Evaluation of the rossby centre regional climate model rainfall simulations over west africa using large-scale spatial and temporal statistical metrics

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Abstract

Climate models are usually evaluated to understand how well the modeled data reproduce specific application-related features. In Africa, where multisource data quality is an issue, there is a need to assess climate data from a general perspective to motivate such specific types of assessment but mostly to serve as a basis for data quality enhancement activities. In this study, we assessed the Rossby Centre Regional Climate Model (RCA4) over West Africa without targeting any application-specific feature, while jointly evaluating its boundary conditions and accounting for observational uncertainties. Results from this study revealed that the RCA4 signal highly modifies the boundary conditions (global climate models (GCMs) and reanalysis data), resulting in a significant reduction of their biases in the dynamically downscaled outputs. The results, with respect to the observational ensemble members, are in line with the differences between the observation datasets. Among the RCA4 simulations, the ensemble mean outperformed all individual simulations regardless of the statistical metric and the reference data used. This indicates that the RCA4 adds value to GCMs over West Africa, with no influence of observational uncertainty/ and its ensemble mean reduces model-related uncertainties.

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Gnitou, G. T., Ma, T., Tan, G., Ayugi, B., Nooni, I. K., Alabdulkarim, A., & Tian, Y. (2019). Evaluation of the rossby centre regional climate model rainfall simulations over west africa using large-scale spatial and temporal statistical metrics. Atmosphere, 10(12). https://doi.org/10.3390/ATMOS10120802

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