Indirect Keyword Recommendation
Helping users to find useful contacts or potentially interesting subjects is a challenge for social and productive networks. The evidence of the content produced by users must be considered in this task, which may be simplified by the use of the meta-data associated with the content, i.e., The categ...
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| Vydáno v: | 2014 IEEE/WIC/ACM International Joint Conferences on Web Intelligence (WI) and Intelligent Agent Technologies (IAT) Ročník 1; s. 384 - 391 |
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| Médium: | Konferenční příspěvek |
| Jazyk: | angličtina |
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IEEE
01.08.2014
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| Abstract | Helping users to find useful contacts or potentially interesting subjects is a challenge for social and productive networks. The evidence of the content produced by users must be considered in this task, which may be simplified by the use of the meta-data associated with the content, i.e., The categorization supported by the network -- descriptive keywords, or tags. In this paper we present a model that enables keyword discovery methods through the interpretation of the network as a graph, solely relying on keywords that categorize or describe productive items. The model and keyword discovery methods presented in this paper avoid content analysis, and move towards a generic approach to the identification of relevant interests and, eventually, contacts. The evaluation of the model and methods is executed by two experiments that perform frequency and classification analyses over the Flickr network. The results show that we can efficiently recommend keywords to users. |
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| AbstractList | Helping users to find useful contacts or potentially interesting subjects is a challenge for social and productive networks. The evidence of the content produced by users must be considered in this task, which may be simplified by the use of the meta-data associated with the content, i.e., The categorization supported by the network -- descriptive keywords, or tags. In this paper we present a model that enables keyword discovery methods through the interpretation of the network as a graph, solely relying on keywords that categorize or describe productive items. The model and keyword discovery methods presented in this paper avoid content analysis, and move towards a generic approach to the identification of relevant interests and, eventually, contacts. The evaluation of the model and methods is executed by two experiments that perform frequency and classification analyses over the Flickr network. The results show that we can efficiently recommend keywords to users. |
| Author | Gouveia, Joao Sabino, Andre Rodrigues, Armanda Goulao, Miguel |
| Author_xml | – sequence: 1 givenname: Andre surname: Sabino fullname: Sabino, Andre email: amgs@campus.fct.unl.pt organization: Dept. de Inf., Univ. Nova de Lisboa, Caparica, Portugal – sequence: 2 givenname: Armanda surname: Rodrigues fullname: Rodrigues, Armanda email: a.rodrigues@fct.unl.pt organization: Dept. de Inf., Univ. Nova de Lisboa, Caparica, Portugal – sequence: 3 givenname: Miguel surname: Goulao fullname: Goulao, Miguel email: mgoul@fct.unl.pt organization: Dept. de Inf., Univ. Nova de Lisboa, Caparica, Portugal – sequence: 4 givenname: Joao surname: Gouveia fullname: Gouveia, Joao email: j.gouveia@campus.fct.unl.pt organization: Dept. de Inf., Univ. Nova de Lisboa, Caparica, Portugal |
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| Snippet | Helping users to find useful contacts or potentially interesting subjects is a challenge for social and productive networks. The evidence of the content... |
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| SubjectTerms | Analytical models Collaborative work Context Feature extraction Production social graph social network Social network services tagging Training |
| Title | Indirect Keyword Recommendation |
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