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Prof. Jakob Foerster - ImageNet Moment for Reinforcement Learning?

Machine Learning Street Talk (MLST)

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Advancements in Reinforcement Learning

This chapter explores the recent developments in reinforcement learning, focusing on new models that enhance speed and simplify algorithm construction. It discusses the implications of theoretical frameworks such as Mirror Learning and the integration of large language models to optimize decision-making processes. Additionally, the chapter emphasizes the importance of creativity in AI development and the relationship between reasoning and effective problem-solving in complex environments.

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