Aspect-Based Sentiment Analysis with Explicit Sentiment Augmentations
Jihong Ouyang, Zhiyao Yang, Silong Liang, Bing Wang, Yimeng Wang, Ximing Li
摘要
Aspect-based sentiment analysis (ABSA), a fine-grained sentiment classification task, has received much attention recently. Many works investigate sentiment information through opinion words, such as "good'' and "bad''. However, implicit sentiment data widely exists in the ABSA dataset, whose sentiment polarity is hard to determine due to the lack of distinct opinion words. To deal with implicit sentiment, this paper proposes an ABSA method that integrates explicit sentiment augmentations (ABSA-ESA) to add more sentiment clues. We propose an ABSA-specific explicit sentiment generation method to create such augmentations. Specifically, we post-train T5 by rule-based data and employ three strategies to constrain the sentiment polarity and aspect term of the generated augmentations. We employ Syntax Distance Weighting and Unlikelihood Contrastive Regularization in the training procedure to guide the model to generate the explicit opinion words with the same polarity as the input sentence. Meanwhile, we utilize the Constrained Beam Search to ensure the augmentations are aspect-related. We test ABSA-ESA on two ABSA benchmarks. The results show that ABSA-ESA outperforms the SOTA baselines on implicit and explicit sentiment accuracy.
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引用它的顶会 Paper4
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- Single-Pass, Depth-Selective Reading for Multi-Aspect Sentiment AnalysisYan Xia, Zhuangzhuang Pan, Amirrudin Kamsin, Chee Seng ChanACL 2026
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它引用的顶会 Paper7
- Relational Graph Attention Network for Aspect-based Sentiment AnalysisKai Wang, Weizhou Shen, Yunyi Yang, Xiaojun Quan 等ACL 2020 · 被引用 614 次
- Inducing Target-Specific Latent Structures for Aspect Sentiment ClassificationChenhua Chen, Zhiyang Teng, Yue ZhangEMNLP 2020 · 被引用 131 次
- Learning Implicit Sentiment in Aspect-based Sentiment Analysis with Supervised Contrastive Pre-TrainingZhengyan Li, Yicheng Zou, Chong Zhang, Qi Zhang 等EMNLP 2021 · 被引用 101 次
- Data Augmentation for Text Generation Without Any Augmented DataWei Bi, Huayang Li, Jiacheng HuangACL 2021
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