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English(EN) [GRPO Explained] DeepSeekMath: Pushing the Limits of Mathematical Reasoning in Open Language Models

[GRPO 详解] DeepSeekMath:推动开放语言模型数学推理能力的极限

研究人员正在开发新的基准和评估方法,用于大型语言模型(LLMs)在数学推理和教育评估方面的能力。新的数据集如 ESTBookMath-PT 旨在超越简单的准确性,专注于教学推理和减少语言偏见。其他研究探讨了自洽性和推理努力对自动评分的影响,研究结果表明战略性模型选择可以优化准确性和成本。此外,正在创建 MaSTer 等框架,以自动生成对抗性测试用例,用于评估和改进 LLM 的鲁棒性。 AI

影响 新的基准和评估技术将推动更强大、更可靠的 LLM 在教育和推理任务中的发展。

排序理由 多篇 arXiv 论文介绍了新的基准、评估框架以及对 LLM 在数学推理和教育评估方面性能的分析。

在 Yannic Kilcher 阅读 →

AI 生成摘要 · Google Gemini · 来自 25 个来源。 我们如何撰写摘要 →

[GRPO 详解] DeepSeekMath:推动开放语言模型数学推理能力的极限

报道来源 [25]

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    DeepMath:一个带有smolagents的轻量级数学推理Agent

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    利用项目反应理论估计大型语言模型在自动短答案评分中的评分能力和反应难度

    arXiv:2605.00238v1 Announce Type: new Abstract: Automated short answer grading (ASAG) with large language models (LLMs) is commonly evaluated with aggregate metrics such as macro-F1 and Cohen's kappa. However, these metrics provide limited insight into how grading performance var…

  3. arXiv cs.CL TIER_1 English(EN) · Longwei Cong, Sonja Hahn, Sebastian Gombert, Leon Camus, Hendrik Drachsler, Ulf Kroehne ·

    使用LLMs进行自动短答案评分中的置信度估计

    arXiv:2605.00200v1 Announce Type: new Abstract: Automatic Short Answer Grading (ASAG) with generative large language models (LLMs) has recently demonstrated strong performance without task-specific fine-tuning, while also enabling the generation of synthetic feedback for educatio…

  4. arXiv cs.AI TIER_1 English(EN) · Scott Frohn ·

    LLM自洽性与推理成本对自动化评分准确性和成本的影响

    arXiv:2604.26954v1 Announce Type: cross Abstract: Strategic model selection and reasoning settings are more effective than ensembling for optimizing automated scoring with large language models (LLMs). We examined self-consistency (intra-model majority voting) and reasoning effor…

  5. arXiv cs.AI TIER_1 English(EN) · Luoxi Tang, Tharunya Sundar, Yuqiao Meng, Shuai Yang, Ankita Patra, Lakshmi Manohar Chippada, Jiqian Zhao, Yi Li, Weicheng Ma, Zhaohan Xi ·

    从应试到认知支架:用于LLM在英语标准化考试上的教学诊断基准

    arXiv:2505.17056v2 Announce Type: replace-cross Abstract: As large language models (LLMs) are increasingly integrated into educational tools, current evaluations on standardized tests predominantly focus on binary outcome accuracy. Instead, an effective AI tutor must exhibit fait…

  6. arXiv cs.CL TIER_1 English(EN) · Ulf Kroehne ·

    利用项目反应理论估计大型语言模型在自动短答案评分中的评分能力和反应难度

    Automated short answer grading (ASAG) with large language models (LLMs) is commonly evaluated with aggregate metrics such as macro-F1 and Cohen's kappa. However, these metrics provide limited insight into how grading performance varies across student responses of differing gradin…

  7. arXiv cs.CL TIER_1 English(EN) · Ulf Kroehne ·

    使用大型语言模型进行自动短答案评分中的置信度估计

    Automatic Short Answer Grading (ASAG) with generative large language models (LLMs) has recently demonstrated strong performance without task-specific fine-tuning, while also enabling the generation of synthetic feedback for educational assessment. Despite these advances, LLM-base…

  8. arXiv cs.AI TIER_1 English(EN) · Jatin Bhusal, Nancy Mahatha, Aayush Acharya, Raunak Regmi ·

    面向中学数学自动化能力评估的异构大语言模型的人在环基准测试

    arXiv:2604.26607v1 Announce Type: new Abstract: As Competency-Based Education (CBE) is gaining traction around the world, the shift from marks-based assessment to qualitative competency mapping is a manual challenge for educators. This paper tackles the bottleneck issue by sugges…

  9. arXiv cs.CL TIER_1 English(EN) · Tiago Teixeira, Ana Carolina Erthal, Juan Belieni, Beatriz Canaverde, Diego Mesquita, Miguel Faria, Eliezer de Souza da Silva, Andr\'e F. T. Martins ·

    MATH-PT: 欧洲和巴西葡萄牙语的数学推理基准

    arXiv:2604.25926v1 Announce Type: new Abstract: The use of large language models (LLMs) for complex mathematical reasoning is an emergent area of research, with fast progress in methods, models, and benchmark datasets. However, most mathematical reasoning evaluations exhibit a si…

  10. arXiv cs.AI TIER_1 English(EN) · Raunak Regmi ·

    面向中学数学自动化能力评估的异构大语言模型的人在环基准测试

    As Competency-Based Education (CBE) is gaining traction around the world, the shift from marks-based assessment to qualitative competency mapping is a manual challenge for educators. This paper tackles the bottleneck issue by suggesting a "Human-in-the-Loop" benchmarking framewor…

  11. arXiv cs.CL TIER_1 English(EN) · Tianyi Xu, Kosei Uemura, Alfred Malengo Kondoro, Tadesse Destaw Belay, Catherine Nana Nyaah Essuman, Ifeoma Okoh, Ganiyat Afolabi, Ayodele Awokoya, David Ifeoluwa Adelani ·

    MGSM-Pro:一种用于鲁棒多语言数学推理评估的简单策略

    arXiv:2601.21225v2 Announce Type: replace Abstract: Large language models have made substantial progress in mathematical reasoning. However, benchmark development for multilingual evaluation has lagged behind English in both difficulty and recency. Recently, GSM-Symbolic showed a…

  12. arXiv cs.CL TIER_1 English(EN) · Navya Gupta, Rishitej Reddy Vyalla, Avinash Anand, Chhavi Kirtani, Erik Cambria, Zhengchen Zhang, Zhengkui Wang, Timothy Liu, Aik Beng Ng, Simon See, Rajiv Ratn Shah ·

    IRIS:用于跨语言数学推理的带增量分阶段课程的交错强化学习

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  13. arXiv cs.CL TIER_1 English(EN) · Rajiv Ratn Shah ·

    IRIS:用于跨语言数学推理的带增量分阶段课程的交错强化学习

    Curriculum learning helps language models tackle complex reasoning by gradually increasing task difficulty. However, it often fails to generate consistent step-by-step reasoning, especially in multilingual and low-resource settings where cross-lingual transfer from English to Ind…

  14. arXiv cs.CL TIER_1 English(EN) · Martin Balko, Jan Greb\'ik, Pavel Hub\'a\v{c}ek, Martin Kouteck\'y, Mat\v{e}j Kripner, V\'aclav Rozho\v{n}, Robert \v{S}\'amal, Adri\'an Z\'ame\v{c}n\'ik ·

    Bolzano:LLM辅助数学研究案例研究

    arXiv:2604.16989v2 Announce Type: replace Abstract: We report new results on eight problems in mathematics and theoretical computer science, produced with the assistance of Bolzano, an open-source multi-agent LLM system. Bolzano orchestrates rounds of interaction between parallel…

  15. arXiv cs.CL TIER_1 English(EN) · Yutao Hou, Zeguan Xiao, Fei Yu, Yihan Jiang, Ma Shuguang, Zhaoqian Dai, Hailiang Huang, Yun Chen, Guanhua Chen ·

    迈向数学推理的自动化鲁棒性评估

    arXiv:2506.05038v2 Announce Type: replace Abstract: Large Language Models (LLMs) have demonstrated remarkable capabilities in various reasoning-intensive tasks. However, these models exhibit unexpected brittleness, often failing on simple variations of the same underlying task. E…

  16. arXiv cs.AI TIER_1 English(EN) · Erez Yosef, Oron Anschel, Shunit Haviv Hakimi, Asaf Gendler, Adam Botach, Nimrod Berman, Igor Kviatkovsky ·

    重新思考数学推理评估:超越符号僵化的鲁棒LLM-as-a-Judge框架

    arXiv:2604.22597v1 Announce Type: new Abstract: Recent advancements in large language models have led to significant improvements across various tasks, including mathematical reasoning, which is used to assess models' intelligence in logical reasoning and problem-solving. Models …

  17. arXiv cs.LG TIER_1 English(EN) · Michael Cooper, Samuel Cooper ·

    数学需要两人:一项关于沟通中涌现数学推理能力的测试

    arXiv:2604.21935v1 Announce Type: cross Abstract: Although language models demonstrate remarkable proficiency on mathematical benchmarks, it remains unclear whether this reflects true mathematical reasoning or statistical pattern matching over learning formal syntax. Most existin…

  18. arXiv cs.AI TIER_1 English(EN) · Igor Kviatkovsky ·

    重新思考数学推理评估:超越符号僵化的鲁棒LLM-as-a-Judge框架

    Recent advancements in large language models have led to significant improvements across various tasks, including mathematical reasoning, which is used to assess models' intelligence in logical reasoning and problem-solving. Models are evaluated on mathematical reasoning benchmar…

  19. Hugging Face Daily Papers TIER_1 English(EN) ·

    MathNet:面向数学推理和检索的全球多模态基准

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  20. EleutherAI Blog TIER_1 English(EN) ·

    Llemma: 一个面向数学的开放语言模型

    ArXiv | Models | Data | Code | Blog | Sample Explorer Today we release Llemma: 7 billion and 34 billion parameter language models for mathematics. The Llemma models were initialized with Code Llama weights, then trained on the Proof-Pile II, a 55 billion token dataset of mathemat…

  21. Smol AINews TIER_1 English(EN) ·

    FrontierMath: AI高级数学推理评估基准

    **Epoch AI** collaborated with over **60 leading mathematicians** to create the **FrontierMath benchmark**, a fresh set of hundreds of original math problems with easy-to-verify answers, aiming to challenge current AI models. The benchmark reveals that all tested models, includin…

  22. Yannic Kilcher TIER_1 English(EN) · Yannic Kilcher ·

    [GRPO 详解] DeepSeekMath:突破开放语言模型数学推理的极限

    #deepseek #llm #grpo GRPO is one of the core advancements used in Deepseek-R1, but was introduced already last year in this paper that uses a combination of new RL techniques and iterative data collection to achieve remarkable performance on mathematics benchmarks with just a 7B …

  23. Mastodon — fosstodon.org TIER_1 English(EN) · [email protected] ·

    LLM-as-a-Judge框架修复数学评估失败 研究人员提出LLM-as-a-judge框架用于评估数学推理,优于基于规则的符号方法

    LLM-as-a-Judge Framework Fixes Math Evaluation Failures Researchers propose an LLM-as-a-judge framework for evaluating math reasoning that beats rule-based symbolic comparison, fixing failures in Lighteval and SimpleRL. This enables more accurate benchmark https:// gentic.news/ar…

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    Version Sentinel:一个阻止幻觉包版本的 Claude 代码插件 Version Sentinel 使用 Claude Code 的钩子系统拦截依赖项更改

    Version Sentinel: A Claude Code Plugin That Blocks Hallucinated Package Versions Version Sentinel uses Claude Code's hook system to intercept dependency changes and require version verification, preventing supply-chain risks from hallucinated package versions. https:// gentic.new…

  25. Mastodon — mastodon.social TIER_1 日本語(JA) · [email protected] ·

    从高中数学到前沿AI——《数学思维自学》12讲概览

    高校数学から最先端AIまで ——『独学で鍛える数理思考』全12章の全体像 https:// gihyo.jp/article/2026/04/mathe matical-thinking-01?utm_source=feed # gihyo # 技術評論社 # gihyo_jp # 数理思考 # AI