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Service Function Chain Placement for Joint Cost and Latency Optimization

机译:联合成本和延迟优化的服务功能链放置

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Network Function Virtualization (NFV) is an emerging technology to consolidate network functions onto high volume storages, servers and switches located anywhere in the network. Virtual Network Functions (VNFs) are chained together to provide a specific network service, called Service Function Chains (SFCs). Regarding to Quality of Service (QoS) requirements and network features and states, SFCs are served through performing two tasks: VNF placement and link embedding on the substrate networks. Reducing deployment cost is a desired objective for all service providers in cloud/edge environments to increase their profit form demanded services. However, increasing resource utilization in order to decrease deployment cost may lead to increase the service latency and consequently increase SLA violation and decrease user satisfaction. To this end, we formulate a multi-objective optimization model to joint VNF placement and link embedding in order to reduce deployment cost and service latency with respect to a variety of constraints. We, then solve the optimization problem using two heuristic-based algorithms that perform close to optimum for large scale cloud/edge environments. Since the optimization model involves conflicting objectives, we also investigate pareto optimal solution so that it optimizes multiple objectives as much as possible. The efficiency of proposed algorithms is evaluated using both simulation and emulation. The evaluation results show that the proposed optimization approach succeed in minimizing both cost and latency while the results are as accurate as optimal solution obtained by Gurobi (5%).
机译:网络功能虚拟化(NFV)是一种新兴技术,可在网络中的大容量存储,服务器和交换机上整合网络功能。将虚拟网络功能(VNF)链接在一起以提供特定的网络服务,称为服务功能链(SFC)。关于服务质量(QoS)要求和网络功能和状态,通过执行两个任务:VNF放置和嵌入基板网络上的链路嵌入SFC。降低部署成本是云/边缘环境中所有服务提供商的理想目标,以增加其利润表单所需的服务。然而,为了减少部署成本,增加资源利用可能导致服务延迟增加,从而增加SLA违规并减少用户满意度。为此,我们配方为联合VNF放置和链接嵌入的多目标优化模型,以减少与各种约束的部署成本和服务延迟。我们,然后使用基于两个启发式的算法来解决优化问题,该算法对大规模云/边缘环境进行接近。由于优化模型涉及冲突的目标,我们还调查了Paroto最佳解决方案,以便它尽可能多地优化多个目标。使用模拟和仿真评估所提出的算法的效率。评估结果表明,所提出的优化方法在最大限度地降低成本和潜伏期,而结果与Gurobi(5%)获得的最佳溶液一样准确。

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