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[2104.06924] Evaluation of Unsupervised Entity and Event Salience Estimation

 2 years ago
source link: https://arxiv.org/abs/2104.06924
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[Submitted on 14 Apr 2021]

Evaluation of Unsupervised Entity and Event Salience Estimation

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Salience Estimation aims to predict term importance in documents. Due to few existing human-annotated datasets and the subjective notion of salience, previous studies typically generate pseudo-ground truth for evaluation. However, our investigation reveals that the evaluation protocol proposed by prior work is difficult to replicate, thus leading to few follow-up studies existing. Moreover, the evaluation process is problematic: the entity linking tool used for entity matching is very noisy, while the ignorance of event argument for event evaluation leads to boosted performance. In this work, we propose a light yet practical entity and event salience estimation evaluation protocol, which incorporates the more reliable syntactic dependency parser. Furthermore, we conduct a comprehensive analysis among popular entity and event definition standards, and present our own definition for the Salience Estimation task to reduce noise during the pseudo-ground truth generation process. Furthermore, we construct dependency-based heterogeneous graphs to capture the interactions of entities and events. The empirical results show that both baseline methods and the novel GNN method utilizing the heterogeneous graph consistently outperform the previous SOTA model in all proposed metrics.

Subjects: Computation and Language (cs.CL) Cite as: arXiv:2104.06924 [cs.CL]   (or arXiv:2104.06924v1 [cs.CL] for this version)   https://doi.org/10.48550/arXiv.2104.06924 Journal reference: Proceedings of the 34rd International Florida Artificial Intelligence Research Society Conference, 2021

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