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#030 Multi-Armed Bandits and Pure-Exploration (Wouter M. Koolen)

Machine Learning Street Talk (MLST)

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Navigating Objective Functions in Algorithm Design

This chapter explores the complexities of crafting objective functions in algorithm design, focusing on the extremes of weight assignments. It discusses strategies for multi-armed bandit problems, emphasizing the impact of fixed confidence and fixed budget regimes on algorithm performance and decision-making.

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