计算智能在TCP/IP边缘网络拥塞控制仿真中的应用

Reginald Lal, A. Chiou
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引用次数: 1

摘要

在由数百万异步系统连接的异构Internet中,网络拥塞对其路径下的通信和中间节点构成严重威胁。网络拥塞的主要原因是网络中的数据过载,而可用资源不足以容纳这样的流量负载。大量针对网络拥塞提出的方法是以数学和线性模型形式的传统控制方法为基础的。然而,互联网的爆炸式增长及其流量和网络应用的多样化限制了传统控制机制的规模扩大和提供有效的解决方案。尽管传统的拥塞方法提高了控制水平,但线性化和网络参数变化的脆弱性使其难以提供有效的解决方案。本文通过探索计算智能(CI)方法来解决拥塞问题,并提出了一个用于网络边缘和瓶颈链路环境中拥塞控制的模糊推理引擎。此外,通过大量的仿真实验,结果表明,所提出的CI方法比传统控制方法更能提高网络在拥塞时的边缘性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computational Intelligence Utilisation in Simulation of Congestion Control in TCP/IP Edge Network
Network congestion in the heterogeneous Internet, which is connected by millions of asynchronous systems, poses a serious threat to communication and intermediate nodes that falls under its path. The primary cause of network congestion is that data in networks are overloaded and available resources are inadequate to contain such traffic loads. An enormous amount of proposed approach towards network congestion is based on conventional control methods in the form of mathematical and linear models. However, the explosive growth of the Internet, its traffic and diversification of network applications has limited conventional control mechanism from scaling up and providing an effective solution. Although conventional congestion methods improve the level of control, the vulnerability of linearisation and varying network parameters makes it difficult to provide an efficient solution. In this paper, the problem of congestion is addressed via exploring computational intelligence (CI) methodology and proposing a fuzzy inference engine for congestion control in network edge and bottleneck link environments. Furthermore, through extensive simulation experiments, the results demonstrate that the proposed CI method improves network edge performance during congestion prior to conventional control methods.
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