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This important new book details the design of robotic devices that can learn--without input from outside sources--from their own experience and are thus able to establish self-sustaining behavior. The subject of considerable growing interest across a wide range of fields, "learning machines" will provide invaluable assistance in both the home and the workplace; some functions include monitoring industrial equipment, piloting aircraft, and performing many routine jobs without special instructions. Machines that Learn shows the design of a simple neural network that works more like the animal brain than conventional neural networks. It also provides unusual explanations of the terms "organization", "information", and "order". Hundreds of drawings and diagrams provide invaluable supplements to the text. Uniquely accessible and well-written, the book will be welcomed by researchers, technicians, engineers, and students interested in artificial intelligence, control engineering, computer science, and robotics.
This book investigates the design and implementation of autonomous robotic systems capable of self-directed learning through empirical control principles. Robert F. Brown draws upon control engineering and biological modeling to propose a framework for machines that function without external input. By re-evaluating fundamental concepts such as organization and information, the author provides a technical roadmap for creating self-sustaining behavioral systems. The text serves as a bridge between theoretical neural network research and practical robotic application.
What You Will Find
Experts and students in the field of robotics frequently cite this work for its accessible explanation of complex control theory. The text is recognized as a foundational resource for those seeking to understand the intersection of neural networks and autonomous machine behavior.
Page Count:
912
Publication Date:
1994-01-06
Publisher:
Oxford University Press
ISBN-10:
0195069668
ISBN-13:
9780195069662
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