Hydrological Data Driven Modelling

Hydrological Data Driven Modelling
Author: Renji Remesan,Jimson Mathew
Publsiher: Springer
Total Pages: 250
Release: 2014-11-03
Genre: Science
ISBN: 9783319092355

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This book explores a new realm in data-based modeling with applications to hydrology. Pursuing a case study approach, it presents a rigorous evaluation of state-of-the-art input selection methods on the basis of detailed and comprehensive experimentation and comparative studies that employ emerging hybrid techniques for modeling and analysis. Advanced computing offers a range of new options for hydrologic modeling with the help of mathematical and data-based approaches like wavelets, neural networks, fuzzy logic, and support vector machines. Recently machine learning/artificial intelligence techniques have come to be used for time series modeling. However, though initial studies have shown this approach to be effective, there are still concerns about their accuracy and ability to make predictions on a selected input space.

Data Driven Modeling Using MATLAB in Water Resources and Environmental Engineering

Data Driven Modeling  Using MATLAB   in Water Resources and Environmental Engineering
Author: Shahab Araghinejad
Publsiher: Springer Science & Business Media
Total Pages: 292
Release: 2013-11-26
Genre: Science
ISBN: 9789400775060

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“Data-Driven Modeling: Using MATLAB® in Water Resources and Environmental Engineering” provides a systematic account of major concepts and methodologies for data-driven models and presents a unified framework that makes the subject more accessible to and applicable for researchers and practitioners. It integrates important theories and applications of data-driven models and uses them to deal with a wide range of problems in the field of water resources and environmental engineering such as hydrological forecasting, flood analysis, water quality monitoring, regionalizing climatic data, and general function approximation. The book presents the statistical-based models including basic statistical analysis, nonparametric and logistic regression methods, time series analysis and modeling, and support vector machines. It also deals with the analysis and modeling based on artificial intelligence techniques including static and dynamic neural networks, statistical neural networks, fuzzy inference systems, and fuzzy regression. The book also discusses hybrid models as well as multi-model data fusion to wrap up the covered models and techniques. The source files of relatively simple and advanced programs demonstrating how to use the models are presented together with practical advice on how to best apply them. The programs, which have been developed using the MATLAB® unified platform, can be found on extras.springer.com. The main audience of this book includes graduate students in water resources engineering, environmental engineering, agricultural engineering, and natural resources engineering. This book may be adapted for use as a senior undergraduate and graduate textbook by focusing on selected topics. Alternatively, it may also be used as a valuable resource book for practicing engineers, consulting engineers, scientists and others involved in water resources and environmental engineering.

Advances in Data Based Approaches for Hydrologic Modeling and Forecasting

Advances in Data Based Approaches for Hydrologic Modeling and Forecasting
Author: Anonim
Publsiher: Unknown
Total Pages: 135
Release: 2024
Genre: Electronic Book
ISBN: 9789814464758

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Advances in Data based Approaches for Hydrologic Modeling and Forecasting

Advances in Data based Approaches for Hydrologic Modeling and Forecasting
Author: Bellie Sivakumar,Ronny Berndtsson
Publsiher: World Scientific
Total Pages: 542
Release: 2010
Genre: Science
ISBN: 9789814307970

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This book comprehensively accounts the advances in data-based approaches for hydrologic modeling and forecasting. Eight major and most popular approaches are selected, with a chapter for each stochastic methods, parameter estimation techniques, scaling and fractal methods, remote sensing, artificial neural networks, evolutionary computing, wavelets, and nonlinear dynamics and chaos methods. These approaches are chosen to address a wide range of hydrologic system characteristics, processes, and the associated problems. Each of these eight approaches includes a comprehensive review of the fundamental concepts, their applications in hydrology, and a discussion on potential future directions.

Hydrological Processes Modelling and Data Analysis

Hydrological Processes Modelling and Data Analysis
Author: Vijay P. Singh
Publsiher: Springer Nature
Total Pages: 298
Release: 2024
Genre: Electronic Book
ISBN: 9789819713165

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Information Theory and Artificial Intelligence to Manage Uncertainty in Hydrodynamic and Hydrological Models

Information Theory and Artificial Intelligence to Manage Uncertainty in Hydrodynamic and Hydrological Models
Author: Abebe Andualem Jemberie
Publsiher: CRC Press
Total Pages: 198
Release: 2014-04-21
Genre: Science
ISBN: 9781482284034

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The complementary nature of physically-based and data-driven models in their demand for physical insight and historical data, leads to the notion that the predictions of a physically-based model can be improved and the associated uncertainty can be systematically reduced through the conjunctive use of a data-driven model of the residuals. The objective of this thesis is to minimise the inevitable mismatch between physically-based models and the actual processes as described by the mismatch between predictions and observations. The complementary modelling approach is applied to various hydrodynamic and hydrological models.

Hydrological Modelling and the Water Cycle

Hydrological Modelling and the Water Cycle
Author: Soroosh Sorooshian,Kuo-lin Hsu,Erika Coppola,Barbara Tomassetti,Marco Verdecchia,Guido Visconti
Publsiher: Springer Science & Business Media
Total Pages: 294
Release: 2008-07-18
Genre: Science
ISBN: 9783540778431

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This volume is a collection of a selected number of articles based on presentations at the 2005 L’Aquila (Italy) Summer School on the topic of “Hydrologic Modeling and Water Cycle: Coupling of the Atmosphere and Hydrological Models”. The p- mary focus of this volume is on hydrologic modeling and their data requirements, especially precipitation. As the eld of hydrologic modeling is experiencing rapid development and transition to application of distributed models, many challenges including overcoming the requirements of compatible observations of inputs and outputs must be addressed. A number of papers address the recent advances in the State-of-the-art distributed precipitation estimation from satellites. A number of articles address the issues related to the data merging and use of geo-statistical techniques for addressing data limitations at spatial resolutions to capture the h- erogeneity of physical processes. The participants at the School came from diverse backgrounds and the level of - terest and active involvement in the discussions clearly demonstrated the importance the scienti c community places on challenges related to the coupling of atmospheric and hydrologic models. Along with my colleagues Dr. Erika Coppola and Dr. Kuolin Hsu, co-directors of the School, we greatly appreciate the invited lectures and all the participants. The members of the local organizing committee, Drs Barbara Tomassetti; Marco Verdecchia and Guido Visconti were instrumental in the success of the school and their contributions, both scienti cally and organizationally are much appreciated.

Practical Hydroinformatics

Practical Hydroinformatics
Author: Robert J. Abrahart,Linda M. See,Dimitri P. Solomatine
Publsiher: Springer Science & Business Media
Total Pages: 495
Release: 2008-10-24
Genre: Science
ISBN: 9783540798811

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Hydroinformatics is an emerging subject that is expected to gather speed, momentum and critical mass throughout the forthcoming decades of the 21st century. This book provides a broad account of numerous advances in that field - a rapidly developing discipline covering the application of information and communication technologies, modelling and computational intelligence in aquatic environments. A systematic survey, classified according to the methods used (neural networks, fuzzy logic and evolutionary optimization, in particular) is offered, together with illustrated practical applications for solving various water-related issues. ...