Robotics paper index

Order-Invariant Answers, Order-Sensitive Representations in Mathematical Reasoning

2026-09-23 · arXiv: 2609.28442

One-line summary

A robotics research paper on Order-Invariant Answers, Order-Sensitive Representations in Mathematical Reasoning.

Engineering notes

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Chinese explanation / 中文解读

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Original abstract

Reordering a set of mathematical rules without changing its meaning should preserve the correct answer, but must a model's internal representations stay invariant too? We investigate this question using synthetic multi-step function-composition problems, each presented under multiple rule orderings with the same correct answer. We measure accuracy and permutation signal-to-noise ratio (SNR), which quantifies how distinctly ordering patterns are represented relative to variation across problem instances. Across 16 language models ranging from 1B to 8B parameters, we find a pattern: models that solve reordered problems more accurately represent different rule orderings more distinctly. Layer-averaged permutation SNR is positively rank-correlated with accuracy in every synthetic setting we evaluate, with Spearman correlations reaching 0.86. These findings highlight a distinction between answer invariance and representation invariance: successful mathematical rule composition can accompany distinct internal representations between equivalent rule orderings. This motivates distinguishing answer invariance from representation invariance, and offers a representational perspective on mathematical reasoning beyond answer accuracy alone.

5.0Engineering value
7.0Research novelty
4.0Business relevance

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