A weakly supervised knowledge attentive network for aspect-level sentiment classification

被引:3
|
作者
Bai, Qingchun [1 ,2 ]
Xiao, Jun [1 ]
Zhou, Jie [3 ]
机构
[1] Shanghai Open Univ, Shanghai Engn Res Ctr Open Distance Educ, Shanghai, Peoples R China
[2] ECNUP, NPPA Key Lab Publishing Integrat Dev, Shanghai, Peoples R China
[3] Fudan Univ, Shanghai, Peoples R China
来源
JOURNAL OF SUPERCOMPUTING | 2023年 / 79卷 / 05期
关键词
Sentiment analysis; Knowledge attentive network; Aspect-level sentiment analysis;
D O I
10.1007/s11227-022-04820-w
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
Deep neural networks have achieved good performance in recent years for aspect-level sentiment classification (ASC), whereas most neural ASC models neglect the commonsense knowledge absent from text but essential for aspect affective understanding, which largely limits the performance of neural ASC. In this paper, we propose a Weakly Supervised Knowledge Attentive Network, which resolves the above problems via knowledge attention and weakly supervised learning. Specifically, we first present a Knowledge Attentive Network (KAN) to capture more aspect-related information by incorporating external commonsense knowledge into the attention mechanism. Then, we propose a weakly supervised learning method, which allows our KAN model to learn more knowledge from the pseudo-samples generated upon the rich-resource document-level sentiment classification datasets. Extensive experiments on four benchmark datasets show the significant advantages of our proposed approach. In particular, we obtain state-of-the-art performance in terms of accuracy on all the datasets.
引用
收藏
页码:5403 / 5420
页数:18
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