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  4. PPML '19: Privacy Preserving Machine Learning
 
conference paper

PPML '19: Privacy Preserving Machine Learning

Balle, Borja
•
Gascon, Adria
•
Ohrimenko, Olya
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January 1, 2019
Proceedings of CCS '19: Proceedings of the 2019 ACM SIGSAC Conference on Computer and Communications Security
ACM SIGSAC Conference on Computer and Communications Security - CCS '19

The area of privacy preserving machine learning has been of growing importance in practice, which has lead to an increased interest in this topic in both academia and industry. We have witnessed this through numerous papers and systems published and developed in the recent years to address challenges in this area. The solutions proposed in this space leverage many different approaches and techniques coming from machine learning, cryptography, and security. Thus, the workshop aims to be a forum to unify different perspectives and start a discussion about the relative merits of each approach. It will also serve as a venue for networking people from different communities interested in this problem, and hopefully foster fruitful long-term collaboration.

  • Details
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Type
conference paper
DOI
10.1145/3319535.3353562
Web of Science ID

WOS:000509760700206

Author(s)
Balle, Borja
Gascon, Adria
Ohrimenko, Olya
Raykova, Mariana
Schoppmmann, Phillipp
Troncoso, Carmela  
Date Issued

2019-01-01

Publisher

ACM

Publisher place

New York

Published in
Proceedings of CCS '19: Proceedings of the 2019 ACM SIGSAC Conference on Computer and Communications Security
ISBN of the book

978-1-4503-6747-9

Start page

2717

End page

2718

Subjects

Computer Science, Information Systems

•

Computer Science, Theory & Methods

•

Telecommunications

•

Computer Science

•

Telecommunications

•

privacy

•

machine learning

•

cryptography

•

security

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SPRING  
Event nameEvent placeEvent date
ACM SIGSAC Conference on Computer and Communications Security - CCS '19

London, ENGLAND

Nov 11-15, 2019

Available on Infoscience
February 23, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/166451
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