Bridging the Agent-World Gap: Text World Models for LLM-based Agents
弥合智能体-世界鸿沟:面向基于LLM的智能体的文本世界模型
Yixia Li, Hongru Wang, Peng Lai, Zhiwen Ruan, He Zhu, Youxin Zhu, Ganlong Zhao, Minda Hu, Yun Chen, Sibei Yang, Peng Li, Jeff Z. Pan, Jia Pan, Guanhua Chen, Yang Liu, Guanbin Li
机构
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Southern University of Science and Technology(南方科技大学)
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University of Edinburgh(爱丁堡大学)
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Peking University(北京大学)
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Sun Yat-sen University(中山大学)
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The Chinese University of Hong Kong(香港中文大学)
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Shanghai University of Finance and Economics(上海财经大学)
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Tsinghua University(清华大学)
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The University of Hong Kong(香港大学)
ContactGuard: Pre-Contact Execution Monitoring with Action-Conditioned Latent World Models
ContactGuard:基于动作条件潜世界模型的接触前执行监控器
Gehan Zheng, Matthew Johnson-Roberson, Weiming Zhi
机构
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College of Connected Computing, Vanderbilt University(范德堡大学连接计算学院)
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School of Computer Science, The University of Sydney(悉尼大学计算机学院)
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Australian Centre for Robotics, The University of Sydney(悉尼大学澳大利亚机器人中心)
One Image is All You Need: Agentic One-Shot Image Generation via Text-Based World Models for Long-Tail Spatial Perception
一图足矣:基于文本世界模型的智能体单样本图像生成用于长尾空间感知
Keqin Zeng, Shuting Su, Shihao Lin, Ziyue Li, Rui Zhao
机构
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Tsinghua University(清华大学)
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SenseTime Research(商汤科技研究院)
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Sun Yat-Sen University(中山大学)
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Technical University of Munich(慕尼黑工业大学)
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Heilbronn Data Science Center(海尔布隆数据科学中心)
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Munich Data Institute(慕尼黑数据研究所)
Orbit-Planner: Towards Latent World Models for On-Orbit Obstacle Avoidance of Satellite Agents
Orbit-Planner:面向卫星智能体在轨避障的潜世界模型
Zhijian Li, Chao Ren, Peijin Wang, Xian Sun
机构
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Aerospace Information Research Institute, Chinese Academy of Sciences(中国科学院空天信息创新研究院)
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School of Electronic, Electrical and Communication Engineering, University of Chinese Academy of Sciences(中国科学院大学电子电气与通信工程学院)
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University of Chinese Academy of Sciences(中国科学院大学)
Comments42 pages, 18 figures. Extended version of a paper presented at ICAART 2026; submitted for consideration in the ICAART 2026 post-publication selected-papers volume in Lecture Notes in Artificial Intelligence
CommentsWorking paper. Includes public no-label benchmark cases and dry-lab evaluation artifacts. No wet-lab, patient-level, clinical, regulatory, or investment validation is claimed