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Jeff Clune - Agent AI Needs Darwin

Machine Learning Street Talk (MLST)

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Automating Agentic System Design

This chapter explores the AIDAS framework for automating the design of multi-agent systems, contrasting it with traditional handcrafted approaches. It discusses the challenges of continual learning in AI, emphasizing the integration of diverse feedback to enhance system performance. The conversation also highlights the evolving capabilities of AI, drawing parallels between biological learning processes and the need for innovative solutions in AI training and development.

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