基于组合分数的移动Ad-hoc云设备选择优化

B. Venkatraman, Faisal Zaman, A. Karmouch
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引用次数: 5

摘要

在利用移动设备能力执行资源密集型任务时,许多研究已经证明,本地设备资源无法完全执行任务。因此,必须通过将作业卸载到远程位置执行,将设备内部资源投入生产使用。然而,在那些网络基础设施昂贵或不方便使用的环境中,传统的云将无法使用。这就产生了一种新颖的“即时”计算形式,它使计算环境最接近用户,比如移动自组织云(MAC)。然而,通过遵循这一策略,有更多复杂的前所未有的问题需要解决,例如不断的设备移动,外部设备的中断等等。因此,本文提请注意MAC中的任务调度过程。我们提出了一个基于线性规划的模型,通过描述主要约束来最小化参与ad-hoc云组合的设备数量。在这样做的过程中,我们努力提供更快的特设云组合形成,从而在MAC中更快地执行任务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of device selection in a Mobile Ad-hoc cloud based on composition score
While tapping onto the mobile device capabilities for execution of resource intensive tasks, it has been proven by many studies that the local device resources are unable to completely perform the task execution. Therefore, it becomes imperative that the intra-device resources are put to productive use by offloading the jobs to a remote location for execution. However, in those settings where the network infrastructure is either expensive or inconvenient to use, the traditional cloud would be beyond reachability. This gave rise to the novel “on-the-fly” forms of computing that enables a computation environment closest to the user like a Mobile Ad-hoc Cloud (MAC). Nevertheless, by following this strategy there are more complex unprecedented problems such as constant device movements, disruptions in the external device to name a few that needs to be addressed. Hence, this paper draws attention to the task scheduling process in an MAC. We propose a linear Programming based model to minimize the number of devices participating in an ad-hoc cloud composition by delineating major constraints. In doing so, it is our endeavor to provide a faster ad-hoc cloud composition formation, which leads to quicker task execution in an MAC.
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