通过适配概率调度程序在本地移动云中实现及时数据交换的节能方法

Muhammad Musa, B. Modi
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引用次数: 0

摘要

移动云计算已成为一项举足轻重的技术,它使移动设备能够利用外部资源托管应用程序,并大大减少了延迟。最近的研究提出了 "本地移动云 "的概念,即由邻近的移动设备组成,将复杂的实时应用程序卸载到附近的设备上,从而最大限度地降低能源需求和通信延迟。这项研究引入了一种基于概率任务调度技术的更高效任务调度算法。这将计算从多个源节点转移到更近的处理节点。使用 OMNET++ 建立的本地移动云仿真模型用于评估任务调度算法的性能。此外,还对任务调度器与其他调度方案进行了比较分析,以评估能耗和进程完成时间方面的性能。研究结果表明,概率任务调度技术改善了计算时间,并进一步节约了能源资源需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Energy Conservation through an Adapted Probabilistic Scheduler for Timely Data Exchange in Local Mobile Cloud
Mobile Cloud Computing has emerged as a pivotal technology, enabling mobile devices to harness external resources for hosting  applications and significantly reducing latency. Recent research introduces the concept of a 'local mobile cloud,' formed by proximate  mobile devices, to offload complex real-time applications to nearby devices, which minimizes energy requirement, and communication latency. This research introduces a more efficient task scheduling algorithm that is based on probabilistic task scheduling technique. This  moves computations from multiple source nodes to closer processing nodes. A simulation model for local mobile clouds using OMNET++,  is used for assessing the performance of the task scheduling algorithm. Additionally, a comparative analysis of the task scheduler with  alternative scheduling schemes was conducted to evaluate performance in terms of the energy consumption, and process completion  time. The outcome of the study showed that the probabilistic task scheduling technique improved the computing time and further  conserved the energy resource requirement.  
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