Enhanced Multi-Channel Graph Convolutional Network for Aspect Sentiment Triplet Extraction
Hao Chen, Zepeng Zhai, Fangxiang Feng, Ruifan Li, Xiaojie Wang
Abstract
Aspect Sentiment Triplet Extraction (ASTE) is an emerging sentiment analysis task. Most of the existing studies focus on devising a new tagging scheme that enables the model to extract the sentiment triplets in an end-to-end fashion. However, these methods ignore the relations between words for ASTE task. In this paper, we propose an Enhanced Multi-Channel Graph Convolutional Network model (EMC-GCN) to fully utilize the relations between words. Specifically, we first define ten types of relations for ASTE task, and then adopt a biaffine attention module to embed these relations as an adjacent tensor between words in a sentence. After that, our EMC-GCN transforms the sentence into a multi-channel graph by treating words and the relation adjacent tensor as nodes and edges, respectively. Thus, relationaware node representations can be learnt. Furthermore, we consider diverse linguistic features to enhance our EMC-GCN model. Finally, we design an effective refining strategy on EMC-GCN for word-pair representation refinement, which considers the implicit results of aspect and opinion extraction when determining whether word pairs match or not. Extensive experimental results on the benchmark datasets demonstrate that the effectiveness and robustness of our proposed model, which outperforms state-of-the-art methods significantly. 1
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Install the CLIlune papers fulltext fe426e84-b18b-47e8-a999-41ea57fa701aCited by top-tier papers16
- STAGE: Span Tagging and Greedy Inference Scheme for Aspect Sentiment Triplet ExtractionShuo Liang, Wei Wei, Xian-Ling Mao, Yuanyuan Fu et al.AAAI 2023 · 54 citations
- MvP: Multi-view Prompting Improves Aspect Sentiment Tuple PredictionZhibin Gou, Qingyan Guo, Yujiu YangACL 2023 · 48 citations
- Boundary-Driven Table-Filling for Aspect Sentiment Triplet ExtractionYice Zhang, Yifan Yang, Yihui Li, Bin Liang et al.EMNLP 2022 · 39 citations
- COM-MRC: A COntext-Masked Machine Reading Comprehension Framework for Aspect Sentiment Triplet ExtractionZepeng Zhai, Hao Chen, Fangxiang Feng, Ruifan Li et al.EMNLP 2022 · 28 citations
- Aligner²: Enhancing Joint Multiple Intent Detection and Slot Filling via Adjustive and Forced Cross-Task AlignmentZhihong Zhu, Xuxin Cheng, Yaowei Li, Hongxiang Li et al.AAAI 2024 · 16 citations
Builds on9
- Relational Graph Attention Network for Aspect-based Sentiment AnalysisKai Wang, Weizhou Shen, Yunyi Yang, Xiaojun Quan et al.ACL 2020 · 614 citations
- Knowing What, How and Why: A Near Complete Solution for Aspect-Based Sentiment AnalysisHaiyun Peng, Lu Xu, Lidong Bing, Fei Huang et al.AAAI 2020 · 494 citations
- Position-Aware Tagging for Aspect Sentiment Triplet ExtractionLu Xu, Hao Li, Wei Lu, Lidong BingEMNLP 2020 · 264 citations
- Modelling Context and Syntactical Features for Aspect-based Sentiment AnalysisMinh-Hieu Phan, Philip O. OgunbonaACL 2020 · 190 citations
- Inducing Target-Specific Latent Structures for Aspect Sentiment ClassificationChenhua Chen, Zhiyang Teng, Yue ZhangEMNLP 2020 · 131 citations
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