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BOOK EXCERPT:
This brief monograph is the first one to deal exclusively with the quantitative approximation by artificial neural networks to the identity-unit operator. Here we study with rates the approximation properties of the "right" sigmoidal and hyperbolic tangent artificial neural network positive linear operators. In particular we study the degree of approximation of these operators to the unit operator in the univariate and multivariate cases over bounded or unbounded domains. This is given via inequalities and with the use of modulus of continuity of the involved function or its higher order derivative. We examine the real and complex cases. For the convenience of the reader, the chapters of this book are written in a self-contained style. This treatise relies on author's last two years of related research work. Advanced courses and seminars can be taught out of this brief book. All necessary background and motivations are given per chapter. A related list of references is given also per chapter. The exposed results are expected to find applications in many areas of computer science and applied mathematics, such as neural networks, intelligent systems, complexity theory, learning theory, vision and approximation theory, etc. As such this monograph is suitable for researchers, graduate students, and seminars of the above subjects, also for all science libraries.
Product Details :
Genre |
: Technology & Engineering |
Author |
: George A. Anastassiou |
Publisher |
: Springer Science & Business Media |
Release |
: 2011-06-02 |
File |
: 113 Pages |
ISBN-13 |
: 9783642214318 |
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BOOK EXCERPT:
This monograph is the continuation and completion of the monograph, “Intelligent Systems: Approximation by Artificial Neural Networks” written by the same author and published 2011 by Springer. The book you hold in hand presents the complete recent and original work of the author in approximation by neural networks. Chapters are written in a self-contained style and can be read independently. Advanced courses and seminars can be taught out of this brief book. All necessary background and motivations are given per chapter. A related list of references is given also per chapter. The book’s results are expected to find applications in many areas of applied mathematics, computer science and engineering. As such this monograph is suitable for researchers, graduate students, and seminars of the above subjects, also for all science and engineering libraries.
Product Details :
Genre |
: Technology & Engineering |
Author |
: George A. Anastassiou |
Publisher |
: Springer |
Release |
: 2015-06-23 |
File |
: 712 Pages |
ISBN-13 |
: 9783319205052 |
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BOOK EXCERPT:
In this book, we introduce the parametrized, deformed and general activation function of neural networks. The parametrized activation function kills much less neurons than the original one. The asymmetry of the brain is best expressed by deformed activation functions. Along with a great variety of activation functions, general activation functions are also engaged. Thus, in this book, all presented is original work by the author given at a very general level to cover a maximum number of different kinds of neural networks: giving ordinary, fractional, fuzzy and stochastic approximations. It presents here univariate, fractional and multivariate approximations. Iterated sequential multi-layer approximations are also studied. The functions under approximation and neural networks are Banach space valued.
Product Details :
Genre |
: Technology & Engineering |
Author |
: George A. Anastassiou |
Publisher |
: Springer Nature |
Release |
: 2023-09-29 |
File |
: 854 Pages |
ISBN-13 |
: 9783031430213 |
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BOOK EXCERPT:
This book is about the generalization and modernization of approximation by neural network operators. Functions under approximation and the neural networks are Banach space valued. These are induced by a great variety of activation functions deriving from the arctangent, algebraic, Gudermannian, and generalized symmetric sigmoid functions. Ordinary, fractional, fuzzy, and stochastic approximations are exhibited at the univariate, fractional, and multivariate levels. Iterated-sequential approximations are also covered. The book’s results are expected to find applications in the many areas of applied mathematics, computer science and engineering, especially in artificial intelligence and machine learning. Other possible applications can be in applied sciences like statistics, economics, etc. Therefore, this book is suitable for researchers, graduate students, practitioners, and seminars of the above disciplines, also to be in all science and engineering libraries.
Product Details :
Genre |
: Technology & Engineering |
Author |
: George A. Anastassiou |
Publisher |
: Springer Nature |
Release |
: 2022-10-01 |
File |
: 429 Pages |
ISBN-13 |
: 9783031164002 |
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BOOK EXCERPT:
This book comprises a selection of papers on new methods for analysis and design of hybrid intelligent systems using soft computing techniques from the IFSA 2007 World Congress, held in Cancun, Mexico, June 2007.
Product Details :
Genre |
: Computers |
Author |
: Patricia Melin |
Publisher |
: Springer Science & Business Media |
Release |
: 2007-06-05 |
File |
: 856 Pages |
ISBN-13 |
: 9783540724315 |
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BOOK EXCERPT:
Recent years have witnessed a growth of interest in the special functions called ridge functions. These functions appear in various fields and under various guises. They appear in partial differential equations (where they are called plane waves), in computerized tomography, and in statistics. Ridge functions are also the underpinnings of many central models in neural network theory. In this book various approximation theoretic properties of ridge functions are described. This book also describes properties of generalized ridge functions, and their relation to linear superpositions and Kolmogorov's famous superposition theorem. In the final part of the book, a single and two hidden layer neural networks are discussed. The results obtained in this part are based on properties of ordinary and generalized ridge functions. Novel aspects of the universal approximation property of feedforward neural networks are revealed. This book will be of interest to advanced graduate students and researchers working in functional analysis, approximation theory, and the theory of real functions, and will be of particular interest to those wishing to learn more about neural network theory and applications and other areas where ridge functions are used.
Product Details :
Genre |
: Mathematics |
Author |
: Vugar E. Ismailov |
Publisher |
: American Mathematical Society |
Release |
: 2021-12-17 |
File |
: 186 Pages |
ISBN-13 |
: 9781470467654 |
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BOOK EXCERPT:
Ordinary and fractional approximations by non-additive integrals, especially by integral approximators of Choquet, Silkret and Sugeno types, are a new trend in approximation theory. These integrals are only subadditive and only the first two are positive linear, and they produce very fast and flexible approximations based on limited data. The author presents both the univariate and multivariate cases. The involved set functions are much weaker forms of the Lebesgue measure and they were conceived to fulfill the needs of economic theory and other applied sciences. The approaches presented here are original, and all chapters are self-contained and can be read independently. Moreover, the book’s findings are sure to find application in many areas of pure and applied mathematics, especially in approximation theory, numerical analysis and mathematical economics (both ordinary and fractional). Accordingly, it offers a unique resource for researchers, graduate students, and for coursework in the above-mentioned fields, and belongs in all science and engineering libraries.
Product Details :
Genre |
: Technology & Engineering |
Author |
: George A. Anastassiou |
Publisher |
: Springer |
Release |
: 2018-12-07 |
File |
: 355 Pages |
ISBN-13 |
: 9783030042875 |
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BOOK EXCERPT:
Intelligent systems, or artificial intelligence technologies, are playing an increasing role in areas ranging from medicine to the major manufacturing industries to financial markets. The consequences of flawed artificial intelligence systems are equally wide ranging and can be seen, for example, in the programmed trading-driven stock market crash of October 19, 1987. Intelligent Systems: Technology and Applications, Six Volume Set connects theory with proven practical applications to provide broad, multidisciplinary coverage in a single resource. In these volumes, international experts present case-study examples of successful practical techniques and solutions for diverse applications ranging from robotic systems to speech and signal processing, database management, and manufacturing.
Product Details :
Genre |
: Technology & Engineering |
Author |
: Cornelius T. Leondes |
Publisher |
: CRC Press |
Release |
: 2018-10-08 |
File |
: 2208 Pages |
ISBN-13 |
: 9781420040814 |
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BOOK EXCERPT:
Product Details :
Genre |
: |
Author |
: Jagdev Singh |
Publisher |
: Springer Nature |
Release |
: |
File |
: 365 Pages |
ISBN-13 |
: 9783031563041 |
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BOOK EXCERPT:
One of the attractions of fuzzy logic is its utility in solving many real engineering problems. As many have realised, the major obstacles in building a real intelligent machine involve dealing with random disturbances, processing large amounts of imprecise data, interacting with a dynamically changing environment, and coping with uncertainty. Neural-fuzzy techniques help one to solve many of these problems. Fuzzy Logic and Intelligent Systems reflects the most recent developments in neural networks and fuzzy logic, and their application in intelligent systems. In addition, the balance between theoretical work and applications makes the book suitable for both researchers and engineers, as well as for graduate students.
Product Details :
Genre |
: Mathematics |
Author |
: Hua Harry Li |
Publisher |
: Springer Science & Business Media |
Release |
: 2007-07-07 |
File |
: 455 Pages |
ISBN-13 |
: 9780585280004 |