SenticNet 6: Ensemble Application of Symbolic and Subsymbolic AI for Sentiment Analysis

被引:378
作者
Cambria, Erik [1 ]
Li, Yang [1 ]
Xing, Frank Z. [1 ]
Poria, Soujanya [2 ]
Kwok, Kenneth [3 ]
机构
[1] Nanyang Technol Univ, Singapore, Singapore
[2] Singapore Univ Technol & Design, Singapore, Singapore
[3] ASTAR, Singapore, Singapore
来源
CIKM '20: PROCEEDINGS OF THE 29TH ACM INTERNATIONAL CONFERENCE ON INFORMATION & KNOWLEDGE MANAGEMENT | 2020年
关键词
Knowledge representation and reasoning; Sentiment analysis;
D O I
10.1145/3340531.3412003
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Deep learning has unlocked new paths towards the emulation of the peculiarly-human capability of learning from examples. While this kind of bottom-up learning works well for tasks such as image classification or object detection, it is not as effective when it comes to natural language processing. Communication is much more than learning a sequence of letters and words: it requires a basic understanding of the world and social norms, cultural awareness, commonsense knowledge, etc.; all things that we mostly learn in a top-down manner. In this work, we integrate top-down and bottom-up learning via an ensemble of symbolic and subsymbolic AI tools, which we apply to the interesting problem of polarity detection from text. In particular, we integrate logical reasoning within deep learning architectures to build a new version of Sentic-Net, a commonsense knowledge base for sentiment analysis.
引用
收藏
页码:105 / 114
页数:10
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