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contributor authorScheuerer, Michael
contributor authorGregory, Scott
contributor authorHamill, Thomas M.
contributor authorShafer, Phillip E.
date accessioned2017-06-09T17:34:31Z
date available2017-06-09T17:34:31Z
date copyright2017/04/01
date issued2017
identifier issn0027-0644
identifier otherams-87416.pdf
identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4231083
description abstractBayesian classification method for probabilistic forecasts of precipitation type is presented. The method considers the vertical wet-bulb temperature profiles associated with each precipitation type, transforms them into their principal components, and models each of these principal components by a skew normal distribution. A variance inflation technique is used to de-emphasize the impact of principal components corresponding to smaller eigenvalues, and Bayes?s theorem finally yields probability forecasts for each precipitation type based on predicted wet-bulb temperature profiles. This approach is demonstrated with reforecast data from the Global Ensemble Forecast System (GEFS) and observations at 551 METAR sites, using either the full ensemble or the control run only. In both cases, reliable probability forecasts for precipitation type being either rain, snow, ice pellets, freezing rain, or freezing drizzle are obtained. Compared to the model output statistics (MOS) approach presently used by the National Weather Service, the skill of the proposed method is comparable for rain and snow and significantly better for the freezing precipitation types.
publisherAmerican Meteorological Society
titleProbabilistic Precipitation-Type Forecasting Based on GEFS Ensemble Forecasts of Vertical Temperature Profiles
typeJournal Paper
journal volume145
journal issue4
journal titleMonthly Weather Review
identifier doi10.1175/MWR-D-16-0321.1
journal fristpage1401
journal lastpage1412
treeMonthly Weather Review:;2017:;volume( 145 ):;issue: 004
contenttypeFulltext


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