Sentiment analysis on tweets for social events

Xujuan Zhou, Xiaohui Tao, Jianming Yong, Zhenyu Yang

Publikation: Bidrag til bog/antologi/rapport/konference proceedingKonferenceartikel i proceedingForskningpeer review

89 Citationer (Scopus)

Abstract

Sentiment analysis or opinion mining is an important type of text analysis that aims to support decision making by extracting and analyzing opinion oriented text, identifying positive and negative opinions, and measuring how positively or negatively an entity (i.e., people, organization, event, location, product, topic, etc.) is regarded. As more and more users express their political and religious views on Twitter, tweets become valuable sources of people's opinions. Tweets data can be efficiently used to infer people's opinions for marketing or social studies. This paper proposes a Tweets Sentiment Analysis Model (TSAM) that can spot the societal interest and general people's opinions in regard to a social event. In this paper, Australian federal election 2010 event was taken as an example for sentiment analysis experiments. We are primarily interested in the sentiment of the specific political candidates, i.e., two primary minister candidates - Julia Gillard and Tony Abbot. Our experimental results demonstrate the effectiveness of the system.
OriginalsprogEngelsk
TitelProceedings of the 17th IEEE International Conference on Computer Supported Cooperative Work in Design, CSCWD 2013
Antal sider6
ForlagIEEE Computer Society Press
Publikationsdato29 jun. 2013
Sider557-562
ISBN (Trykt)978-1-4673-6084-5
DOI
StatusUdgivet - 29 jun. 2013
Begivenhed17th IEEE International Conference on Computer Supported Cooperative Work in Design, CSCWD 2013 - Whistler, BC, Canada
Varighed: 27 jun. 201329 jun. 2013

Konference

Konference17th IEEE International Conference on Computer Supported Cooperative Work in Design, CSCWD 2013
Land/OmrådeCanada
ByWhistler, BC
Periode27/06/201329/06/2013

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