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基于自适应神经模糊推理的计算机网络性能评价研究
Research on performance evaluation of computer network based on adaptive neural-fuzzy inference
【摘要】 根据带宽、时延、丢包率3个网络关键性能指标,建立了网络性能评价的自适应神经-模糊推理系统。通过对网络不同业务服务质量进行分析,实现了在给定输入负载下对网络性能的判定。仿真结果表明,建立的自适应神经-模糊推理系统能描述网络性能指标和输出的映射规律,能较准确的拟和数据,评价结果符合规律。因此,该方法合理有效,能够为网络信息传输提供决策支持。
【Abstract】 Based on the bandwidth,delay and packet loss rate,an adaptive neural-fuzzy inference system for network performance evaluation is designed.Through the analysis of different service quality,the judgment of network performance with given input load is realized.The simulation results show that the adaptive neural-fuzzy inference system reflect the mapping rules of network performance metrics and output,moreover fit data accurately,the results are conform to the regular pattern.Therefore,the method is feasible and effective and provide decision support for network information transmission strategy.
【Key words】 network performance; neural network; fuzzy inference; evaluation method; service quality;
- 【文献出处】 计算机工程与设计 ,Computer Engineering and Design , 编辑部邮箱 ,2009年22期
- 【分类号】TP393.06
- 【被引频次】8
- 【下载频次】167