Predicting Above-Sentence Discourse Structure Using Distant Supervision from Topic Segmentation
Patrick Huber, Linzi Xing, Giuseppe Carenini
摘要
RST-style discourse parsing plays a vital role in many NLP tasks, revealing the underlying semantic/pragmatic structure of potentially complex and diverse documents. Despite its importance, one of the most prevailing limitations in modern day discourse parsing is the lack of large-scale datasets. To overcome the data sparsity issue, distantly supervised approaches from tasks like sentiment analysis and summarization have been recently proposed. Here, we extend this line of research by exploiting distant supervision from topic segmentation, which can arguably provide a strong and oftentimes complementary signal for high-level discourse structures. Experiments on two human-annotated discourse treebanks confirm that our proposal generates accurate tree structures on sentence and paragraph level, consistently outperforming previous distantly supervised models on the sentence-to-document task and occasionally reaching even higher scores on the sentence-to-paragraph level.
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它引用的顶会 Paper5
- Discourse-Aware Neural Extractive Text SummarizationJiacheng Xu, Zhe Gan, Yu Cheng, Jingjing LiuACL 2020 · 被引用 264 次
- Top-Down RST Parsing Utilizing Granularity Levels in DocumentsNaoki Kobayashi, Tsutomu Hirao, Hidetaka Kamigaito, Manabu Okumura 等AAAI 2020 · 被引用 48 次
- Hierarchical Macro Discourse Parsing Based on Topic SegmentationFeng Jiang, Yaxin Fan, Xiaomin Chu, Peifeng Li 等AAAI 2021 · 被引用 14 次
- Unsupervised Learning of Discourse Structures using a Tree AutoencoderPatrick Huber, Giuseppe CareniniAAAI 2021 · 被引用 4 次
- MEGA RST Discourse Treebanks with Structure and Nuclearity from Scalable Distant Sentiment SupervisionPatrick Huber, Giuseppe CareniniEMNLP 2020 · 被引用 3 次
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