Differential Privacy for Dynamic Data

£54.99

Differential Privacy for Dynamic Data

Electronics engineering Automatic control engineering Databases Computer security Network security Digital signal processing (DSP)

Author: Jerome Le Ny

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Collection: SpringerBriefs in Electrical and Computer Engineering

Language: English

Published by: Springer

Published on: 24th March 2020

Format: LCP-protected ePub

Size: 7 Mb

ISBN: 9783030410391


Introduction

This Springer brief provides the necessary foundations to understand differential privacy and describes practical algorithms enforcing this concept for the publication of real-time statistics based on sensitive data. Several scenarios of interest are considered, depending on the kind of estimator to be implemented and the potential availability of prior public information about the data, which can be used greatly to improve the estimators' performance.

Purpose and Approach

The brief encourages the proper use of large datasets based on private data obtained from individuals in the world of the Internet of Things and participatory sensing. For the benefit of the reader, several examples are discussed to illustrate the concepts and evaluate the performance of the algorithms described.

Examples and Applications

These examples relate to traffic estimation, sensing in smart buildings, and syndromic surveillance to detect epidemic outbreaks.

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