2min snip

Machine Learning Street Talk (MLST) cover image

New "50%" ARC result and current winners interviewed

Machine Learning Street Talk (MLST)

NOTE

Innovative Approach to Problem Solving with Neurosymbolic Methodology

The approach discussed involves minimal domain-specific tuning apart from prompt engineering. The solution utilizes feature extraction on arc problems and GPT-40 for step-by-step reasoning, with improved grid representation. It differentiates itself by employing a neurosymbolic approach, generating candidate programs via language models and achieving a 50% success rate after six days of work. The method includes providing problem representation to GPT-40 with text and image data, instructing it on transformation and code implementation, and using handwritten examples for effective reasoning.

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