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Incorporating Annotator Uncertainty into Representations of Discourse Relations

  • SUNY Buffalo

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

1 Scopus citations

Abstract

Annotation of discourse relations is a known difficult task, especially for non-expert annotators. In this paper, we investigate novice annotators’ uncertainty on the annotation of discourse relations on spoken conversational data. We find that dialogue context (single turn, pair of turns within speaker, and pair of turns across speakers) is a significant predictor of confidence scores. We compute distributed representations of discourse relations from co-occurrence statistics that incorporate information about confidence scores and dialogue context. We perform a hierarchical clustering analysis using these representations and show that weighting discourse relation representations with information about confidence and dialogue context coherently models our annotators’ uncertainty about discourse relation labels.

Original languageEnglish
Title of host publicationSIGDIAL 2023 - 24th Meeting of the Special Interest Group on Discourse and Dialogue, Proceedings of the Conference
EditorsSvetlana Stoyanchev, Shafiq Joty, David Schlangen, Ondrej Dusek, Casey Kennington, Malihe Alikhani
PublisherAssociation for Computational Linguistics (ACL)
Pages530-537
Number of pages8
ISBN (Electronic)9798891760288
StatePublished - 2023
Event24th Annual Meeting of the Special Interest Group on Discourse and Dialogue, SIGDIAL 2023 - Hybrid, Prague, Czech Republic
Duration: Sep 11 2023Sep 15 2023

Publication series

NameSIGDIAL 2023 - 24th Meeting of the Special Interest Group on Discourse and Dialogue, Proceedings of the Conference

Conference

Conference24th Annual Meeting of the Special Interest Group on Discourse and Dialogue, SIGDIAL 2023
Country/TerritoryCzech Republic
CityHybrid, Prague
Period09/11/2309/15/23

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