidia S. Chao

  • PQ

    Paulo Quaresma

  • FO

    Francisco Oliveira

  • YL

    Yi Lu

  • SL

    Shuo Li

  • YW

    Yiming Wang

  • LW

    Longyue Wang

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