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Task scheduling algorithms for multi-cloud systems: allocation-aware approach

机译:多云系统的任务调度算法:分配感知方法

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Cloud computing has gained enormous popularity for on-demand services on a pay-per-use basis. However, a single data center may be limited in providing such services, particularly in the peak demand time as it may not have unlimited resource capacity. Therefore, multi-cloud environment has been introduced in which multiple clouds can be integrated together to provide a unified service in a collaborative fashion. However, task scheduling in such environment is much more challenging than that is used in the single cloud environment. In this paper, we propose three allocation-aware task scheduling algorithms for a multi-cloud environment. The algorithms are based on the traditional Min-Min and Max-Min algorithm and extended for multi-cloud environment. All the algorithms undergo three common phases, namely matching, allocating and scheduling to fit them in the multi-cloud environment. We perform extensive simulations on the proposed algorithms and test with various benchmark and synthetic datasets. We evaluate the performance of the proposed algorithms in terms of makespan, average cloud utilization and throughput and compare the results with the existing algorithms in such system. The comparison results clearly demonstrate the efficacy of the proposed algorithms.
机译:在按使用付费的基础上,按需服务的云计算获得了极大的普及。但是,单个数据中心可能无法提供此类服务,特别是在高峰需求时间内,因为它可能没有无限的资源容量。因此,引入了多云环境,其中可以将多个云集成在一起,以协作方式提供统一的服务。但是,在这种环境中的任务调度比在单个云环境中使用的任务调度更具挑战性。在本文中,我们针对多云环境提出了三种可感知分配的任务调度算法。该算法基于传统的Min-Min和Max-Min算法,并扩展到多云环境。所有算法都经历三个通用阶段,即匹配,分配和调度以使其适合多云环境。我们对提出的算法进行了广泛的仿真,并使用各种基准和综合数据集进行了测试。我们根据生成时间,平均云利用率和吞吐量评估了所提出算法的性能,并将结果与​​此类系统中的现有算法进行了比较。比较结果清楚地证明了所提出算法的有效性。

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