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Strengthening Deep Neural Networks : Making AI Less Susceptible to Adversarial Trickery /

As Deep Neural Networks (DNNs) become increasingly common in real-world applications, the potential to "fool" them presents a new attack vector. In this book, author Katy Warr examines the security implications of how DNNs interpret audio and images very differently to humans. You'll...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Autor principal: Warr, Katy (Autor)
Autor Corporativo: Safari, an O'Reilly Media Company
Formato: Electrónico eBook
Idioma:Inglés
Publicado: Sebastopol : O'Reilly Media, Incorporated, 2019.
Edición:First edition.
Temas:
Acceso en línea:Texto completo (Requiere registro previo con correo institucional)

MARC

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504 |a Includes bibliographical references and index. 
520 |a As Deep Neural Networks (DNNs) become increasingly common in real-world applications, the potential to "fool" them presents a new attack vector. In this book, author Katy Warr examines the security implications of how DNNs interpret audio and images very differently to humans. You'll learn about the motivations attackers have for exploiting flaws in DNN algorithms and how to assess the threat to systems incorporating neural network technology. Through practical code examples, this book shows you how DNNs can be fooled and demonstrates the ways they can be hardened against trickery. Learn the basic principles of how DNNs "think" and why this differs from our human understanding of the world Understand adversarial motivations for fooling DNNs and the threat posed to real-world systems Explore approaches for making software systems that incorporate DNNs less susceptible to trickery Peer into the future of Artificial Neural Networks to learn how these algorithms may evolve to become more robust 
542 |f Copyright © 2019 Katy Warr 
550 |a Made available through: Safari, an O'Reilly Media Company. 
588 0 |a Online resource; title from digital title page (viewed on September 03, 2019). 
505 0 |a Part 1. An introduction to fooling AI. Introduction -- Attack motivations -- Deep neural network (DNN) fundamentals -- DNN processing for image, audio, and video -- Part 2. Generating adversarial input. The principles of adversarial input -- Methods for generating adversarial perturbation -- Part 3. Understanding the real-world threat. Attack patterns for real-world systems -- Physical-world attacks -- Part 4. Defense. Evaluating model robustness to adversarial inputs -- Defending against adversarial inputs -- Future trends : toward robust AI -- Mathematics terminology reference. 
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