QA discourse - Discourse relations as QA pairs: Representation, crowdsourcing and baselines

Valentina Pyatkin, Ayal Klein, Reut Tsarfaty, Ido Dagan

نتاج البحث: فصل من :كتاب / تقرير / مؤتمرمنشور من مؤتمرمراجعة النظراء

ملخص

Discourse relations describe how two propositions relate to one another, and identifying them automatically is an integral part of natural language understanding. However, annotating discourse relations typically requires expert annotators. Recently, different semantic aspects of a sentence have been represented and crowd-sourced via question-and-answer (QA) pairs. This paper proposes a novel representation of discourse relations as QA pairs, which in turn allows us to crowd-source wide-coverage data annotated with discourse relations, via an intuitively appealing interface for composing such questions and answers. Based on our proposed representation, we collect a novel and wide-coverage QADiscourse dataset, and present baseline algorithms for predicting QADiscourse relations.

اللغة الأصليةالإنجليزيّة
عنوان منشور المضيفEMNLP 2020 - 2020 Conference on Empirical Methods in Natural Language Processing, Proceedings of the Conference
ناشرAssociation for Computational Linguistics (ACL)
الصفحات2804-2819
عدد الصفحات16
رقم المعيار الدولي للكتب (الإلكتروني)9781952148606
حالة النشرنُشِر - 2020
منشور خارجيًانعم
الحدث2020 Conference on Empirical Methods in Natural Language Processing, EMNLP 2020 - Virtual, Online
المدة: ١٦ نوفمبر ٢٠٢٠٢٠ نوفمبر ٢٠٢٠

سلسلة المنشورات

الاسمEMNLP 2020 - 2020 Conference on Empirical Methods in Natural Language Processing, Proceedings of the Conference

!!Conference

!!Conference2020 Conference on Empirical Methods in Natural Language Processing, EMNLP 2020
المدينةVirtual, Online
المدة١٦/١١/٢٠٢٠/١١/٢٠

ملاحظة ببليوغرافية

Publisher Copyright:
© 2020 Association for Computational Linguistics

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