Tài liệu tham khảo |
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[1] Akshay Java, Xiaodan Song, Tim Finin, and Belle Tseng. Why we twitter: understanding microblogging usage and communities. In Proceedings of the 9th WebKDD and 1st SNA-KDD 2007 workshop on Web-mining and social network analysis - WebKDD/SNA-KDD '07, pages 56-65,New York, New York, USA, August 2007. ACM Press |
Sách, tạp chí |
Tiêu đề: |
Why we twitter: understanding microblogging usage and communities |
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[4] Denis Parra, Alexandros Karatzoglou, Idil Yavuz and Xavier Amatriain(2011). Implicit Feedback Recommendation via Implicit-to-Explicit Ordinal Logistic Regression Mapping. Chicago, Illinois, USA 2011 |
Sách, tạp chí |
Tiêu đề: |
Implicit Feedback Recommendation via Implicit-to-Explicit Ordinal Logistic Regression Mapping |
Tác giả: |
Denis Parra, Alexandros Karatzoglou, Idil Yavuz and Xavier Amatriain |
Năm: |
2011 |
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[5] Shane Bergsma, Matt Post, and David Yarowsky. 2012. Stylometric analysis of scientific articles. In Proc. NAACL-HLT, pages 327–337 |
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[6] O. Biran and O. Rambow. 2011. Identifying justifi- cations in written dialogs. In Semantic Computing (ICSC), 2011 Fifth IEEE International Conference on, pages 162–168. IEEE |
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Tiêu đề: |
Semantic Computing (ICSC), 2011 Fifth IEEE International Conference on |
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[7] J. Bollen, A. Pepe, and H. Mao. 2011. Modeling pub- lic mood and emotion: Twitter sentiment and socio- economic phenomena. In Proceedings of the Fifth In- ternational AAAI Conference on Weblogs and Social Media, pages 450–453 |
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Tiêu đề: |
Proceedings of the Fifth In- ternational AAAI Conference on Weblogs and Social Media |
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[8] John S. Brownstein, Clark C. Freifeld, Emily H. Chan, Mikaela Keller, Amy L. Sonricker, Sumiko R. Mekaru, and David L. Buckeridge. 2010.Information tech- nology and global surveillance of cases of 2009 h1n1 influenza. New England Journal of Medicine, 362(18):1731–1735 |
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Tiêu đề: |
New England Journal of Medicine |
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[9] Naive-Bayes Classification Algorithm. http://software.ucv.ro/~cmihaescu/ro/teaching/AIR/docs/Lab4-NaiveBayes.pdf [10] N. Collier. 2012. Uncovering text mining: A survey of current work on web-based epidemic intelligence. Global Public Health, 7(7):731–749 |
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Tiêu đề: |
http://software.ucv.ro/~cmihaescu/ro/teaching/AIR/docs/Lab4-NaiveBayes.pdf" [10] N. Collier. 2012. Uncovering text mining: A survey of current work on web-based epidemic intelligence. "Global Public Health |
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[11] Samantha Cook, Corrie Conrad, Ashley L. Fowlkes, and Matthew H. Mohebbi. 2011. Assessing google flu trends performance in the united states during the 2009 influenza virus a (h1n1) pandemic. PLOS ONE, 6(8):e23610 |
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[15] Mark Dredze, Michael J. Paul, Shane Bergsma, and Hieu Tran. 2013. A Twitter geolocation system with applications to public health. Working paper [16] Twitter Counter. http://twittercounter.com/pages/100 |
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[2] Arman Suleimenov. Twitter news: Harnessing Twitter to build an article recommendation system |
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[3] Dena Asta and Cosma Shalizi. 2012. Identifying in- fluenza trends via Twitter. In NIPS Workshop on So- cial Network and Social Media Analysis:Methods, Models and Applications |
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[12] A. Culotta. 2010a. Towards detecting influenza epi- demics by analyzing Twitter messages. In ACM Work- shop on Soc.Med. Analytics |
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[13] Aron Culotta. 2010b. Detecting influenza epidemics by analyzing Twitter messages. arXiv:1007.4748v1 [cs.IR], July |
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[14] S. Doan, L. Ohno-Machado, and N. Collier. 2012. Enhancing Twitter data analysis with simple semantic filtering: Example in tracking influenza- like illnesses. arXiv preprint arXiv:1210.0848 |
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[23] Y. Hu, Y. Koren, and C. Volinsky(2008). Collaborative filtering for implicit feedback datasets |
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