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An optimal scheduling of cells in ATM switch using neural network

机译:使用神经网络的ATM交换机中信元的最佳调度

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In asynchronous transfer mode (ATM), the traffic cells from various information sources are statistically multiplexed at the physical layer to efficiently utilize the network resources. An ATM switching node must successfully route the manyarriving traffic cells to the correct output without collisions of cells in the switch fabrics while sustaining the user-required quality of services (QoS) for all application. For scheduling of cells in a switch, neural networks are noted for theirability to process large amounts of data quickly using a copious number of highly interconnected processors. In this paper, we propose an optimal cell scheduling algorithm for ATM switch using Hopfield neural network. The proposed algorithm finds a set of nonblocking cells with the ideal energy functions for Hopfield neural networks and efficiently minimizes the cell-delay time using a delay matrix scheme. Every cell transmission time, the algorithm gives the optimal scheduling which minimizes cell-lossand cell-delay time in buffer, and also solves the cell blocking and cell-sequence problems.
机译:在异步传输模式(ATM)中,来自各种信息源的业务单元在物理层进行统计复用,以有效地利用网络资源。一个ATM交换节点必须成功地将许多到达的业务信元路由到正确的输出,而不会在交换结构中发生信元冲突,同时要为所有应用维持用户要求的服务质量(QoS)。为了调度交换机中的单元,神经网络具有使用大量高度互连的处理器快速处理大量数据的能力。在本文中,我们提出了一种使用Hopfield神经网络的ATM交换机最佳信元调度算法。所提出的算法为Hopfield神经网络找到了一组具有理想能量函数的非阻塞细胞,并使用延迟矩阵方案有效地最小化了细胞延迟时间。该算法在每个信元传输时间都给出了最佳调度,从而最大程度地减少了缓冲区中的信元丢失和信元延迟时间,还解决了信元阻塞和信元序列问题。

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