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    The Use of Reanalyses and Gridded Observations as Weather Input Data for a Hydrological Model: Comparison of Performances of Simulated River Flows Based on the Density of Weather Stations

    Source: Journal of Hydrometeorology:;2016:;Volume( 018 ):;issue: 002::page 497
    Author:
    Essou, Gilles R. C.
    ,
    Brissette, François
    ,
    Lucas-Picher, Philippe
    DOI: 10.1175/JHM-D-16-0088.1
    Publisher: American Meteorological Society
    Abstract: recipitation forcing is critical for hydrological modeling as it has a strong impact on the accuracy of simulated river flows. In general, precipitation data used in hydrological modeling are provided by weather stations. However, in regions with sparse weather station coverage, the spatial interpolation of the individual weather stations provides a rough approximation of the real precipitation fields. In such regions, precipitation from interpolated weather stations is generally considered unreliable for hydrological modeling. Precipitation estimates from reanalyses could represent an interesting alternative in regions where the weather station density is low. This article compares the performances of river flows simulated by a watershed model using precipitation and temperature estimates from reanalyses and gridded observations. The comparison was carried out based on the density of surface weather stations for 316 Canadian watersheds located in three climatic regions. Three state-of-the-art atmospheric reanalyses?ERA-Interim, CFSR, and MERRA?and one gridded observations database over Canada?Natural Resources Canada (NRCan)?were used. Results showed that the Nash?Sutcliffe values of simulated river flows using precipitation and temperature data from CFSR and NRCan were generally equivalent regardless of the weather station density. ERA-Interim and MERRA performed significantly better than NRCan for watersheds with weather station densities of less than 1 station per 1000 km2 in the mountainous region. Overall, these results indicate that for hydrological modeling in regions with high spatial variability of precipitation such as mountainous regions, reanalyses perform better than gridded observations when the weather station density is low.
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      The Use of Reanalyses and Gridded Observations as Weather Input Data for a Hydrological Model: Comparison of Performances of Simulated River Flows Based on the Density of Weather Stations

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    contributor authorEssou, Gilles R. C.
    contributor authorBrissette, François
    contributor authorLucas-Picher, Philippe
    date accessioned2017-06-09T17:17:12Z
    date available2017-06-09T17:17:12Z
    date copyright2017/02/01
    date issued2016
    identifier issn1525-755X
    identifier otherams-82417.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4225529
    description abstractrecipitation forcing is critical for hydrological modeling as it has a strong impact on the accuracy of simulated river flows. In general, precipitation data used in hydrological modeling are provided by weather stations. However, in regions with sparse weather station coverage, the spatial interpolation of the individual weather stations provides a rough approximation of the real precipitation fields. In such regions, precipitation from interpolated weather stations is generally considered unreliable for hydrological modeling. Precipitation estimates from reanalyses could represent an interesting alternative in regions where the weather station density is low. This article compares the performances of river flows simulated by a watershed model using precipitation and temperature estimates from reanalyses and gridded observations. The comparison was carried out based on the density of surface weather stations for 316 Canadian watersheds located in three climatic regions. Three state-of-the-art atmospheric reanalyses?ERA-Interim, CFSR, and MERRA?and one gridded observations database over Canada?Natural Resources Canada (NRCan)?were used. Results showed that the Nash?Sutcliffe values of simulated river flows using precipitation and temperature data from CFSR and NRCan were generally equivalent regardless of the weather station density. ERA-Interim and MERRA performed significantly better than NRCan for watersheds with weather station densities of less than 1 station per 1000 km2 in the mountainous region. Overall, these results indicate that for hydrological modeling in regions with high spatial variability of precipitation such as mountainous regions, reanalyses perform better than gridded observations when the weather station density is low.
    publisherAmerican Meteorological Society
    titleThe Use of Reanalyses and Gridded Observations as Weather Input Data for a Hydrological Model: Comparison of Performances of Simulated River Flows Based on the Density of Weather Stations
    typeJournal Paper
    journal volume18
    journal issue2
    journal titleJournal of Hydrometeorology
    identifier doi10.1175/JHM-D-16-0088.1
    journal fristpage497
    journal lastpage513
    treeJournal of Hydrometeorology:;2016:;Volume( 018 ):;issue: 002
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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