DocumentCode :
73598
Title :
SentiView: Sentiment Analysis and Visualization for Internet Popular Topics
Author :
Changbo Wang ; Zhao Xiao ; Yuhua Liu ; Yanru Xu ; Aoying Zhou ; Kang Zhang
Author_Institution :
Software Eng. Inst., East China Normal Univ., Shanghai, China
Volume :
43
Issue :
6
fYear :
2013
fDate :
Nov. 2013
Firstpage :
620
Lastpage :
630
Abstract :
There would be value to several domains in discovering and visualizing sentiments in online posts. This paper presents SentiView, an interactive visualization system that aims to analyze public sentiments for popular topics on the Internet. SentiView combines uncertainty modeling and model-driven adjustment. By searching and correlating frequent words in text data, it mines and models the changes of the sentiment on public topics. In addition, using a time-varying helix together with an attribute astrolabe to represent sentiments, it can visualize the changes of multiple attributes and relationships among demographics of interest and the sentiments of participants on popular topics. The relationships of interest among different participants are presented in a relationship map. Using a new evolution model that is based on cellular automata, it is able to compare the time-varying features for sentiment-driven forums on both simulated and real data. Adaptable for different social networking platforms, such as Twitter, blog and forum, the methods demonstrate the effectiveness of SentiView in analyzing and visualizing public sentiments on the Web.
Keywords :
data visualisation; interactive systems; social networking (online); Internet popular topics; SentiView; Twitter; blog; cellular automata; demographics; frequent words; interactive visualization system; model-driven adjustment; online posts sentiments; public sentiments visualization; public topics; relationship map; sentiment analysis; sentiment-driven forums; social networking platforms; text data; time-varying features; time-varying helix; uncertainty modeling; Data mining; Data visualization; Internet; Market research; Sentiment analysis; Social network services; Microblog; sentiment; social networks; visual analytics; web forums;
fLanguage :
English
Journal_Title :
Human-Machine Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
2168-2291
Type :
jour
DOI :
10.1109/THMS.2013.2285047
Filename :
6650118
Link To Document :
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