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NSA: Neuro-symbolic ARC Challenge

About

The Abstraction and Reasoning Corpus (ARC) evaluates general reasoning capabilities that are difficult for both machine learning models and combinatorial search methods. We propose a neuro-symbolic approach that combines a transformer for proposal generation with combinatorial search using a domain-specific language. The transformer narrows the search space by proposing promising search directions, which allows the combinatorial search to find the actual solution in short time. We pre-train the trainsformer with synthetically generated data. During test-time we generate additional task-specific training tasks and fine-tune our model. Our results surpass comparable state of the art on the ARC evaluation set by 27% and compare favourably on the ARC train set. We make our code and dataset publicly available at https://github.com/Batorskq/NSA.

Pawe{\l} Batorski, Jannik Brinkmann, Paul Swoboda• 2025

Related benchmarks

TaskDatasetResultRank
Logic reasoningARC (eval)
Tasks Solved75
10
Logic reasoningARC (train)
Tasks Solved19.5
9
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