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Feed-Forward Neural Networks, Jouke Annema


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Автор: Jouke Annema
Название:  Feed-Forward Neural Networks
ISBN: 9781461359906
Издательство: Springer
Классификация:



ISBN-10: 1461359902
Обложка/Формат: Paperback
Страницы: 238
Вес: 0.36 кг.
Дата издания: 13.07.2013
Серия: The Springer International Series in Engineering and Computer Science
Язык: English
Размер: 234 x 156 x 14
Основная тема: Engineering
Подзаголовок: Vector Decomposition Analysis, Modelling and Analog Implementation
Ссылка на Издательство: Link
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Поставляется из: Германии
Описание: Feed-Forward Neural Networks: Vector Decomposition Analysis, Modelling and Analog Implementation presents a novel method for the mathematical analysis of neural networks that learn according to the back-propagation algorithm.


Fuzzy Neural Networks for Real Time Control Applications

Автор: Erdal Kayacan
Название: Fuzzy Neural Networks for Real Time Control Applications
ISBN: 0128026871 ISBN-13(EAN): 9780128026878
Издательство: Elsevier Science
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Цена: 12294.00 р.
Наличие на складе: Поставка под заказ.

Описание:

AN INDISPENSABLE RESOURCE FOR ALL THOSE WHO DESIGN AND IMPLEMENT TYPE-1 AND TYPE-2 FUZZY NEURAL NETWORKS IN REAL TIME SYSTEMS

Delve into the type-2 fuzzy logic systems and become engrossed in the parameter update algorithms for type-1 and type-2 fuzzy neural networks and their stability analysis with this book

Not only does this book stand apart from others in its focus but also in its application-based presentation style. Prepared in a way that can be easily understood by those who are experienced and inexperienced in this field. Readers can benefit from the computer source codes for both identification and control purposes which are given at the end of the book.

A clear and an in-depth examination has been made of all the necessary mathematical foundations, type-1 and type-2 fuzzy neural network structures and their learning algorithms as well as their stability analysis.

You will find that each chapter is devoted to a different learning algorithm for the tuning of type-1 and type-2 fuzzy neural networks; some of which are:

- Gradient descent

- Levenberg-Marquardt

- Extended Kalman filter

In addition to the aforementioned conventional learning methods above, number of novel sliding mode control theory-based learning algorithms, which are simpler and have closed forms, and their stability analysis have been proposed. Furthermore, hybrid methods consisting of particle swarm optimization and sliding mode control theory-based algorithms have also been introduced.

The potential readers of this book are expected to be the undergraduate and graduate students, engineers, mathematicians and computer scientists. Not only can this book be used as a reference source for a scientist who is interested in fuzzy neural networks and their real-time implementations but also as a course book of fuzzy neural networks or artificial intelligence in master or doctorate university studies. We hope that this book will serve its main purpose successfully.

Design of Intelligent Systems Based on Fuzzy Logic, Neural Networks and Nature-Inspired Optimization

Автор: Patricia Melin; Oscar Castillo; Janusz Kacprzyk
Название: Design of Intelligent Systems Based on Fuzzy Logic, Neural Networks and Nature-Inspired Optimization
ISBN: 331917746X ISBN-13(EAN): 9783319177465
Издательство: Springer
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Цена: 23508.00 р.
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Описание: This book presents recent advances on the design of intelligent systems based on fuzzy logic, neural networks and nature-inspired optimization and their application in areas such as, intelligent control and robotics, pattern recognition, time series prediction and optimization of complex problems.

Analysis and Control of Coupled Neural Networks with Reaction-Diffusion Terms

Автор: Jin-Liang Wang; Huai-Ning Wu; Tingwen Huang; Shun-
Название: Analysis and Control of Coupled Neural Networks with Reaction-Diffusion Terms
ISBN: 9811049068 ISBN-13(EAN): 9789811049064
Издательство: Springer
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Цена: 19564.00 р.
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Описание: This book introduces selected recent findings on the analysis and control of dynamical behaviors for coupled reaction-diffusion neural networks. It presents novel research ideas and essential definitions concerning coupled reaction-diffusion neural networks, such as passivity, adaptive coupling, spatial diffusion coupling, and the relationship between synchronization and output strict passivity. Further, it gathers research results previously published in many flagship journals, presenting them in a unified form. As such, the book will be of interest to all university researchers and graduate students in Engineering and Mathematics who wish to study the dynamical behaviors of coupled reaction-diffusion neural networks.

Feed-Forward Neural Networks

Автор: Jouke Annema
Название: Feed-Forward Neural Networks
ISBN: 0792395670 ISBN-13(EAN): 9780792395676
Издательство: Springer
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Цена: 23757.00 р.
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Описание: Presents a method for the mathematical analysis of neural networks that learn according to the back-propagation algorithm. This book discusses some other alternative algorithms for hardware implemented perception-like neural networks.

A Theory of Learning and Generalization: With Applications to Neural Networks and Control Systems

Название: A Theory of Learning and Generalization: With Applications to Neural Networks and Control Systems
ISBN: 1849968675 ISBN-13(EAN): 9781849968676
Издательство: Springer
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Цена: 23508.00 р.
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Описание: How does a machine learn a new concept on the basis of examples? This second edition takes account of important new developments in the field. It also deals extensively with the theory of learning control systems, now comparably mature to learning of neural networks.

Non-Linear Feedback Neural Networks

Автор: Mohd. Samar Ansari
Название: Non-Linear Feedback Neural Networks
ISBN: 8132215621 ISBN-13(EAN): 9788132215622
Издательство: Springer
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Цена: 19591.00 р.
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Описание: This book details the non-linear synapse neural network (NoSyNN). It also discusses the applications in computationally intensive tasks like graph coloring, ranking, and linear as well as quadratic programming.

Artificial Neural Networks

Автор: Petia Koprinkova-Hristova; Valeri Mladenov; Nikola
Название: Artificial Neural Networks
ISBN: 3319099027 ISBN-13(EAN): 9783319099026
Издательство: Springer
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Цена: 34937.00 р.
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Описание:

The book reports on the latest theories on artificial neural networks, with a special emphasis on bio-neuroinformatics methods. It includes twenty-three papers selected from among the best contributions on bio-neuroinformatics-related issues, which were presented at the International Conference on Artificial Neural Networks, held in Sofia, Bulgaria, on September 10-13, 2013 (ICANN 2013). The book covers a broad range of topics concerning the theory and applications of artificial neural networks, including recurrent neural networks, super-Turing computation and reservoir computing, double-layer vector perceptrons, nonnegative matrix factorization, bio-inspired models of cell communities, Gestalt laws, embodied theory of language understanding, saccadic gaze shifts and memory formation, and new training algorithms for Deep Boltzmann Machines, as well as dynamic neural networks and kernel machines. It also reports on new approaches to reinforcement learning, optimal control of discrete time-delay systems, new algorithms for prototype selection, and group structure discovering. Moreover, the book discusses one-class support vector machines for pattern recognition, handwritten digit recognition, time series forecasting and classification, and anomaly identification in data analytics and automated data analysis. By presenting the state-of-the-art and discussing the current challenges in the fields of artificial neural networks, bioinformatics and neuroinformatics, the book is intended to promote the implementation of new methods and improvement of existing ones, and to support advanced students, researchers and professionals in their daily efforts to identify, understand and solve a number of open questions in these fields.

Self-Organizing Neural Networks

Автор: Udo Seiffert
Название: Self-Organizing Neural Networks
ISBN: 3662003430 ISBN-13(EAN): 9783662003435
Издательство: Springer
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Цена: 12157.00 р.
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Neural Networks for Cooperative Control of Multiple Robot Arms

Автор: Shuai Li; Yinyan Zhang
Название: Neural Networks for Cooperative Control of Multiple Robot Arms
ISBN: 9811070369 ISBN-13(EAN): 9789811070365
Издательство: Springer
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Цена: 7685.00 р.
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Описание: This is the first book to focus on solving cooperative control problems of multiple robot arms using different centralized or distributed neural network models, presenting methods and algorithms together with the corresponding theoretical analysis and simulated examples.

Neural Networks and Micromechanics

Автор: Ernst Kussul; Tatiana Baidyk; Donald C. Wunsch
Название: Neural Networks and Micromechanics
ISBN: 3642426115 ISBN-13(EAN): 9783642426117
Издательство: Springer
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Цена: 18167.00 р.
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Описание: This text covers a field of research involving the use of neural network techniques for image recognition to tasks in the area of micromechanics. It includes theoretical analysis, details of machine tool prototypes, and results from various experiments.

Multilayer Neural Networks

Автор: Maciej Krawczak
Название: Multilayer Neural Networks
ISBN: 3319033905 ISBN-13(EAN): 9783319033907
Издательство: Springer
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Цена: 15672.00 р.
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Описание: This book shows that a multilayer neural network can be considered as a multistage system, and that the learning of this class of neural networks can be treated as a special sort of the optimal control problem.

Recurrent Neural Networks for Short-Term Load Forecasting

Автор: Filippo Maria Bianchi; Enrico Maiorino; Michael C.
Название: Recurrent Neural Networks for Short-Term Load Forecasting
ISBN: 3319703374 ISBN-13(EAN): 9783319703374
Издательство: Springer
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Цена: 7685.00 р.
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Описание: The key component in forecasting demand and consumption of resources in a supply network is an accurate prediction of real-valued time series.


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