自动生成数学证明类测试题,精准评估大模型真实数学能力
Proof2Hybrid: Automatic Mathematical Benchmark Synthesis for Proof-Centric Problems
- 用自动化框架将数学证明转为可验证的混合题型
- 构建456道代数几何难题,发现顶尖大模型严重不足
- 适合研究AI数学推理与自动评测的学者使用
评估大语言模型(LLMs)的数学能力是关键但极具挑战性的前沿课题。现有基准在证明类问题上表现不足,因人工构建难以扩展且成本高昂,导致大模型的真实数学能力未被充分衡量。为此,我们提出Proof2Hybrid——首个完全自动化的框架,能从自然语言数学语料中合成高质量、以证明为中心的基准。其核心创新是Proof2X:一套将数学证明转化为多种易验证题型的路线图。据此,我们设计新型混合格式题目——'m选n多裁判题',可实现稳健的自动评估,且对猜测和表面模式匹配具有鲁棒性。作为框架演示,我们推出AlgGeoTest,一个面向代数几何领域的基准,包含456个高难度题目。对主流LLMs的广泛评估揭示其在代数几何理解上存在显著缺陷,提供了更精确的数学能力度量。该框架与基准为深入研究AI数学智能开辟了新路径。
原文摘要 · Abstract (English)
Evaluating the mathematical capability of Large Language Models (LLMs) is a critical yet challenging frontier. Existing benchmarks fall short, particularly for proof-centric problems, as manual creation is unscalable and costly, leaving the true mathematical abilities of LLMs largely unassessed. To overcome these barriers, we propose Proof2Hybrid, the first fully automated framework that synthesizes high-quality, proof-centric benchmarks from natural language mathematical corpora. The key novelty of our solution is Proof2X, a roadmap of converting mathematical proofs into various kinds of questions that are easy to verify. Instructed by this roadmap, we propose a new type of hybrid-formatted questions, named ``$m$-out-of-$n$ multiple judge questions'', specifically designed to enable robust, automatic evaluation while being resilient to guessing and superficial pattern matching inherent in traditional formats. As a demonstration of our framework, we introduce AlgGeoTest, a benchmark for algebraic geometry--a frontier domain of modern mathematics--comprising 456 challenging items. Our extensive evaluations on state-of-the-art LLMs using AlgGeoTest reveal profound deficits in their comprehension of algebraic geometry, providing a more precise measure of their true mathematical capabilities. Our framework and benchmark pave the way for a new wave of in-depth research into the mathematical intelligence of AI systems.
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