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September 28, 20250 citationsOpen Access

Non-Iterative Symbolic-Aided Chain-of-Thought for Logical Reasoning

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PNPhuong NguyenTDThi Kim Anh DangNINaoya Inoue

Key Points

  • Symbolic-aided chain-of-thought significantly improves logical reasoning capabilities in large language models.
  • Experiments revealed consistent performance boost on three out of four datasets, enhancing reasoning tasks efficiently.
  • Assessment utilized diverse benchmarks like ProofWriter and LogicalDeduction, highlighting versatility in complex scenarios.
  • Incorporating symbolic structures supports generalization while maintaining transparency and interpretability.

Abstract

This work introduces Symbolic-Aided Chain-of-Thought (CoT), an improved approach to standard CoT, for logical reasoning in large language models (LLMs). The key idea is to integrate lightweight symbolic representations into few-shot prompts, structuring the inference steps with a consistent strategy to make reasoning patterns more explicit within a non-iterative reasoning process. By incorporating these symbolic structures, our method preserves the generalizability of standard prompting techniques while enhancing the transparency, interpretability, and analyzability of LLM logical reasoning. Extensive experiments on four well-known logical reasoning benchmarks -- ProofWriter, FOLIO, ProntoQA, and LogicalDeduction, which cover diverse reasoning scenarios -- demonstrate the effectiveness of the proposed approach, particularly in complex reasoning tasks that require navigating multiple constraints or rules. Notably, Symbolic-Aided CoT consistently improves LLMs' reasoning capabilities across various model sizes and significantly outperforms conventional CoT on three out of four datasets, ProofWriter, ProntoQA, and LogicalDeduction.

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Cite This Study

Nguyen et al. (2025) studied this question.

synapsesocial.com/papers/68d913a34ddcf71ba560b944https://doi.org/10.48550/arxiv.2508.12425
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