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Multiobjective Level-Wise Scientific Workflow Optimization in IaaS Public Cloud Environment

机译:IAAS公共云环境中的多目标水平科学工作流优化

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摘要

Cloud computing in the field of scientific applications such as scientific big data processing and big data analytics has become popular because of its service oriented model that provides a pool of abstracted, virtualized, dynamically scalable computing resources and services on demand over the Internet. However, resource selection to make the right choice of instances for a certain application of interest is a challenging problem for researchers. In addition, providing services with optimal performance at the lowest financial resource deployment cost based on users’ resource selection is quite challenging for cloud service providers. Consequently, it is necessary to develop an optimization system that can provide benefits to both users and service providers. In this paper, we conduct scientific workflow optimization on three perspectives: makespan minimization, virtual machine deployment cost minimization, and virtual machine failure minimization in the cloud infrastructure in a level-wise manner. Further, balanced task assignment to the virtual machine instances at each level of the workflow is also considered. Finally, system efficiency verification is conducted through evaluation of the results with different multiobjective optimization algorithms such as SPEA2 and NSGA-II.
机译:云中的科学应用,如科学大数据处理和大数据分析领域的计算由于其面向服务的模式,提供的抽象池,虚拟化,基于网络连接的需求动态可扩展的计算资源和服务的普及。然而,资源可供选择,使实例的正确选择某个感兴趣的应用是研究人员具有挑战性的问题。此外,在基于用户的资源选择最低的金融资源配置的成本提供具有最佳性能的服务是相当具有挑战性的云服务提供商。因此,有必要制定一个优化系统,可以提供这两个用户和服务提供商的利益。完工时间最小化,虚拟机部署成本最小化,并在一个水平式的方式的云计算基础架构的虚拟机故障最小化:在本文中,我们对三个方面进行科学的优化工作流程。在工作流程的各个层面。此外,均衡的任务分配给虚拟机的情况下,也被认为是。最后,系统的效率的验证是通过与不同的多目标优化算法如SPEA2和NSGA-II的结果的评价方法进行。

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