Logo Lanfrica
  • Home
  • Atlas
  • Insights
  • Docs
  • Sign in

© 2026 Lanfrica. All rights reserved. All copyrights of the resources shown on the Lanfrica website belong to the original copyright holders, unless explicitly stated otherwise.

Bias reduction in decadal predictions of West African monsoon rainfall using regional climate models

Domain:

climate

Record type:

paper
Creator:
A. D. H.‐M.
Publisher:
Ame
Host:
Abstract The West African monsoon rainfall is essential for regional food production, and decadal predictions are necessary for policy makers and farmers. However, predictions with global climate models reveal precipitation biases. This study addresses the hypotheses that global prediction biases can be reduced by dynamical downscaling with a multimodel ensemble of three regional climate models (RCMs), a RCM coupled to a global ocean model and a RCM applying more realistic soil initialization and boundary conditions, i.e., aerosols, sea surface temperatures (SSTs), vegetation, and land cover. Numerous RCM predictions have been performed with REMO, COSMO‐CLM (CCLM), and Weather Research and Forecasting (WRF) in various versions and for different decades. Global predictions reveal typical positive and negative biases over the Guinea Coast and the Sahel, respectively, related to a southward shifted Intertropical Convergence Zone (ITCZ) and a positive tropical Atlantic SST bias. These rainfall biases are reduced by some regional predictions in the Sahel but aggravated by all RCMs over the Guinea Coast, resulting from the inherited SST bias, increased westerlies and evaporation over the tropical Atlantic and shifted African easterly waves. The coupled regional predictions simulate high‐resolution atmosphere‐ocean interactions strongly improving the SST bias, the ITCZ shift and the Guinea Coast and Central Sahel precipitation biases. Some added values in rainfall bias are found for more realistic SST and land cover boundary conditions over the Guinea Coast and improved vegetation in the Central Sahel. Thus, the ability of RCMs and improved boundary conditions to reduce rainfall biases for climate impact research depends on the considered West African region.

Visit

doi.org

Licenses

http://onlinelibrary.wiley.com/termsAndConditions#vor

Similar

Decadal prediction of the dominant West African monsoon rainfall modesThe West African dipole in rainfall and its forcing mechanisms in global and regional climate modelsThe Effect of Explicit Convection on Climate Change in the West African Monsoon and Central West African Sahel RainfallPattern Recognition of West African Monsoon Extreme Rainfall Events Using Convolutional Neural NetworksThe Impact of Dust Concentration on the West African Monsoon (WAM) and Regional Climate PatternsStratospheric Sulfate Aerosols impacts on West African monsoon precipitation using GeoMIP Models

Decadal prediction of the dominant West African monsoon rainfall modes

Abstract The present study offers for the first time the validation of decadal prediction systems u

The West African dipole in rainfall and its forcing mechanisms in global and regional climate models

The leading mode of 20th century West African rainfall variability represents a well-documented drou

The Effect of Explicit Convection on Climate Change in the West African Monsoon and Central West African Sahel Rainfall

Abstract The West African monsoon (WAM) is the dominant feature of West African climate providing t

Pattern Recognition of West African Monsoon Extreme Rainfall Events Using Convolutional Neural Networks

Abstract Accurate prediction of extreme rainfall and dry events remains a major

The Impact of Dust Concentration on the West African Monsoon (WAM) and Regional Climate Patterns

The West African Monsoon (WAM) is responsible for most of the annual rainfall to the Sahel and Gulf

Stratospheric Sulfate Aerosols impacts on West African monsoon precipitation using GeoMIP Models

Stratospheric Aerosol Geoengineering (SAG) is proposed to offset global warming; the use of this app