Highlights
• Machine learning algorithms were utilized to predict nitrogen loss during manure composting.
• The adaptive boosting model achieved an R2 of 0.847 for nitrogen loss prediction..
• Model performance enhanced following Bayesian optimization of hyperparameters.
• Redundant features (e.g., scale and C/N) were eliminated to optimize input variables.
• Shapley additive explanation (SHAP) analysis revealed time stages and bulking agents as critical factors.
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