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#97 SREEJAN KUMAR - Human Inductive Biases in Machines from Language

Machine Learning Street Talk (MLST)

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Exploring Human Priors in Machine Understanding

This chapter explores the significance of incorporating human anthropocentric priors into machines, particularly large language models, to improve collaboration and predictability. It examines the parallels between human and machine understanding, highlighting how aligning these perspectives can enhance interactions between humans and technology.

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