Neural-Symbolic Learning Systems: Foundations and Applications: Perspectives in Neural Computing
Autor Artur S. d'Avila Garcez, Krysia B. Broda, Dov M. Gabbayen Limba Engleză Paperback – 6 aug 2002
This book provides a comprehensive introduction to the field of neural-symbolic learning systems, and an invaluable overview of the latest research issues in this area. It is divided into three sections, covering the main topics of neural-symbolic integration - theoretical advances in knowledge representation and learning, knowledge extraction from trained neural networks, and inconsistency handling in neural-symbolic systems. Each section provides a balance of theory and practice, giving the results of applications using real-world problems in areas such as DNA sequence analysis, power systems fault diagnosis, and software requirements specifications.
Neural-Symbolic Learning Systems will be invaluable reading for researchers and graduate students in Engineering, Computing Science, Artificial Intelligence, Machine Learning and Neurocomputing. It will also be of interest to Intelligent Systems practitioners and anyone interested in applications of hybrid artificial intelligence systems.
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Specificații
ISBN-13: 9781852335120
ISBN-10: 1852335122
Pagini: 288
Ilustrații: XIV, 271 p. 30 illus.
Dimensiuni: 155 x 235 x 15 mm
Greutate: 0.44 kg
Ediția:2002
Editura: SPRINGER LONDON
Colecția Springer
Seria Perspectives in Neural Computing
Locul publicării:London, United Kingdom
ISBN-10: 1852335122
Pagini: 288
Ilustrații: XIV, 271 p. 30 illus.
Dimensiuni: 155 x 235 x 15 mm
Greutate: 0.44 kg
Ediția:2002
Editura: SPRINGER LONDON
Colecția Springer
Seria Perspectives in Neural Computing
Locul publicării:London, United Kingdom
Public țintă
ResearchCuprins
1. Introduction and Overview.- 1.1 Why Integrate Neurons and Symbols?.- 1.2 Strategies of Neural-Symbolic Integration.- 1.3 Neural-Symbolic Learning Systems.- 1.4 A Simple Example.- 1.5 How to Read this Book.- 1.6 Summary.- 2. Background.- 2.1 General Preliminaries.- 2.2 Inductive Learning.- 2.3 Neural Networks.- 2.4 Logic Programming.- 2.5 Nonmonotonic Reasoning.- 2.6 Belief Revision.- I. Knowledge Refinement in Neural Networks.- 3. Theory Refinement in Neural Networks.- 4. Experiments on Theory Refinement.- II. Knowledge Extraction from Neural Networks.- 5. Knowledge Extraction from Trained Networks.- 6. Experiments on Knowledge Extraction.- III. Knowledge Revision in Neural Networks.- 7. Handling Inconsistencies in Neural Networks.- 8. Experiments on Handling Inconsistencies.- 9. Neural-Symbolic Integration: The Road Ahead.
Caracteristici
Provides the first single-source introduction to the field of knowledge-based neuro-computing Includes real-world applications of neural-symbolic integration systems Includes supplementary material: sn.pub/extras