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Prof. Jakob Foerster - ImageNet Moment for Reinforcement Learning?

Machine Learning Street Talk (MLST)

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Navigating Challenges in Deep Reinforcement Learning

This chapter addresses the computational challenges in deep reinforcement learning, highlighting inefficiencies caused by reliance on CPU resources. It also discusses recent advancements in algorithm development, the significance of data sampling, and the introduction of a new AI research lab aimed at enhancing AI models.

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