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Energy-Efficient Decision Making for Mobile Cloud Offloading

机译:移动云卸载的节能决策

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摘要

Mobile cloud offloading migrates heavy computation from mobile devices to remote cloud resources or nearby cloudlets. It is a promising method to alleviate the struggle between resource-constrained mobile devices and resource-hungry mobile applications. Caused by frequently changing location mobile users often see dynamically changing network conditions which have a great impact on the perceived application performance. Therefore, making high-quality offloading decisions at run time is difficult in mobile environments. To balance the energy-delay tradeoff based on different offloading-decision criteria (e.g., minimum response time or energy consumption), an energy-efficient offloading-decision algorithm based on Lyapunov optimization is proposed. The algorithm determines when to run the application locally, when to forward it directly for remote execution to a cloud infrastructure and when to delegate it via a nearby cloudlet to the cloud. The algorithm is able to minimize the average energy consumption on the mobile device while ensuring that the average response time satisfies a given time constraint. Moreover, compared to local and remote execution, the Lyapunov-based algorithm can significantly reduce the energy consumption while only sacrificing a small portion of response time. Furthermore, it optimizes energy better and has less computational complexity than the Lagrange Relaxation based Aggregated Cost (LARAC-based) algorithm.
机译:移动云卸载从移动设备迁移到远程云资源或附近的Cloudlets的重计算。这是一个有希望的方法,可以缓解资源受限的移动设备与资源饥饿的移动应用之间的斗争。由经常变化的位置移动用户造成的移动用户通常会看到动态改变网络条件,这对感知的应用程序性能产生了很大影响。因此,在移动环境中难以在运行时进行高质量的卸载决策。为了基于不同的卸载决策标准(例如,最小响应时间或能耗)来平衡能量延迟概论,提出了一种基于Lyapunov优化优化的节能卸载决策算法。该算法确定何时在本地运行应用程序,何时将其转发到远程执行云基础架构,并且何时通过附近的Cloudlet将其委派给云。该算法能够最小化移动设备上的平均能量消耗,同时确保平均响应时间满足给定的时间约束。此外,与本地和远程执行相比,基于Lyapunov的算法可以显着降低能量消耗,同时仅牺牲一小部分响应时间。此外,它优化能量更好,并且具有比基于拉格朗日放松的聚合成本(基于Larac的)算法更少的计算复杂性。

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