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      Machine Translation of Restaurant Reviews: New Corpus for Domain Adaptation and Robustness

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          Abstract

          We share a French-English parallel corpus of Foursquare restaurant reviews (https://europe.naverlabs.com/research/natural-language-processing/machine-translation-of-restaurant-reviews), and define a new task to encourage research on Neural Machine Translation robustness and domain adaptation, in a real-world scenario where better-quality MT would be greatly beneficial. We discuss the challenges of such user-generated content, and train good baseline models that build upon the latest techniques for MT robustness. We also perform an extensive evaluation (automatic and human) that shows significant improvements over existing online systems. Finally, we propose task-specific metrics based on sentiment analysis or translation accuracy of domain-specific polysemous words.

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          SemEval-2016 Task 5: Aspect Based Sentiment Analysis

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            Author and article information

            Journal
            31 October 2019
            Article
            1910.14589
            045d3777-0dec-4806-938f-8863c926ef1c

            http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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            Custom metadata
            WNGT 2019 Paper
            cs.CL

            Theoretical computer science
            Theoretical computer science

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