基于六边形Chebysev高斯和离散时间组织映射的云自调度

G. P. Sarmila, N. Gnanmbigai, P. Dinadayalan
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引用次数: 1

摘要

在学术和商业机构中,云计算(CC)已经成为一种很有吸引力的计算标准。容错是CSP向用户提供有保障的服务所面临的关键挑战。先前的研究提出了各种算法,通过时间滑动(TS)和带宽缩放(BS)分配截止日期来保证作业调度的容错性。作业调度已被证明是一种有效的方法,可以减少故障的发生,并通过平衡传入负载来处理可扩展的用户请求。提出了基于六边形切比雪夫高斯和离散时间有组织映射(HCG-DTOM)的作业调度方法,这是一种基于自组织映射的自适应容错调度方法。HCG-DTOM方法包括四个步骤。它们是六边形晶格结构初始化模型,用于执行云用户、要分配的作业、虚拟机和作业调度程序的初始化。其次,虚拟管理器使用Chebyshev判别竞争模型检查给定输入作业集的资源可用性。第三,作业调度程序通过高斯邻域协作模型进行调度。最后,对资源进行更新,使用离散时间适应模型为适当的云用户执行相应的作业。
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Self Scheduling Based on Hexagonal Chebysev Gaussian and Discrete Time Organized Mapping in Cloud
Cloud Computing (CC) has become an appealing computing criterion in both academic and business establishments. Fault tolerance is the key challenge faced by the CSP to provide guaranteed service to its users. Prior works proposed various algorithms for guaranteeing fault tolerance using job scheduling by assigning deadlines via time sliding (TS) and bandwidth scaling (BS). Job scheduling has proven to be an effective method to reduce fault occurrence and to address scalable user requests by balancing the incoming load. This paper proposes Hexagonal Chebyshev Gaussian and Discrete Time Organized Map-based (HCG-DTOM) job scheduling method which is an adaptive fault tolerance method based on Self organizing map. The HCG-DTOM method involves four steps. They are Hexagonal Lattice Structure Initialization model that performs initialization of cloud users, jobs to be assigned, virtual machines and job scheduler. Second, the virtual manager checks resource availability for a given set of input jobs using Chebyshev Discriminant Competitive model. Third, scheduling is performed by the job scheduler via Gaussian Neighbourhood Cooperative model. Finally, the resources are updated with the corresponding jobs for the appropriate cloud users are performed using the Discrete Time Adaptation model.
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