There is growing interest in sub-seasonal to seasonal predictions of Arctic sea ice due to its potential effects on midlatitude weather and climate extremes. Current prediction systems are largely dependent on physics-based climate models. While climate models can provide good forecasts for Arctic sea ice at different timescales, they are susceptible to initial states and high computational costs. Here we present a purely data-driven deep learning model, UNet-F/M, to predict monthly sea ice concentration (SIC) one month ahead. We train the model using monthly satellite-observed SIC for the melting and freezing seasons, respectively. Results show that UNet-F/M has a good predictive skill of Arctic SIC at monthly time scales, generally outperforming several recently proposed deep learning models, particularly for September sea-ice minimum. Our study offers a perspective on sub-seasonal prediction of future Arctic sea ice and may have implications for forecasting weather and climate in northern midlatitudes.
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Liverpool John Moores Univ, Liverpool Logist Offshore & Marine LOOM Res Inst, Liverpool, EnglandLiverpool John Moores Univ, Liverpool Logist Offshore & Marine LOOM Res Inst, Liverpool, England
Li, Huanhuan
Jiao, Hang
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Huazhong Univ Sci & Technol, Sch Elect Informat & Commun, Wuhan, Peoples R ChinaLiverpool John Moores Univ, Liverpool Logist Offshore & Marine LOOM Res Inst, Liverpool, England
Jiao, Hang
Yang, Zaili
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Liverpool John Moores Univ, Liverpool Logist Offshore & Marine LOOM Res Inst, Liverpool, EnglandLiverpool John Moores Univ, Liverpool Logist Offshore & Marine LOOM Res Inst, Liverpool, England
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Korea Adv Inst Sci & Technol, Div Ocean Syst Engn, Taejon 305701, South KoreaKorea Adv Inst Sci & Technol, Div Ocean Syst Engn, Taejon 305701, South Korea
Choi, Minjoo
Chung, Hyun
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Korea Adv Inst Sci & Technol, Div Ocean Syst Engn, Taejon 305701, South KoreaKorea Adv Inst Sci & Technol, Div Ocean Syst Engn, Taejon 305701, South Korea
Chung, Hyun
Yamaguchi, Hajime
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Univ Tokyo, Grad Sch Frontier Sci, Kashiwa, Chiba 2778561, JapanKorea Adv Inst Sci & Technol, Div Ocean Syst Engn, Taejon 305701, South Korea
Yamaguchi, Hajime
Nagakawa, Keisuke
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Univ Tokyo, Grad Sch Frontier Sci, Kashiwa, Chiba 2778561, JapanKorea Adv Inst Sci & Technol, Div Ocean Syst Engn, Taejon 305701, South Korea
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Arizona State Univ, Sch Engn Matter Transport & Energy, Tempe, AZ 85287 USAArizona State Univ, Sch Engn Matter Transport & Energy, Tempe, AZ 85287 USA
Pang, Yutian
Zhao, Xinyu
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Arizona State Univ, Sch Comp Informat & Decis Syst Engn, Tempe, AZ 85287 USAArizona State Univ, Sch Engn Matter Transport & Energy, Tempe, AZ 85287 USA
Zhao, Xinyu
Yan, Hao
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Arizona State Univ, Sch Comp Informat & Decis Syst Engn, Tempe, AZ 85287 USAArizona State Univ, Sch Engn Matter Transport & Energy, Tempe, AZ 85287 USA
Yan, Hao
Liu, Yongming
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Arizona State Univ, Sch Engn Matter Transport & Energy, Tempe, AZ 85287 USAArizona State Univ, Sch Engn Matter Transport & Energy, Tempe, AZ 85287 USA