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Privacy-Preserving Deep Learning via Additively Homomorphic Encryption - 2019

Privacy-Preserving Deep Learning Via Additively Homomorphic Encryption

Research Area:  Machine Learning

Abstract:

We aim at creating a society where we can resolve various social challenges by incorporating the innovations of the fourth industrial revolution (e.g. IoT, big data, AI, robot, and the sharing economy) into every industry and social life. By doing so the society of the future will be one in which new values and services are created continuously, making people-s lives more conformable and sustainable. This is Society 5.0, a super-smart society. Security and privacy are key issues to be addressed to realize Society 5.0. Privacy-preserving data analytics will play an important role. In this talk we show our recent works on privacy-preserving data analytics such as privacy-preserving logistic regression and privacy-preserving deep learning. Finally, we show our ongoing research project under JST CREST “AI”. In this project we are developing privacy-preserving financial data analytics systems that can detect fraud with high security and accuracy. To validate the systems, we will perform demonstration tests with several financial institutions and solve the problems necessary for their implementation in the real world.

Keywords:  

Author(s) Name:  Shiho Moriai

Journal name:  

Conferrence name:  IEEE 26th Symposium on Computer Arithmetic (ARITH)

Publisher name:  IEEE

DOI:  10.1109/ARITH.2019.00047

Volume Information: