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- W2970460314 abstract "The neural seq2seq based question generation (QG) is prone to generating generic and undiversified questions that are poorly relevant to the given passage and target answer. In this paper, we propose two methods to address the issue. (1) By a partial copy mechanism, we prioritize words that are morphologically close to words in the input passage when generating questions; (2) By a QA-based reranker, from the n-best list of question candidates, we select questions that are preferred by both the QA and QG model. Experiments and analyses demonstrate that the proposed two methods substantially improve the relevance of generated questions to passages and answers." @default.
- W2970460314 created "2019-09-05" @default.
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- W2970460314 date "2019-01-01" @default.
- W2970460314 modified "2023-09-24" @default.
- W2970460314 title "Generating Highly Relevant Questions" @default.
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- W2970460314 doi "https://doi.org/10.18653/v1/d19-1614" @default.
- W2970460314 hasPublicationYear "2019" @default.
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