Multi-Label Few-Shot Learning for Aspect Category Detection
Mengting Hu, Shiwan Zhao, Honglei Guo, Chao Xue, Hang Gao, Tiegang Gao, Renhong Cheng, Zhong Su
摘要
Aspect category detection (ACD) in sentiment analysis aims to identify the aspect categories mentioned in a sentence. In this paper, we formulate ACD in the few-shot learning scenario. However, existing few-shot learning approaches mainly focus on single-label predictions. These methods can not work well for the ACD task since a sentence may contain multiple aspect categories. Therefore, we propose a multi-label few-shot learning method based on the prototypical network. To alleviate the noise, we design two effective attention mechanisms. The support-set attention aims to extract better prototypes by removing irrelevant aspects. The query-set attention computes multiple prototype-specific representations for each query instance, which are then used to compute accurate distances with the corresponding prototypes. To achieve multilabel inference, we further learn a dynamic threshold per instance by a policy network. Extensive experimental results on three datasets demonstrate that the proposed method significantly outperforms strong baselines.
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引用它的顶会 Paper3
- Label-enhanced Prototypical Network with Contrastive Learning for Multi-label Few-shot Aspect Category DetectionHan Liu, Feng Zhang, Xiaotong Zhang, Siyang Zhao 等KDD 2022 · 被引用 23 次
- Dual Class Knowledge Propagation Network for Multi-label Few-shot Intent DetectionFeng Zhang, Wei Chen, Fei Ding, Tengjiao WangACL 2023 · 被引用 5 次
- Variational Hybrid-Attention Framework for Multi-Label Few-Shot Aspect Category DetectionCheng Peng, Ke Chen, Lidan Shou, Gang ChenAAAI 2024 · 被引用 3 次
它引用的顶会 Paper3
- Few-shot Learning for Multi-label Intent DetectionYutai Hou, Yongkui Lai, Yushan Wu, Wanxiang Che 等AAAI 2021 · 被引用 60 次
- Attentive Weights Generation for Few Shot Learning via Information MaximizationYiluan Guo, Ngai-Man CheungCVPR 2020
- Adversarial Feature Hallucination Networks for Few-Shot LearningKai Li, Yulun Zhang, Kunpeng Li, Yun FuCVPR 2020
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