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Erschienen in: Data Mining and Knowledge Discovery 2/2015

01.03.2015

Addressing the cold-start problem in location recommendation using geo-social correlations

verfasst von: Huiji Gao, Jiliang Tang, Huan Liu

Erschienen in: Data Mining and Knowledge Discovery | Ausgabe 2/2015

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Abstract

Location-based social networks (LBSNs) have attracted an increasing number of users in recent years, resulting in large amounts of geographical and social data. Such LBSN data provide an unprecedented opportunity to study the human movement from their socio-spatial behavior, in order to improve location-based applications like location recommendation. As users can check-in at new places, traditional work on location prediction that relies on mining a user’s historical moving trajectories fails as it is not designed for the cold-start problem of recommending new check-ins. While previous work on LBSNs attempting to utilize a user’s social connections for location recommendation observed limited help from social network information. In this work, we propose to address the cold-start location recommendation problem by capturing the correlations between social networks and geographical distance on LBSNs with a geo-social correlation model. The experimental results on a real-world LBSN dataset demonstrate that our approach properly models the geo-social correlations of a user’s cold-start check-ins and significantly improves the location recommendation performance.

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Metadaten
Titel
Addressing the cold-start problem in location recommendation using geo-social correlations
verfasst von
Huiji Gao
Jiliang Tang
Huan Liu
Publikationsdatum
01.03.2015
Verlag
Springer US
Erschienen in
Data Mining and Knowledge Discovery / Ausgabe 2/2015
Print ISSN: 1384-5810
Elektronische ISSN: 1573-756X
DOI
https://doi.org/10.1007/s10618-014-0343-4

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