The socioeconomic impact of weather extremes draws the attention of researchers to the development of novel methodologies to make more accurate weather predictions. The Madden-Julian oscillation (MJO) is the dominant mode of variability in the tropical atmosphere on sub-seasonal time scales, and can promote or enhance extreme events in both, the tropics and the extratropics. Forecasting extreme events on the sub-seasonal time scale (from 10 days to about 3 months) is very challenging due to a poor understanding of the phenomena that can increase predictability on this time scale. Here we show that two artificial neural networks (ANNs), a feed-forward neural network and a recurrent neural network, allow a very competitive MJO prediction. While our average prediction skill is about 26-27 days (which competes with that obtained with most computationally demanding state-of-the-art climate models), for some initial phases and seasons the ANNs have a prediction skill of 60 days or longer. Furthermore, we show that the ANNs have a good ability to predict the MJO phase, but the amplitude is underestimated.
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European Ctr Medium Range Weather Forecasts, Reading RG2 9AX, Berks, EnglandEuropean Ctr Medium Range Weather Forecasts, Reading RG2 9AX, Berks, England
Wedi, Nils P.
Smolarkiewicz, Piotr K.
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Natl Ctr Atmospher Res, Boulder, CO 80307 USAEuropean Ctr Medium Range Weather Forecasts, Reading RG2 9AX, Berks, England
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NOAA, Pacific Marine Environm Lab, 7600 Sand Point Way Ne, Seattle, WA 98115 USANOAA, Pacific Marine Environm Lab, 7600 Sand Point Way Ne, Seattle, WA 98115 USA
Zhang, C.
Adames, A. F.
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Univ Michigan, Dept Climate & Space Sci & Engn, Ann Arbor, MI 48109 USANOAA, Pacific Marine Environm Lab, 7600 Sand Point Way Ne, Seattle, WA 98115 USA
Adames, A. F.
Khouider, B.
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Univ Victoria, Dept Math & Stat, Victoria, BC, CanadaNOAA, Pacific Marine Environm Lab, 7600 Sand Point Way Ne, Seattle, WA 98115 USA
Khouider, B.
Wang, B.
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Univ Hawaii, Dept Atmospher Sci, Honolulu, HI 96822 USANOAA, Pacific Marine Environm Lab, 7600 Sand Point Way Ne, Seattle, WA 98115 USA
Wang, B.
Yang, D.
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Univ Calif Davis, Dept Land Air & Water Resources, Davis, CA 95616 USA
Lawrence Berkeley Natl Lab, Berkeley, CA USANOAA, Pacific Marine Environm Lab, 7600 Sand Point Way Ne, Seattle, WA 98115 USA
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Univ Calif Davis, Atmospher Sci Program, Dept Land Air & Water Resources, Davis, CA 95616 USAUniv Calif Davis, Atmospher Sci Program, Dept Land Air & Water Resources, Davis, CA 95616 USA