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Deploying QoS-assured service function chains with stochastic prediction models on VNF latency

机译:使用基于VNF延迟的随机预测模型部署QoS保证的服务功能链

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Current Network Function Virtualization (NFV) with Virtualized Network Functions (VNFs) running as virtual machines on commodity servers enables flexibility to Service Function Chaining (SFC). Specific applications may require Quality of Service (QoS) on end-to-end latency. However, the processing delay and the queuing delay of VNFs varies with virtual resource configurations (vCPU and vMemory), as well as physical usage (traffic amount, CPU utilization). Moreover, packet delays are randomly distributed, instead of a fixed value. To accurately model the latency distribution of one VNF, a prediction method using random-forest regression is proposed. Evaluation results show that our method can predict the latency distribution of the two sample VNFs with only 10% errors. On the basis of the model, a QoS-assured SFC deployment algorithm is also presented to guarantee end-to-end latency and bandwidth consumption of users. Experiments show that our algorithm enables high degree of scalability with polynomial runtime, and meanwhile maximizes user acceptance rates with 6% difference from the optimal solution from the mixed integer programming.
机译:当前的网络功能虚拟化(NFV)具有在商用服务器上作为虚拟机运行的虚拟化网络功能(VNF),可灵活实现服务功能链(SFC)。特定应用可能需要端到端延迟上的服务质量(QoS)。但是,VNF的处理延迟和排队延迟会随虚拟资源配置(vCPU和vMemory)以及物理使用情况(流量,CPU利用率)而变化。此外,分组延迟是随机分布的,而不是固定值。为了准确地模拟一个VNF的延迟分布,提出了一种使用随机森林回归的预测方法。评估结果表明,我们的方法可以预测两个样本VNF的延迟分布,而误差只有10%。在该模型的基础上,还提出了一种保证QoS的SFC部署算法,以保证用户的端到端延迟和带宽消耗。实验表明,我们的算法可实现多项式运行时的高度可扩展性,同时最大程度地提高了用户接受率,与混合整数规划的最佳解决方案相差6%。

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