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#132 Bayesian Cognition and the Future of Human-AI Interaction, with Tom Griffiths

Learning Bayesian Statistics

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Cognition vs. Computation: Bridging Human and AI Learning

This chapter examines the pivotal differences between human cognition and AI processing, particularly in the context of large language models like GPT-4. It discusses how the design of AI can both reflect and complement human learning through the utilization of vast training data and reinforcement learning. By exploring concepts like representational alignment and bounded optimality, the chapter highlights the potential for AI to enhance human decision-making while addressing the challenges of replicating complex human thought processes.

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