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Lessons from Climate Modeling on the Design and Use of Ensembles for Crop ModelingWorking with ensembles of crop models is a recent but important development in crop modeling which promises to lead to better uncertainty estimates for model projections and predictions, better predictions using the ensemble mean or median, and closer collaboration within the modeling community. There are numerous open questions about the best way to create and analyze such ensembles. Much can be learned from the field of climate modeling, given its much longer experience with ensembles. We draw on that experience to identify questions and make propositions that should help make ensemble modeling with crop models more rigorous and informative. The propositions include defining criteria for acceptance of models in a crop MME, exploring criteria for evaluating the degree of relatedness of models in a MME, studying the effect of number of models in the ensemble, development of a statistical model of model sampling, creation of a repository for MME results, studies of possible differential weighting of models in an ensemble, creation of single model ensembles based on sampling from the uncertainty distribution of parameter values or inputs specifically oriented toward uncertainty estimation, the creation of super ensembles that sample more than one source of uncertainty, the analysis of super ensemble results to obtain information on total uncertainty and the separate contributions of different sources of uncertainty and finally further investigation of the use of the multi-model mean or median as a predictor.
Document ID
20160011511
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Wallach, Daniel
(INRA - UMR AGIR Tolosan, France)
Mearns, Linda O.
(National Center for Atmospheric Research Boulder, CO, United States)
Ruane, Alexander C.
(NASA Goddard Inst. for Space Studies New York, NY United States)
Roetter, Reimund P.
(Georg-August Univ. Goettingen, Germany)
Asseng, Senthold
(Florida Univ. Gainesville, FL, United States)
Date Acquired
September 27, 2016
Publication Date
September 15, 2016
Publication Information
Publication: Climatic Change
Publisher: Springer Netherlands
e-ISSN: 1573-1480
Subject Category
Meteorology And Climatology
Report/Patent Number
GSFC-E-DAA-TN35880
Funding Number(s)
WBS: WBS 281945.02.03.03.96
Distribution Limits
Public
Copyright
Other
Keywords
Model ensembles
Super ensembles
Model weighting
Crop models
Climate models

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