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#81 JULIAN TOGELIUS, Prof. KEN STANLEY - AGI, Games, Diversity & Creativity [UNPLUGGED]

Machine Learning Street Talk (MLST)

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Diversity in AI: Balancing Symbolic and Reinforcement Learning

This chapter compares symbolic approaches and reinforcement learning in AI, discussing their respective strengths and weaknesses. It emphasizes the value of diversity in AI solutions and the need for future learning algorithms to integrate multiple optimization techniques while being adaptable to human feedback.

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