Artificial Adaptive Systems Using Auto Contractive Maps: Theory, Applications and Extensions: Studies in Systems, Decision and Control, cartea 131
Autor Paolo Massimo Buscema, Giulia Massini, Marco Breda, Weldon A. Lodwick, Francis Newman, Masoud Asadi-Zeydabadien Limba Engleză Paperback – 25 dec 2018
The book’s primary focus is on the auto contractive map, an unsupervised artificial neural network employing a fixed point method versus traditional energy minimization. This is a powerful tool for understanding, associating and transforming data, as demonstrated in the numerous examples presented here. A supervised version of the auto contracting map is also introduced as an outstanding method for recognizing digits and defects. In closing, the book walks the readers through the theory and examples of how the auto contracting map can be used in conjunction with another artificial neural network, the “spin-net,” as a dynamic form of auto-associative memory.
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Paperback (1) | 627.24 lei 43-57 zile | |
Springer International Publishing – 25 dec 2018 | 627.24 lei 43-57 zile | |
Hardback (1) | 633.21 lei 43-57 zile | |
Springer International Publishing – 6 mar 2018 | 633.21 lei 43-57 zile |
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Specificații
ISBN-13: 9783030091354
ISBN-10: 303009135X
Ilustrații: VII, 179 p. 97 illus., 74 illus. in color.
Dimensiuni: 155 x 235 mm
Greutate: 0.27 kg
Ediția:Softcover reprint of the original 1st ed. 2018
Editura: Springer International Publishing
Colecția Springer
Seria Studies in Systems, Decision and Control
Locul publicării:Cham, Switzerland
ISBN-10: 303009135X
Ilustrații: VII, 179 p. 97 illus., 74 illus. in color.
Dimensiuni: 155 x 235 mm
Greutate: 0.27 kg
Ediția:Softcover reprint of the original 1st ed. 2018
Editura: Springer International Publishing
Colecția Springer
Seria Studies in Systems, Decision and Control
Locul publicării:Cham, Switzerland
Cuprins
An Introduction.- Artificial Neural Networks.- Auto-Contractive Maps.- Visualization of Auto-CM Output.- Dataset Transformations and Auto-CM.- Comparison of Auto-CM to Various Other Data Understanding Approaches.
Textul de pe ultima copertă
This book offers an introduction to artificial adaptive systems and a general model of the relationships between the data and algorithms used to analyze them. It subsequently describes artificial neural networks as a subclass of artificial adaptive systems, and reports on the backpropagation algorithm, while also identifying an important connection between supervised and unsupervised artificial neural networks.
The book’s primary focus is on the auto contractive map, an unsupervised artificial neural network employing a fixed point method versus traditional energy minimization. This is a powerful tool for understanding, associating and transforming data, as demonstrated in the numerous examples presented here. A supervised version of the auto contracting map is also introduced as an outstanding method for recognizing digits and defects. In closing, the book walks the readers through the theory and examples of how the auto contracting map can be used in conjunction with another artificial neural network, the “spin-net,” as a dynamic form of auto-associative memory.
The book’s primary focus is on the auto contractive map, an unsupervised artificial neural network employing a fixed point method versus traditional energy minimization. This is a powerful tool for understanding, associating and transforming data, as demonstrated in the numerous examples presented here. A supervised version of the auto contracting map is also introduced as an outstanding method for recognizing digits and defects. In closing, the book walks the readers through the theory and examples of how the auto contracting map can be used in conjunction with another artificial neural network, the “spin-net,” as a dynamic form of auto-associative memory.
Caracteristici
Describes a newer approach to artificial adaptive systems, the auto contractive map Offers a comprehensive guide on the use of auto contractive map and its supervised version to extract extensive information from data, lending further meaning to the popular notion of “deep learning” Describes how to couple auto contractive maps and graph theoretic methods to organize and understand data in a powerful new way Includes numerous examples on real and fictitious data