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摘要:
The rapid growth of mobile internet services has yielded a variety of computation-intensive applications such as virtual/augmented reality. Mobile Edge Computing (MEC), which enables mobile terminals to offload computation tasks to servers located at the edge of the cellular networks, has been considered as an efficient approach to relieve the heavy computational burdens and realize an efficient computation offloading. Driven by the consequent requirement for proper resource allocations for computation offloading via MEC, in this paper, we propose a Deep-Q Network (DQN) based task offloading and resource allocation algorithm for the MEC. Specifically, we consider a MEC system in which every mobile terminal has multiple tasks offloaded to the edge server and design a joint task offloading decision and bandwidth allocation optimization to minimize the overall offloading cost in terms of energy cost, computation cost, and delay cost. Although the proposed optimization problem is a mixed integer nonlinear programming in nature, we exploit an emerging DQN technique to solve it. Extensive numerical results show that our proposed DQN-based approach can achieve the near-optimal performance。
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篇名 Deep reinforcement learning-based joint task offloading and bandwidth allocation for multi-user mobile edge computing
来源期刊 数字通信与网络:英文版 学科 工学
关键词 MOBILE EDGE COMPUTING JOINT computation OFFLOADING and resource allocation Deep-Q network
年,卷(期) sztxywlywb_2019,(1) 所属期刊栏目
研究方向 页码范围 10-17
页数 8页 分类号 TN
字数 语种
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研究主题发展历程
节点文献
MOBILE
EDGE
COMPUTING
JOINT
computation
OFFLOADING
and
resource
allocation
Deep-Q
network
研究起点
研究来源
研究分支
研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
数字通信与网络:英文版
季刊
2468-5925
50-1212/TN
重庆南岸区崇文路2号重庆邮电大学数字通信
78-45
出版文献量(篇)
11481
总下载数(次)
2
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