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Titel:

Evaluation of crop model prediction and uncertainty using Bayesian parameter estimation and Bayesian model averaging

Dokumenttyp:
Zeitschriftenaufsatz
Autor(en):
Gao, Yujing; Wallach, Daniel; Hasegawa, Toshihiro; Tang, Liang; Zhang, Ruoyang; Asseng, Senthold; Kahveci, Tamer; Liu, Leilei; He, Jianqiang; Hoogenboom, Gerrit
Abstract:
A recent trend in crop modeling has been the use of multi-model ensembles (MMEs) for impact assessment, especially as it relates to climate change. Studies have shown that, compared to individual models, the mean or median of a MME is a better predictor that is more accurate in making predictions and capable of providing model uncertainty information. In previous studies that used MMEs, each individual model was assigned an equal weight by simply averaging the predictions over all the models. He...     »
Stichworte:
Crop models, Multi-model ensemble, MCMC, Reliability diagram, Model weighting
Zeitschriftentitel:
Agricultural and Forest Meteorology
Jahr:
2021
Band / Volume:
311
Seitenangaben Beitrag:
108686
Volltext / DOI:
doi:https://doi.org/10.1016/j.agrformet.2021.108686
WWW:
https://www.sciencedirect.com/science/article/pii/S0168192321003725
Print-ISSN:
0168-1923
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