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MobHinter: Epidemic collaborative filtering and self-organization in mobile ad-hoc networks

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

We focus on collaborative filtering dealing with self-organizing communities, host mobility, wireless access, and ad-hoc communications. In such a domain, knowledge representation and users profiling can be hard; remote servers can be often unreachable due to client mobility; and feedback ratings collected during random connections to other users' adhoc devices can be useless, because of natural differences between human beings. Our approach is based on so called Affinity Networks, and on a novel system, called MobHinter, that epidemically spreads recommendations through spontaneous similarities between users. Main results of our study are two fold: firstly, we show how to reach comparable recommendation accuracies in the mobile domain as well as in a complete knowledge scenario; secondly, we propose epidemic collaborative strategies that can reduce rapidly and realistically the cold start problem.

Original languageEnglish
Title of host publicationRecSys'08
Subtitle of host publicationProceedings of the 2008 ACM Conference on Recommender Systems
PublisherAssociation for Computing Machinery (ACM)
Pages27-34
Number of pages8
ISBN (Print)9781605580937
DOIs
Publication statusPublished - 23 Oct 2008
Externally publishedYes
Event2nd ACM International Conference on Recommender Systems, RecSys 2008 - Lausanne, Switzerland
Duration: 23 Oct 200825 Oct 2008

Publication series

NameRecSys'08: Proceedings of the 2008 ACM Conference on Recommender Systems

Conference

Conference2nd ACM International Conference on Recommender Systems, RecSys 2008
Country/TerritorySwitzerland
CityLausanne
Period23/10/0825/10/08

Keywords

  • Ad-hoc networks
  • Recommender systems
  • Social collaborative filtering

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