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Joint load balancing and energy saving algorithm for virtual network embedding in infrastructure providers

机译:基础架构提供商中用于虚拟网络嵌入的联合负载平衡和节能算法

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Network virtualization is key to cloud services, in that it enables multiple users to share a physical infrastructure through abstraction. We propose an online virtual network (VN) embedding scheme which jointly considers load balancing and energy saving so as to maximize the profit of Infrastructure Providers (InPs). For load balancing, we propose to minimize a convex objective which penalizes mapping of VNs to overloaded resources. For energy saving, we consider two popular energy models: speed scaling and power-down. In the speed scaling model, energy consumption is modeled as a convex function of the load imposed on resources. We observe that both load-balancing and energy-saving objectives superadditively penalize high utilization/congestion at resources, and that such synergistic nature of the objectives leads to efficient joint optimization. In the power-down model, a fixed cost exists for keeping a node powered on, which is characterized by a nonconvex energy curve. In this case, we propose an iterative algorithm which explores the trade-offs between load balancing versus cost reduction from power-down of idle servers, in a controlled way. Our algorithm performs a sequential node and link mapping; in particular, for link mapping, we adopt randomized rounding with path stripping in order to obtain a constant factor approximation to the minimum penalty for link utilization. Numerical experiments show the efficacy of our algorithm in servicing VN requests of various topologies and resource requirements.
机译:网络虚拟化是云服务的关键,因为它使多个用户可以通过抽象来共享物理基础架构。我们提出了一种在线虚拟网络(VN)嵌入方案,该方案结合了负载平衡和节能功能,以最大程度地提高基础架构提供商(InPs)的利润。对于负载平衡,我们建议最小化凸目标,这不利于将VN映射到过载资源。为了节能,我们考虑了两种流行的能源模型:速度缩放和掉电。在速度缩放模型中,能耗被建模为施加在资源上的负载的凸函数。我们观察到,负载均衡和节能目标都对资源的高利用率/拥塞产生了超累加的惩罚,并且目标的这种协同特性导致有效的联合优化。在掉电模型中,存在使节点保持通电状态的固定成本,其特征是非凸能量曲线。在这种情况下,我们提出了一种迭代算法,该算法以受控方式探索了负载平衡与由于空闲服务器掉电而降低的成本之间的权衡。我们的算法执行顺序节点和链接映射;特别是,对于链路映射,我们采用带路径剥离的随机舍入,以便获得与链路利用的最小代价相关的常数因子近似值。数值实验表明,我们的算法在满足各种拓扑和资源需求的VN请求中的功效。

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