Calibration of Watershed Models

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Release : 2003-01-10
Genre : Science
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Book Rating : 55X/5 ( reviews)

Calibration of Watershed Models - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Calibration of Watershed Models write by Qingyun Duan. This book was released on 2003-01-10. Calibration of Watershed Models available in PDF, EPUB and Kindle. Published by the American Geophysical Union as part of the Water Science and Application Series, Volume 6. During the past four decades, computer-based mathematical models of watershed hydrology have been widely used for a variety of applications including hydrologic forecasting, hydrologic design, and water resources management. These models are based on general mathematical descriptions of the watershed processes that transform natural forcing (e.g., rainfall over the landscape) into response (e.g., runoff in the rivers). The user of a watershed hydrology model must specify the model parameters before the model is able to properly simulate the watershed behavior.

Calibration of Watershed Models Using Moments and Scaling Properties of Streamflows

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Release : 2001
Genre : Moments method (Statistics)
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Calibration of Watershed Models Using Moments and Scaling Properties of Streamflows - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Calibration of Watershed Models Using Moments and Scaling Properties of Streamflows write by Laura A. McGrath. This book was released on 2001. Calibration of Watershed Models Using Moments and Scaling Properties of Streamflows available in PDF, EPUB and Kindle.

Watershed Models

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Release : 2010-09-28
Genre : Science
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Book Rating : 439/5 ( reviews)

Watershed Models - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Watershed Models write by Vijay P. Singh. This book was released on 2010-09-28. Watershed Models available in PDF, EPUB and Kindle. Watershed modeling is at the heart of modern hydrology, supplying rich information that is vital to addressing resource planning, environmental, and social problems. Even in light of this important role, many books relegate the subject to a single chapter while books devoted to modeling focus only on a specific area of application. Recognizing the

Advances In Data-based Approaches For Hydrologic Modeling And Forecasting

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Release : 2010-08-10
Genre : Science
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Book Rating : 759/5 ( reviews)

Advances In Data-based Approaches For Hydrologic Modeling And Forecasting - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Advances In Data-based Approaches For Hydrologic Modeling And Forecasting write by Bellie Sivakumar. This book was released on 2010-08-10. Advances In Data-based Approaches For Hydrologic Modeling And Forecasting available in PDF, EPUB and Kindle. 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.

Uncertainty and Sensitivity Analysis for Watershed Models with Calibrated Parameters

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Release : 2010
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Uncertainty and Sensitivity Analysis for Watershed Models with Calibrated Parameters - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Uncertainty and Sensitivity Analysis for Watershed Models with Calibrated Parameters write by Seunguk Lee. This book was released on 2010. Uncertainty and Sensitivity Analysis for Watershed Models with Calibrated Parameters available in PDF, EPUB and Kindle. This thesis provides a critique and evaluation of the Generalized Likelihood Uncertainty Estimation (GLUE) methodology, and provides an appraisal of sensitivity analysis methods for watershed models with calibrated parameters. The first part of this thesis explores the strengths and weaknesses of the GLUE methodology with commonly adopted subjective likelihood measures using a simple linear watershed model. Recent research documents that the widely accepted GLUE procedure for describing forecasting precision and the impact of parameter uncertainty in rainfall-runoff watershed models fails to achieve the intended purpose when used with an informal likelihood measure (Christensen, 2004; Montanari, 2005; Mantovan and Todini, 2006; Stedinger et al., 2008). In particular, GLUE generally fails to produce intervals that capture the precision of estimated parameters, and the distribution of differences between predictions and future observations. This thesis illustrates these problems with GLUE using a simple linear rainfall-runoff model so that model calibration is a linear regression problem for which exact expressions for prediction precision and parameter uncertainty are well known and understood. The results show that the choice of a likelihood function is critical. A likelihood function needs to provide a reasonable distribution for the model errors for the statistical inference and resulting uncertainty and prediction intervals to be valid. The second part of this thesis discusses simple uncertainty and sensitivity analysis for watershed models when parameter estimates result form a joint calibration to observed data. Traditional measures of sensitivity in watershed modeling are based upon a framework wherein parameters are specified externally to a model, so one can independently investigate the impact of uncertainty in each parameter on model output. However, when parameter estimates result from a joint calibration to observed data, the resulting parameter estimators are interdependent and different sensitivity analysis procedures should be employed. For example, over some range, evaporation rates may be adjusted to correct for changes in a runoff coefficient, and vice versa. As a result, descriptions of the precision of such parameters may be very large individually, even though their joint response is well defined by the calibration data. These issues are illustrated with the simple abc watershed model. When fitting the abc watershed model to data, in some cases our analysis explicitly accounts for rainfall measurement errors so as to adequately represent the likelihood function for the data given the major source of errors causing lack of fit. The calibration results show that the daily precipitation from one gauge employed provides an imperfect description of basin precipitation, and precipitation errors results in correlation among flow errors and degraded the goodness of fit.