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Machine Learning Models in Climate Prediction and Adaptation Planning within Niger: A Review

Domaine:

climate

Type de record:

paper
Créateur:
KonHouHarSan
Éditeur:
Zenodo
Hôte:avatar

Machine learning models have shown promise in enhancing climate prediction accuracy, which is crucial for effective adaptation planning. A systematic search strategy was employed to identify relevant literature from peer-reviewed journals, conference proceedings, and grey literature. Inclusion criteria were defined based on the relevance of studies to climate prediction and adaptation planning using machine learning models in Niger. Machine learning models demonstrated significant improvements in temperature forecasting with an accuracy rate of over 85% compared to traditional methods. The review underscores the robustness of machine learning for climate predictions, highlighting its potential in supporting sustainable development strategies in Niger. Further research should focus on integrating multiple data sources and enhancing model interpretability for better decision-making processes. Model estimation used $\hat{\theta}=argmin_{\theta}\sum_i\ell(y_i,f_\theta(x_i))+\lambda\lVert\theta\rVert_2^2$, with performance evaluated using out-of-sample error.

Visit

doi.org

Tags

Sub-SaharanGeographic Information SystemsGeospatial AnalysisEnsemble MethodsRegression ModelsNeural NetworksSpatial Statistics

Licenses

info:eu-repo/semantics/openAccessCreative Commons Attribution 4.0 Internationalhttps://creativecommons.org/licenses/by/4.0/legalcode

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