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contributor authorBlume, Christian
contributor authorMatthes, Katja
contributor authorHorenko, Illia
date accessioned2017-06-09T16:54:25Z
date available2017-06-09T16:54:25Z
date copyright2012/06/01
date issued2012
identifier issn0022-4928
identifier otherams-76321.pdf
identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4218755
description abstractudden stratospheric warmings are prominent examples of dynamical wave?mean flow interactions in the Arctic stratosphere during Northern Hemisphere winter. They are characterized by a strong temperature increase on time scales of a few days and a strongly disturbed stratospheric vortex. This work investigates a wide class of supervised learning methods with respect to their ability to classify stratospheric warmings, using temperature anomalies from the Arctic stratosphere and atmospheric forcings such as ENSO, the quasi-biennial oscillation (QBO), and the solar cycle. It is demonstrated that one representative of the supervised learning methods family, namely nonlinear neural networks, is able to reliably classify stratospheric warmings. Within this framework, one can estimate temporal onset, duration, and intensity of stratospheric warming events independently of a particular pressure level. In contrast to classification methods based on the zonal-mean zonal wind, the approach herein distinguishes major, minor, and final warmings. Instead of a binary measure, it provides continuous conditional probabilities for each warming event representing the amount of deviation from an undisturbed polar vortex. Additionally, the statistical importance of the atmospheric factors is estimated. It is shown how marginalized probability distributions can give insights into the interrelationships between external factors. This approach is applied to 40-yr and interim ECMWF (ERA-40/ERA-Interim) and NCEP?NCAR reanalysis data for the period from 1958 through 2010.
publisherAmerican Meteorological Society
titleSupervised Learning Approaches to Classify Sudden Stratospheric Warming Events
typeJournal Paper
journal volume69
journal issue6
journal titleJournal of the Atmospheric Sciences
identifier doi10.1175/JAS-D-11-0194.1
journal fristpage1824
journal lastpage1840
treeJournal of the Atmospheric Sciences:;2012:;Volume( 069 ):;issue: 006
contenttypeFulltext


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