Does Learning Mathematical Problem-Solving Generalize to Broader Reasoning?

Fuente: arXiv
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Main Authors: Zhou, Ruochen, Xu, Minrui, Chen, Shiqi, Liu, Junteng, Li, Yunqi, Lin, Xinxin, Chen, Zhengyu, He, Junxian
Format: Preprint
Published: 2025
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author Zhou, Ruochen
Xu, Minrui
Chen, Shiqi
Liu, Junteng
Li, Yunqi
Lin, Xinxin
Chen, Zhengyu
He, Junxian
author_facet Zhou, Ruochen
Xu, Minrui
Chen, Shiqi
Liu, Junteng
Li, Yunqi
Lin, Xinxin
Chen, Zhengyu
He, Junxian
contents There has been a growing interest in enhancing the mathematical problem-solving (MPS) capabilities of large language models. While the majority of research efforts concentrate on creating specialized models to solve mathematical problems, it remains unknown how learning mathematical problem-solving generalizes to help develop other reasoning abilities. In this paper, we present an empirical investigation into the generalization potential of various MPS training approaches, such as continual pretraining, instruction tuning, and rule-based reinforcement learning across various data sources, including both short and long chain-of-thought (CoT) samples. Evaluation on 5 mathematical and 8 general reasoning benchmarks show that continual pretraining on math text is able to generalize to general reasoning tasks to some extent. In constrast, instruction tuning on conventional, short MPS samples provides limited benefits and, in many cases, even impairs generalization performance. Notably, training with long CoT responses for MPS samples and incorporating rule-based reinforcement learning on MPS queries exhibit distinct behavior, significantly enhancing generalization by extending the model's reasoning processes into other domains. These results suggest that traditional approaches to learning MPS with short reasoning chains largely fail to achieve robust generalization. However, the emerging paradigm of longer reasoning chains, coupled with self-reflection, offers a promising direction for improving generalized reasoning abilities through learning from specialized domains.
format Preprint
id arxiv_https___arxiv_org_abs_2507_04391
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Does Learning Mathematical Problem-Solving Generalize to Broader Reasoning?
Zhou, Ruochen
Xu, Minrui
Chen, Shiqi
Liu, Junteng
Li, Yunqi
Lin, Xinxin
Chen, Zhengyu
He, Junxian
Computation and Language
There has been a growing interest in enhancing the mathematical problem-solving (MPS) capabilities of large language models. While the majority of research efforts concentrate on creating specialized models to solve mathematical problems, it remains unknown how learning mathematical problem-solving generalizes to help develop other reasoning abilities. In this paper, we present an empirical investigation into the generalization potential of various MPS training approaches, such as continual pretraining, instruction tuning, and rule-based reinforcement learning across various data sources, including both short and long chain-of-thought (CoT) samples. Evaluation on 5 mathematical and 8 general reasoning benchmarks show that continual pretraining on math text is able to generalize to general reasoning tasks to some extent. In constrast, instruction tuning on conventional, short MPS samples provides limited benefits and, in many cases, even impairs generalization performance. Notably, training with long CoT responses for MPS samples and incorporating rule-based reinforcement learning on MPS queries exhibit distinct behavior, significantly enhancing generalization by extending the model's reasoning processes into other domains. These results suggest that traditional approaches to learning MPS with short reasoning chains largely fail to achieve robust generalization. However, the emerging paradigm of longer reasoning chains, coupled with self-reflection, offers a promising direction for improving generalized reasoning abilities through learning from specialized domains.
title Does Learning Mathematical Problem-Solving Generalize to Broader Reasoning?
topic Computation and Language
url https://arxiv.org/abs/2507.04391