CompTIA DataX DY0-001 (V1) Practice Question

A machine learning engineer has developed a single, deep decision tree model for a classification task. The model achieves 99% accuracy on the training dataset but only 75% on a held-out test set, indicating a significant overfitting problem. The engineer decides to implement an ensemble method to improve the model's generalization performance. Which ensemble technique is specifically designed to address this issue of high variance by creating multiple independent versions of the model and averaging their predictions?

  • Bootstrap Aggregation (Bagging)

  • Adversarial Training

  • Stacking

  • Gradient Boosting

CompTIA DataX DY0-001 (V1)
Machine Learning
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