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Privacy-Preserving Ridge Regression on Hundreds of Millions of Records | IEEE Conference Publication | IEEE Xplore

Privacy-Preserving Ridge Regression on Hundreds of Millions of Records


Abstract:

Ridge regression is an algorithm that takes as input a large number of data points and finds the best-fit linear curve through these points. The algorithm is a building b...Show More

Abstract:

Ridge regression is an algorithm that takes as input a large number of data points and finds the best-fit linear curve through these points. The algorithm is a building block for many machine-learning operations. We present a system for privacy-preserving ridge regression. The system outputs the best-fit curve in the clear, but exposes no other information about the input data. Our approach combines both homomorphic encryption and Yao garbled circuits, where each is used in a different part of the algorithm to obtain the best performance. We implement the complete system and experiment with it on real data-sets, and show that it significantly outperforms pure implementations based only on homomorphic encryption or Yao circuits.
Date of Conference: 19-22 May 2013
Date Added to IEEE Xplore: 24 June 2013
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Conference Location: Berkeley, CA, USA

References

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