224,27 €
249,19 €
-10% with code: EXTRA
Preserving Privacy Against Side-Channel Leaks
Preserving Privacy Against Side-Channel Leaks
224,27
249,19 €
  • We will send in 10–14 business days.
This book offers a novel approach to data privacy by unifying side-channel attacks within a general conceptual framework. This book then applies the framework in three concrete domains. First, the book examines privacy-preserving data publishing with publicly-known algorithms, studying a generic strategy independent of data utility measures and syntactic privacy properties before discussing an extended approach to improve the efficiency. Next, the book explores privacy-preserving traffic paddin…
  • Publisher:
  • ISBN-10: 3319826263
  • ISBN-13: 9783319826264
  • Format: 15.6 x 23.4 x 0.9 cm, softcover
  • Language: English
  • SAVE -10% with code: EXTRA

Preserving Privacy Against Side-Channel Leaks (e-book) (used book) | bookbook.eu

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This book offers a novel approach to data privacy by unifying side-channel attacks within a general conceptual framework. This book then applies the framework in three concrete domains. First, the book examines privacy-preserving data publishing with publicly-known algorithms, studying a generic strategy independent of data utility measures and syntactic privacy properties before discussing an extended approach to improve the efficiency. Next, the book explores privacy-preserving traffic padding in Web applications, first via a model to quantify privacy and cost and then by introducing randomness to provide background knowledge-resistant privacy guarantee. Finally, the book considers privacy-preserving smart metering by proposing a light-weight approach to simultaneously preserving users' privacy and ensuring billing accuracy. Designed for researchers and professionals, this book is also suitable for advanced-level students interested in privacy, algorithms, or web applications.

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  • Author: Wen Ming Liu
  • Publisher:
  • ISBN-10: 3319826263
  • ISBN-13: 9783319826264
  • Format: 15.6 x 23.4 x 0.9 cm, softcover
  • Language: English English

This book offers a novel approach to data privacy by unifying side-channel attacks within a general conceptual framework. This book then applies the framework in three concrete domains. First, the book examines privacy-preserving data publishing with publicly-known algorithms, studying a generic strategy independent of data utility measures and syntactic privacy properties before discussing an extended approach to improve the efficiency. Next, the book explores privacy-preserving traffic padding in Web applications, first via a model to quantify privacy and cost and then by introducing randomness to provide background knowledge-resistant privacy guarantee. Finally, the book considers privacy-preserving smart metering by proposing a light-weight approach to simultaneously preserving users' privacy and ensuring billing accuracy. Designed for researchers and professionals, this book is also suitable for advanced-level students interested in privacy, algorithms, or web applications.

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