Publication | Open Access
ParaSCI: A Large Scientific Paraphrase Dataset for Longer Paraphrase Generation
29
Citations
22
References
2021
Year
Unknown Venue
EngineeringTextual EntailmentParasci LieCorpus LinguisticsText MiningNatural Language ProcessingParaphraseInformation RetrievalData ScienceComputational LinguisticsParaphrase PairsLanguage StudiesMachine TranslationNlp TaskKnowledge DiscoveryRetrieval Augmented GenerationGeneral ParaphraseKeyword ExtractionLonger Paraphrase GenerationLinguisticsLanguage Generation
We propose ParaSCI, the first large-scale paraphrase dataset in the scientific field, including 33,981 paraphrase pairs from ACL (ParaSCI-ACL) and 316,063 pairs from arXiv (ParaSCI-arXiv). Digging into characteristics and common patterns of scientific papers, we construct this dataset though intra-paper and inter-paper methods, such as collecting citations to the same paper or aggregating definitions by scientific terms. To take advantage of sentences paraphrased partially, we put up PDBERT as a general paraphrase discovering method. The major advantages of paraphrases in ParaSCI lie in the prominent length and textual diversity, which is complementary to existing paraphrase datasets. ParaSCI obtains satisfactory results on human evaluation and downstream tasks, especially long paraphrase generation.
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