Machine Learning Street Talk (MLST) cover image

Francois Chollet - ARC reflections - NeurIPS 2024

Machine Learning Street Talk (MLST)

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Innovative Approaches to Latent Space and Program Generation

This chapter explores advanced strategies for navigating latent space to improve predictions, focusing on concepts such as gradient descent and program synthesis. It critiques current practices with large language models and proposes a graph-based approach that emphasizes the causal relationships in programming. Additionally, the discussion highlights the importance of benchmarking compute efficiency and philosophical considerations about AI and human cognitive processes.

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