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This article explores the dynamic influence of computational entities based on multi-agent systems theory (SMA) combined with large language models (LLM), which are characterized by their ability to simulate complex human interactions, as a…

Artificial Intelligence · Computer Science 2024-03-18 Carlos Jose Xavier Cruz

Large language models (LLMs) are increasingly being deployed as autonomous agents on behalf of institutions and individuals in economic, political, and social settings that involve negotiation. Yet this trend carries significant risks if…

Computer Science and Game Theory · Computer Science 2025-12-19 Manuel S. Ríos , Ruben F. Manrique , Nicanor Quijano , Luis F. Giraldo

This paper presents a novel design of a multi-agent system framework that applies large language models (LLMs) to automate the parametrization of simulation models in digital twins. This framework features specialized LLM agents tasked with…

Artificial Intelligence · Computer Science 2024-07-23 Yuchen Xia , Daniel Dittler , Nasser Jazdi , Haonan Chen , Michael Weyrich

Agent-based modeling (ABM) has long been used in economics to study human behavior, and large language model (LLM) agents now enable new forms of social and economic simulation. While prior work has discovered strategic deception by LLM…

Artificial Intelligence · Computer Science 2026-05-19 Shijun Lei , Quang Nguyen , Swapneel S Mehta , Zeping Li , Huichuan Fu , Xiaolong Zheng , Siki Chen , Yunji Liang , Philip Torr , Zhenfei Yin

Large Language Model (LLM)-based autonomous agents are expected to play a vital role in the evolution of 6G networks, by empowering real-time decision-making related to management and service provisioning to end-users. This shift…

Artificial Intelligence · Computer Science 2025-09-04 Ilias Chatzistefanidis , Navid Nikaein

Large Language Models (LLMs) have been used to make decisions in complex scenarios, where they need models to think deeply, reason logically, and decide wisely. Many existing studies focus solely on multi-round conversations in social tasks…

Artificial Intelligence · Computer Science 2025-09-26 Yiwen Zhang , Ziang Chen , Fanqi Kong , Yizhe Huang , Xue Feng

Large Language Models (LLMs) are increasingly deployed within agentic systems - collections of interacting, LLM-powered agents that execute complex, adaptive workflows using memory, tools, and dynamic planning. While enabling powerful new…

Artificial Intelligence · Computer Science 2025-11-21 Dany Moshkovich , Sergey Zeltyn

Large Language Model (LLM) agents represent a promising shift in human-AI interaction, moving beyond passive prompt-response systems to autonomous agents capable of reasoning, planning, and goal-directed action. While LLM agents are…

Computation and Language · Computer Science 2026-02-06 Weiwen Liu , Jiarui Qin , Xu Huang , Xingshan Zeng , Yunjia Xi , Jianghao Lin , Chuhan Wu , Yasheng Wang , Lifeng Shang , Ruiming Tang , Defu Lian , Yong Yu , Weinan Zhang

The rapid shift from stateless large language models (LLMs) to autonomous, goal-driven agents raises a central question: When is agentic AI truly necessary? While agents enable multi-step reasoning, persistent memory, and tool…

Artificial Intelligence · Computer Science 2025-12-03 Shubhi Asthana , Bing Zhang , Chad DeLuca , Ruchi Mahindru , Hima Patel

We introduce Kimi K2.5, an open-source multimodal agentic model designed to advance general agentic intelligence. K2.5 emphasizes the joint optimization of text and vision so that two modalities enhance each other. This includes a series of…

Computation and Language · Computer Science 2026-02-04 Kimi Team , Tongtong Bai , Yifan Bai , Yiping Bao , S. H. Cai , Yuan Cao , Y. Charles , H. S. Che , Cheng Chen , Guanduo Chen , Huarong Chen , Jia Chen , Jiahao Chen , Jianlong Chen , Jun Chen , Kefan Chen , Liang Chen , Ruijue Chen , Xinhao Chen , Yanru Chen , Yanxu Chen , Yicun Chen , Yimin Chen , Yingjiang Chen , Yuankun Chen , Yujie Chen , Yutian Chen , Zhirong Chen , Ziwei Chen , Dazhi Cheng , Minghan Chu , Jialei Cui , Jiaqi Deng , Muxi Diao , Hao Ding , Mengfan Dong , Mengnan Dong , Yuxin Dong , Yuhao Dong , Angang Du , Chenzhuang Du , Dikang Du , Lingxiao Du , Yulun Du , Yu Fan , Shengjun Fang , Qiulin Feng , Yichen Feng , Garimugai Fu , Kelin Fu , Hongcheng Gao , Tong Gao , Yuyao Ge , Shangyi Geng , Chengyang Gong , Xiaochen Gong , Zhuoma Gongque , Qizheng Gu , Xinran Gu , Yicheng Gu , Longyu Guan , Yuanying Guo , Xiaoru Hao , Weiran He , Wenyang He , Yunjia He , Chao Hong , Hao Hu , Jiaxi Hu , Yangyang Hu , Zhenxing Hu , Ke Huang , Ruiyuan Huang , Weixiao Huang , Zhiqi Huang , Tao Jiang , Zhejun Jiang , Xinyi Jin , Yu Jing , Guokun Lai , Aidi Li , C. Li , Cheng Li , Fang Li , Guanghe Li , Guanyu Li , Haitao Li , Haoyang Li , Jia Li , Jingwei Li , Junxiong Li , Lincan Li , Mo Li , Weihong Li , Wentao Li , Xinhang Li , Xinhao Li , Yang Li , Yanhao Li , Yiwei Li , Yuxiao Li , Zhaowei Li , Zheming Li , Weilong Liao , Jiawei Lin , Xiaohan Lin , Zhishan Lin , Zichao Lin , Cheng Liu , Chenyu Liu , Hongzhang Liu , Liang Liu , Shaowei Liu , Shudong Liu , Shuran Liu , Tianwei Liu , Tianyu Liu , Weizhou Liu , Xiangyan Liu , Yangyang Liu , Yanming Liu , Yibo Liu , Yuanxin Liu , Yue Liu , Zhengying Liu , Zhongnuo Liu , Enzhe Lu , Haoyu Lu , Zhiyuan Lu , Junyu Luo , Tongxu Luo , Yashuo Luo , Long Ma , Yingwei Ma , Shaoguang Mao , Yuan Mei , Xin Men , Fanqing Meng , Zhiyong Meng , Yibo Miao , Minqing Ni , Kun Ouyang , Siyuan Pan , Bo Pang , Yuchao Qian , Ruoyu Qin , Zeyu Qin , Jiezhong Qiu , Bowen Qu , Zeyu Shang , Youbo Shao , Tianxiao Shen , Zhennan Shen , Juanfeng Shi , Lidong Shi , Shengyuan Shi , Feifan Song , Pengwei Song , Tianhui Song , Xiaoxi Song , Hongjin Su , Jianlin Su , Zhaochen Su , Lin Sui , Jinsong Sun , Junyao Sun , Tongyu Sun , Flood Sung , Yunpeng Tai , Chuning Tang , Heyi Tang , Xiaojuan Tang , Zhengyang Tang , Jiawen Tao , Shiyuan Teng , Chaoran Tian , Pengfei Tian , Ao Wang , Bowen Wang , Chensi Wang , Chuang Wang , Congcong Wang , Dingkun Wang , Dinglu Wang , Dongliang Wang , Feng Wang , Hailong Wang , Haiming Wang , Hengzhi Wang , Huaqing Wang , Hui Wang , Jiahao Wang , Jinhong Wang , Jiuzheng Wang , Kaixin Wang , Linian Wang , Qibin Wang , Shengjie Wang , Shuyi Wang , Si Wang , Wei Wang , Xiaochen Wang , Xinyuan Wang , Yao Wang , Yejie Wang , Yipu Wang , Yiqin Wang , Yucheng Wang , Yuzhi Wang , Zhaoji Wang , Zhaowei Wang , Zhengtao Wang , Zhexu Wang , Zihan Wang , Zizhe Wang , Chu Wei , Ming Wei , Chuan Wen , Zichen Wen , Chengjie Wu , Haoning Wu , Junyan Wu , Rucong Wu , Wenhao Wu , Yuefeng Wu , Yuhao Wu , Yuxin Wu , Zijian Wu , Chenjun Xiao , Jin Xie , Xiaotong Xie , Yuchong Xie , Yifei Xin , Bowei Xing , Boyu Xu , Jianfan Xu , Jing Xu , Jinjing Xu , L. H. Xu , Lin Xu , Suting Xu , Weixin Xu , Xinbo Xu , Xinran Xu , Yangchuan Xu , Yichang Xu , Yuemeng Xu , Zelai Xu , Ziyao Xu , Junjie Yan , Yuzi Yan , Guangyao Yang , Hao Yang , Junwei Yang , Kai Yang , Ningyuan Yang , Ruihan Yang , Xiaofei Yang , Xinlong Yang , Ying Yang , Yi Yang , Yi Yang , Zhen Yang , Zhilin Yang , Zonghan Yang , Haotian Yao , Dan Ye , Wenjie Ye , Zhuorui Ye , Bohong Yin , Chengzhen Yu , Longhui Yu , Tao Yu , Tianxiang Yu , Enming Yuan , Mengjie Yuan , Xiaokun Yuan , Yang Yue , Weihao Zeng , Dunyuan Zha , Haobing Zhan , Dehao Zhang , Hao Zhang , Jin Zhang , Puqi Zhang , Qiao Zhang , Rui Zhang , Xiaobin Zhang , Y. Zhang , Yadong Zhang , Yangkun Zhang , Yichi Zhang , Yizhi Zhang , Yongting Zhang , Yu Zhang , Yushun Zhang , Yutao Zhang , Yutong Zhang , Zheng Zhang , Chenguang Zhao , Feifan Zhao , Jinxiang Zhao , Shuai Zhao , Xiangyu Zhao , Yikai Zhao , Zijia Zhao , Huabin Zheng , Ruihan Zheng , Shaojie Zheng , Tengyang Zheng , Junfeng Zhong , Longguang Zhong , Weiming Zhong , M. Zhou , Runjie Zhou , Xinyu Zhou , Zaida Zhou , Jinguo Zhu , Liya Zhu , Xinhao Zhu , Yuxuan Zhu , Zhen Zhu , Jingze Zhuang , Weiyu Zhuang , Ying Zou , Xinxing Zu

This paper explores how Large Language Models (LLMs) behave in a classic experimental finance paradigm widely known for eliciting bubbles and crashes in human participants. We adapt an established trading design, where traders buy and sell…

Trading and Market Microstructure · Quantitative Finance 2025-10-14 Thomas Henning , Siddhartha M. Ojha , Ross Spoon , Jiatong Han , Colin F. Camerer

There is a growing demand for agentic AI technologies for a range of downstream applications like customer service and personal assistants. For applications where the agent needs to interact with a person, real-time low-latency…

In recent years, the research of multi-agent systems has taken a direction to explore larger and more complex models to fulfill sophisticated tasks. We point out two possible pitfalls that might be caused by increasing complexity;…

Multiagent Systems · Computer Science 2025-11-07 Umut Çalıkyılmaz , Nitin Nayak , Jinghua Groppe , Sven Groppe

Large language models (LLMs) are increasingly integrated into sensitive workflows, raising the stakes for adversarial robustness and safety. This paper introduces Transient Turn Injection(TTI), a new multi-turn attack technique that…

Cryptography and Security · Computer Science 2026-04-24 Naheed Rayhan , Sohely Jahan

Recent advances in large language models (LLMs) have demonstrated the power of reasoning through self-generated chains of thought. Multiple reasoning agents can collaborate to raise joint reasoning quality above individual outcomes.…

Artificial Intelligence · Computer Science 2025-05-19 Chan-Jan Hsu , Davide Buffelli , Jamie McGowan , Feng-Ting Liao , Yi-Chang Chen , Sattar Vakili , Da-shan Shiu

We propose a variant of Alternating-time Temporal Logic (ATL) grounded in the agents' operational know-how, as defined by their libraries of abstract plans. Inspired by ATLES, a variant itself of ATL, it is possible in our logic to…

Artificial Intelligence · Computer Science 2016-07-05 Nitin Yadav , Sebastian Sardina

Agentic AI systems, built upon large language models (LLMs) and deployed in multi-agent configurations, are redefining intelligence, autonomy, collaboration, and decision-making across enterprise and societal domains. This review presents a…

Artificial Intelligence · Computer Science 2025-12-19 Shaina Raza , Ranjan Sapkota , Manoj Karkee , Christos Emmanouilidis

Large language models (LLMs) excel in natural language generation but often confidently produce incorrect responses, especially in tasks like mathematical reasoning. Chain-of-thought prompting, self-verification, and multi-agent debate are…

Computation and Language · Computer Science 2026-03-30 Mahmood Hegazy

This work discusses how to build more rational language and multimodal agents and what criteria define rationality in intelligent systems. Rationality is the quality of being guided by reason, characterized by decision-making that aligns…

Artificial Intelligence · Computer Science 2025-02-18 Bowen Jiang , Yangxinyu Xie , Xiaomeng Wang , Yuan Yuan , Zhuoqun Hao , Xinyi Bai , Weijie J. Su , Camillo J. Taylor , Tanwi Mallick

Large Language Models (LLMs) are evolving into autonomous trading agents, yet existing benchmarks often overlook the interplay between architectural reasoning and strategy consistency. We propose Strat-LLM, a framework grounded in…

Artificial Intelligence · Computer Science 2026-05-08 Wenliang Huang , Zengyi Yu
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