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Distributed Dynamic Measures of Criticality for Telecommunication Networks

机译:电信网络临界的分布式动态测量

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Telecommunication networks are designed to route data along fixed pathways, and so have minimal reactivity to emergent loads. To service today's increased data requirements, networks management must be revolutionised so as to proactively respond to anomalies quickly and efficiently. To equip the network with resilience, a distributed design calls for node agency, so that nodes can predict the emergence of critical data loads leading to disruptions. This is to inform prognostics models and proactive maintenance planning. Proactive maintenance needs KPIs, most importantly probability and impact of failure, estimated by criticality which is the negative impact on connectedness in a network resulting from removing some element. In this paper, we studied criticality in the sense of increased incidence of data congestion caused by a node being unable to process new data packets. We introduce three novel, distributed measures of criticality which can be used to predict the behaviour of dynamic processes occurring on a network. Their performance is compared and tested on a simulated diffusive data transfer network. The results show potential for the distributed dynamic criticality measures to predict the accumulation of data packet loads within a communications network. These measures are predicted to be useful in proactive maintenance and routing for telecommunications, as well as informing businesses of partner criticality in supply networks.
机译:电信网络旨在沿着固定路线路由数据,因此对紧急载荷具有最小的反应性。为了服务今天的数据要求,网络管理必须彻底改变,以便积极回应异常,快速有效地响应异常。为了用恢复性装备网络,节点机构的分布式设计呼叫,使得节点可以预测导致受中断的关键数据负荷的出现。这是通知预后模型和主动维护计划。主动维护需要KPI,最重要的是失败的概率和影响,估计是临界的,这是从删除某些元素产生的网络中的关联中的负面影响。在本文中,我们在由无法处理新数据包的节点引起的数据拥塞发病率增加的情况下研究了关键性。我们介绍了三个新颖的,分布式临界度量,可用于预测网络上发生的动态过程的行为。比较它们的性能并在模拟的扩散数据传输网络上进行测试。结果显示了分布式动态临界措施来预测通信网络内数据分组负载的累积的可能性。预计这些措施将在电信的主动维护和路由中有用,以及向供应网络的合作伙伴关键性的业务提供信息。

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