Improving Neural Relation Extraction with Positive and Unlabeled Learning
Zhengqiu He, Wenliang Chen, Yuyi Wang, Wei Zhang, Guanchun Wang, Min Zhang
摘要
We present a novel approach to improve the performance of distant supervision relation extraction with Positive and Unlabeled (PU) Learning. This approach first applies reinforcement learning to decide whether a sentence is positive to a given relation, and then positive and unlabeled bags are constructed. In contrast to most previous studies, which mainly use selected positive instances only, we make full use of unlabeled instances and propose two new representations for positive and unlabeled bags. These two representations are then combined in an appropriate way to make bag-level prediction. Experimental results on a widely used real-world dataset demonstrate that this new approach indeed achieves significant and consistent improvements as compared to several competitive baselines.
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- A Unified Positive-Unlabeled Learning Framework for Document-Level Relation Extraction with Different Levels of LabelingYe Wang, Xinxin Liu, Wenxin Hu, Tao ZhangEMNLP 2022 · 被引用 18 次
- Improving Distantly Supervised Relation Extraction by Natural Language InferenceKang Zhou, Qiao Qiao, Yuepei Li, Qi LiAAAI 2023 · 被引用 12 次
- A Positive-Unlabeled Metric Learning Framework for Document-Level Relation Extraction with Incomplete LabelingYe Wang, Huazheng Pan, Tao Zhang, Wen Wu 等AAAI 2024 · 被引用 11 次
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