Direction-of-Arrival Estimation With Planar Luneburg Lens and Waveguide Metasurface Absorber

被引:0
|
作者
Liu, Lei [1 ,2 ]
Feng, Jie [3 ,4 ]
Mu, Xuanyu [5 ]
Pei, Qingqi [5 ]
Lan, Dapeng [6 ]
Xiao, Ming [7 ]
机构
[1] Xidian Univ, Guangzhou Inst Technol, Guangzhou 510555, Peoples R China
[2] Tongji Univ, Key Lab Embedded Syst & Serv Comp, Minist Educ, Shanghai 201804, Peoples R China
[3] Xidian Univ, Sch Telecommun Engn, State Key Lab Integrated Serv Networks, Xian 710071, Shaanxi, Peoples R China
[4] Xian Univ Posts & Telecommun, Shaanxi Key Lab Informat Commun Network & Secur, Xian 710121, Shaanxi, Peoples R China
[5] Xidian Univ, State Key Lab Integrated Serv Networks, Xian 710071, Peoples R China
[6] Univ Oslo, Dept Informat, N-0373 Oslo, Norway
[7] Royal Inst Technol, Sch Elect Engn & Comp Sci, S-10044 Stockholm, Sweden
基金
瑞典研究理事会; 中国国家自然科学基金; 中国博士后科学基金;
关键词
Task analysis; Resource management; Servers; Collaboration; Edge computing; Cloud computing; Vehicle dynamics; Vehicular edge computing; collaborative computing; on-demand allocation; asynchronous deep reinforcement learning; EDGE; OPTIMIZATION; COMMUNICATION; NETWORKS;
D O I
10.1109/TITS.2023.3249745
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Vehicular Edge Computing (VEC) is enjoying a surge in research interest due to the remarkable potential to reduce response delay and alleviate bandwidth pressure. Facing the ever-growing service applications in VEC, how to effectively aggregate and flexibly schedule ubiquitous network resources for implementing diverse tasks and meeting differentiated demands from numerous vehicular users remains haunting. Toward this end, we investigate collaborative task computing and on-demand resource allocation. The collaborative computing framework in VEC is provided to support deep collaboration and intelligent management of heterogeneous resources widely distributed in vehicles, edge servers and cloud. Based on this framework, the joint optimization problem of distributed task offloading and multi-resource management is formulated with the aim to maximize the system utility by making the optimal task and resource scheduling policy, the novelty of which lies in the exploration of available vehicle resources and the consideration of service migration. In view of the dynamics, randomness and time-variant of vehicular networks, the asynchronous deep reinforcement algorithm is leveraged to find the optimal solution. Extensive simulation experiments are implemented to demonstrate the superiority of our proposed algorithm in terms of response latency compared with full offloading and random offloading.
引用
收藏
页码:15513 / 15526
页数:14
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