Predicting resource demand in heterogeneous active networks

V. Galtier, K. Mills, Y. Carlinet, S. Bush, A. Kulkarni
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引用次数: 11

Abstract

Recent research, such as the active virtual network management prediction (AVNMP) system, aims to use simulation models running ahead of real time to predict resource demand among network nodes. If accurate, such predictions can be used to allocate network capacity and to estimate quality of service. Future deployment of active-network technology promises to complicate prediction algorithms because each "active" message can convey its own processing logic, which introduces variable demand for processor (CPU) cycles. This paper describes a means to augment AVNMP, which predicts message load among active-network nodes, with adaptive models that can predict the CPU time required for each "active" message at any active network node. Typical CPU models cannot adapt to heterogeneity among nodes. This paper shows improvement in AVNMP performance when adaptive CPU models replace more traditional non-adaptive CPU models. Incorporating adaptive CPU models can enable AVNMP to predict active-network resource usage farther into the future, and lowers prediction overhead.
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异构活动网络资源需求预测
最近的研究,如主动虚拟网络管理预测(AVNMP)系统,旨在利用超前于实时运行的仿真模型来预测网络节点之间的资源需求。如果准确的话,这样的预测可以用来分配网络容量和估计服务质量。活动网络技术的未来部署将使预测算法复杂化,因为每个“活动”消息都可以传达自己的处理逻辑,这将引入对处理器(CPU)周期的可变需求。本文描述了一种增强AVNMP的方法,该方法可以预测活动网络节点之间的消息负载,并使用自适应模型来预测任何活动网络节点上每个“活动”消息所需的CPU时间。典型的CPU模型无法适应节点间的异构性。本文展示了自适应CPU模型取代传统的非自适应CPU模型后AVNMP性能的提高。结合自适应CPU模型可以使AVNMP预测未来活动网络资源的使用情况,并降低预测开销。
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