3 resources

  • Weizhe Yuan, Graham Neubig, Pengfei Liu,...
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    Jan 22nd, 2021
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    journalArticle
    Weizhe Yuan, Graham Neubig, Pengfei Liu,...
    Jan 22nd, 2021

    A wide variety of NLP applications, such as machine translation, summarization, and dialog, involve text generation. One major challenge for these applications is how to evaluate whether such generated texts are actually fluent, accurate, or effective. In this work, we conceptualize the evaluation of generated text as a text generation problem, modeled using pre-trained sequence-to-sequence models. The general idea is that models trained to convert the generated text to/from a reference...

  • Weizhe Yuan, Graham Neubig, Pengfei Liu,...
    |
    Jan 22nd, 2021
    |
    journalArticle
    Weizhe Yuan, Graham Neubig, Pengfei Liu,...
    Jan 22nd, 2021

    A wide variety of NLP applications, such as machine translation, summarization, and dialog, involve text generation. One major challenge for these applications is how to evaluate whether such generated texts are actually fluent, accurate, or effective. In this work, we conceptualize the evaluation of generated text as a text generation problem, modeled using pre-trained sequence-to-sequence models. The general idea is that models trained to convert the generated text to/from a reference...

  • Cong Wang, Xiufeng Liu, Lei Wang
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    Apr 22nd, 2021
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    journalArticle
    Cong Wang, Xiufeng Liu, Lei Wang
    Apr 22nd, 2021
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