Political Analysis · 2018 · 220 citations · 21 references
Translation StudiesEngineeringGoogle Translate WorksCross-lingual RepresentationEuroparl DatasetLanguage ProcessingText MiningApplied LinguisticsNatural Language ProcessingInformation RetrievalComputational LinguisticsCorpus AnalysisLanguage StudiesContent AnalysisMachine TranslationComputer-assisted TranslationLonger LostLanguage Modeling (Natural Language Processing)Cross-language RetrievalTranslation HistoryTopic ModelCross-lingual Natural Language ProcessingLinguisticsAutomated Text Analysis
Automated text analysis allows researchers to analyze large quantities of text. Yet, comparative researchers are presented with a big challenge: across countries people speak different languages. To address this issue, some analysts have suggested using Google Translate to convert all texts into English before starting the analysis (Lucas et al. 2015). But in doing so, do we get lost in translation? This paper evaluates the usefulness of machine translation for bag-of-words models—such as topic models. We use the europarl dataset and compare term-document matrices (TDMs) as well as topic model results from gold standard translated text and machine-translated text. We evaluate results at both the document and the corpus level. We first find TDMs for both text corpora to be highly similar, with minor differences across languages. What is more, we find considerable overlap in the set of features generated from human-translated and machine-translated texts. With regard to LDA topic models, we find topical prevalence and topical content to be highly similar with again only small differences across languages. We conclude that Google Translate is a useful tool for comparative researchers when using bag-of-words text models.
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Europarl: A Parallel Corpus for Statistical Machine Translation
Philipp Koehn · 2005 · 3.1K citations
quanteda: An R package for the quantitative analysis of textual data
Kenneth Benoit, Kohei Watanabe, H. P. Wang et al. · The Journal of Open Source Software · 2018 · 1.3K citations · Full text