Personalized recommendation in folksonomies using a joint probabilistic model of users, resources and tags

Muzaffer Ege Alper*, Şule Gündüz Öǧüdücü

*Bu çalışma için yazışmadan sorumlu yazar

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3 Atıf (Scopus)

Özet

The concept of Web 2.0 or 'semantic web' has been getting more and more popular during the last half decade. The potential of very subtle yet important emergent semantics hidden in such environments calls for equally elegant and powerful methods to 'mine' them. However, much of the previous work on model based recommender systems for folksonomies considered user to resource and resource to tag similarity separately, ignoring the dependency of users' interest to both the tags and the corresponding resources. In this paper, we propose a probabilistic personalized recommendation model, Latent Interest Model, that accounts for users, tags and resources jointly. The proposed method's performance is evaluated on real data sets obtained from a popular online bookmarking site using different performance measures for tag and resource recommendation tasks. Our experimental results show that our model captures personal preferences for tag usage and resource selection. Performance evaluation of Latent Interest Model indicates that the proposed personalized method yields significant improvement of recommendation accuracy.

Orijinal dilİngilizce
Ana bilgisayar yayını başlığıProceedings - 2012 11th International Conference on Machine Learning and Applications, ICMLA 2012
Sayfalar368-373
Sayfa sayısı6
DOI'lar
Yayın durumuYayınlandı - 2012
Etkinlik11th IEEE International Conference on Machine Learning and Applications, ICMLA 2012 - Boca Raton, FL, United States
Süre: 12 Ara 201215 Ara 2012

Yayın serisi

AdıProceedings - 2012 11th International Conference on Machine Learning and Applications, ICMLA 2012
Hacim1

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???event.eventtypes.event.conference???11th IEEE International Conference on Machine Learning and Applications, ICMLA 2012
Ülke/BölgeUnited States
ŞehirBoca Raton, FL
Periyot12/12/1215/12/12

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