CommentsThe submission of this paper was a mistake. This is the second version of arXiv:2603.16453, so it should have replaced the original 2603 version through a replacement submission, rather than being published as a new paper
Empirical Prompt Engineering for Construct Identification with Large Language Models
改善人机编码对齐:心理学构念识别中提示工程的实证评估
Kylie L. Anglin, Stephanie Milan, Brittney Hernandez, Claudia Ventura
机构
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Department of Educational Psychology, Neag School of Education, University of Connecticut(教育心理学系,教育学院,康涅狄格大学)
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Department of Psychological Sciences, College of Liberal Arts and Sciences, University of Connecticut(心理学系,文理学院,康涅狄格大学)
专题命中
推理与问题求解
:large language model(title,abstract);language model(title,abstract);LLM(abstract,abstract_cn);prompting(abstract)
Coherence Under Commitment: Probing Generalization and Vacuous Memorization in LLM Logical Reasoning
承诺下的一致性:探究LLM逻辑推理中的泛化与空洞记忆
Noor Islam S. Mohammad, Mahmudul Hasan
机构
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Department of Computer Science, Informatics Institute, Istanbul Technical University(伊斯坦布尔技术大学信息学研究所计算机科学系)
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School of Information Technology, Deakin University(迪肯大学信息技术学院)
专题命中
推理与问题求解
:LLM(title,title_cn);large language model(abstract);language model(abstract);分类 cs.AI、cs.LG
机构
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National University of Singapore(新加坡国立大学)
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Nanyang Technological University(南洋理工大学)
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Fudan University(复旦大学)
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Hong Kong University of Science(香港科学大学)
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The Chinese University of Hong Kong, Shenzhen(香港中文大学(深圳))
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Vector Institute(向量研究所)
专题命中
推理与问题求解
:LLM(title,title_cn);large language model(abstract);language model(abstract);分类 cs.AI、cs.LG
Know Your Limits : On the Faithfulness of LLMs as Solvers and Autoformalizers in Legal Reasoning
了解你的局限:LLM在法律推理中作为求解器和自动形式化工具的忠实性
Olivia Peiyu Wang, Sanna Wong-Toropainen, Daneshvar Amrollahi, Ryan Bai, Tashvi Bansal, Arush Garg, Leilani H. Gilpin
机构
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UC Santa Cruz(加州大学圣克鲁兹分校)
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Univ. Helsinki(赫尔辛基大学)
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CodeX, Stanford(斯坦福大学CodeX中心)
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Stanford University(斯坦福大学)
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Canyon Crest Academy(峡谷峰学院)
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Monta Vista High School(蒙塔维斯塔高中)
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Los Altos High School(洛斯阿尔托斯高中)
专题命中
推理与问题求解
:LLM(title_cn,summary_cn);large language model(abstract);language model(abstract);prompting(abstract)
Comments10 pages, submitted to COLM 2026 (under review, average score of 6.25 across 4 reviewers) and accepted by the AI4Law and AI4Math workshops at ICML. This is the version where we already addressed most of the reviews from the COLM & AI4Law & AI4Math reviewers
CommentsAccepted to the 32nd ACM SIGKDD Conference on Knowledge Discovery and Data Mining (KDD 2026)
Journal refProceedings of the 32nd ACM SIGKDD Conference on Knowledge Discovery and Data Mining V.2 (KDD '26), August 09--13, 2026, Jeju Island, Republic of Korea
CommentsAccepted at Joint Workshop on Statistics and Knowledge Integration for Logic, Learning, Ethical Decisions, and LLMs, 18 July 2026, Lisbon v2: Added references to other Prolog MCP servers; fixed typos
OGD4All: A Framework for Accessible Interaction with Geospatial Open Government Data Based on Large Language Models
OGD4All: 基于大语言模型的可访问地理空间开放政府数据交互框架
Michael Siebenmann, Javier Argota Sánchez-Vaquerizo, Stefan Arisona, Krystian Samp, Luis Gisler, Dirk Helbing
机构
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Professorship of Computational Social Science, ETH Zurich(计算社会科学教授职位,苏黎世联邦理工学院)
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Esri R&D Center Zurich(埃斯里苏黎世研发中心)
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Complexity Science Hub(复杂性科学中心)
专题命中
推理与问题求解
:large language model(title,abstract);language model(title,abstract);LLM(abstract_cn);分类 cs.AI、cs.LG
CommentsAuthor Accepted Manuscript (AAM). Proceedings of 2026 IEEE CAI (Granada, Spain). Update manuscript with final DOI. Code & data available at: https://github.com/ethz-coss/ogd4all
Journal ref2026 IEEE Conference on Artificial Intelligence (CAI), pp. 882-888
LLM-Based Generalizable Hierarchical Task Planning and Execution for Heterogeneous Robot Teams with Event-Driven Replanning
基于LLM的异构机器人团队通用分层任务规划与执行及事件驱动重规划
Suraj Borate, Bhavish Rai B, Vipul Pardeshi, Madhu Vadali
机构
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Department of Mechanical Engineering, IIT Gandhinagar(印度加尔各直辖区理工学院机械工程系)
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Sahyadri College of Engineering and Management(萨哈亚德里工程与管理学院)
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Vishwakarma Institute of Information Technology(维什瓦克arma信息技术学院)
机构
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Institute of Digital Twin, Eastern Institute of Technology(东方理工数字孪生研究所)
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Zhejiang University(浙江大学)
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Munich Center for Machine Learning, LMU(慕尼黑机器学习中心,慕尼黑大学)
专题命中
推理与问题求解
:LLM(title_cn,summary_cn);large language model(abstract);language model(abstract);分类 cs.CL
From Pixels to Concepts: Growing Rich 3D Semantic Scene Graph Forests utilizing Foundation Models
从像素到概念:利用基础模型构建丰富的3D语义场景图森林
David Oberacker, Meike Deitersen, Niklas Spielbauer, Tristan Schnell, Georg Heppner, Arne Roennau
机构
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FZI Research Center for Information Technology(FZI信息技术研究中心)
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Machine Intelligence and Robotics Lab (MaiRo), Karlsruhe Institute for Technology (KIT)(卡尔斯鲁厄理工学院机器智能与机器人实验室)
机构
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Institute for Clarity in Documentation(文档清晰度研究所)
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Inria Paris-Rocquencourt(法国国家信息与自动化研究所巴黎-罗康库尔中心)
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Rajiv Gandhi University(拉吉夫·甘地大学)
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Tsinghua University(清华大学)
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Palmer Research Laboratories(帕默研究实验室)
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State Key Laboratory of Opto-Electronic Information Acquisition and Protection Technology, Institute of Physical Science and Information Technology, Anhui University(光电信息获取与防护技术国家重点实验室,物理科学与信息技术学院,安徽大学)
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School of Artificial Intelligence, Anhui University(安徽大学人工智能学院)
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School of Computer Science and Technology, Dalian University of Technology(大连理工大学计算机科学与技术学院)
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School of Computer Science and Technology, Anhui University(安徽大学计算机科学与技术学院)
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State Key Laboratory of Cognitive Intelligence, University of Science and Technology of China, the Institute of Artificial Intelligence, Hefei Comprehensive National Science Center(认知智能国家重点实验室,中国科学技术大学,人工智能研究院,合肥综合性国家科学中心)
专题命中
推理与问题求解
:large language model(title,abstract);language model(title,abstract);分类 cs.AI
Enhancing Creativity in 3D Generative Design via a TRIZ-Inspired Text-to-CAD Framework
通过TRIZ启发的文本到CAD框架增强3D生成设计的创造力
Dongeon Lee, Leekyo Jeong, Soyoung Yoo, Sunwoong Yang, Namwoo Kang
机构
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Cho Chun Shik Graduate School of Mobility, KAIST, Daejeon, Republic of Korea(韩国科学技术院(KAIST)赵正植移动研究生院,大田,韩国)
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Samsung Electronics, Suwon, Republic of Korea(三星电子,水原,韩国)
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Department of Mechanical Engineering, Hanyang University, Ansan, Republic of Korea(汉阳大学机械工程系,安山,韩国)
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Narnia Labs, Daejeon, Republic of Korea(纳尼亚实验室,大田,韩国)
专题命中
推理与问题求解
:LLM(summary_cn,abstract);large language model(abstract);language model(abstract);prompting(abstract)