Aggarwal, Charu C. (Hrsg.) Yu, Philip S (Hrsg.)

Privacy-Preserving Data Mining

Models and Algorithms

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Beschreibung

Advances in hardware technology have increased the capability to store and record personal data about consumers and individuals, causing concerns that personal data may be used for a variety of intrusive or malicious purposes.
Privacy-Preserving Data Mining: Models and Algorithms proposes a number of techniques to perform the data mining tasks in a privacy-preserving way. These techniques generally fall into the following categories: data modification techniques, cryptographic methods and protocols for data sharing, statistical techniques for disclosure and inference control, query auditing methods, randomization and perturbation-based techniques.
This edited volume contains surveys by distinguished researchers in the privacy field. Each survey includes the key research content as well as future research directions.
Privacy-Preserving Data Mining: Models and Algorithms is designed for researchers, professors, and advanced-level students in computer science, and is also suitable for industry practitioners.

Produktdetails

ISBN/GTIN 978-0-387-70992-5
Seitenzahl 514 S.
Kopierschutz mit Wasserzeichen
Dateigröße 6270 Kbytes

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