DocumentCode :
527578
Title :
An application of SVM: Blog templates recommendation system
Author :
Shyu, Fong-Ming ; Liao, Hsiang-Yuen
Author_Institution :
Dept. of Multimedia Design, Nat. Taiwan Inst. of Technol., Taichung, Taiwan
Volume :
2
fYear :
2010
fDate :
10-12 Aug. 2010
Firstpage :
845
Lastpage :
849
Abstract :
This paper demonstrates an application, blog templates recommendation system, applied with Support Vector Machine (SVM). In recent years, the population of Blog users keeps growing rapidly. This study uses SVM to be a training method for creating a recommendation module. When the new user´s data have been got into the modules, it will produce a suitable CSS template. Users can use the generated template file to change the CSS templates and apply to the Blog page in order to achieve the best results. We gather the users´ attributes via simple and intuitive steps of the web page operations from themselves. The logs of web page will be sent back-end to database and record the user´s preferences and settings for feedback schema immediately. After training all of the user data, system will provide the best template for user. It can save time for users to the selection and design CSS. Also, we use QUIS to do post-test questionnaire, the result is satisfactory. Finally, the discussion in this paper proposed a new methodology for classification of SVM application.
Keywords :
Web sites; recommender systems; support vector machines; CSS template; SVM application; Web page operation; blog page; blog templates recommendation system; blog users; feedback schema; recommendation module; support vector machine; template file; Data models; Information services; Internet; Support vector machines; Testing; Training; Web sites; Blog; Classification; Recommendation System; SVM;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Natural Computation (ICNC), 2010 Sixth International Conference on
Conference_Location :
Yantai, Shandong
Print_ISBN :
978-1-4244-5958-2
Type :
conf
DOI :
10.1109/ICNC.2010.5583261
Filename :
5583261
Link To Document :
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