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Natural Language Inference as an Evaluation Measure for Abstractive Summarization

机译:自然语言推断作为抽象总结的评估措施

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Natural Language Inference (NLI) is the task of determining if a natural language hypothesis can be reasonably inferred from a natural language text. Text Summarization is the task of taking a piece of text and producing a condensed version that retains the salient points of the text in the process. Evaluating the quality of generated summaries is a very ambitious task. Most current methods to evaluate system generated summaries require the presence of human-written summaries for reference, making it an expensive endeavour. This work proposes using NLI as an evaluation measure for system generated summaries. This approach does not need costly reference summaries. The results we obtained show that we can confidently use NLI to determine the correctness of summaries generated by Abstractive Summarizers.
机译:自然语言推断(NLI)是确定自然语言文本是否可以合理地推断出自然语言假设的任务。文本摘要是拍摄一块文本并产生凝聚的版本,该任务保留了该过程中文本的突出点。评估生成的摘要质量是一个非常雄心勃勃的任务。大多数评估系统所产生的摘要的最新方法需要存在人写的摘要供参考,使其成为昂贵的努力。这项工作建议使用NLI作为系统生成摘要的评估措施。这种方法不需要昂贵的参考摘要。我们获得的结果表明,我们可以自信地使用NLI来确定抽象摘要产生的摘要的正确性。

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