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SamudrACE: Fast and Accurate Coupled Climate Modeling With 3D Ocean and Atmosphere Emulators

  • James P.C. Duncan
  • , Elynn Wu
  • , Surya Dheeshjith
  • , Adam Subel
  • , Troy Arcomano
  • , Spencer K. Clark
  • , Brian Henn
  • , Anna Kwa
  • , Jeremy McGibbon
  • , W. Andre Perkins
  • , William Gregory
  • , Carlos Fernandez-Granda
  • , Julius Busecke
  • , Oliver Watt-Meyer
  • , William J. Hurlin
  • , Alistair Adcroft
  • , Laure Zanna
  • , Christopher Bretherton

Research output: Contribution to journalArticlepeer-review

Abstract

Traditional numerical global climate models simulate the full Earth system by exchanging boundary conditions between separate simulators of the atmosphere, ocean, sea ice, land surface, and other geophysical processes. This paradigm allows for distributed development of individual components within a common framework, unified by a coupler that handles translation between realms via spatial or temporal alignment and flux exchange. Following a similar approach adapted for machine learning-based emulators, we present SamudrACE: a coupled global climate model emulator which produces centuries-long simulations at 1-degree horizontal, 6-hourly atmospheric, and 5-daily oceanic resolution, with 145 2D fields spanning 8 atmospheric and 19 oceanic vertical levels, plus sea ice, surface, and top-of-atmosphere variables. SamudrACE is highly stable and has low climate biases comparable to those of its components with prescribed boundary forcing, with realistic variability in coupled climate phenomena such as ENSO that is not possible to simulate in uncoupled mode.

Original languageEnglish (US)
Article numbere2025GL119340
JournalGeophysical Research Letters
Volume53
Issue number11
DOIs
StatePublished - Jun 16 2026

All Science Journal Classification (ASJC) codes

  • Geophysics
  • General Earth and Planetary Sciences

Keywords

  • coupled global climate model
  • machine learning emulator

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