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首页> 外文期刊>Arabian Journal for Science and Engineering >A Heuristic-Based Approach for Dynamic VMs Consolidationrnin Cloud Data Centers
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A Heuristic-Based Approach for Dynamic VMs Consolidationrnin Cloud Data Centers

机译:云数据中心中基于启发式的动态VM整合方法

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Cloud computing providers have to deal with the energy-performance trade-off: minimizing energy consumption, while meeting service level agreement (SLA) requirements. This paper proposes a new heuristic approach for the dynamic consolidation of virtual machines (VMs) in cloud data centers. The fast best-fit decreasing (FBFD) algorithm for intelligent VMs allocating into hosts and dynamic utilization rate (DUR) algorithm for utilization space and VM migration are successfully proposed. We performed simulations using PlanetLab and GWDG data center workloads to compare our approach against the existing models. It has been observed that the FBFD heuristic algorithm produces better results compared to modified BFD algorithm in terms of energy consumption and SLA violation. Additionally, the time complexity of FBFD algorithm is significantly improved from the order of O() to O(). Furthermore, leaving some rates of capacity in the physical machines by the proposed DUR algorithm for VMs to be extended reduces the number of migrations which in turn improves the energy consumption and SLA violation. Our heuristic approach is evaluated using CloudSim and the results show that it performs better than the current state-of-the-art approaches.
机译:云计算提供商必须处理能源与性能之间的权衡:在满足服务水平协议(SLA)要求的同时,将能耗降至最低。本文提出了一种新的启发式方法,用于云数据中心中虚拟机(VM)的动态整合。提出了一种用于智能虚拟机分配到主机的快速最佳拟合递减(FBFD)算法和一种用于利用率空间和虚拟机迁移的动态利用率(DUR)算法。我们使用PlanetLab和GWDG数据中心工作负载进行了仿真,以将我们的方法与现有模型进行比较。已经观察到,就能量消耗和违反SLA而言,与改进的BFD算法相比,FBFD启发式算法产生更好的结果。此外,FBFD算法的时间复杂度从O()到O()的顺序显着提高。此外,通过提出的DUR算法为虚拟机保留物理机中的某些容量比率以进行扩展,从而减少了迁移次数,进而改善了能耗和违反SLA的行为。使用CloudSim对我们的启发式方法进行了评估,结果表明,该方法的性能优于当前的最新方法。

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