Isbn: 9783030647797 - deep learning for hydrometeorology and environmental science (water science and technology library, band 99) (13 Ergebnisse)

Sprache: Englisch
Verlag: Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
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Sprache: Englisch
Verlag: Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Weitere BilderSprache: Englisch
Verlag: Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Taschenbuch. Zustand: Neu. Deep Learning for Hydrometeorology and Environmental Science | Taesam Lee (u. a.) | Taschenbuch | Water Science and Technology Library | xiv | Englisch | 2022 | Springer | EAN 9783030647797 | Verantwortliche Person für die EU: Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg, juergen[dot]hartmann[at]springer[dot]com | Anbieter: preigu.…

Sprache: Englisch
Verlag: SPRINGER NP, 2021
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Zustand: New. Brand New! Fast Delivery This is an International Edition and ship within 24-48 hours. Deliver by FedEx and Dhl, & Aramex, UPS, & USPS and we do accept APO and PO BOX Addresses. Order can be delivered worldwide within 6-10 days and we do have flat rate for up to 2LB. Extra shipping charges will be requested if the Book weight is more than 5 LB. This Item May be shipped from India, United states & United Kingdom. Depending on your location and availability.…

Sprache: Englisch
Verlag: Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Zustand: Hervorragend. Zustand: Hervorragend | Sprache: Englisch | Produktart: Bücher | This book provides a step-by-step methodology and derivation of deep learning algorithms as Long Short-Term Memory (LSTM) and Convolution Neural Network (CNN), especially for estimating parameters, with back-propagation as well as examples with real datasets of hydrometeorology (e.g. streamflow and temperature) and environmental science (e.g. water quality). Deep learning is known as part of machine learning methodology based on the artificial neural network. Increasing data availability and computing power enhance applications of deep learning to hydrometeorological and environmental fields. However, books that specifically focus on applications to these fields are limited.Most of deep learning books demonstrate theoretical backgrounds and mathematics. However, examples with real data and step-by-step explanations to understand the algorithms in hydrometeorology and environmental science are very rare. This book focuses on the explanation of deep learning techniques and their applications to hydrometeorological and environmental studies with real hydrological and environmental data. This book covers the major deep learning algorithms as Long Short-Term Memory (LSTM) and Convolution Neural Network (CNN) as well as the conventional artificial neural network model.…

Sprache: Englisch
Verlag: Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Taschenbuch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book provides a step-by-step methodology and derivation of deep learning algorithms as Long Short-Term Memory (LSTM) and Convolution Neural Network (CNN), especially for estimating parameters, with back-propagation as well as examples with real datasets of hydrometeorology (e.g. streamflow and temperature) and environmental science (e.g. water quality). Deep learning is known as part of machine learning methodology based on the artificial neural network. Increasing data availability and computing power enhance applications of deep learning to hydrometeorological and environmental fields. However, books that specifically focus on applications to these fields are limited.Most of deep learning books demonstrate theoretical backgrounds and mathematics. However, examples with real data and step-by-step explanations to understand the algorithms in hydrometeorology and environmental science are very rare. This book focuses on the explanation of deep learning techniques and their applications to hydrometeorological and environmental studies with real hydrological and environmental data. This book covers the major deep learning algorithms as Long Short-Term Memory (LSTM) and Convolution Neural Network (CNN) as well as the conventional artificial neural network model.…

Sprache: Englisch
Verlag: Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Softcover. Zustand: gut. 2022. Deep Learning for Hydrometeorology and Environmental Science In deutscher Sprache. pages.

Sprache: Englisch
Verlag: Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Sprache: Englisch
Verlag: Springer International Publishing Jan 2022, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Taschenbuch. Zustand: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -This book provides a step-by-step methodology and derivation of deep learning algorithms as Long Short-Term Memory (LSTM) and Convolution Neural Network (CNN), especially for estimating parameters, with back-propagation as well as examples with real datasets of hydrometeorology (e.g. streamflow and temperature) and environmental science (e.g. water quality). Deep learning is known as part of machine learning methodology based on the artificial neural network. Increasing data availability and computing power enhance applications of deep learning to hydrometeorological and environmental fields. However, books that specifically focus on applications to these fields are limited.Most of deep learning books demonstrate theoretical backgrounds and mathematics. However, examples with real data and step-by-step explanations to understand the algorithms in hydrometeorology and environmental science are very rare. This book focuses on the explanation of deep learning techniques and their applications to hydrometeorological and environmental studies with real hydrological and environmental data. This book covers the major deep learning algorithms as Long Short-Term Memory (LSTM) and Convolution Neural Network (CNN) as well as the conventional artificial neural network model. 220 pp. Englisch.…

Sprache: Englisch
Verlag: Springer, Berlin|Springer International Publishing|Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Kartoniert / Broschiert. Zustand: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. This book provides a step-by-step methodology and derivation of deep learning algorithms as Long Short-Term Memory (LSTM) and Convolution Neural Network (CNN), especially for estimating parameters, with back-propagation as well as examples with real dataset. …

Sprache: Englisch
Verlag: Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
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Sprache: Englisch
Verlag: Springer, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
- Print-on-Demand
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Sprache: Englisch
Verlag: Springer, Springer Jan 2022, 2022
Serie: Buch 88 von 101 - Water Science and Technology Library
- Softcover
- Print-on-Demand
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Taschenbuch. Zustand: Neu. This item is printed on demand - Print on Demand Titel. Neuware -This book provides a step-by-step methodology and derivation of deep learning algorithms as Long Short-Term Memory (LSTM) and Convolution Neural Network (CNN), especially for estimating parameters, with back-propagation as well as examples with real datasets of hydrometeorology (e.g. streamflow and temperature) and environmental science (e.g. water quality).Deep learning is known as part of machine learning methodology based on the artificial neural network. Increasing data availability and computing power enhance applications of deep learning to hydrometeorological and environmental fields. However, books that specifically focus on applications to these fields are limited.Most of deep learning books demonstrate theoretical backgrounds and mathematics. However, examples with real data and step-by-step explanations to understand the algorithms in hydrometeorology and environmental science are very rare.This book focuses on the explanation of deep learning techniques and their applications to hydrometeorological and environmental studies with real hydrological and environmental data. This book covers the major deep learning algorithms as Long Short-Term Memory (LSTM) and Convolution Neural Network (CNN) as well as the conventional artificial neural network model.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 220 pp. Englisch.…