Predicting September Arctic Sea Ice: A Multi-Model Seasonal Skill Comparison

Описание

Тип публикации: статья из журнала

Год издания: 2024

Идентификатор DOI: 10.1175/bams-d-23-0163.1

Аннотация: <jats:title>Abstract</jats:title> <jats:p>This study quantifies the state-of-the-art in the rapidly growing field of seasonal Arctic sea ice prediction. A novel multi-model dataset of retrospective seasonal predictions of September Arctic sea ice is created and analyzed, consisting of community contributions from 17 statistical modПоказать полностьюels and 17 dynamical models. Prediction skill is compared over the period 2001–2020 for predictions of Pan-Arctic sea ice extent (SIE), regional SIE, and local sea ice concentration (SIC) initialized on June 1, July 1, August 1, and September 1. This diverse set of statistical and dynamical models can individually predict linearly detrended Pan-Arctic SIE anomalies with skill, and a multi-model median prediction has correlation coefficients of 0.79, 0.86, 0.92, and 0.99 at these respective initialization times. Regional SIE predictions have similar skill to Pan-Arctic predictions in the Alaskan and Siberian regions, whereas regional skill is lower in the Canadian, Atlantic, and Central Arctic sectors. The skill of dynamical and statistical models is generally comparable for Pan-Arctic SIE, whereas dynamical models outperform their statistical counterparts for regional and local predictions. The prediction systems are found to provide the most value added relative to basic reference forecasts in the extreme SIE years of 1996, 2007, and 2012. SIE prediction errors do not show clear trends over time, suggesting that there has been minimal change in inherent sea ice predictability over the satellite era. Overall, this study demonstrates that there are bright prospects for skillful operational predictions of September sea ice at least three months in advance.</jats:p>

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Издание

Журнал: Bulletin of the American Meteorological Society

ISSN журнала: 00030007

Издатель: American Meteorological Society

Персоны

  • Bushuk Mitchell
  • Ali Sahara
  • Bailey David A.
  • Bao Qing
  • Batté Lauriane
  • Bhatt Uma S.
  • Blanchard-Wrigglesworth Edward
  • Blockley Ed
  • Cawley Gavin
  • Chi Junhwa
  • Counillon François
  • Coulombe Philippe Goulet
  • Cullather Richard I.
  • Diebold Francis X.
  • Dirkson Arlan
  • Exarchou Eleftheria
  • Göbel Maximilian
  • Gregory William
  • Guemas Virginie
  • Hamilton Lawrence
  • He Bian
  • Horvath Sean
  • Ionita Monica
  • Kay Jennifer E.
  • Kim Eliot
  • Kimura Noriaki
  • Kondrashov Dmitri
  • Labe Zachary M.
  • Lee WooSung
  • Lee Younjoo J.
  • Li Cuihua
  • Li Xuewei
  • Lin Yongcheng
  • Liu Yanyun
  • Maslowski Wieslaw
  • Massonnet François
  • Meier Walter N.
  • Merryfield William J.
  • Myint Hannah
  • Navarro Juan C. Acosta
  • Petty Alek
  • Qiao Fangli
  • Schröder David
  • Schweiger Axel
  • Shu Qi
  • Sigmond Michael
  • Steele Michael
  • Stroeve Julienne
  • Sun Nico
  • Tietsche Steffen
  • Tsamados Michel
  • Wang Keguang
  • Wang Jianwu
  • Wang Wanqiu
  • Wang Yiguo
  • Wang Yun
  • Williams James
  • Yang Qinghua
  • Yuan Xiaojun
  • Zhang Jinlun
  • Zhang Yongfei

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