The Seasonal-to-Multiyear Large Ensemble (SMYLE) prediction system using the Community Earth System Model version 2

The potential for multiyear prediction of impactful Earth system change remains relatively underexplored compared to shorter (subseasonal to seasonal) and longer (decadal) timescales. In this study, we introduce a new initialized prediction system using the Community Earth System Model version 2 (CESM2) that is specifically designed to probe potential and actual prediction skill at lead times ranging from 1 month out to 2 years. The Seasonal-to-Multiyear Large Ensemble (SMYLE) consists of a collection of 2-year-long hindcast simulations, with four initializations per year from 1970 to 2019 and an ensemble size of 20. A full suite of output is available for exploring near-term predictability of all Earth system components represented in CESM2. We show that SMYLE skill for El Nino-Southern Oscillation is competitive with other prominent seasonal prediction systems, with correlations exceeding 0.5 beyond a lead time of 12 months. A broad overview of prediction skill reveals varying degrees of potential for useful multiyear predictions of seasonal anomalies in the atmosphere, ocean, land, and sea ice. The SMYLE dataset, experimental design, model, initial conditions, and associated analysis tools are all publicly available, providing a foundation for research on multiyear prediction of environmental change by the wider community.

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Related Dataset #1 : Assessing Responses and Impacts of Solar climate intervention on the Earth system with stratospheric aerosol injection simulations (ARISE-SAI-1.5)

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Author Yeager, Stephen
Rosenbloom, Nan
Glanville, Anne A.
Wu, Xian
Simpson, Isla R.
Li, Hui
Molina, Maria
Krumhardt, Kristen
Mogen, S.
Lindsay, Keith
Lombardozzi, Danica
Wieder, William
Kim, Who M.
Richter, Jadwiga H.
Long, Matthew
Danabasoglu, Gokhan
Bailey, David A.
Holland, Marika M.
Lovenduski, N.
Strand, Warren G.
King, Teagan
Publisher UCAR/NCAR - Library
Publication Date 2022-08-29T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Topic Category geoscientificInformation
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Metadata Date 2025-07-11T16:00:16.831749
Metadata Record Identifier edu.ucar.opensky::articles:25662
Metadata Language eng; USA
Suggested Citation Yeager, Stephen, Rosenbloom, Nan, Glanville, Anne A., Wu, Xian, Simpson, Isla R., Li, Hui, Molina, Maria, Krumhardt, Kristen, Mogen, S., Lindsay, Keith, Lombardozzi, Danica, Wieder, William, Kim, Who M., Richter, Jadwiga H., Long, Matthew, Danabasoglu, Gokhan, Bailey, David A., Holland, Marika M., Lovenduski, N., Strand, Warren G., King, Teagan. (2022). The Seasonal-to-Multiyear Large Ensemble (SMYLE) prediction system using the Community Earth System Model version 2. UCAR/NCAR - Library. https://n2t.org/ark:/85065/d7hh6pvq. Accessed 19 August 2025.

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