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Resource Creation and Evaluation for Multilingual Sentiment Analysis in Social Media Texts

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

DOI:10.63317/375q8jy8cqk6

Abstract

This paper presents an evaluation of the use of machine translation to obtain and employ data for training multilingual sentiment classifiers. We show that the use of machine translated data obtained similar results as the use of native-speaker translations of the same data. Additionally, our evaluations pinpoint to the fact that the use of multilingual data, including that obtained through machine translation, leads to improved results in sentiment classification. Finally, we show that the performance of the sentiment classifiers built on machine translated data can be improved using original data from the target language and that even a small amount of such texts can lead to significant growth in the classification performance.

Details

Paper ID
lrec2014-main-727
Pages
N/A
BibKey
balahur-etal-2014-resource
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

  • AB

    Alexandra Balahur

  • MT

    Marco Turchi

  • RS

    Ralf Steinberger

  • JP

    Jose-Manuel Perea-Ortega

  • GJ

    Guillaume Jacquet

  • DK

    Dilek Küçük

  • VZ

    Vanni Zavarella

  • AE

    Adil El Ghali

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