
Optimization, Machine Learning and Intelligent Experimentation with Michael McCourt - #545
The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence)
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Optimization in Machine Learning
This chapter explores the critical interplay between optimization and machine learning, underscoring optimization's significance beyond its role in ML. It discusses various techniques, such as gradient descent and Bayesian optimization, while examining the challenges of noisy data and problem formulation. The chapter emphasizes the importance of metrics, collaboration among stakeholders, and intelligent experimentation in optimizing solutions across different domains.
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