首页> 外文会议>Information, Communications and Signal Processing, 1997. ICICS., Proceedings of 1997 International Conference on >A variable rate leaky bucket algorithm based on a neural network prediction in ATM networks
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A variable rate leaky bucket algorithm based on a neural network prediction in ATM networks

机译:ATM网络中基于神经网络预测的可变速率漏斗算法

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To tackle the problem of congestion control due to the bursty nature of various traffic sources in ATM networks, UPC/NPC (user parameter controletwork parameter control) have been actively studied. The DRLB (dynamic rate leaky bucket) algorithm, in which the token generation rate is dynamically changed according to states of the data source and buffer occupancy, is a good example of the UPC/NPC. However, the DRLB algorithm has several drawbacks such as low efficiency and difficult real-time implementation for bursty traffic sources, because the determination of the token generation rate in the algorithm is based on the present state of the network. We propose a more plastic and effective congestion control algorithm by combining the DRLB algorithm and neural network based prediction to remedy the drawbacks of the DRLB algorithm, and verify the efficacy of the proposed method by computer simulations.
机译:为了解决由于ATM网络中各种业务源的突发性而引起的拥塞控制问题,已经积极研究了UPC / NPC(用户参数控制/网络参数控制)。 DRLB(动态速率泄漏存储桶)算法是UPC / NPC的一个很好的示例,其中令牌生成速率根据数据源的状态和缓冲区占用率而动态变化。但是,由于算法中令牌生成速率的确定是基于网络的当前状态的,因此DRLB算法具有效率低和突发流量源难以实时实现等缺点。通过结合DRLB算法和基于神经网络的预测,我们提出了一种更具可塑性和更有效的拥塞控制算法,以弥补DRLB算法的缺陷,并通过计算机仿真验证了该方法的有效性。

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