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Autonomic and energy-aware resource allocation for efficient management of cloud data centre

机译:自主和节能的资源分配,可有效管理云数据中心

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Server Virtualization is the key technology used in cloud data centers. In this technique, number of Virtual Machines (VM) can simultaneously run on the top of a single Physical Machine (PM) or host server. Each VM hosts guest operating system, middleware software and applications. There are various dimensions of resources available in PM such as CPU cores, memory, network bandwidth and storage space. As per the requirement of applications deployed, VM allocates resources from pool of resources available in a PM or host server. The placement of VMs into appropriate PM and as the need arises migrate them among other PMs by achieving application performance and saving energy are the key issues of this research paper. The performance of applications is improved by reducing frequency of live VM migrations among PMs and energy is saved by minimizing number of active servers in a data centre. The proposed approach presents algorithm for resource allocation in cloud data centre by considering various factors such as major resource requirement during initial setup of virtual machines, dynamic resource allocation at peak load on applications, performance of applications and power saving in a data centre. A data centre is simulated with heterogeneous servers by assigning load of randomly virtual machines containing CPU as well as memory intensive applications. The power consumption and VM placement failure rate are considered as parameters for analyzing the proposed algorithm. The experimental results of proposed algorithm for initial placement of VMs are compared with various algorithms such as first fit, best fit and random selection of PMs. In addition to the initial placement of VM in appropriate PM, the research issue of dynamic resource management in a data centre is also addressed.
机译:服务器虚拟化是云数据中心中使用的关键技术。在这种技术中,多个虚拟机(VM)可以同时在单个物理机(PM)或主机服务器的顶部运行。每个VM托管来宾操作系统,中间件软件和应用程序。 PM中有多种可用资源,例如CPU内核,内存,网络带宽和存储空间。根据部署的应用程序的要求,VM从PM或主机服务器中可用的资源池中分配资源。将VM放置在适当的PM中,并根据需要通过实现应用程序性能和节省能源将VM迁移到其他PM中是本研究的关键问题。通过减少在PM之间进行实时VM迁移的频率来提高应用程序的性能,并通过减少数据中心中活动服务器的数量来节省能源。通过考虑各种因素,例如虚拟机初始设置期间的主要资源需求,应用程序峰值负载下的动态资源分配,应用程序的性能以及数据中心的节能,提出的方法提出了云数据中心的资源分配算法。通过分配包含CPU以及内存密集型应用程序的随机虚拟机的负载,可以使用异构服务器模拟数据中心。将功耗和VM放置失败率视为分析所提出算法的参数。将该算法用于虚拟机初始放置的实验结果与各种算法进行比较,例如首次拟合,最佳拟合和随机选择PM。除了将VM最初放置在适当的PM中之外,还解决了数据中心中动态资源管理的研究问题。

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