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Authors: Stanley Loh 1 ; Fabiana Lorenzi 2 ; Roger Granada 3 ; Daniel Lichtnow 4 ; Leandro Krug Wives 5 and José Palazzo Moreira de Oliveira 5

Affiliations: 1 UCPEL Universidade Católica de Pelotas;ULBRA Universidade Luterana do Brasil, Brazil ; 2 ULBRA Universidade Luterana do Brasil;UFRGS Universidade Federal do Rio Grande do Sul,, Brazil ; 3 UCPEL Universidade Católica de Pelotas, Brazil ; 4 UCPEL Universidade Católica de Pelotas;UFRGS Universidade Federal do Rio Grande do Sul, Brazil ; 5 UFRGS Universidade Federal do Rio Grande do Sul, Brazil

Keyword(s): User profile, User profile similarity, Collaborative recommender systems.

Related Ontology Subjects/Areas/Topics: Data Engineering ; Ontologies and the Semantic Web ; User Modeling ; Web Information Systems and Technologies ; Web Interfaces and Applications ; Web Personalization

Abstract: This paper presents investigations on representing user’s profiles with information extracted from their scientific publications. The work assumes that scientific papers written by users can be used to represent user’s interest or expertise and that these representations can be used to find similar users. The goal is to support similarity evaluations between users in a model-based collaborative recommender. Representing users by their publications can help minimizing the new user problem. The idea is to avoid the necessity of asking users to evaluate a set of items or give some information about their preferences, for example. In scientific communities, particularly on digital libraries and systems focused on the retrieval of scientific papers, this is an interesting feature. We have conducted some experiments to compare different techniques to represent the papers (title, keywords, abstract and complete text) and two kinds of text indexes: terms and concepts. Furthermore, two distin ct similarity functions (Jaccard and a Fuzzy function) were applied on these representations and then compared with the goal of finding similar users. (More)

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Paper citation in several formats:
Loh, S.; Lorenzi, F.; Granada, R.; Lichtnow, D.; Krug Wives, L. and Palazzo Moreira de Oliveira, J. (2009). IDENTIFYING SIMILAR USERS BY THEIR SCIENTIFIC PUBLICATIONS TO REDUCE COLD START IN RECOMMENDER SYSTEMS. In Proceedings of the Fifth International Conference on Web Information Systems and Technologies - WEBIST; ISBN 978-989-8111-81-4; ISSN 2184-3252, SciTePress, pages 589-596. DOI: 10.5220/0001823405890596

@conference{webist09,
author={Stanley Loh. and Fabiana Lorenzi. and Roger Granada. and Daniel Lichtnow. and Leandro {Krug Wives}. and José {Palazzo Moreira de Oliveira}.},
title={IDENTIFYING SIMILAR USERS BY THEIR SCIENTIFIC PUBLICATIONS TO REDUCE COLD START IN RECOMMENDER SYSTEMS},
booktitle={Proceedings of the Fifth International Conference on Web Information Systems and Technologies - WEBIST},
year={2009},
pages={589-596},
publisher={SciTePress},
organization={INSTICC},
doi={10.5220/0001823405890596},
isbn={978-989-8111-81-4},
issn={2184-3252},
}

TY - CONF

JO - Proceedings of the Fifth International Conference on Web Information Systems and Technologies - WEBIST
TI - IDENTIFYING SIMILAR USERS BY THEIR SCIENTIFIC PUBLICATIONS TO REDUCE COLD START IN RECOMMENDER SYSTEMS
SN - 978-989-8111-81-4
IS - 2184-3252
AU - Loh, S.
AU - Lorenzi, F.
AU - Granada, R.
AU - Lichtnow, D.
AU - Krug Wives, L.
AU - Palazzo Moreira de Oliveira, J.
PY - 2009
SP - 589
EP - 596
DO - 10.5220/0001823405890596
PB - SciTePress