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FLRED: an efficient fuzzy logic based network congestion control method

机译:狂欢:基于网络拥塞控制方法的高效模糊逻辑

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The number of applications running over computer networks has been increasing tremendously, which increased the number of packets running over the network as well leading to resource contention, which ultimately results in congestion. Congestion increases both delay and packet loss while reducing bandwidth utilization and degrading network performance. Network congestion can be controlled by several methods, such as random early detection (RED), which is the most well-known and widely used method to alleviate problems caused by congestion. However, RED and its variants suffer from linearity and parametrization problems. In this paper, we proposed a new method called fuzzy logic RED (FLRED), which extends RED by integrating fuzzy logic to overcome these problems. The proposed FLRED method relies on the average queue length (aql) and the speculated delay (D (Spec) ) to predict and avoid congestion at an early stage. A discrete-time queue model is used to simulate and evaluate FLRED. The results showed that FLRED outperformed both RED and effective RED (ERED) by decreasing both delay and packet loss under heavy congestion. Compared with ERED and RED, FLRED decreased the delay by up to 1.5 and 4.5% and reduced packet loss by up to 6 and 30%, respectively, under heavy congestion. These findings suggest that FLRED is a promising congestion method that can save network resources and improve overall performance.
机译:通过计算机网络运行的应用程序数量巨大地增加,这增加了通过网络运行的数据包数量,导致资源争用最终导致拥塞。拥塞会增加延迟和丢包,同时降低带宽利用率和降低网络性能。网络拥塞可以通过几种方法来控制,例如随机早期检测(红色),这是最着名的和广泛使用的方法,以减轻拥塞引起的问题。然而,红色及其变体患有线性和参数化问题。在本文中,我们提出了一种称为模糊逻辑红色(狂热)的新方法,它通过集成模糊逻辑来克服这些问题来延伸红色。所提出的肉类方法依赖于平均队列长度(AQL)和推测延迟(D(规格))预测和避免早期拥塞。离散时间队列模型用于模拟和评估肉体。结果表明,通过在重拥挤下降低延迟和丢包,肉类繁殖优势。与已磨损和红色相比,肉类在重拥挤下,肉类减少了高达1.5%和4.5%,减少了6至30%的数据包损失。这些发现表明,狂欢是一种有前途的拥塞方法,可以节省网络资源并提高整体性能。

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