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Top-down and data-based mechanistic modelling of rainfall–flow dynamics at the catchment scale

✍ Scribed by Peter Young


Publisher
John Wiley and Sons
Year
2003
Tongue
English
Weight
290 KB
Volume
17
Category
Article
ISSN
0885-6087

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✦ Synopsis


Abstract

The data‐based mechanistic (DBM) approach to modelling has developed as a stochastic, ‘top‐down’ response to the problems associated with the deterministic, ‘bottom‐up’ approach. As such, it can be compared with the deterministic, top‐down modelling methods that have been attracting attention recently in the hydrological literature. Using catchment‐scale rainfall–flow modelling as an example, this paper compares the inductive DBM approach with its hypothetico‐deductive, deterministic alternative and shows how they can be used to identify and estimate low‐order, nonlinear models of the rainfall–flow dynamics in the River Hodder catchment of northwest England based on a limited set of rainfall–flow data. Copyright © 2003 John Wiley & Sons, Ltd.