Deep Learning Driven Venue Recommender for Event-Based Social Networks

Event-based online social platforms, such as Meetup and Plancast, have experienced increased popularity and rapid growth in recent years. In EBSN setup, selecting suitable venues for hosting events, which can attract a great turnout, is a key challenge. In this paper, we present a deep learning base...

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Veröffentlicht in:IEEE transactions on knowledge and data engineering 2020-11, Vol.32 (11), p.2129-2143
Hauptverfasser: Pramanik, Soumajit, Haldar, Rajarshi, Kumar, Anand, Pathak, Sayan, Mitra, Bivas
Format: Artikel
Sprache:eng
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Zusammenfassung:Event-based online social platforms, such as Meetup and Plancast, have experienced increased popularity and rapid growth in recent years. In EBSN setup, selecting suitable venues for hosting events, which can attract a great turnout, is a key challenge. In this paper, we present a deep learning based venue recommendation system DeepVenue DeepVenue which provides context driven venue recommendations for the Meetup event-hosts to host their events. The crux of the proposed model relies on the notion of similarity between multiple Meetup entities such as events, venues, groups, etc. We develop deep learning techniques to compute a compact descriptor for each entity, such that two entities (say, venues) can be compared numerically. Notably, to mitigate the scarcity of venue related information in Meetup, we leverage on the cross domain knowledge transfer from popular LBSN service Yelp to extract rich venue related content. For hosting an event, the proposed DeepVenue DeepVenue model computes a success score for each candidate venue and ranks those venues according to the scores and finally recommend the top k venues. Our rigorous evaluation on the Meetup data collected for the city of Chicago shows that DeepVenue DeepVenue significantly outperforms the baselines algorithms. Precisely, for 84 percent of events, the correct hosting venue appears in the top 5 of the DeepVenue Deep
ISSN:1041-4347
1558-2191
DOI:10.1109/TKDE.2019.2915523