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      Learning to generate one-sentence biographies from Wikidata

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          Abstract

          We investigate the generation of one-sentence Wikipedia biographies from facts derived from Wikidata slot-value pairs. We train a recurrent neural network sequence-to-sequence model with attention to select facts and generate textual summaries. Our model incorporates a novel secondary objective that helps ensure it generates sentences that contain the input facts. The model achieves a BLEU score of 41, improving significantly upon the vanilla sequence-to-sequence model and scoring roughly twice that of a simple template baseline. Human preference evaluation suggests the model is nearly as good as the Wikipedia reference. Manual analysis explores content selection, suggesting the model can trade the ability to infer knowledge against the risk of hallucinating incorrect information.

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          A Neural Attention Model for Abstractive Sentence Summarization

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            Automatic evaluation of summaries using N-gram co-occurrence statistics

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              Neural Text Generation from Structured Data with Application to the Biography Domain

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                Author and article information

                Journal
                2017-02-20
                Article
                1702.06235
                67ff768e-94f2-48e7-99a0-9370636a5fc9

                http://creativecommons.org/licenses/by/4.0/

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                cs.CL

                Theoretical computer science
                Theoretical computer science

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