Uncertainty Analysis in Rainfall-Runoff Modelling - Application of Machine Learning Techniques : UNESCO-IHE PhD Thesis

666.55 SGD
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599.90
English

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This book describes the use of machine learning techniques to build predictive models of uncertainty with application to hydrological models, focusing mainly on the development and testing of two different models. The first focuses on parameter uncertainty analysis by emulating the results of Monte Carlo simulation of hydrological models using efficient machine learning techniques. The second method aims at modelling uncertainty by building an ensemble of specialized machine learning models on the basis of past hydrological model‘s performance. The book then demonstrates the capacity of machine learning techniques for building accurate and efficient predictive models of uncertainty.

Describes the use of machine learning techniques to build predictive models of uncertainty for hydrological applications, developing two methods—one that emulates Monte Carlo simulation results for parameter uncertainty analysis and another that creates specialized machine learning model ensembles based on past hydrological model performance.

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