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   Extraction of Contextualized User Interest Profiles in Social Sharing Platforms  
   
نویسنده Schirru Rafael ,Baumann Stephan ,Memmel Martin ,Dengel Andreas
منبع journal of universal computer science - 2010 - دوره : 16 - شماره : 16 - صفحه:2196 -2213
چکیده    Abstract: along with the emergence of the web 2.0, e-learning more often takes place in open environments such as wikis, blogs, and resource sharing platforms. nowadays, many companies deploy social media technologies to foster the knowledge transfer in the enterprise. they offer enterprise 2.0 platforms where knowledge workers can share contents according to their different topics of interest. in this article we present an approach extracting contextualized user profiles in an enterprise resource sharing platform according to the users’ different topics of inter- est. the system analyses the social annotations of each user’s preferred resources and identifies thematic groups. for every group a weighted term vector is derived that rep- resents the respective topic of interest. each user profile consists of several such vectors that way enabling recommendation lists with a high degree of inter-topic diversity as well as targeted context-sensitive recommendations. the proposed approach has been tested in our enterprise 2.0 platform aloe. a first evaluation has shown that the method is likely to identify reasonable user interest topics and that resource recommendations for these topics are widely appreciated by the users.
کلیدواژه user modeling ,topic detection ,Web 2.0 resource sharing ,E-Learning 2.0 ,Enterprise 2.0
آدرس Germany and University of Kaiserslautern, German Research Center for Artificial Intelligence, Germany, German Research Center for Artificial Intelligence, Germany, Germany and University of Kaiserslautern, German Research Center for Artificial Intelligence, Germany, Germany and University of Kaiserslautern, German Research Center for Artificial Intelligence, Germany
پست الکترونیکی dengel@dfki.de
 
     
   
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