Introduction to Neural Network Verification

Introduction to Neural Network Verification
Author: Aws Albarghouthi
Publisher:
Total Pages: 182
Release: 2021-12-02
Genre:
ISBN: 9781680839104


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Over the past decade, a number of hardware and software advances have conspired to thrust deep learning and neural networks to the forefront of computing. Deep learning has created a qualitative shift in our conception of what software is and what it can do: Every day we're seeing new applications of deep learning, from healthcare to art, and it feels like we're only scratching the surface of a universe of new possibilities. This book offers the first introduction of foundational ideas from automated verification as applied to deep neural networks and deep learning. It is divided into three parts: Part 1 defines neural networks as data-flow graphs of operators over real-valued inputs. Part 2 discusses constraint-based techniques for verification. Part 3 discusses abstraction-based techniques for verification. The book is a self-contained treatment of a topic that sits at the intersection of machine learning and formal verification. It can serve as an introduction to the field for first-year graduate students or senior undergraduates, even if they have not been exposed to deep learning or verification.


Introduction to Neural Network Verification
Language: en
Pages: 182
Authors: Aws Albarghouthi
Categories:
Type: BOOK - Published: 2021-12-02 - Publisher:

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Over the past decade, a number of hardware and software advances have conspired to thrust deep learning and neural networks to the forefront of computing. Deep
Methods and Procedures for the Verification and Validation of Artificial Neural Networks
Language: en
Pages: 280
Authors: Brian J. Taylor
Categories: Computers
Type: BOOK - Published: 2006-03-20 - Publisher: Springer Science & Business Media

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Neural networks are members of a class of software that have the potential to enable intelligent computational systems capable of simulating characteristics of
Neural Network Verification for Nonlinear Systems
Language: en
Pages: 0
Authors: Chelsea Rose Sidrane
Categories:
Type: BOOK - Published: 2022 - Publisher:

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Machine learning has proven useful in a wide variety of domains from computer vision to control of autonomous systems. However, if we want to use neural network
Computer Aided Verification
Language: en
Pages: 922
Authors: Alexandra Silva
Categories: Computers
Type: BOOK - Published: 2021-07-17 - Publisher: Springer Nature

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This open access two-volume set LNCS 12759 and 12760 constitutes the refereed proceedings of the 33rd International Conference on Computer Aided Verification, C