Mathematical and Computational Methods in Molecular Biology
Bayesian Model Averaging (BMA) is a statistical technique that incorporates uncertainty in model selection by averaging over multiple models instead of relying on a single model. This approach provides more robust predictions and insights, especially in complex biological data analysis, where different models may provide varying interpretations of the same data. By weighing the predictions of each model based on their posterior probabilities, BMA helps to avoid overfitting and can lead to more accurate inference in bioinformatics applications.
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