Multi-Instance Multi-Label Learning Networks for Aspect-Category Sentiment Analysis
Yuncong Li, Cunxiang Yin, Sheng-hua Zhong, Xu Pan
摘要
Aspect-category sentiment analysis (ACSA) aims to predict sentiment polarities of sentences with respect to given aspect categories. To detect the sentiment toward a particular aspect category in a sentence, most previous methods first generate an aspect categoryspecific sentence representation for the aspect category, then predict the sentiment polarity based on the representation. These methods ignore the fact that the sentiment of an aspect category mentioned in a sentence is an aggregation of the sentiments of the words indicating the aspect category in the sentence, which leads to suboptimal performance. In this paper, we propose a Multi-Instance Multi-Label Learning Network for Aspect-Category sentiment analysis (AC-MIMLLN), which treats sentences as bags, words as instances, and the words indicating an aspect category as the key instances of the aspect category. Given a sentence and the aspect categories mentioned in the sentence, AC-MIMLLN first predicts the sentiments of the instances, then finds the key instances for the aspect categories, finally obtains the sentiments of the sentence toward the aspect categories by aggregating the key instance sentiments. Experimental results on three public datasets demonstrate the effectiveness of AC-MIMLLN 1 .
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引用它的顶会 Paper5
- Solving Aspect Category Sentiment Analysis as a Text Generation TaskJian Liu, Zhiyang Teng, Leyang Cui, Hanmeng Liu 等EMNLP 2021 · 被引用 62 次
- 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
- Beta Distribution Guided Aspect-aware Graph for Aspect Category Sentiment Analysis with Affective KnowledgeBin Liang, Hang Su, Rongdi Yin, Lin Gui 等EMNLP 2021 · 被引用 21 次
- AX-MABSA: A Framework for Extremely Weakly Supervised Multi-label Aspect Based Sentiment AnalysisSabyasachi Kamila, Walid Magdy, Sourav Dutta, MingXue WangEMNLP 2022 · 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
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