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A comprehensive review on hybrid network traffic prediction model

机译:混合网络流量预测模型的全面综述

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Network traffic is a typical nonlinear time series. As such, traditional linear and nonlinear models are inadequate to describe the multi-scale characteristics of traffic, thus compromising the prediction accuracy. Therefore, the research to date has tended to focus on hybrid models rather than the traditional linear and non-linear ones. Generally, a hybrid model adopts two or more methods as combined modelling to analyze and then predict the network traffic. Against this backdrop, this paper will review past research conducted on hybrid network traffic prediction models. The review concludes with a summary of the strengths and limitations of existing hybrid network prediction models which use optimization and decomposition techniques, respectively. These two techniques have been identified as major contributing factors in constructing a more accurate and fast response hybrid network traffic prediction.
机译:网络流量是典型的非线性时间序列。 因此,传统的线性和非线性模型不足以描述流量的多尺度特性,从而损害预测精度。 因此,迄今为止的研究已经倾向于专注于混合模型而不是传统的线性和非线性的模型。 通常,混合模型采用两种或更多种方法作为分析的组合建模,然后预测网络流量。 在此背景下,本文将审查在混合网络流量预测模型上进行的过去的研究。 审查总结了使用优化和分解技术的现有混合网络预测模型的优势和局限性的总结。 这两种技术已被识别为构建更准确和快速响应的混合网络流量预测的主要贡献因素。

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