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Cyber Security Meets Machine Learning (1st ed. 2021)

Bertino, Elisa(Edited by)Chen, Xiaofeng(Edited by)Susilo, Willy(Edited by)
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Machine learning boosts the capabilities of security solutions in the modern cyber environment.

However, there are also security concerns associated with machine learning models and approaches: the vulnerability of machine learning models to adversarial attacks is a fatal flaw in the artificial intelligence technologies, and the privacy of the data used in the training and testing periods is also causing increasing concern among users. This book reviews the latest research in the area, including effective applications of machine learning methods in cybersecurity solutions and the urgent security risks related to the machine learning models.

The book is divided into three parts: Cyber Security Based on Machine Learning; Security in Machine Learning Methods and Systems; and Security and Privacy in Outsourced Machine Learning. Addressing hot topics in cybersecurity and written by leading researchers in the field, the book features self-contained chapters to allow readers to select topics that are relevant to their needs.

It is a valuable resource for all those interested in cybersecurity and robust machine learning, including graduate students and academic and industrial researchers, wanting to gain insights into cutting-edge research topics, as well as related tools and inspiring innovations.

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RRP £109.99
Product Details
Springer Verlag, Singapore
9813367253 / 9789813367258
Hardback
005.8
03/07/2021
Singapore
163 pages, 24 Illustrations, color; 17 Illustrations, black and white; IX, 163 p. 41 illus., 24 illu
155 x 235 mm