Discourse as a function of event: Profiling discourse structure in news articles around the main event

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Abstract

Understanding discourse structures of news articles is vital to effectively contextualize the occurrence of a news event. To enable computational modeling of news structures, we apply an existing theory of functional discourse structure for news articles that revolves around the main event and create a human-annotated corpus of 802 documents spanning over four domains and three media sources. Next, we propose several document-level neural-network models to automatically construct news content structures. Finally, we demonstrate that incorporating system predicted news structures yields new state-of-the-art performance for event coreference resolution. The news documents we annotated are openly available and the annotations are publicly released for future research.

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APA

Choubey, P. K., Lee, A., Huang, R., & Wang, L. (2020). Discourse as a function of event: Profiling discourse structure in news articles around the main event. In Proceedings of the Annual Meeting of the Association for Computational Linguistics (pp. 5374–5386). Association for Computational Linguistics (ACL). https://doi.org/10.18653/v1/2020.acl-main.478

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