Predicting the Focus of Negation: Model and Error Analysis
Md Mosharaf Hossain, Kathleen E. Hamilton, Alexis Palmer, Eduardo Blanco
Abstract
The focus of a negation is the set of tokens intended to be negated, and a key component for revealing affirmative alternatives to negated utterances. In this paper, we experiment with neural networks to predict the focus of negation. Our main novelty is leveraging a scope detector to introduce the scope of negation as an additional input to the network. Experimental results show that doing so obtains the best results to date. Additionally, we perform a detailed error analysis providing insights into the main error categories, and analyze errors depending on whether the model takes into account scope and context information.
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Cited by top-tier papers3
- An Analysis of Natural Language Inference Benchmarks through the Lens of NegationMd Mosharaf Hossain, Venelin Kovatchev, Pranoy Dutta, Tiffany Kao et al.EMNLP 2020 · 61 citations
- Diagnosing the First-Order Logical Reasoning Ability Through LogicNLIJidong Tian, Yitian Li, Wenqing Chen, Liqiang Xiao et al.EMNLP 2021 · 21 citations
- Leveraging Affirmative Interpretations from Negation Improves Natural Language UnderstandingMd Mosharaf Hossain, Eduardo BlancoEMNLP 2022 · 4 citations
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