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Machine Learning: Lecture 19: Boosting and ensembles (continued)
Description:
Dive deep into advanced machine learning concepts through this comprehensive lecture that concludes the exploration of boosting and ensemble methods. Learn the theoretical foundations and practical applications of these powerful techniques that combine multiple learning algorithms to obtain better predictive performance. Explore how boosting algorithms iteratively build strong classifiers from weak learners, and understand the mechanisms behind ensemble methods that aggregate predictions from multiple models. Perfect for data scientists, machine learning engineers, and students seeking to master these essential techniques for improving model accuracy and robustness.

Boosting and Ensembles in Machine Learning - Lecture 19

UofU Data Science
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