Complex Valued Neural Networks Multi Valued by Aizenberg Igor (17 results)

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    • Language: English

      Published by Springer, 2011

      3642203523 / 9783642203527

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    • Language: English

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      3642203523 / 9783642203527

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      hardcover. Condition: Sehr gut. 277 Seiten; 9783642203527.2 Gewicht in Gramm: 1.

    • Language: English

      Published by Springer, 2016

      3662506319 / 9783662506318

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    • Language: English

      Published by Springer, 2011

      3642203523 / 9783642203527

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    • Language: English

      Published by Springer, 2016

      3662506319 / 9783662506318

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      Condition: New. pp. 277 Softcover reprint of the original 1st ed. 2011 edition NO-PA16APR2015-KAP.

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      Language: English

      Published by Springer, 2016

      3662506319 / 9783662506318

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      Taschenbuch. Condition: Neu. Complex-Valued Neural Networks with Multi-Valued Neurons | Igor Aizenberg | Taschenbuch | Studies in Computational Intelligence | xv | Englisch | 2016 | Springer | EAN 9783662506318 | Verantwortliche Person für die EU: Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg, juergen[dot]hartmann[at]springer[dot]com | Anbieter: preigu.

    • Language: English

      Published by Springer Berlin Heidelberg, 2016

      3662506319 / 9783662506318

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      Taschenbuch. Condition: Neu. Druck auf Anfrage Neuware - Printed after ordering - Complex-Valued Neural Networks have higher functionality, learn faster and generalize better than their real-valued counterparts.This book is devoted to the Multi-Valued Neuron (MVN) and MVN-based neural networks. It contains a comprehensive observation of MVN theory, its learning, and applications. MVN is a complex-valued neuron whose inputs and output are located on the unit circle. Its activation function is a function only of argument (phase) of the weighted sum. MVN derivative-free learning is based on the error-correction rule. A single MVN can learn those input/output mappings that are non-linearly separable in the real domain. Such classical non-linearly separable problems as XOR and Parity n are the simplest that can be learned by a single MVN. Another important advantage of MVN is a proper treatment of the phase information.These properties of MVN become even more remarkable when this neuron is used as a basic one in neural networks. The Multilayer Neural Network based on Multi-Valued Neurons (MLMVN) is an MVN-based feedforward neural network. Its backpropagation learning algorithm is derivative-free and based on the error-correction rule. It does not suffer from the local minima phenomenon. MLMVN outperforms many other machine learning techniques in terms of learning speed, network complexity and generalization capability when solving both benchmark and real-world classification and prediction problems. Another interesting application of MVN is its use as a basic neuron in multi-state associative memories. The book is addressed to those readers who develop theoretical fundamentals of neural networks and use neural networks for solving various real-world problems. It should also be very suitable for Ph.D. and graduate students pursuing their degrees in computational intelligence.

    • Language: English

      Published by Springer Verlag, 2011

      3642203523 / 9783642203527

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      Hardcover. Condition: Brand New. 2011 edition. 280 pages. 9.50x6.50x0.75 inches. In Stock.

    • Language: English

      Published by Springer, 2011

      3642203523 / 9783642203527

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      Condition: gut. 2011. Complex-Valued Neural Networks with Multi-Valued Neurons (Studies in Computational Intelligence, 353, Band 353) In deutscher Sprache. pages.

    • Language: English

      Published by Springer, 2016

      3662506319 / 9783662506318

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    • Language: English

      Published by Springer, 2011

      3642203523 / 9783642203527

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    • Language: English

      Published by Springer Berlin Heidelberg Aug 2016, 2016

      3662506319 / 9783662506318

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      Taschenbuch. Condition: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -Complex-Valued Neural Networks have higher functionality, learn faster and generalize better than their real-valued counterparts.This book is devoted to the Multi-Valued Neuron (MVN) and MVN-based neural networks. It contains a comprehensive observation of MVN theory, its learning, and applications. MVN is a complex-valued neuron whose inputs and output are located on the unit circle. Its activation function is a function only of argument (phase) of the weighted sum. MVN derivative-free learning is based on the error-correction rule. A single MVN can learn those input/output mappings that are non-linearly separable in the real domain. Such classical non-linearly separable problems as XOR and Parity n are the simplest that can be learned by a single MVN. Another important advantage of MVN is a proper treatment of the phase information.These properties of MVN become even more remarkable when this neuron is used as a basic one in neural networks. The Multilayer Neural Network based on Multi-Valued Neurons (MLMVN) is an MVN-based feedforward neural network. Its backpropagation learning algorithm is derivative-free and based on the error-correction rule. It does not suffer from the local minima phenomenon. MLMVN outperforms many other machine learning techniques in terms of learning speed, network complexity and generalization capability when solving both benchmark and real-world classification and prediction problems. Another interesting application of MVN is its use as a basic neuron in multi-state associative memories. The book is addressed to those readers who develop theoretical fundamentals of neural networks and use neural networks for solving various real-world problems. It should also be very suitable for Ph.D. and graduate students pursuing their degrees in computational intelligence. 280 pp. Englisch.

    • Language: English

      Published by Springer Berlin Heidelberg, 2016

      3662506319 / 9783662506318

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      Condition: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Cutting-edge research on Complex-Valued Networks with Multi-Valued NeuronsWritten by leading experts in this fieldState-of-the-Art bookComplex-Valued Neural Networks have higher functionality, learn faster and generalize b.

    • Language: English

      Published by Springer Berlin Heidelberg, 2011

      3642203523 / 9783642203527

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      Gebunden. Condition: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Cutting-edge research on Complex-Valued Networks with Multi-Valued NeuronsWritten by leading experts in this fieldState-of-the-Art bookComplex-Valued Neural Networks have higher functionality, learn faster and generalize b.

    • Language: English

      Published by Springer, 2016

      3662506319 / 9783662506318

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      Condition: New. Print on Demand pp. 277.

    • Language: English

      Published by Springer, Springer Aug 2016, 2016

      3662506319 / 9783662506318

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      Taschenbuch. Condition: Neu. This item is printed on demand - Print on Demand Titel. Neuware -Complex-Valued Neural Networks have higher functionality, learn faster and generalize better than their real-valued counterparts.This book is devoted to the Multi-Valued Neuron (MVN) and MVN-based neural networks. It contains a comprehensive observation of MVN theory, its learning, and applications. MVN is a complex-valued neuron whose inputs and output are located on the unit circle. Its activation function is a function only of argument (phase) of the weighted sum. MVN derivative-free learning is based on the error-correction rule. A single MVN can learn those input/output mappings that are non-linearly separable in the real domain. Such classical non-linearly separable problems as XOR and Parity n are the simplest that can be learned by a single MVN. Another important advantage of MVN is a proper treatment of the phase information.These properties of MVN become even more remarkable when this neuron is used as a basic one in neural networks. The Multilayer Neural Network based on Multi-Valued Neurons (MLMVN) is an MVN-based feedforward neural network. Its backpropagation learning algorithm is derivative-free and based on the error-correction rule. It does not suffer from the local minima phenomenon. MLMVN outperforms many other machine learning techniques in terms of learning speed, network complexity and generalization capability when solving both benchmark and real-world classification and prediction problems. Another interesting application of MVN is its use as a basic neuron in multi-state associative memories.The book is addressed to those readers who develop theoretical fundamentals of neural networks and use neural networks for solving various real-world problems. It should also be very suitable for Ph.D. and graduate students pursuing their degrees in computational intelligence.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 280 pp. Englisch.

    • Language: English

      Published by Springer, 2016

      3662506319 / 9783662506318

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      Condition: New. PRINT ON DEMAND pp. 277.