Conditional Augmentation for Aspect Term Extraction via Masked Sequence-to-Sequence Generation
Kun Li, Chengbo Chen, Xiaojun Quan, Qing Ling, Yan Song
摘要
Aspect term extraction aims to extract aspect terms from review texts as opinion targets for sentiment analysis. One of the big challenges with this task is the lack of sufficient annotated data. While data augmentation is potentially an effective technique to address the above issue, it is uncontrollable as it may change aspect words and aspect labels unexpectedly. In this paper, we formulate the data augmentation as a conditional generation task: generating a new sentence while preserving the original opinion targets and labels. We propose a masked sequence-to-sequence method for conditional augmentation of aspect term extraction. Unlike existing augmentation approaches, ours is controllable and allows us to generate more diversified sentences. Experimental results confirm that our method alleviates the data scarcity problem significantly. It also effectively boosts the performances of several current models for aspect term extraction.
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引用它的顶会 Paper17
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- MELM: Data Augmentation with Masked Entity Language Modeling for Low-Resource NERRan Zhou, Xin Li, Ruidan He, Lidong Bing 等ACL 2022 · 被引用 114 次
- Question-Driven Span Labeling Model for Aspect-Opinion Pair ExtractionLei Gao, Yulong Wang, Tongcun Liu, Jingyu Wang 等AAAI 2021 · 被引用 77 次
- Enhancing Aspect Term Extraction with Soft PrototypesZhuang Chen, Tieyun QianEMNLP 2020 · 被引用 56 次
- PASTE: A Tagging-Free Decoding Framework Using Pointer Networks for Aspect Sentiment Triplet ExtractionRajdeep Mukherjee, Tapas Nayak, Yash Butala, Sourangshu Bhattacharya 等EMNLP 2021 · 被引用 54 次
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