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Infusing Knowledge from Wikipedia to Enhance Stance Detection (2204.03839v1)

Published 8 Apr 2022 in cs.CL

Abstract: Stance detection infers a text author's attitude towards a target. This is challenging when the model lacks background knowledge about the target. Here, we show how background knowledge from Wikipedia can help enhance the performance on stance detection. We introduce Wikipedia Stance Detection BERT (WS-BERT) that infuses the knowledge into stance encoding. Extensive results on three benchmark datasets covering social media discussions and online debates indicate that our model significantly outperforms the state-of-the-art methods on target-specific stance detection, cross-target stance detection, and zero/few-shot stance detection.

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Authors (3)
  1. Zihao He (31 papers)
  2. Negar Mokhberian (13 papers)
  3. Kristina Lerman (197 papers)
Citations (40)

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