Approaches to Highly Parameterized Inversion: A Guide to Using Pest for Model-Parameter and Predictive-Uncertainty Analysis: Usgs Scientific Investiga - Brossura

Cohen, Juanita Jane; Doherty, John E.; Hunt, Randall J.

 
9781243018922: Approaches to Highly Parameterized Inversion: A Guide to Using Pest for Model-Parameter and Predictive-Uncertainty Analysis: Usgs Scientific Investiga

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Sinossi

Analysis of the uncertainty associated with parameters used by a numerical model, and with predictions that depend on those parameters, is fundamental to the use of modeling in support of decisionmaking. Unfortunately, predictive uncertainty analysis with regard to models can be very computationally demanding, due in part to complex constraints on parameters that arise from expert knowledge of system properties on the one hand (knowledge constraints) and from the necessity for the model parameters to assume values that allow the model to reproduce historical system behavior on the other hand (calibration constraints).

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Book by Cohen Juanita Jane

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9781500299989: Approaches to Highly Parameterized Inversion: A Guide to Using PEST for Model-Parameter and Predictive-Uncertainty Analysis

Edizione in evidenza

ISBN 10:  1500299987 ISBN 13:  9781500299989
Casa editrice: CreateSpace Independent Publishi..., 2014
Brossura