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Use of word clustering to improve emotion recognition from short text

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成果类型:
期刊论文
作者:
Yuan, Shuai;Huang, Huan;Wu, Linjing
通讯作者:
Huang, Huan(huanghuan@mail.scuec.edu.cn)
作者机构:
[Yuan, Shuai] National Engineering Research Center for E-Learning, Central China Normal University, Wuhan, China
[Wu, Linjing] School of Educational Information Technology, Central China Normal University, Wuhan, China
[Huang, Huan] School of Education, South Central University for Nationalities, Wuhan, China
通讯机构:
School of Education, South Central University for Nationalities, Wuhan, China
语种:
英文
关键词:
Affective computing;Emotion recognition;Word clustering
期刊:
Journal of Computing Science and Engineering
ISSN:
1976-4677
年:
2016
卷:
10
期:
4
页码:
103-110
机构署名:
本校为第一机构
院系归属:
教育信息技术学院
国家数字化学习工程技术研究中心
摘要:
Emotion recognition is an important component of affective computing, and is significant in the implementation of natural and friendly human-computer interaction. An effective approach to recognizing emotion from text is based on a machine learning technique, which deals with emotion recognition as a classification problem. However, in emotion recognition, the texts involved are usually very short, leaving a very large, sparse feature space, which decreases the performance of emotion classification. This paper proposes to resolve the problem of...

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