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Adaptive Cost-Based Task Scheduling in Cloud Environment

机译:云环境中自适应成本的任务调度

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摘要

Task execution in cloud computing requires obtaining stored data from remote data centers. Though this storage process reduces the memory constraints of the user’s computer, the time deadline is a serious concern. In this paper, Adaptive Cost-based Task Scheduling (ACTS) is proposed to provide data access to the virtual machines (VMs) within the deadline without increasing the cost. ACTS considers the data access completion time for selecting the cost effective path to access the data. To allocate data access paths, the data access completion time is computed by considering the mean and variance of the network service time and the arrival rate of network input/output requests. Then the task priority is assigned to the removed tasks based data access time. Finally, the cost of data paths are analyzed and allocated based on the task priority. Minimum cost path is allocated to the low priority tasks and fast access path are allocated to high priority tasks as to meet the time deadline. Thus efficient task scheduling can be achieved by using ACTS. The experimental results conducted in terms of execution time, computation cost, communication cost, bandwidth, and CPU utilization prove that the proposed algorithm provides better performance than the state-of-the-art methods.
机译:云计算中的任务执行需要从远程数据中心获取存储的数据。虽然此存储过程减少了用户计算机的内存约束,但时间截止日期是一个严重的问题。在本文中,提出了基于自适应成本的任务调度(作用)来在截止日内提供对虚拟机(VM)的数据访问,而不增加成本。动作考虑了用于选择要访问数据的成本有效路径的数据访问完成时间。为了分配数据访问路径,通过考虑网络服务时间的平均值和方差以及网络输入/输出请求的到达率来计算数据访问完成时间。然后,任务优先级被分配给基于数据访问时间的删除任务。最后,根据任务优先级分析和分配数据路径的成本。最小成本路径被分配给低优先级任务,并将快速访问路径分配给高优先级任务,以满足时间截止日期。因此,可以通过使用作用来实现有效的任务调度。在执行时间,计算成本,通信成本,带宽和CPU利用率方面进行的实验结果证明了所提出的算法提供比最先进的方法更好的性能。

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