ProvenanceGuard: Source-Aware Factuality Verification for MCP-Based LLM Agents
ProvenanceGuard: 基于MCP的LLM智能体的源感知事实性验证
Ander Alvarez, Santhiya Rajan, Samuel Mugel, Román Orús
机构
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Multiverse Computing
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Parque Cientifico y Tecnológico de Gipuzkoa(吉普斯夸科技园)
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Centre for Social Innovation(社会创新中心)
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Donostia International Physics Center(多诺斯蒂亚国际物理中心)
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Ikerbasque Foundation for Science(伊克尔巴斯克科学基金会)
机构
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DeepWisdom(深智科技)
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The Hong Kong University of Science and Technology (Guangzhou)(香港科技大学(广州))
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Renmin University of China(中国人民大学)
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University of California, Los Angeles(加州大学洛杉矶分校)
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Agent Universe(智能体宇宙)
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McGill University(麦吉尔大学)
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Yale University(耶鲁大学)
Comments23 pages, 5 figures, 8 tables. Simulation-only negative empirical study and human-supervised AI-assisted evidence audit. No live trading or investment advice. Code and available artifacts: https://github.com/AyoubJadouli/Quantbot-Research-Framework
机构
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Allen Discovery Center at Tufts University(塔夫茨大学艾伦发现中心)
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Wyss Institute for Biologically Inspired Engineering at Harvard University(哈佛大学威斯生物启发工程研究所)
Measuring AI Ability to Complete Long Software Tasks
衡量AI完成长期软件任务的能力
Thomas Kwa, Ben West, Joel Becker, Amy Deng, Katharyn Garcia, Max Hasin, Sami Jawhar, Megan Kinniment, Nate Rush, Sydney Von Arx, Ryan Bloom, Thomas Broadley, Haoxing Du, Brian Goodrich, Nikola Jurkovic, Luke Harold Miles, Seraphina Nix, Tao Lin, Chris Painter, Neev Parikh, David Rein, Lucas Jun Koba Sato, Hjalmar Wijk, Daniel M. Ziegler, Elizabeth Barnes, Lawrence Chan
机构
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Model Evaluation & Threat Research (METR)(模型评估与威胁研究(METR))
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Ohm Chip
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Anthropic
Sustainable Hybrid Document-Routed Retrieval for Financial RAG: Resolving the Robustness-Precision Trade-off
通过混合文档路由检索解决金融RAG中的鲁棒性与精度权衡
Zhiyuan Cheng, Longying Lai, Yue Liu
机构
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organization= School of Engineering, Stanford University , city= Stanford , state= CA , country= USA
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organization= Simon Business School, University of Rochester , city= Rochester , state= NY , country= USA
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organization= Accounting \& Information Systems, Rutgers University , city= Newark , state= NJ , country= USA
Hybrid Fact-Checking that Integrates Knowledge Graphs, Large Language Models, and Search-Based Retrieval Agents Improves Interpretable Claim Verification
混合事实核查:集成知识图谱、大语言模型和基于搜索的检索代理提高可解释的声明验证
Shaghayegh Kolli, Richard Rosenbaum, Timo Cavelius, Lasse Strothe, Andrii Lata, Jana Diesner