arXiv (Cornell University) · 2018 · 122 citations · 27 references
Natural Language ProcessingRetrieval Augmented GenerationEngineeringMachine LearningData ScienceQuestion AnsweringAutomated ReasoningNatural Language InferenceComputational LinguisticsNlp TaskNli DatasetsTextual EntailmentLanguage StudiesSemantic ParsingLinguisticsText MiningMachine TranslationLanguage Understanding
Existing datasets for natural language inference (NLI) have propelled research on language understanding. We propose a new method for automatically deriving NLI datasets from the growing abundance of large-scale question answering datasets. Our approach hinges on learning a sentence transformation model which converts question-answer pairs into their declarative forms. Despite being primarily trained on a single QA dataset, we show that it can be successfully applied to a variety of other QA resources. Using this system, we automatically derive a new freely available dataset of over 500k NLI examples (QA-NLI), and show that it exhibits a wide range of inference phenomena rarely seen in previous NLI datasets.
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Glove: Global Vectors for Word Representation
Jeffrey Pennington, Richard Socher, Christopher D. Manning · 2014 · 33.2K citations
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Convolutional Sequence to Sequence Learning
Jonas Gehring, Michael Auli, David Grangier et al. · arXiv (Cornell University) · 2017 · 1.9K citations · Full text
Natural Language Processing, Sequence Modelling, Engineering +13