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    Assimilation of Global Positioning System Radio Occultation Observations into NCEP’s Global Data Assimilation System

    Source: Monthly Weather Review:;2007:;volume( 135 ):;issue: 009::page 3174
    Author:
    Cucurull, L.
    ,
    Derber, J. C.
    ,
    Treadon, R.
    ,
    Purser, R. J.
    DOI: 10.1175/MWR3461.1
    Publisher: American Meteorological Society
    Abstract: The Constellation Observing System for Meteorology, Ionosphere, and Climate (COSMIC) mission launched six small satellites in April 2006, each carrying a GPS radio occultation (RO) receiver. At final orbit, COSMIC will provide ?2500?3000 RO soundings per day uniformly distributed around the globe in near?real time. In preparation for the assimilation of COSMIC data in an operational framework, the NCEP/Environmental Modeling Center (EMC) has successfully developed the capability of assimilating profiles of refractivity and bending angle. Each forward operator has been implemented with its own quality control and error characterization. In this paper, the infrastructure developed at NCEP/EMC to assimilate GPS RO observations, including forward models, observational and representativeness errors, and quality control procedures, is described. The advantages of using a forward operator for bending angle versus refractivity are discussed and some preliminary results on the benefits of the GPS RO in weather analysis and forecasts are presented. The different strategies adopted at NCEP/EMC to assimilate GPS RO data are aimed to select the most appropriate forward operator in the operational data assimilation system when COSMIC products are stable and routinely available to the Numerical Weather Centers. In the meantime, data from the Challenging Minisatellite Payload (CHAMP) satellite is available in non?real time and has been used in the assimilation tests to examine the potential benefits of the GPS RO?derived products. In the preliminary results presented in this study, the use of GPS RO observations slightly improves anomaly correlation scores for temperature (by ?0.01?0.03) in the Southern Hemisphere and Tropics throughout the depth of the atmosphere while a slight degradation is found in the upper troposphere and stratosphere in the Northern Hemisphere. However, significant reduction of the temperature and humidity biases is found for all latitudes. The benefits from assimilating GPS RO data also extend to other fields, such as 500-hPa geopotential heights and tropical winds, demonstrating the potential use of GPS RO data in operational forecasting.
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      Assimilation of Global Positioning System Radio Occultation Observations into NCEP’s Global Data Assimilation System

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4229518
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    contributor authorCucurull, L.
    contributor authorDerber, J. C.
    contributor authorTreadon, R.
    contributor authorPurser, R. J.
    date accessioned2017-06-09T17:28:46Z
    date available2017-06-09T17:28:46Z
    date copyright2007/09/01
    date issued2007
    identifier issn0027-0644
    identifier otherams-86007.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4229518
    description abstractThe Constellation Observing System for Meteorology, Ionosphere, and Climate (COSMIC) mission launched six small satellites in April 2006, each carrying a GPS radio occultation (RO) receiver. At final orbit, COSMIC will provide ?2500?3000 RO soundings per day uniformly distributed around the globe in near?real time. In preparation for the assimilation of COSMIC data in an operational framework, the NCEP/Environmental Modeling Center (EMC) has successfully developed the capability of assimilating profiles of refractivity and bending angle. Each forward operator has been implemented with its own quality control and error characterization. In this paper, the infrastructure developed at NCEP/EMC to assimilate GPS RO observations, including forward models, observational and representativeness errors, and quality control procedures, is described. The advantages of using a forward operator for bending angle versus refractivity are discussed and some preliminary results on the benefits of the GPS RO in weather analysis and forecasts are presented. The different strategies adopted at NCEP/EMC to assimilate GPS RO data are aimed to select the most appropriate forward operator in the operational data assimilation system when COSMIC products are stable and routinely available to the Numerical Weather Centers. In the meantime, data from the Challenging Minisatellite Payload (CHAMP) satellite is available in non?real time and has been used in the assimilation tests to examine the potential benefits of the GPS RO?derived products. In the preliminary results presented in this study, the use of GPS RO observations slightly improves anomaly correlation scores for temperature (by ?0.01?0.03) in the Southern Hemisphere and Tropics throughout the depth of the atmosphere while a slight degradation is found in the upper troposphere and stratosphere in the Northern Hemisphere. However, significant reduction of the temperature and humidity biases is found for all latitudes. The benefits from assimilating GPS RO data also extend to other fields, such as 500-hPa geopotential heights and tropical winds, demonstrating the potential use of GPS RO data in operational forecasting.
    publisherAmerican Meteorological Society
    titleAssimilation of Global Positioning System Radio Occultation Observations into NCEP’s Global Data Assimilation System
    typeJournal Paper
    journal volume135
    journal issue9
    journal titleMonthly Weather Review
    identifier doi10.1175/MWR3461.1
    journal fristpage3174
    journal lastpage3193
    treeMonthly Weather Review:;2007:;volume( 135 ):;issue: 009
    contenttypeFulltext
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