18min chapter

Machine Learning Street Talk (MLST) cover image

New "50%" ARC result and current winners interviewed

Machine Learning Street Talk (MLST)

CHAPTER

Exploring Compositionality in ARC Problem-Solving

The chapter delves into the concept of compositionality within ARC, analyzing the limitations of individual transformations and the importance of generating data within the domain. It compares the deep generalization of symbolic systems with the broader generalization of ML models, highlighting insights into developing systems for solving ARC problems effectively.

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