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Operational cost-aware resource provisioning for continuous write applications in cloud-of-clouds

机译:云中连续写入应用程序的运营成本感知资源配置

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摘要

The emergence of cloud computing has made it become an attractive solution for large-scale data processing and storage applications. Cloud infrastructures provide users a remote access to powerful computing capacity, large storage space and high network bandwidth to deploy various applications. With the support of cloud computing, many large-scale applications have been migrated to cloud infrastructures instead of running on in-house local servers. Among these applications, continuous write applications (CWAs) such as online surveillance systems, can significantly benefit due to the flexibility and advantages of cloud computing. However, with specific characteristics such as continuous data writing and processing, and high level demand of data availability, cloud service providers prefer to use sophisticated models for provisioning resources to meet CWAs' demands while minimizing the operational cost of the infrastructure. In this paper, we present a novel architecture of multiple cloud service providers (CSPs) or commonly referred to as Cloud-of-Clouds. Based on this architecture, we propose two operational cost-aware algorithms for provisioning cloud resources for CWAs, namely neighboring optimal resource provisioning algorithm and global optimal resource provisioning algorithm, in order to minimize the operational cost and thereby maximizing the revenue of CSPs. We validate the proposed algorithms through comprehensive simulations. The two proposed algorithms are compared against each other to assess their effectiveness, and with a commonly used and practically viable round-robin approach. The results demonstrate that NORPA and GORPA outperform the conventional round-robin algorithm by reducing the operational cost by up to 28 and 57 %, respectively. The low complexity of the proposed cost-aware algorithms allows us to apply it to a realistic Cloud-of-Clouds environment in industry as well as academia.
机译:云计算的出现使它成为用于大规模数据处理和存储应用程序的有吸引力的解决方案。云基础架构为用户提供了对强大的计算能力,大存储空间和高网络带宽的远程访问,以部署各种应用程序。在云计算的支持下,许多大型应用程序已迁移到云基础架构,而不是在内部本地服务器上运行。在这些应用程序中,由于云计算的灵活性和优势,连续写入应用程序(CWA)(例如在线监视系统)可以显着受益。但是,由于具有连续数据写入和处理等特定特征,以及对数据可用性的高要求,因此云服务提供商更喜欢使用复杂的模型来调配资源以满足CWA的需求,同时将基础架构的运营成本降至最低。在本文中,我们提出了一种由多个云服务提供商(CSP)或通常称为“云中的云”的新颖架构。基于此架构,我们提出了两种用于为CWA部署云资源的运营成本感知算法,即邻近最优资源配置算法和全局最优资源供应算法,以最小化运营成本,从而最大化CSP的收入。我们通过综合仿真验证了提出的算法。将这两种建议的算法相互比较,以评估其有效性,并使用一种常用且实用的循环方法。结果表明,NORPA和GORPA分别将运行成本降低了28%和57%,优于传统的循环算法。所提出的成本感知算法的低复杂度使我们能够将其应用于工业界和学术界的现实的Cloud-of-Clouds环境。

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