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Privacy preserving cooperative computation for personalized web search applications

  • The University of Sheffield
  • Institut Polytechnique de Paris
  • Qwant

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Résumé

With the emergence of connected objects and the development of Artificial Intelligence (AI) mechanisms and algorithms, personalized applications are gaining an expanding interest, providing services tailored to each single user needs and expectations. They mainly rely on the massive collection of personal data generated by a large number of applications hosted from different connected devices. In this paper, we present CoWSA, a privacy preserving Cooperative computation framework for personalized Web Search peripheral Applications. The proposed framework is multi-fold. First, it provides the empowerment to end-users to control the disclosed personal data to third parties, while leveraging the trade-off between privacy and utility. Second, as a decentralized solution, CoWSA mitigates single points of failures, while ensuring the security of queries, the anonymity of submitting users, and the incentive of contributing nodes. Third, CoWSA is scalable as it provides acceptable computation and communication costs compared to most closely related schemes.

langue originaleAnglais
titre35th Annual ACM Symposium on Applied Computing, SAC 2020
EditeurAssociation for Computing Machinery
Pages250-258
Nombre de pages9
ISBN (Electronique)9781450368667
Les DOIs
étatPublié - 30 mars 2020
Evénement35th Annual ACM Symposium on Applied Computing, SAC 2020 - Brno, République tchcque
Durée: 30 mars 20203 avr. 2020

Série de publications

NomProceedings of the ACM Symposium on Applied Computing

Une conférence

Une conférence35th Annual ACM Symposium on Applied Computing, SAC 2020
Pays/TerritoireRépublique tchcque
La villeBrno
période30/03/203/04/20

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