S²GSL: Incorporating Segment to Syntactic Enhanced Graph Structure Learning for Aspect-based Sentiment Analysis
Bingfeng Chen, Qihan Ouyang, Yongqi Luo, Boyan Xu, Ruichu Cai, Zhifeng Hao
摘要
Previous graph-based approaches in Aspectbased Sentiment Analysis(ABSA) have demonstrated impressive performance by utilizing graph neural networks and attention mechanisms to learn structures of static dependency trees and dynamic latent trees. However, incorporating both semantic and syntactic information simultaneously within complex global structures can introduce irrelevant contexts and syntactic dependencies during the process of graph structure learning, potentially resulting in inaccurate predictions. In order to address the issues above, we propose S 2 GSL, incorporating Segment to Syntactic enhanced Graph Structure Learning for ABSA. Specifically, S 2 GSL is featured with a segment-aware semantic graph learning and a syntax-based latent graph learning enabling the removal of irrelevant contexts and dependencies, respectively. We further propose a self-adaptive aggregation network that facilitates the fusion of two graph learning branches, thereby achieving complementarity across diverse structures. Experimental results on four benchmarks demonstrate the effectiveness of our framework.
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它引用的顶会 Paper9
- 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
- Replicate, Walk, and Stop on Syntax: An Effective Neural Network Model for Aspect-Level Sentiment ClassificationYaowei Zheng, Richong Zhang, Samuel Mensah, Yongyi MaoAAAI 2020 · 被引用 48 次
- Span-level Aspect-based Sentiment Analysis via Table FillingMao Zhang, Yongxin Zhu, Zhen Liu, Zhimin Bao 等ACL 2023 · 被引用 21 次
- Affective Knowledge Enhanced Multiple-Graph Fusion Networks for Aspect-based Sentiment AnalysisSiyu Tang, Heyan Chai, Ziyi Yao, Ye Ding 等EMNLP 2022 · 被引用 16 次
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