15min chapter

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#214 Learning & Memory, For Brains & AI, with Kim Stachenfeld, Senior Research Scientist at Google DeepMind

DataFramed

CHAPTER

Enhancing Reasoning Abilities in Language Models and Humans

This chapter explores the differences between prediction and reasoning skills in language models and humans, emphasizing the impact of familiarity on task performance. It discusses how breaking down unfamiliar problems into familiar components can improve the accuracy of language models, drawing parallels with human reasoning abilities. The conversation also delves into the challenges of evaluating performance in AI models compared to human intelligence, and the importance of creating hypotheses through field research to inspire further investigation.

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