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Real-Time Workflows Oriented Hybrid Scheduling Approach With Balancing Host Weighted Square Frequencies in Clouds

机译:具有云中平衡主机加权方频的实时工作流程的混合调度方法

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High energy consumption in cloud data centers has become one of the main obstacles to green cities, and an urgent problem to be solved. So far, a large number of scheduling algorithms have been developed to reduce energy consumption for executing workflows. However, most existing algorithms have obvious defects in energy and resource efficiency, because they schedule workflow tasks to hosts directly and ignore that the host is so powerful that a single workflow task cannot make full use of its resources. To resolve the issue, a new scheduling architecture is designed for cloud data centers. Then, two principles are derived: one suggests that hybrid scheduling tasks from different workflows is helpful for improving resource utilization; the other one deduces that balancing host weighted square frequencies can minimize total power consumption of active hosts under a given resource requirement. On the basis of the scheduling architecture and the two principles, an oNline schEduling AlgoriThm, namely NEAT, is proposed to schedule dynamic workflows with deadlines. Furthermore, three strategies for dynamically adjusting the available virtual machines (VMs) and active hosts are proposed and integrated into NEAT to improve the energy and resource efficiency for cloud data centers. Finally, the proposed NEAT is compared with three existing algorithms using real-world workflow traces to demonstrate its superior performance with respect to energy and resource efficiency while guaranteeing the timing requirements of workflows. Compared with baseline algorithms, NEAT is capable of reducing energy consumption for cloud data centers by an average of 40 & x0025; in the range from 34.0 & x0025; to 45.67 & x0025;.
机译:云数据中心的高能耗已成为绿色城市的主要障碍之一,也是亟待解决的迫切问题。到目前为止,已经开发了大量的调度算法以减少执行工作流的能耗。然而,大多数现有算法具有明显的能量和资源效率缺陷,因为他们将工作流任务计划直接托管并忽略主机如此强大,即单个工作流任务无法充分利用其资源。要解决此问题,为云数据中心设计了一个新的调度架构。然后,派生了两个原则:一个原则表明来自不同工作流程的混合调度任务有助于提高资源利用率;另一个推导说,平衡主机加权方频率可以在给定的资源要求下最小化活动主机的总功耗。在调度架构和两个原则的基础上,一个o <下划线> n 行sch <下划线> e duling <下划线> a lgori <下划线> t HM,即 Neath ,提出与截止日期安排动态工作流程。此外,提出了三种动态调整可用虚拟机(VM)和活动主机的策略,并集成到<斜体>整齐中,以提高云数据中心的能量和资源效率。最后,建议的<斜视>整洁与使用真实工作流程的三个现有算法进行比较,以展示其在能量和资源效率方面的优越性,同时保证工作流的时序要求。与基线算法相比,<斜斜体>整齐能够将云数据中心的能耗降低,平均为40&x0025;在34.0和x0025的范围内;到45.67&x0025;

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