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A Neural Network Solution to QoS-IP Team-Optimal Dynamic Routing

机译:QoS-IP团队最优动态路由的神经网络解决方案

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Dynamic-routing in a packet-switched telecommunication network with Quality of Service (QoS) capabilities is addressed. The problem is posed in an informationally decentralized (team) setting, where routing and scheduling decisions are combined. Such decisions are taken at the network nodes, on the basis of local information and possibly of some data received from the neighboring nodes, with the common goal to minimize the expected total delay, spent by packets in traversing the network. Stationarity of the control strategies over an infinite optimization horizon (in the presence of no changes in the traffic parameters and network topology) is achieved by considering an approximation based on a receding-horizon approach. Optimal strategies in this setting are in turn approximated by means of feed-forward neural networks. The problem is posed and a computationally decentralized algorithm for its numerical solution is described. A specific numerical example is also considered, where the neural approximators are tuned, and then used in constructing dynamically varying routing tables and scheduling coefficients in a network simulation based on ns-2, where the gain of the dynamic strategies is evaluated, over an adaptive routing approach based on the measurement of aggregate traffic parameters.
机译:解决了具有服务质量(QoS)功能的分组交换电信网络中的动态路由。问题在于信息分散(团队)设置中,在该设置中路由和调度决策相结合。基于本地信息以及可能从邻近节点接收到的一些数据,在网络节点上做出此类决定,其共同目标是使数据包在穿越网络时所花费的预期总延迟最小化。通过考虑基于水平后退方法的近似值,可以实现控制策略在无限优化范围内的平稳性(在流量参数和网络拓扑没有变化的情况下)。反过来,通过前馈神经网络可以估算出这种情况下的最佳策略。提出了该问题,并描述了其数值解的计算分散算法。还考虑了一个具体的数值示例,其中对神经逼近器进行了调整,然后用于基于ns-2的网络仿真中构建动态变化的路由表和调度系数,其中通过自适应算法评估了动态策略的增益路由方法基于总流量参数的度量。

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