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RAG / 检索增强生成

检索增强生成、向量检索、知识库问答和面向大模型的搜索系统。

2026-05-28 至 2026-05-28 共收录 3 信号源:cs.IR, cs.CL, cs.AI, cs.DB

1. 多模态RAG 3 篇

2502.17832 2026-05-28 cs.LG cs.AI cs.CR cs.CV 91%

MM-PoisonRAG: Disrupting Multimodal RAG with Local and Global Poisoning Attacks

MM-PoisonRAG:通过局部和全局投毒攻击破坏多模态RAG

Hyeonjeong Ha, Qiusi Zhan, Jeonghwan Kim, Dimitrios Bralios, Saikrishna Sanniboina, Nanyun Peng, Kai-Wei Chang, Daniel Kang, Heng Ji

机构 * University of Illinois Urbana-Champaign(伊利诺伊大学厄巴纳-香槟分校) University of California Los Angeles(加州大学洛杉矶分校)

专题命中 多模态RAG :RAG(title,title_cn);retrieval-augmented generation(abstract);分类 cs.AI

AI总结 提出MM-PoisonRAG框架,通过局部投毒攻击(LPA)和全局投毒攻击(GPA)两种策略,系统研究多模态检索增强生成(RAG)在知识投毒下的脆弱性,实验表明攻击成功率高达56%且能绕过现有防御。

Comments Code is available at https://github.com/HyeonjeongHa/MM-PoisonRAG

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2605.27378 2026-05-28 cs.CL cs.CV cs.MA 81%

OralAgent: Integrating Reasoning, Tools, and Knowledge for Interactive Dental Image Analysis

OralAgent: 融合推理、工具与知识的交互式牙科影像分析

Jing Hao, Siyuan Dai, Yongxin Zhang, Yuci Liang, Jiamin Wu, Jiahao Bao, Yuxuan Fan, Zanting Ye, Yanpeng Sun, Xinyu Zhang, Ming Hu, Liang Zhan, James Kit Hon Tsoi, Linlin Shen, Junjun He, Kuo Feng Hung

机构 * Faculty of Dentistry, the University of Hongkong, Hong Kong SAR, China(香港大学牙科学院,中国香港特别行政区) Department of Electrical and Computer Engineering, University of Pittsburgh, Pittsburgh, PA, USA(匹兹堡大学电气与计算机工程系,美国宾夕法尼亚州匹兹堡) Shenzhen University, China(深圳大学,中国) Department of Craniomaxillofacial Surgery, Shanghai Ninth People’s Hospital, China(上海第九人民医院口腔颌面外科部,中国) Nanyang technological University, Singapore(南洋理工大学,新加坡) School of Biomedical Engineering, Southern Medical University, China(南方医科大学生物医学工程学院,中国) Singapore University of Technology and Design, Singapore(新加坡科技设计大学,新加坡) University of Auckland, new zealand(奥克兰大学,新西兰) Shanghai Artificial Intelligence Laboratory , China(上海人工智能实验室,中国)

专题命中 多模态RAG :RAG(abstract,abstract_cn);retrieval-augmented generation(abstract);knowledge retrieval(abstract);分类 cs.CL

AI总结 提出首个牙科专用AI智能体OralAgent,通过集成22种视觉分析工具和368本经典牙科教科书,实现多模态推理、工具决策与知识检索的自动化框架,在多个基准上达到最优性能。

Comments 14 pages, 7 figures, 6 tables

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2605.28607 2026-05-28 cs.AI cs.CL 79%

Adaptive Multimodal Agents-Based Framework for Automatic Workflow Execution

基于自适应多智能体框架的自动工作流执行

Susanna Cifani, Mario Luca Bernardi, Marta Cimitile

机构 * Sapienza University of Rome(罗马萨皮恩扎大学) Department of Engineering University of Sannio(萨尼奥大学工程系) Faculty of Jurisprudence Unitelma Sapienza University(法理学院萨皮恩扎大学)

专题命中 多模态RAG :RAG(abstract,abstract_cn);retrieval-augmented generation(abstract);分类 cs.CL、cs.AI

AI总结 提出一种多模态多智能体框架,通过离线构建拓扑知识库和在线自适应检索增强生成与闭环协作验证,实现自动工作流执行。

Comments Copyright 2026 IEEE. Personal use of this material is permitted. Permission from IEEE must be obtained for all other uses. Accepted for publication at the 2026 IEEE International Conference on Evolving and Adaptive Intelligent Systems (EAIS 2026)

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