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Value of Service Based Task Scheduling for Cloud Computing Systems

机译:基于服务的云计算系统任务调度的价值

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Task scheduling for large scale computing systems is a challenging problem. From the users' perspective, the main concern is the performance of the submitted tasks, whereas, for the cloud service providers, reducing cost while providing the required service is critical. Therefore, there is a need for task scheduling mechanisms that balance users' performance requirements while being energy efficient. We present a time dependent Value of Service (VoS) metric that takes into consideration the arrival time of a task while evaluating the value of completing a task within its deadline and its energy consumption within a constraint. We consider the variation in value for completing a task at different times such that the value of energy reduction can change significantly between peak and non-peak periods. We use completion time and energy based value functions with soft and hard thresholds. Thus, we define the VoS for a given workload to be the sum of the values for all tasks that are executed during a given period of time. Our system model is based on virtual machines (VMs), where each task will be assigned a resource configuration characterized by the number of the homogeneous cores and amount of memory. Using VoS, we design, evaluate, and compare our task scheduling methods to show a significant improvement in energy consumption when considering time-of-use dependent scheduling algorithms. The experimental results are run on an IBM blade server using KVM. The experimental results show using time dependent VoS, 50% improvement in performance value, 40% improvement in energy value, and up to 91% improvement in VoS over a heuristic that only considers only the hard threshold of the value functions.
机译:大规模计算系统的任务调度是一个具有挑战性的问题。从用户的角度来看,主要关注的是提交的任务的性能,而对于云服务提供商而言,在提供所需服务的同时降低成本至关重要。因此,需要在兼顾能量效率的同时平衡用户性能要求的任务调度机制。我们提出了一个与时间相关的服务价值(VoS)指标,该指标考虑了任务的到达时间,同时评估了在任务期限内完成任务的价值和在约束条件下的能耗。我们考虑了在不同时间完成任务的价值变化,以使节能量的价值在高峰时段和非高峰时段之间发生显着变化。我们使用具有软阈值和硬阈值的完成时间和基于能量的值函数。因此,我们将给定工作负载的VoS定义为在给定时间段内执行的所有任务的值之和。我们的系统模型基于虚拟机(VM),其中将为每个任务分配一个资源配置,该资源配置的特征是同类内核的数量和内存量。使用VoS,我们可以设计,评估和比较我们的任务调度方法,从而在考虑使用时间依赖的调度算法时显示出能耗的显着改善。实验结果在使用KVM的IBM刀片服务器上运行。实验结果表明,与仅考虑值函数的硬阈值的启发式方法相比,使用时间相关的VoS可使性能值提高50%,能量值提高40%,VoS可达91%。

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