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Interviewing Eugene Vinitsky on self-play for self-driving and what else people do with RL

Interconnects

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Navigating Self-Play in AI Development

This chapter explores the complexities of self-play in language models and reinforcement learning, detailing its significance in developing high-quality AI strategies. The discussion encompasses challenges in defining self-play, the evolution of techniques, and the implications of multi-agent interactions in achieving superhuman performance in tasks like gaming and self-driving. Furthermore, it addresses the intricacies of training autonomous vehicles, focusing on how they learn to navigate complex environments while adhering to human-driving norms.

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