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Exchange of Perspective Prompting Enhances Reasoning in Large Language Models

4 June 2025
Lin Sun
Can Zhang
    LRM
ArXiv (abs)PDFHTML
Main:9 Pages
3 Figures
Bibliography:5 Pages
5 Tables
Appendix:1 Pages
Abstract

Large language models (LLMs) have made significant advancements in addressing diverse natural language processing (NLP) tasks. However, their performance is often limited by inherent comprehension of problems. To address this limitation, we propose Exchange-of-Perspective (EoP), a novel framework designed to exchange perspectives across different definitions of problem, so that it can break the fixed mindset from any particular formulation of the question. We conducted extensive and comprehensive experiments on 8 benchmarks. The results show that EoP can significantly improve performance. For instance, compared to the non-commutative baseline PHP, with GPT-3.5-Turbo and EoP, we observe a 3.6% improvement on AQuA (60.6% to 64.2%), while GPT-4-powered EoP demonstrates a 7.7% overall accuracy enhancement on Math (53.9% to 61.6%) and a 3.5% improvement on OlympiadBench Maths (43.5% to 47.0%) when using Qwen-2.5-72b.

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@article{sun2025_2506.03573,
  title={ Exchange of Perspective Prompting Enhances Reasoning in Large Language Models },
  author={ Lin Sun and Can Zhang },
  journal={arXiv preprint arXiv:2506.03573},
  year={ 2025 }
}
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