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University of Edinburgh(爱丁堡大学)

2026-07-14 至 2026-07-14 共收录 1
2607.09798 2026-07-14 cs.LG cs.AI cs.NI 新提交

JEPA for AI-Native 6G: Predictive Representations and Open Challenges

用于人工智能原生6G的联合嵌入预测架构:预测表示与开放挑战

Sheikh Salman Hassan, Irshad A. Meer, Almoatssimbillah Saifaldawla, Yan Kyaw Tun, Mustafa Ozger, Madyan Alsenwi, Nguyen Van Huynh, Woong-Hee Lee, Cedomir Stefanovic, Mathini Sellathurai, Henk Wymeersch, Tharmalingam Ratnarajah

机构 * IDCoM, University of Edinburgh(爱丁堡大学IDCoM研究所) KTH Royal Institute of Technology(瑞典皇家理工学院) SnT, University of Luxembourg(卢森堡大学SnT) Department of Electronic Systems, Aalborg University(奥尔堡大学电子系统系) School of Computer Science and Informatics, University of Liverpool(利物浦大学计算机科学与信息学院) Division of Electronics and Electrical Engineering, Dongguk University(东国大学电子与电气工程系) School of Engineering and Physical Sciences, Heriot-Watt University(赫瑞瓦特大学工程与物理科学学院) Department of Electrical Engineering, Chalmers University of Technology(查尔姆斯理工大学电气工程系) Department of Electrical and Computer Engineering, San Diego State University(圣地亚哥州立大学电气与计算机工程系)

AI总结 本文围绕用于6G智能的联合嵌入预测架构(JEPA)展开。介绍其训练机制等,通过波束管理案例说明能提升标签效率与鲁棒性,还指出在多时间尺度预测等方面存在开放挑战。

Comments 14 pages, 4 figures, 3 tables. Tutorial and review on Joint-Embedding Predictive Architecture (JEPA) for AI-native 6G. Submitted to IEEE Communications Magazine

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