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Energy-Efficient Computation Offloading in Vehicular Edge Cloud Computing

机译:在车辆边缘云计算中的节能计算卸载

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摘要

With the development of electrification, automation, and interconnection of the automobile industry, the demand for vehicular computing has entered an explosive growth era. Massive low time-constrained and computation-intensive vehicular computing operations bring new challenges to vehicles, such as excessive computing power and energy consumption. Computation offloading technology provides a sustainable and low-cost solution to these problems. In this article, we study an adaptive wireless resource allocation strategy of computation offloading service under a three-layered vehicular edge cloud computing framework. We model the computation offloading process at the minimum assignable wireless resource block level, which can better adapt to vehicular computation offloading scenarios and can also rapidly evolve to the 5G network. Subsequently, we propose a method to measure the cost-effectiveness of allocated resources and energy savings, named value density function. Interestingly, with respect to the amount of allocation resource, it can obtain the maximum value density when offloading energy consumption equals to half of local energy consumption. Finally, we propose a low-complexity heuristic resource allocation algorithm based on this novel theoretical discovery. Numerical results corroborate that our designed algorithm can gain above 80& x0025; execution time conservation and 62& x0025; conservation on energy consumption, and it exhibits fast convergence and superior performance compared to benchmark solutions.
机译:随着汽车工业的电气化,自动化和互连的发展,对车辆计算的需求已进入爆炸性的增长时代。大规模的低时间约束和计算密集型车辆计算操作对车辆带来了新的挑战,例如过度计算能力和能耗。计算卸载技术为这些问题提供了可持续和低成本的解决方案。在本文中,我们在三层车辆边缘云计算框架下研究计算卸载服务的自适应无线资源分配策略。我们在最小可分配的无线资源块级模型计算卸载过程,这可以更好地适应车辆计算卸载方案,并且也可以快速地发展到5G网络。随后,我们提出了一种测量分配资源和节能,命名值密度函数的成本效益的方法。有趣的是,对于分配资源的数量,当卸载能量消耗等于局部能量消耗的一半时,它可以获得最大值密度。最后,我们提出了一种基于这一新颖理论发现的低复杂性启发式资源分配算法。数值结果证实了我们设计的算法可以获得80&x0025以上;执行时间保护和62&x0025;与基准解决方案相比,能耗保护,展示快速收敛性和卓越的性能。

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