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Adversarial Machine Learning | by Anthony D. Joseph | Blaine Nelson | Benjamin I. P. Rubinstei | ‎ Cambridge English | ‎ English
AI & Machine Learning

Adversarial Machine Learning | by Anthony D. Joseph | Blaine Nelson | Benjamin I. P. Rubinstei | ‎ Cambridge English | ‎ English

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About This Book

Combining essential theory and practical techniques for analysing system security, and building robust machine learning in adversarial environments, as well as including case studies on Email spam and network security, this complete introduction is an invaluable resource for researchers, practitioners and students in computer security and machine learning.

About the Author

Adversarial Machine Learning is authored by Anthony D. Joseph | Blaine Nelson | Benjamin I. P. Rubinstein.

Product description Review 'Data Science practitioners tend to be unaware of how easy it is for adversaries to manipulate and misuse adaptive machine learning systems. This book demonstrates the severity of the problem by providing a taxonomy of attacks and studies of adversarial learning. It analyzes older attacks as well as recently discovered surprising weaknesses in deep learning systems. A variety of defenses are discussed for different learning systems and attack types that could help researchers and developers design systems that are more robust to attacks.' Richard Lippmann, Lincoln Laboratory, Massachusetts Institute of Technology'This is a timely book. Right time and right book, written with an authoritative but inclusive style. Machine learning is becoming ubiquitous. But for people to trust it, they first need to understand how reliable it is.' Fabio Roli, University of Cagliari, Italy Book Description This study allows readers to get to grips with the conceptual tools and practical techniques for building robust machine learning in the face of adversaries. About the Author Anthony D. Joseph is a Chancellor's Professor in the Department of Electrical Engineering and Computer Sciences at the University of California, Berkeley. He was formerly the Director of Intel Labs Berkeley.Blaine Nelson is a Software Engineer in the Software Engineer in the Counter-Abuse Technologies (CAT) team at Google. He has previously worked at the University of Potsdam and the University of Tübingen.Benjamin I. P. Rubinstein is a Senior Lecturer in Computing and Information Systems at the University of Melbourne. He has previously worked at Microsoft Research, Google Research, Yahoo! Research, Intel Labs Berkeley, and IBM Research.J. D. Tygar is a Professor of Computer Science and a Professor of Information Management at the University of California, Berkeley. Read more

Book Highlights

Published by ‎ Cambridge English
Language: ‎ English
Publication date: ‎ 1 January 2019
Category: Professional Certification Exams > IT Certification Exams
Rated 4.1/5 by 5 verified readers
Dimensions: ‎ 17.78 x 2.54 x 26.04 cm
Weight: ‎ 840 g
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Book Specifications

ISBN-139781107043466
ISBN-101107043468
Publisher‎ Cambridge English
Language‎ English
Dimensions‎ 17.78 x 2.54 x 26.04 cm
Weight‎ 840 g
CategoryProfessional Certification Exams › IT Certification Exams
Customer Rating4.1 / 5 (5 ratings)
authorAnthony D. Joseph | Blaine Nelson | Benjamin I. P. Rubinstein

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