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Privacy-Preserving Collaborative Filtering on the Cloud and Practical Implementation Experiences

Published: 28 June 2013 Publication History

Abstract

Recommender systems typically use collaborative filtering to make sense of huge and growing volumes of data. An emerging trend in industry has been to use public clouds to deal with the computing and storage requirements of such systems. This, however, comes at a price -- data privacy. Simply ensuring communication privacy does not protect against insider threats or even attacks agagainst the cloud infrastructure itself. To deal with this, several privacy-preserving collaborative filtering algorithms have been developed in prior research. However, these have only been theoretically analyzed for the most part. In this paper, we analyze an existing privacy preserving collaborative filtering algorithm from an engineering perspective, and discuss our practical experiences with implementing and deploying privacy-preserving collaborative filtering on real world Software-as-a-Service enabling Platform-as-a-Service clouds.

Cited By

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  • (2018)Comparing recommender systems using synthetic dataProceedings of the 12th ACM Conference on Recommender Systems10.1145/3240323.3240325(548-552)Online publication date: 27-Sep-2018
  • (2018)Personalisation and Privacy Issues in the Age of ExposureProceedings of the 26th Conference on User Modeling, Adaptation and Personalization10.1145/3209219.3209271(375-376)Online publication date: 3-Jul-2018
  • (2017)Efficient privacy-preserving content recommendation for online social communitiesNeurocomputing10.1016/j.neucom.2016.09.059219:C(440-454)Online publication date: 5-Jan-2017
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  1. Privacy-Preserving Collaborative Filtering on the Cloud and Practical Implementation Experiences

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      cover image Guide Proceedings
      CLOUD '13: Proceedings of the 2013 IEEE Sixth International Conference on Cloud Computing
      June 2013
      982 pages
      ISBN:9780769550282

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      IEEE Computer Society

      United States

      Publication History

      Published: 28 June 2013

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      Cited By

      View all
      • (2018)Comparing recommender systems using synthetic dataProceedings of the 12th ACM Conference on Recommender Systems10.1145/3240323.3240325(548-552)Online publication date: 27-Sep-2018
      • (2018)Personalisation and Privacy Issues in the Age of ExposureProceedings of the 26th Conference on User Modeling, Adaptation and Personalization10.1145/3209219.3209271(375-376)Online publication date: 3-Jul-2018
      • (2017)Efficient privacy-preserving content recommendation for online social communitiesNeurocomputing10.1016/j.neucom.2016.09.059219:C(440-454)Online publication date: 5-Jan-2017
      • (2015)From existing trends to future trends in privacy-preserving collaborative filteringWiley Interdisciplinary Reviews: Data Mining and Knowledge Discovery10.1002/widm.11635:6(276-291)Online publication date: 1-Nov-2015
      • (2014)Optimizing Integrity Checks for Join Queries in the CloudProceedings of the 28th Annual IFIP WG 11.3 Working Conference on Data and Applications Security and Privacy XXVIII - Volume 856610.1007/978-3-662-43936-4_3(33-48)Online publication date: 14-Jul-2014

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