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    Predicting Spring Tornado Activity in the Central Great Plains by 1 March

    Source: Monthly Weather Review:;2013:;volume( 142 ):;issue: 001::page 259
    Author:
    Elsner, James B.
    ,
    Widen, Holly M.
    DOI: 10.1175/MWR-D-13-00014.1
    Publisher: American Meteorological Society
    Abstract: he authors illustrate a statistical model for predicting tornado activity in the central Great Plains by 1 March. The model predicts the number of tornado reports during April?June using February sea surface temperature (SST) data from the Gulf of Alaska (GAK) and the western Caribbean Sea (WCA). The model uses a Bayesian formulation where the likelihood on the counts is a negative binomial distribution and where the nonstationarity in tornado reporting is included as a trend term plus first-order autocorrelation. Posterior densities for the model parameters are generated using the method of integrated nested Laplacian approximation (INLA). The model yields a 51% increase in the number of tornado reports per degree Celsius increase in SST over the WCA and a 15% decrease in the number of reports per degree Celsius increase in SST over the GAK. These significant relationships are broadly consistent with a physical understanding of large-scale atmospheric patterns conducive to severe convective storms across the Great Plains. The SST covariates explain 11% of the out-of-sample variability in observed F1?F5 tornado reports. The paper demonstrates the utility of INLA for fitting Bayesian models to tornado climate data.
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      Predicting Spring Tornado Activity in the Central Great Plains by 1 March

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4230130
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    contributor authorElsner, James B.
    contributor authorWiden, Holly M.
    date accessioned2017-06-09T17:30:56Z
    date available2017-06-09T17:30:56Z
    date copyright2014/01/01
    date issued2013
    identifier issn0027-0644
    identifier otherams-86559.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4230130
    description abstracthe authors illustrate a statistical model for predicting tornado activity in the central Great Plains by 1 March. The model predicts the number of tornado reports during April?June using February sea surface temperature (SST) data from the Gulf of Alaska (GAK) and the western Caribbean Sea (WCA). The model uses a Bayesian formulation where the likelihood on the counts is a negative binomial distribution and where the nonstationarity in tornado reporting is included as a trend term plus first-order autocorrelation. Posterior densities for the model parameters are generated using the method of integrated nested Laplacian approximation (INLA). The model yields a 51% increase in the number of tornado reports per degree Celsius increase in SST over the WCA and a 15% decrease in the number of reports per degree Celsius increase in SST over the GAK. These significant relationships are broadly consistent with a physical understanding of large-scale atmospheric patterns conducive to severe convective storms across the Great Plains. The SST covariates explain 11% of the out-of-sample variability in observed F1?F5 tornado reports. The paper demonstrates the utility of INLA for fitting Bayesian models to tornado climate data.
    publisherAmerican Meteorological Society
    titlePredicting Spring Tornado Activity in the Central Great Plains by 1 March
    typeJournal Paper
    journal volume142
    journal issue1
    journal titleMonthly Weather Review
    identifier doi10.1175/MWR-D-13-00014.1
    journal fristpage259
    journal lastpage267
    treeMonthly Weather Review:;2013:;volume( 142 ):;issue: 001
    contenttypeFulltext
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