Deep Reinforcement Learning for Computation Offloading and Resource Allocation in Satellite-Terrestrial Integrated Networks

被引:2
|
作者
Wu, Haonan [1 ,2 ,3 ]
Yang, Xiumei [1 ,2 ]
Bu, Zhiyong [1 ,3 ,4 ]
机构
[1] Chinese Acad Sci, Shanghai Inst Microsyst & Informat Technol, Shanghai, Peoples R China
[2] Univ Chinese Acad Sci, Beijing, Peoples R China
[3] ShanghaiTech Univ, Shanghai, Peoples R China
[4] Chinese Acad Sci, Key Lab Wireless Sensor Network & Commun, Shanghai, Peoples R China
关键词
Deep reinforcement learning (DRL); computation offloading; satellite-terrestial integrated network (STIN);
D O I
10.1109/VTC2022-Spring54318.2022.9860361
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Satellite mobile edge computing (SMEC) enhanced satellite-terrestrial integrated networks (STIN) have attracted intensive attention to obtain seamless coverage and provide on-demand computation services. However, the cooperative task execution among low earth orbit (LEO) satellites is largely ignored in the SMEC-STIN. In this paper, we explore a hybrid cloud and edge computing architecture of the SMEC-STIN with coordinated task processing among neighboring LEO satellites. We investigate the computation offloading and resource allocation strategies to minimize the long-term cost in terms of a trade-off between task execution latency and energy consumption. We formulate the optimization problem as a Markov decision process and design a proximal policy optimization based deep reinforcement learning method to approximate the optimal solution with robust training stability and low storage demand. Simulation results validate the effectiveness of our proposed method.
引用
收藏
页数:5
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