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AN ADAPTIVE QOS ROUTE SELECTION ALGORITHM BASED ON IN COMBINATION WITH NEURAL NETWORK

机译:基于神经网络组合的自适应QoS路由选择算法

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In this paper, we propose a method of getting near-optimal solutions not only satisfying the QoS requirements but also optimizing certain network resources such as bandwidth, end-to-end delay, in computationally feasible time, using the neural networks in our genetic algorithm to dynamically control the rate of mating and the mutation rate(GANN). The multicast routing are evaluated on three types of criteria: objective, fuzzy and subjective criteria. The analysis of the algorithm presented, backed up by simulation results, and confirms its superiority over the other algorithms. GANN scales very well to large networks and multicast groups. It can produce low-cost trees at a significant higher speed. In summary, this algorithm is simple, efficient, and scalable to a large network size.
机译:在本文中,我们提出了一种近乎最佳解决方案的方法,不仅满足QoS要求,还可以在我们的遗传算法中使用神经网络在计算可行时间中优化某些网络资源,例如带宽,端到端延迟,在计算上可行的时间动态控制交配速率和突变率(GANN)。多播路由在三种类型的标准上进行评估:目标,模糊和主观标准。通过仿真结果备份的算法分析,并通过仿真结果备份,并确认其对其他算法的优越性。 Gann对大型网络和组播组进行衡量。它可以以显着更高的速度产生低成本的树木。总之,该算法简单,高效,可扩展到大网络尺寸。

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