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Connection admission control of ATM network using integrated MLP and fuzzy controllers

机译:使用集成MLP和模糊控制器的ATM网络连接准入控制

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This paper presents a new approach to the problem of call admission control (CAC) of variable bit rate (VBR) traffic in an asynchronous transfer mode (ATM) network. Our approach employs an integrated neural network and fuzzy controller to implement the CAC controller. This scheme capitalizes on the learning ability of a neural network and the robustness of a fuzzy controller. Experiments show that this scheme is able to achieve high throughput and low cell loss while achieving fairness among different classes of VBR traffic. For comparison, we have also implemented four other CAC schemes f (1) peak bandwidth method, (2) equivalent bandwidth method, (3) average bandwidth method and (4) neural network quality of service (QoS) predictor. Results of these experiments are presented in this paper.
机译:本文提出了一种新方法来解决异步传输模式(ATM)网络中可变比特率(VBR)流量的呼叫允许控制(CAC)问题。我们的方法采用集成的神经网络和模糊控制器来实现CAC控制器。该方案利用了神经网络的学习能力和模糊控制器的鲁棒性。实验表明,该方案能够实现高吞吐量和低信元丢失,同时在不同类别的VBR流量之间实现公平。为了进行比较,我们还实现了其他四个CAC方案,它们分别是:(1)峰值带宽方法,(2)等效带宽方法,(3)平均带宽方法和(4)神经网络服务质量(QoS)预测器。这些实验的结果在本文中介绍。

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