Please use this identifier to cite or link to this item: http://hdl.handle.net/10553/136091
Title: Description and evaluation of the CNRM-Cerfacs Climate Prediction System (C3PS)
Authors: Sanchez-Gomez, E.
Séférian, R.
Batté, L.
Berthet, S.
Cassou, C.
Dewitte, B.
Moine M, M. P.
Msadek, R.
Prodhomme, C.
Santana Falcon, Yeray 
Terray, L.
Voldoire, A.
UNESCO Clasification: 2509 Metereología
Keywords: Carbon cycle
Climate prediction
Earth system model
Initialization
Marine ecosystems, et al
Issue Date: 2024
Project: Tropical and South Atlantic - climate-based marine ecosystem prediction for sustainable management 
Journal: Journal of Advances in Modeling Earth Systems 
Abstract: The CNRM-Cerfacs Climate Prediction System (C3PS) is a new research modeling tool for performing climate reanalyzes and seasonal-to-multiannual predictions for a wide array of Earth system variables. C3PS is based on the CNRM-ESM2-1 model including interactive aerosols and stratospheric chemistry schemes as well as terrestrial and marine biogeochemistry enabling a comprehensive representation of the global carbon cycle. C3PS operates through a seamless coupled initialization for the atmosphere, land, ocean, sea ice and biogeochemistry components that allows a continuum of predictions across seasonal to multiannual time-scales. C3PS has also contributed to the Decadal Climate Prediction Project (DCPP-A) as part of the sixth Coupled Model Intercomparison Project (CMIP6). Here we describe the main characteristics of this novel Earth system-based prediction platform, including the methodological steps for obtaining initial states to produce forecasts. We evaluate the entire C3PS initialization procedure with the most up-to-date observations and reanalyzes over 1960–2021, and we discuss the overall performance of the system in the light of the lessons learned from previous and actual prediction platforms. Regarding the forecast skill, C3PS exhibits comparable seasonal predictive skill to other systems. At the multiannual scale, C3PS shows significant predictive skill in surface temperature during the first 2 years after initialization in several regions of the world. C3PS also exhibits potential predictive skill in Net primary production (NPP) and carbon fluxes several years in advance. This expands the possibility of applications of forecasting systems, such as the possibility of performing multiannual predictions of marine ecosystems and carbon cycle.
URI: http://hdl.handle.net/10553/136091
ISSN: 1942-2466
DOI: 10.1029/2023MS004193
Source: Journal of Advances in Modeling Earth Systems [ISSN 1942-2466], v. 16, n. 10
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