Adversarial Robustness for Machine Learning

Adversarial Robustness for Machine Learning

AngličtinaMäkká väzbaTlač na objednávku
Tlač na objednávku
Predpokladané dodanie v piatok, 7. augusta 2026
112,47 €
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Adversarial Robustness for Machine Learning summarizes the recent progress on this topic and introduces popular algorithms on adversarial attack, defense and verification. Sections cover adversarial attack, verification and defense, mainly focusing on image classification applications which are the standard benchmark considered in the adversarial robustness community. Other sections discuss adversarial examples beyond image classification, other threat models beyond testing time attack, and applications on adversarial robustness. For researchers, this book provides a thorough literature review that summarizes latest progress in the area, which can be a good reference for conducting future research. In addition, the book can also be used as a textbook for graduate courses on adversarial robustness or trustworthy machine learning. While machine learning (ML) algorithms have achieved remarkable performance in many applications, recent studies have demonstrated their lack of robustness against adversarial disturbance. The lack of robustness brings security concerns in ML models for real applications such as self-driving cars, robotics controls and healthcare systems.
EAN 9780128240205
ISBN 0128240202
Typ produktu Mäkká väzba
Vydavateľ Elsevier Science Publishing Co Inc
Dátum vydania 25. augusta 2022
Stránky 298
Jazyk English
Rozmery 229 x 152
Krajina United States
Čitatelia Professional & Scholarly
Autori Chen, Pin-Yu (Principal Research Scientist, IBM Thomas J. Watson Research Center, Yorktown Heights, NY, USA); Hsieh, Cho-Jui (Assistant Professor, UCLA Computer Science Department, USA)
Ilustrácie Approx. 100 illustrations
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