Methods and procedures for the verification and validation of artificial neural networks

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Last edited by MARC Bot
August 12, 2024 | History

Methods and procedures for the verification and validation of artificial neural networks

Artificial neural networks are a form of artificial intelligence that have the capability of learning, growing, and adapting with dynamic environments. With the ability to learn and adapt, artificial neural networks introduce new potential solutions and approaches to some of the more challenging problems that the United States faces as it pursues the vision of space exploration and develops other system applications that must change and adapt after deployment. Neural networks are members of a class of software that have the potential to enable intelligent computational systems capable of simulating characteristics of biological thinking and learning. Currently no standards exist to verify and validate neural network-based systems. NASA Independent Verification and Validation Facility has contracted the Institute for Scientific Research, Inc.

to perform research on this topic and develop a comprehensive guide to performing V&V on adaptive systems, with emphasis on neural networks used in safety-critical or mission-critical applications. Methods and Procedures for the Verification and Validation of Artificial Neural Networks is the culmination of the first steps in that research. This volume introduces some of the more promising methods and techniques used for the verification and validation (V&V) of neural networks and adaptive systems. A comprehensive guide to performing V&V on neural network systems, aligned with the IEEE Standard for Software Verification and Validation, will follow this book. The NASA IV&V and the Institute for Scientific Research, Inc. are working to be at the forefront of software safety and assurance for neural network and adaptive systems.

Methods and Procedures for the Verification and Validation of Artificial Neural Networks is structured for research scientists and V&V practitioners in industry to assure neural network software systems for future NASA missions and other applications. This book is also suitable for graduate-level students in computer science and computer engineering.

Publish Date
Language
English
Pages
277

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Previews available in: English

Book Details


Edition Notes

Includes bibliographical references and index

Published in
New York, NY

Classifications

Library of Congress
TL1078 .M475 2006, Q334-342, QA76.87 .M475 2006, TK5105.5-5105.9

The Physical Object

Pagination
x, 277 p. :
Number of pages
277

ID Numbers

Open Library
OL17189024M
Internet Archive
methodsprocedure00tayl
ISBN 10
0387282882
LCCN
2005933711
OCLC/WorldCat
62939317
Library Thing
5670632
Goodreads
6868227

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History

Download catalog record: RDF / JSON / OPDS | Wikipedia citation
August 12, 2024 Edited by MARC Bot import existing book
March 8, 2023 Edited by MARC Bot import existing book
December 7, 2022 Edited by ImportBot import existing book
June 1, 2022 Edited by ImportBot import existing book
September 27, 2008 Created by ImportBot Imported from Miami University of Ohio MARC record