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Energy-Aware Scheduling of Real-Time Workflow Applications in Clouds Utilizing DVFS and Approximate Computations

机译:利用DVFS和近似计算在云中实时工作流应用程序进行能源感知调度

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As cloud services become more ubiquitous, green cloud computing attracts significant attention from both academia and industry. Towards this direction, in this paper we propose an energy-aware heuristic for the scheduling of real-time workflow applications in a cloud environment. Our approach utilizes per-core Dynamic Voltage and Frequency Scaling (DVFS) on the underlying heterogeneous multi-core processors and approximate computations, in order to fill in schedule gaps. Our goal is to provide timeliness and energy efficiency by trading off result precision, while keeping the average result precision of the completed jobs at an acceptable level. The proposed scheduling heuristic is compared to two other baseline policies. The simulation experiments reveal that our approach outperforms the other examined policies, providing promising results. To the best of our knowledge, such a technique that combines per-core DVFS and approximate computations in order to utilize schedule gaps in a virtualized environment with real-time workflow applications has never been discussed in the literature before.
机译:随着云服务变得越来越普遍,绿色云计算吸引了学术界和行业的极大关注。朝着这个方向,在本文中,我们提出了一种能量感知启发式方法,用于在云环境中调度实时工作流应用程序。我们的方法利用底层异构多核处理器上的每核动态电压和频率缩放(DVFS)和近似计算,以填补进度表的空白。我们的目标是通过权衡结果精度来提供及时性和能源效率,同时将已完成工作的平均结果精度保持在可接受的水平。将拟议的调度启发式方法与其他两个基准策略进行比较。仿真实验表明,我们的方法优于其他已检查的策略,提供了可喜的结果。据我们所知,这种技术结合了每核DVFS和近似计算,以便利用实时工作流应用程序在虚拟化环境中利用计划间隔,这在以前的文献中从未讨论过。

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