Simultaneous calibration of hydrological models in geographical space
Hydrological models are usually calibrated for selected catchments individually using specific performance criteria. This procedure assumes that the catchments show individual behavior. As a consequence, the transfer of model parameters to other ungauged catchments is problematic. In this paper, the...
Main Authors: | , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Copernicus Publications
2016-07-01
|
Series: | Hydrology and Earth System Sciences |
Online Access: | http://www.hydrol-earth-syst-sci.net/20/2913/2016/hess-20-2913-2016.pdf |
id |
doaj-4e9315818c794bbd891da34edc1d81db |
---|---|
record_format |
Article |
spelling |
doaj-4e9315818c794bbd891da34edc1d81db2020-11-24T22:36:08ZengCopernicus PublicationsHydrology and Earth System Sciences1027-56061607-79382016-07-012072913292810.5194/hess-20-2913-2016Simultaneous calibration of hydrological models in geographical spaceA. Bárdossy0Y. Huang1T. Wagener2Institute for Modelling Hydraulic and Environmental Engineering, University of Stuttgart, Stuttgart, GermanyInstitute for Modelling Hydraulic and Environmental Engineering, University of Stuttgart, Stuttgart, GermanyDepartment of Civil Engineering, Queen's School of Engineering, University of Bristol, Bristol, UKHydrological models are usually calibrated for selected catchments individually using specific performance criteria. This procedure assumes that the catchments show individual behavior. As a consequence, the transfer of model parameters to other ungauged catchments is problematic. In this paper, the possibility of transferring part of the model parameters was investigated. Three different conceptual hydrological models were considered. The models were restructured by introducing a new parameter <i>η</i> which exclusively controls water balances. This parameter was considered as individual to each catchment. All other parameters, which mainly control the dynamics of the discharge (dynamical parameters), were considered for spatial transfer. Three hydrological models combined with three different performance measures were used in three different numerical experiments to investigate this transferability. The first numerical experiment, involving individual calibration of the models for 15 selected MOPEX catchments, showed that it is difficult to identify which catchments share common dynamical parameters. Parameters of one catchment might be good for another catchment but not the opposite. In the second numerical experiment, a common spatial calibration strategy was used. It was explicitly assumed that the catchments share common dynamical parameters. This strategy leads to parameters which perform well on all catchments. A leave-one-out common calibration showed that in this case a good parameter transfer to ungauged catchments can be achieved. In the third numerical experiment, the common calibration methodology was applied for 96 catchments. Another set of 96 catchments was used to test the transfer of common dynamical parameters. The results show that even a large number of catchments share similar dynamical parameters. The performance is worse than those obtained by individual calibration, but the transfer to ungauged catchments remains possible. The performance of the common parameters in the second experiment was better than in the third, indicating that the selection of the catchments for common calibration is important.http://www.hydrol-earth-syst-sci.net/20/2913/2016/hess-20-2913-2016.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
A. Bárdossy Y. Huang T. Wagener |
spellingShingle |
A. Bárdossy Y. Huang T. Wagener Simultaneous calibration of hydrological models in geographical space Hydrology and Earth System Sciences |
author_facet |
A. Bárdossy Y. Huang T. Wagener |
author_sort |
A. Bárdossy |
title |
Simultaneous calibration of hydrological models in geographical space |
title_short |
Simultaneous calibration of hydrological models in geographical space |
title_full |
Simultaneous calibration of hydrological models in geographical space |
title_fullStr |
Simultaneous calibration of hydrological models in geographical space |
title_full_unstemmed |
Simultaneous calibration of hydrological models in geographical space |
title_sort |
simultaneous calibration of hydrological models in geographical space |
publisher |
Copernicus Publications |
series |
Hydrology and Earth System Sciences |
issn |
1027-5606 1607-7938 |
publishDate |
2016-07-01 |
description |
Hydrological models are usually calibrated for selected catchments
individually using specific performance criteria. This procedure assumes that
the catchments show individual behavior. As a consequence, the transfer of
model parameters to other ungauged catchments is problematic. In this paper,
the possibility of transferring part of the model parameters was
investigated. Three different conceptual hydrological models were considered.
The models were restructured by introducing a new parameter <i>η</i> which
exclusively controls water balances. This parameter was considered as
individual to each catchment. All other parameters, which mainly control the
dynamics of the discharge (dynamical parameters), were considered for spatial
transfer. Three hydrological models combined with three different performance
measures were used in three different numerical experiments to investigate
this transferability. The first numerical experiment, involving individual calibration of the models for 15 selected MOPEX catchments, showed that it is difficult to identify which catchments share common dynamical parameters. Parameters of one catchment might be good for another catchment but not the opposite. In the second numerical experiment, a common spatial calibration strategy was used. It was explicitly assumed that the catchments share common dynamical parameters. This strategy leads to parameters which perform well on all catchments. A leave-one-out common calibration showed that in this case a
good parameter transfer to ungauged catchments can be achieved. In the third
numerical experiment, the common calibration methodology was applied for
96 catchments. Another set of 96 catchments was used to test the transfer of
common dynamical parameters. The results show that even a large number of
catchments share similar dynamical parameters. The performance is worse than
those obtained by individual calibration, but the transfer to ungauged
catchments remains possible. The performance of the common parameters in the
second experiment was better than in the third, indicating that the selection
of the catchments for common calibration is important. |
url |
http://www.hydrol-earth-syst-sci.net/20/2913/2016/hess-20-2913-2016.pdf |
work_keys_str_mv |
AT abardossy simultaneouscalibrationofhydrologicalmodelsingeographicalspace AT yhuang simultaneouscalibrationofhydrologicalmodelsingeographicalspace AT twagener simultaneouscalibrationofhydrologicalmodelsingeographicalspace |
_version_ |
1725721160222507008 |