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首页> 外文期刊>IEEE Journal on Selected Areas in Communications >Omega network-based ATM switch with neural network-controlled bypass queueing and multiplexing
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Omega network-based ATM switch with neural network-controlled bypass queueing and multiplexing

机译:基于Omega网络的ATM交换机,具有神经网络控制的旁路排队和多路复用

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摘要

Multistage interconnection networks (MINs) have long been studied for use in switching networks. Since they have a unique path between source and destination and the intermediate nodes of the paths are shared, internal blocking can cause very poor throughput. This paper proposes a high throughput ATM switch consisting of an Omega network with a new form of input queues called bypass queues. We also improve the switch throughput by partitioning the Input buffers into disjoint buffer sets and multiplexing several sets of nonblocking cells within a time slot, assuming that the routing switch operates only a couple of times faster than the transmission rate. A neural network model is presented as a controller for cell scheduling and multiplexing in the switch. Our simulation results under uniform traffic show that the proposed approach achieves almost 100% of potential switch throughput.
机译:长期以来,人们一直在研究将多级互连网络(MIN)用于交换网络。由于它们在源和目标之间具有唯一的路径,并且路径的中间节点是共享的,因此内部阻塞会导致吞吐量很差。本文提出了一种由Omega网络组成的高吞吐量ATM交换机,该网络具有一种称为旁路队列的新型输入队列。我们还通过将输入缓冲区划分为不相交的缓冲区集并在一个时隙内对几组非阻塞单元进行复用来提高交换机的吞吐量,假设路由交换机的运行速度仅比传输速率快几倍。提出了神经网络模型作为用于交换机中的单元调度和多路复用的控制器。我们在统一流量下的仿真结果表明,该方法可实现几乎100%的潜在交换机吞吐量。

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