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    Characterization of Errors in a Coupled Snow Hydrology–Microwave Emission Model

    Source: Journal of Hydrometeorology:;2008:;Volume( 009 ):;issue: 001::page 149
    Author:
    Andreadis, Konstantinos M.
    ,
    Liang, Ding
    ,
    Tsang, Leung
    ,
    Lettenmaier, Dennis P.
    ,
    Josberger, Edward G.
    DOI: 10.1175/2007JHM885.1
    Publisher: American Meteorological Society
    Abstract: Traditional approaches to the direct estimation of snow properties from passive microwave remote sensing have been plagued by limitations such as the tendency of estimates to saturate for moderately deep snowpacks and the effects of mixed land cover within remotely sensed pixels. An alternative approach is to assimilate satellite microwave emission observations directly, which requires embedding an accurate microwave emissions model into a hydrologic prediction scheme, as well as quantitative information of model and observation errors. In this study a coupled snow hydrology [Variable Infiltration Capacity (VIC)] and microwave emission [Dense Media Radiative Transfer (DMRT)] model are evaluated using multiscale brightness temperature (TB) measurements from the Cold Land Processes Experiment (CLPX). The ability of VIC to reproduce snowpack properties is shown with the use of snow pit measurements, while TB model predictions are evaluated through comparison with Ground-Based Microwave Radiometer (GBMR), aircraft [Polarimetric Scanning Radiometer (PSR)], and satellite [Advanced Microwave Scanning Radiometer for the Earth Observing System (AMSR-E)] TB measurements. Limitations of the model at the point scale were not as evident when comparing areal estimates. The coupled model was able to reproduce the TB spatial patterns observed by PSR in two of three sites. However, this was mostly due to the presence of relatively dense forest cover. An interesting result occurs when examining the spatial scaling behavior of the higher-resolution errors; the satellite-scale error is well approximated by the mode of the (spatial) histogram of errors at the smaller scale. In addition, TB prediction errors were almost invariant when aggregated to the satellite scale, while forest-cover fractions greater than 30% had a significant effect on TB predictions.
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      Characterization of Errors in a Coupled Snow Hydrology–Microwave Emission Model

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    contributor authorAndreadis, Konstantinos M.
    contributor authorLiang, Ding
    contributor authorTsang, Leung
    contributor authorLettenmaier, Dennis P.
    contributor authorJosberger, Edward G.
    date accessioned2017-06-09T16:20:01Z
    date available2017-06-09T16:20:01Z
    date copyright2008/02/01
    date issued2008
    identifier issn1525-755X
    identifier otherams-65926.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4207205
    description abstractTraditional approaches to the direct estimation of snow properties from passive microwave remote sensing have been plagued by limitations such as the tendency of estimates to saturate for moderately deep snowpacks and the effects of mixed land cover within remotely sensed pixels. An alternative approach is to assimilate satellite microwave emission observations directly, which requires embedding an accurate microwave emissions model into a hydrologic prediction scheme, as well as quantitative information of model and observation errors. In this study a coupled snow hydrology [Variable Infiltration Capacity (VIC)] and microwave emission [Dense Media Radiative Transfer (DMRT)] model are evaluated using multiscale brightness temperature (TB) measurements from the Cold Land Processes Experiment (CLPX). The ability of VIC to reproduce snowpack properties is shown with the use of snow pit measurements, while TB model predictions are evaluated through comparison with Ground-Based Microwave Radiometer (GBMR), aircraft [Polarimetric Scanning Radiometer (PSR)], and satellite [Advanced Microwave Scanning Radiometer for the Earth Observing System (AMSR-E)] TB measurements. Limitations of the model at the point scale were not as evident when comparing areal estimates. The coupled model was able to reproduce the TB spatial patterns observed by PSR in two of three sites. However, this was mostly due to the presence of relatively dense forest cover. An interesting result occurs when examining the spatial scaling behavior of the higher-resolution errors; the satellite-scale error is well approximated by the mode of the (spatial) histogram of errors at the smaller scale. In addition, TB prediction errors were almost invariant when aggregated to the satellite scale, while forest-cover fractions greater than 30% had a significant effect on TB predictions.
    publisherAmerican Meteorological Society
    titleCharacterization of Errors in a Coupled Snow Hydrology–Microwave Emission Model
    typeJournal Paper
    journal volume9
    journal issue1
    journal titleJournal of Hydrometeorology
    identifier doi10.1175/2007JHM885.1
    journal fristpage149
    journal lastpage164
    treeJournal of Hydrometeorology:;2008:;Volume( 009 ):;issue: 001
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
    نرم افزار کتابخانه دیجیتال "دی اسپیس" فارسی شده توسط یابش برای کتابخانه های ایرانی | تماس با یابش
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