Abstract
Modelled hydrologic processes are represented in a set of numerical equations; the complexity of which can be measured by the total number of variables needed. A single dominant hydrologic process could control the hydrologic response of a watershed, and so the identification of the corresponding dominant variable(s) would aid in identifying a parsimonious model and in collecting more reliable data. By accounting for both model complexity and serial correlation in the variables, a model is used to identify the dominant variables for representing watershed scale streamflow, sediment transport and phosphorus yields. Long-term water quantity and quality data were used to show that rainfall and non-linear soil water storage were the dominant variables for weekly streamflow, suspended sediment and particulate phosphorus. Model accuracy did not consistently improve when other statistically significant variables were included. The results suggest that improved model performance may not justify the added model complexity. As such, identification of dominant variables would be the priority for developing parsimonious hydrologic models, especially at watershed scales.
| Original language | English |
|---|---|
| Pages (from-to) | 5624-5636 |
| Number of pages | 13 |
| Journal | Hydrological Processes |
| Volume | 28 |
| Issue number | 22 |
| DOIs | |
| State | Published - Oct 30 2014 |
Keywords
- Complex hydrologic model
- Dominant variable
- Long-term hydrologic data
- Parsimonious statistical model
- Time series model
- Water quantity and quality model
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