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An Optimal Low-Complexity Policy for Cache-Aided Computation Offloading

delete2019-01-01
delete7
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OA
AI
N
Nicola di Pietro *
E
Emilio Calvanese Strinati
DOI:10.1109/ACCESS.2019.2959986delete
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Abstract

Abstract

En 中文
Computation caching is a novel strategy to improve the performance of computation offloading in wireless networks endowed with edge cloud or fog computing capabilities. It consists in preemptively storing in caches located at the edge of the network the results of computations that users offload to the edge cloud. The goal is to avoid redundant and repetitive processing of the same tasks, thus streamlining the offloading process and improving the exploitation of both the users' and the network's resources. In this paper, a novel computation caching policy is deflned, investigated, and benchmarked against stateof-the-art solutions. The proposed new policy is built on three characterizing parameters of offloadable computational tasks: popularity, input size, and output size. This work proves the crucial importance of including these parameters altogether in the design of efflcient policies. Our proposed policy has low computational complexity and is numerically shown to achieve optimality for several performance indicators and to yield signiflcantly better results compared to the other analyzed policies. This is shown in both a singleand a multi-cell scenario, where a serving small cell has access to its neighboring cells' caches via backhaul. In this paper, the beneflts of computation caching are highlighted and estimated through extensive numerical simulations in terms of reduction of uplink trafflc, communication and computation costs, offloading delay, and computational resource outage.
Keywords:
Computation caching
5G
multi-access edge computing
MEC
fog computing
computation offloading
small cell
energy efficiency
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IEEE Access cover
IEEE Access
IF:
3.6
Papers:
9.8W
Citations:
29.4W

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C
CEA
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Papers: 2.3W
Citations: 62