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Computing Offloading Based on TD3 Algorithm in Cache-Assisted Vehicular NOMA-MEC Networks

delete2023-11-09
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周天清 cover
周天清 (Tianqing Zhou)
M
Ming Xu
D
Dong Qin *
X
Xuefang Nie
X
Xuan Li
C
Chunguo Li
DOI:10.3390/s23229064delete
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Abstract

Abstract

En 中文
In this paper, in order to reduce the energy consumption and time of data transmission, the non-orthogonal multiple access (NOMA) and mobile edge caching technologies are jointly considered in mobile edge computing (MEC) networks. As for the cache-assisted vehicular NOMA-MEC networks, a problem of minimizing the energy consumed by vehicles (mobile devices, MDs) is formulated under time and resource constraints, which jointly optimize the computing resource allocation, subchannel selection, device association, offloading and caching decisions. To solve the formulated problem, we develop an effective joint computation offloading and task-caching algorithm based on the twin-delayed deep deterministic policy gradient (TD3) algorithm. Such a TD3-based offloading (TD3O) algorithm includes a designed action transformation (AT) algorithm used for transforming continuous action space into a discrete one. In addition, to solve the formulated problem in a non-iterative manner, an effective heuristic algorithm (HA) is also designed. As for the designed algorithms, we provide some detailed analyses of computation complexity and convergence, and give some meaningful insights through simulation. Simulation results show that the TD3O algorithm could achieve lower local energy consumption than several benchmark algorithms, and HA could achieve lower consumption than the completely offloading algorithm and local execution algorithm.
Keywords:
TD3
MEC
NOMA
vehicular networks
edge cache
computation offloading
resource allocation
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Journal

Sensors cover
Sensors
IF:
3.5
Papers:
7.1W
Citations:
20.9W

Organization

N
Nanchang University
Scholars:
3.7W
Papers: 2.1W
Citations: 3.7W
S
southeast university - china
Scholars:
5.3W
Papers: 4.9W
Citations: 57
E
East China Jiaotong University
Scholars:
4.1K
Papers: 2.9K
Citations: 2.9K
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