Commentsv2: reproducibility study (kappa~0.8), agent-security case (PPMF), anchor semantics, 15+ fixes. Code and data: this https URL (https://github.com/1549080929-debug/math_agent) Keywords: LLM verification; verification autonomy; completeness; ground truth; trustworthy AI Writing and implementation assisted by an AI language model; all experiments, data, and research decisions are the author's own
Reinforcing Egocentric Spatial Perception in Multimodal Large Language Models via Ego Scene Augmentation
通过自我场景增强在多模态大语言模型中强化自我中心空间感知
Chi Kit Wong, Ye Pan, Yuanhuiyi Lyu, Xu Zheng, Zidong Cao, Lutao Jiang, Zixin Zhang, Huiyu Zhou, Xuming Hu
机构
*
The Hong Kong University of Science and Technology (Guangzhou)(香港科技大学(广州))
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Guangxi Zhuang Autonomous Region Information Center(广西壮族自治区信息中心)
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The Hong Kong University of Science and Technology(香港科技大学)
专题命中
推理与问题求解
:large language model(title,abstract);language model(title,abstract)
Investigating the Interplay between Contextual and Parametric Chain-of-Thought Faithfulness under Optimization
探究优化下上下文与参数化思维链忠实性之间的相互作用
Jingyi Sun, Qianli Wang, Pepa Atanasova, Nils Feldhus, Isabelle Augenstein
机构
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University of Copenhagen(哥本哈根大学)
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Technische Universität Berlin(柏林技术大学)
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German Research Center for Artificial Intelligence (DFKI)(德国人工智能研究中心(DFKI))
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BIFOLD – Berlin Institute for the Foundations of Learning and Data(BIFOLD – 柏林学习与数据基础研究院)
专题命中
推理与问题求解
:LLM(abstract,abstract_cn);large language model(abstract);language model(abstract);分类 cs.CL、cs.AI、cs.LG
机构
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Department of Computer Science and Engineering, Texas A&M University(计算机科学与工程系,德克萨斯A&M大学)
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Department of Materials Science and Engineering, Texas A&M University(材料科学与工程系,德克萨斯A&M大学)
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Department of Electrical and Computer Engineering, Texas A&M University(电气与计算机工程系,德克萨斯A&M大学)
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Computing and Data Sciences, Brookhaven National Laboratory(布鲁赫斯国家实验室计算与数据科学部)
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Department of Physics and Astronomy, Texas A&M University(物理与天文学系,德克萨斯A&M大学)
专题命中
推理与问题求解
:large language model(abstract);language model(abstract);foundation model(abstract);language agent(abstract)
CommentsPublished as a conference paper at the Conference on Language Modeling (COLM) 2026. 25 pages, 3 figures, 16 tables. Code: this https URL (https://github.com/DEFENSE-SEU/FlowEvo)