GDTB: Genre Diverse Data for English Shallow Discourse Parsing across Modalities, Text Types, and Domains
Yang Janet Liu, Tatsuya Aoyama, Wesley Scivetti, Yilun Zhu, Shabnam Behzad, Lauren Levine, Jessica Lin, Devika Tiwari, Amir Zeldes
Abstract
Work on shallow discourse parsing in English has focused on the Wall Street Journal corpus, the only large-scale dataset for the language in the PDTB framework. However, the data is not openly available, is restricted to the news domain, and is by now 35 years old. In this paper, we present and evaluate a new openaccess, multi-genre benchmark for PDTB-style shallow discourse parsing, based on the existing UD English GUM corpus, for which discourse relation annotations in other frameworks already exist. In a series of experiments on cross-domain relation classification, we show that while our dataset is compatible with PDTB, substantial out-of-domain degradation is observed, which can be alleviated by joint training on both datasets.
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Install the CLIlune papers fulltext 8a37a2c6-f528-4484-83ee-77480bc7b5bdCited by top-tier papers2
- Expect the Unexpected? Testing the Surprisal of Salient EntitiesJessica Lin, Amir ZeldesACL 2026 · 2 citations
- Discursive Circuits: How Do Language Models Understand Discourse Relations?Yisong Miao, Min-Yen KanEMNLP 2025
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