Librería: Antiquariat Bookfarm, Löbnitz, Alemania
EUR 27,50
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Añadir al carritoHardcover. Ex-library with stamp and library-signature. GOOD condition, some traces of use. Ancien Exemplaire de bibliothèque avec signature et cachet. BON état, quelques traces d'usure. Ehem. Bibliotheksexemplar mit Signatur und Stempel. GUTER Zustand, ein paar Gebrauchsspuren. C 1202: (2001) 9780470845356 Sprache: Englisch Gewicht in Gramm: 1150.
Publicado por John Wiley & Sons Inc 10.2001., 2001
ISBN 10: 0471495174 ISBN 13: 9780471495178
Idioma: Inglés
Librería: Modernes Antiquariat an der Kyll, Lissendorf, Alemania
EUR 46,99
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Añadir al carritohardcover. Condición: Sehr gut. Buch ist leicht verlagert (längs durchgebogen), kleine Lagerspuren am Buch, Inhalt einwandfrei und ungelesen 238113 Sprache: Englisch Gewicht in Gramm: 740.
Librería: Corner of a Foreign Field, Tokyo, TOKYO, Japon
Original o primera edición
EUR 70,31
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Añadir al carritoHardcover. Condición: Very Good. No Jacket. 1st Edition. 2001.Hardcover.Very good condition.285 pages.Ships from Japan.Usually ships in 1-2 working days.
Librería: HPB-Red, Dallas, TX, Estados Unidos de America
EUR 18,52
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Añadir al carritoHardcover. Condición: Good. Connecting readers with great books since 1972! Used textbooks may not include companion materials such as access codes, etc. May have some wear or writing/highlighting. We ship orders daily and Customer Service is our top priority!
Publicado por Continental Academy Press, London
Librería: Continental Academy Press, London, SELEC, Reino Unido
EUR 10,88
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Añadir al carritoSoftcover. Condición: New. Estado de la sobrecubierta: no dj. First. Recurrent Neural Networks for Sequence Prediction is a cutting-edge guide to the application of recurrent neural networks (RNNs) in sequence prediction tasks. By examining the principles of RNN architecture, training, and optimization, this book provides a comprehensive understanding of the complex relationships between neural networks, sequence data, and prediction accuracy. With a focus on real-world examples and practical case studies, Recurrent Neural Networks for Sequence Prediction is an essential resource for anyone working with sequence data and looking to improve their predictive modeling skills. Publication Year: 2025. SHIPPING TERMS - Depending on your location we may ship your book from the following locations: France, United Kingdom, India, Australia, Canada or the USA. This item is printed on demand.
Librería: Toscana Books, AUSTIN, TX, Estados Unidos de America
EUR 122,56
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Añadir al carritoHardcover. Condición: new. Excellent Condition.Excels in customer satisfaction, prompt replies, and quality checks.
Publicado por Continental Academy Press, London
Librería: Continental Academy Press, London, SELEC, Reino Unido
EUR 11,08
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Añadir al carritoSoftcover. Condición: New. Estado de la sobrecubierta: no dj. First. Recurrent neural networks have revolutionized the field of time series prediction, enabling accurate forecasting of complex systems. This book provides a thorough introduction to the fundamental concepts and architectures of recurrent neural networks, including long short-term memory (LSTM) and gated recurrent units (GRU). Through a combination of theoretical explanations and practical examples, readers will gain a deep understanding of how to design and implement effective recurrent neural networks for time series prediction. From basic to advanced topics, this book covers the essential techniques and tools needed to tackle real-world problems. Publication Year: 2025. SHIPPING TERMS - Depending on your location we may ship your book from the following locations: France, United Kingdom, India, Australia, Canada or the USA. This item is printed on demand.
Librería: BennettBooksLtd, North Las Vegas, NV, Estados Unidos de America
EUR 115,11
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Añadir al carritohardcover. Condición: New. In shrink wrap. Looks like an interesting title!
Publicado por Continental Academy Press, London
Librería: Continental Academy Press, London, SELEC, Reino Unido
EUR 11,51
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Añadir al carritoSoftcover. Condición: New. Estado de la sobrecubierta: no dj. First. Recurrent neural networks (RNNs) are a type of deep learning algorithm that's revolutionizing the field of time series prediction. Using Recurrent Neural Networks for Time Series Prediction provides a comprehensive guide to understanding the principles and applications of RNNs, from forecasting stock prices to predicting weather patterns. By mastering the art of RNNs, you'll learn how to develop sophisticated time series prediction systems that can analyze and understand complex data with unprecedented accuracy. This book will walk you through the process of designing, training, and deploying RNNs for a wide range of applications, from finance to healthcare. Publication Year: 2025. SHIPPING TERMS - Depending on your location we may ship your book from the following locations: France, United Kingdom, India, Australia, Canada or the USA. This item is printed on demand.
Librería: PBShop.store UK, Fairford, GLOS, Reino Unido
EUR 181,98
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Añadir al carritoHRD. Condición: New. New Book. Shipped from UK. Established seller since 2000.
Librería: Ria Christie Collections, Uxbridge, Reino Unido
EUR 186,80
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Librería: GreatBookPricesUK, Woodford Green, Reino Unido
EUR 181,95
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Librería: GreatBookPrices, Columbia, MD, Estados Unidos de America
EUR 191,17
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Librería: GreatBookPrices, Columbia, MD, Estados Unidos de America
EUR 199,53
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Añadir al carritoCondición: As New. Unread book in perfect condition.
Librería: GreatBookPricesUK, Woodford Green, Reino Unido
EUR 199,75
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Añadir al carritoCondición: As New. Unread book in perfect condition.
EUR 195,93
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Añadir al carritoGebunden. Condición: New. Neural networks consist of interconnected groups of neurons which function as processing units and aim to reconstruct the operation of the human brain.InhaltsverzeichnisPreface. Introduction. Fundamentals. Network Architectures fo.
Publicado por John Wiley & Sons Inc, New York, 2001
ISBN 10: 0471495174 ISBN 13: 9780471495178
Idioma: Inglés
Librería: CitiRetail, Stevenage, Reino Unido
EUR 203,73
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Añadir al carritoHardcover. Condición: new. Hardcover. New technologies in engineering, physics and biomedicine are demanding increasingly complex methods of digital signal processing. By presenting the latest research work the authors demonstrate how real-time recurrent neural networks (RNNs) can be implemented to expand the range of traditional signal processing techniques and to help combat the problem of prediction. Within this text neural networks are considered as massively interconnected nonlinear adaptive filters. Analyses the relationships between RNNs and various nonlinear models and filters, and introduces spatio-temporal architectures together with the concepts of modularity and nestingExamines stability and relaxation within RNNsPresents on-line learning algorithms for nonlinear adaptive filters and introduces new paradigms which exploit the concepts of a priori and a posteriori errors, data-reusing adaptation, and normalisationStudies convergence and stability of on-line learning algorithms based upon optimisation techniques such as contraction mapping and fixed point iterationDescribes strategies for the exploitation of inherent relationships between parameters in RNNsDiscusses practical issues such as predictability and nonlinearity detecting and includes several practical applications in areas such as air pollutant modelling and prediction, attractor discovery and chaos, ECG signal processing, and speech processing Recurrent Neural Networks for Prediction offers a new insight into the learning algorithms, architectures and stability of recurrent neural networks and, consequently, will have instant appeal. It provides an extensive background for researchers, academics and postgraduates enabling them to apply such networks in new applications. VISIT OUR COMMUNICATIONS TECHNOLOGY WEBSITE! VISIT OUR WEB PAGE! / Neural networks consist of interconnected groups of neurones which function as processing units. Through the application of neural networks, the capabilities of conventional digital signal processing techniques can be significantly enhanced to meet the demands of new technologies such as mobile communications, robotics and medical instrumentation. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.
EUR 238,05
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Añadir al carritoCondición: New. pp. xxi + 285 Illus.
Publicado por John Wiley & Sons Inc, New York, 2001
ISBN 10: 0471495174 ISBN 13: 9780471495178
Idioma: Inglés
Librería: AussieBookSeller, Truganina, VIC, Australia
EUR 219,38
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Añadir al carritoHardcover. Condición: new. Hardcover. New technologies in engineering, physics and biomedicine are demanding increasingly complex methods of digital signal processing. By presenting the latest research work the authors demonstrate how real-time recurrent neural networks (RNNs) can be implemented to expand the range of traditional signal processing techniques and to help combat the problem of prediction. Within this text neural networks are considered as massively interconnected nonlinear adaptive filters. Analyses the relationships between RNNs and various nonlinear models and filters, and introduces spatio-temporal architectures together with the concepts of modularity and nestingExamines stability and relaxation within RNNsPresents on-line learning algorithms for nonlinear adaptive filters and introduces new paradigms which exploit the concepts of a priori and a posteriori errors, data-reusing adaptation, and normalisationStudies convergence and stability of on-line learning algorithms based upon optimisation techniques such as contraction mapping and fixed point iterationDescribes strategies for the exploitation of inherent relationships between parameters in RNNsDiscusses practical issues such as predictability and nonlinearity detecting and includes several practical applications in areas such as air pollutant modelling and prediction, attractor discovery and chaos, ECG signal processing, and speech processing Recurrent Neural Networks for Prediction offers a new insight into the learning algorithms, architectures and stability of recurrent neural networks and, consequently, will have instant appeal. It provides an extensive background for researchers, academics and postgraduates enabling them to apply such networks in new applications. VISIT OUR COMMUNICATIONS TECHNOLOGY WEBSITE! VISIT OUR WEB PAGE! / Neural networks consist of interconnected groups of neurones which function as processing units. Through the application of neural networks, the capabilities of conventional digital signal processing techniques can be significantly enhanced to meet the demands of new technologies such as mobile communications, robotics and medical instrumentation. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.
Publicado por John Wiley and Sons Ltd, 2001
ISBN 10: 0471495174 ISBN 13: 9780471495178
Idioma: Inglés
Librería: Kennys Bookshop and Art Galleries Ltd., Galway, GY, Irlanda
Original o primera edición
EUR 244,52
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Añadir al carritoCondición: New. Neural networks consist of interconnected groups of neurons which function as processing units and aim to reconstruct the operation of the human brain. Series: Adaptive and Learning Systems for Signal Processing, Communications and Control Series. Num Pages: 308 pages, Ill. BIC Classification: TJK; UYQN; UYS. Category: (P) Professional & Vocational; (UP) Postgraduate, Research & Scholarly; (UU) Undergraduate. Dimension: 250 x 175 x 23. Weight in Grams: 720. . 2001. 1st Edition. Hardcover. . . . .
Librería: Books Puddle, New York, NY, Estados Unidos de America
EUR 248,11
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Añadir al carritoCondición: New. pp. xxi + 285 1st Edition.
Librería: AHA-BUCH GmbH, Einbeck, Alemania
EUR 241,71
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Añadir al carritoBuch. Condición: Neu. Neuware - New technologies in engineering, physics and biomedicine are demanding increasingly complex methods of digital signal processing. By presenting the latest research work the authors demonstrate how real-time recurrent neural networks (RNNs) can be implemented to expand the range of traditional signal processing techniques and to help combat the problem of prediction. Within this text neural networks are considered as massively interconnected nonlinear adaptive filters.
Publicado por John Wiley & Sons Inc, New York, 2001
ISBN 10: 0471495174 ISBN 13: 9780471495178
Idioma: Inglés
Librería: Grand Eagle Retail, Mason, OH, Estados Unidos de America
EUR 216,13
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Añadir al carritoHardcover. Condición: new. Hardcover. New technologies in engineering, physics and biomedicine are demanding increasingly complex methods of digital signal processing. By presenting the latest research work the authors demonstrate how real-time recurrent neural networks (RNNs) can be implemented to expand the range of traditional signal processing techniques and to help combat the problem of prediction. Within this text neural networks are considered as massively interconnected nonlinear adaptive filters. Analyses the relationships between RNNs and various nonlinear models and filters, and introduces spatio-temporal architectures together with the concepts of modularity and nestingExamines stability and relaxation within RNNsPresents on-line learning algorithms for nonlinear adaptive filters and introduces new paradigms which exploit the concepts of a priori and a posteriori errors, data-reusing adaptation, and normalisationStudies convergence and stability of on-line learning algorithms based upon optimisation techniques such as contraction mapping and fixed point iterationDescribes strategies for the exploitation of inherent relationships between parameters in RNNsDiscusses practical issues such as predictability and nonlinearity detecting and includes several practical applications in areas such as air pollutant modelling and prediction, attractor discovery and chaos, ECG signal processing, and speech processing Recurrent Neural Networks for Prediction offers a new insight into the learning algorithms, architectures and stability of recurrent neural networks and, consequently, will have instant appeal. It provides an extensive background for researchers, academics and postgraduates enabling them to apply such networks in new applications. VISIT OUR COMMUNICATIONS TECHNOLOGY WEBSITE! VISIT OUR WEB PAGE! / Neural networks consist of interconnected groups of neurones which function as processing units. Through the application of neural networks, the capabilities of conventional digital signal processing techniques can be significantly enhanced to meet the demands of new technologies such as mobile communications, robotics and medical instrumentation. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
Librería: Lucky's Textbooks, Dallas, TX, Estados Unidos de America
EUR 224,53
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Añadir al carritoCondición: New.
Publicado por John Wiley and Sons Ltd, 2001
ISBN 10: 0471495174 ISBN 13: 9780471495178
Idioma: Inglés
Librería: Kennys Bookstore, Olney, MD, Estados Unidos de America
EUR 297,74
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Añadir al carritoCondición: New. Neural networks consist of interconnected groups of neurons which function as processing units and aim to reconstruct the operation of the human brain. Series: Adaptive and Learning Systems for Signal Processing, Communications and Control Series. Num Pages: 308 pages, Ill. BIC Classification: TJK; UYQN; UYS. Category: (P) Professional & Vocational; (UP) Postgraduate, Research & Scholarly; (UU) Undergraduate. Dimension: 250 x 175 x 23. Weight in Grams: 720. . 2001. 1st Edition. Hardcover. . . . . Books ship from the US and Ireland.
Librería: Revaluation Books, Exeter, Reino Unido
EUR 333,55
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Añadir al carritoHardcover. Condición: Brand New. 285 pages. 9.75x6.75x1.00 inches. In Stock.
Publicado por Continental Academy Press, London
Librería: Continental Academy Press, London, SELEC, Reino Unido
EUR 13,37
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Añadir al carritoSoftcover. Condición: New. Estado de la sobrecubierta: no dj. First. Using Recurrent Neural Networks for Sequence Prediction provides a thorough introduction to the principles and applications of recurrent neural networks (RNNs) in sequence prediction tasks. By exploring the architecture, training, and optimization of RNNs, this book helps readers understand how to design and implement effective sequence prediction systems that can accurately forecast and classify sequential data. With its focus on theoretical foundations and practical applications, Using Recurrent Neural Networks for Sequence Prediction is an essential resource for anyone working in natural language processing, time series analysis, or predictive modeling. Publication Year: 2025. SHIPPING TERMS - Depending on your location we may ship your book from the following locations: France, United Kingdom, India, Australia, Canada or the USA. This item is printed on demand.
Librería: Revaluation Books, Exeter, Reino Unido
EUR 260,95
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Añadir al carritoHardcover. Condición: Brand New. 285 pages. 9.75x6.75x1.00 inches. In Stock. This item is printed on demand.