Strengthening Deep Neural Networks

Strengthening Deep Neural Networks
Author: Katy Warr
Publisher: O'Reilly Media
Total Pages: 247
Release: 2019-07-03
Genre: Computers
ISBN: 149204492X


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As deep neural networks (DNNs) become increasingly common in real-world applications, the potential to deliberately "fool" them with data that wouldn’t trick a human presents a new attack vector. This practical book examines real-world scenarios where DNNs—the algorithms intrinsic to much of AI—are used daily to process image, audio, and video data. Author Katy Warr considers attack motivations, the risks posed by this adversarial input, and methods for increasing AI robustness to these attacks. If you’re a data scientist developing DNN algorithms, a security architect interested in how to make AI systems more resilient to attack, or someone fascinated by the differences between artificial and biological perception, this book is for you. Delve into DNNs and discover how they could be tricked by adversarial input Investigate methods used to generate adversarial input capable of fooling DNNs Explore real-world scenarios and model the adversarial threat Evaluate neural network robustness; learn methods to increase resilience of AI systems to adversarial data Examine some ways in which AI might become better at mimicking human perception in years to come


Strengthening Deep Neural Networks
Language: en
Pages: 247
Authors: Katy Warr
Categories: Computers
Type: BOOK - Published: 2019-07-03 - Publisher: O'Reilly Media

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As deep neural networks (DNNs) become increasingly common in real-world applications, the potential to deliberately "fool" them with data that wouldn’t trick
Strengthening Deep Neural Networks
Language: en
Pages: 0
Authors: Katy Warr
Categories: Neural networks (Computer science)
Type: BOOK - Published: 2019 - Publisher:

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As deep neural networks (DNNs) become increasingly common in real-world applications, the potential to deliberately "fool" them with data that wouldn't trick a
Efficient Processing of Deep Neural Networks
Language: en
Pages: 254
Authors: Vivienne Sze
Categories: Technology & Engineering
Type: BOOK - Published: 2022-05-31 - Publisher: Springer Nature

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This book provides a structured treatment of the key principles and techniques for enabling efficient processing of deep neural networks (DNNs). DNNs are curren
Adversarial Machine Learning
Language: en
Pages: 341
Authors: Anthony D. Joseph
Categories: Computers
Type: BOOK - Published: 2019-02-21 - Publisher: Cambridge University Press

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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.
Python Deep Learning Projects
Language: en
Pages: 465
Authors: Matthew Lamons
Categories: Computers
Type: BOOK - Published: 2018-10-31 - Publisher: Packt Publishing Ltd

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Insightful projects to master deep learning and neural network architectures using Python and Keras Key FeaturesExplore deep learning across computer vision, na