DaNetQA: a yes/no Question Answering Dataset for the Russian Language

October 06, 2020 ยท Declared Dead ยท ๐Ÿ› International Joint Conference on the Analysis of Images, Social Networks and Texts

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Authors Taisia Glushkova, Alexey Machnev, Alena Fenogenova, Tatiana Shavrina, Ekaterina Artemova, Dmitry I. Ignatov arXiv ID 2010.02605 Category cs.CL: Computation & Language Cross-listed cs.IR Citations 11 Venue International Joint Conference on the Analysis of Images, Social Networks and Texts Last Checked 5 months ago
Abstract
DaNetQA, a new question-answering corpus, follows (Clark et. al, 2019) design: it comprises natural yes/no questions. Each question is paired with a paragraph from Wikipedia and an answer, derived from the paragraph. The task is to take both the question and a paragraph as input and come up with a yes/no answer, i.e. to produce a binary output. In this paper, we present a reproducible approach to DaNetQA creation and investigate transfer learning methods for task and language transferring. For task transferring we leverage three similar sentence modelling tasks: 1) a corpus of paraphrases, Paraphraser, 2) an NLI task, for which we use the Russian part of XNLI, 3) another question answering task, SberQUAD. For language transferring we use English to Russian translation together with multilingual language fine-tuning.
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