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Interpreting Sentiment Composition with Latent Semantic Tree
Zhongtao Jiang1,2; Yuanzhe Zhang1,2; Cao Liu3; Jiansong Chen3; Jun Zhao1,2; Kang Liu1,2
2023-07-09
会议名称Findings of the Association for Computational Linguistics: ACL 2023
会议日期2023-7-9
会议地点Toronto, Canada
摘要

As the key to sentiment analysis, sentiment composition considers the classification of a constituent via classifications of its contained sub-constituents and rules operated on them. Such compositionality has been widely studied previously in the form of hierarchical trees including untagged and sentiment ones, which are intrinsically suboptimal in our view. To address this, we propose semantic tree, a new tree form capable of interpreting the sentiment composition in a principled way. Semantic tree is a derivation of a context-free grammar (CFG) describing the specific composition rules on difference semantic roles, which is designed carefully following previous linguistic conclusions. However, semantic tree is a latent variable since there is no its annotation in regular datasets. Thus, in our method, it is marginalized out via inside algorithm and learned to optimize the classification performance. Quantitative and qualitative results demonstrate that our method not only achieves better or competitive results compared to baselines in the setting of regular and domain adaptation classification, and also generates plausible tree explanations.

语种英语
七大方向——子方向分类自然语言处理
国重实验室规划方向分类语音语言处理
是否有论文关联数据集需要存交
文献类型会议论文
条目标识符http://ir.ia.ac.cn/handle/173211/57262
专题复杂系统认知与决策实验室
作者单位1.The Laboratory of Cognition and Decision Intelligence for Complex Systems, Institute of Automation, Chinese Academy of Sciences
2.School of Artificial Intelligence, University of Chinese Academy of Sciences
3.Meituan
第一作者单位中国科学院自动化研究所
推荐引用方式
GB/T 7714
Zhongtao Jiang,Yuanzhe Zhang,Cao Liu,et al. Interpreting Sentiment Composition with Latent Semantic Tree[C],2023.
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