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Internet performance modeling using mixture dynamical system models

机译:互联网性能建模使用混合动力系统模型

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This paper models Internet traffic input stream and TCP connection durations using dynamical system models. A linear dynamical model with mixture Gaussian output is proposed for the Internet traffic input stream, and a linear dynamical system with mixture lognormal output is developed to model the TCP connection durations. In the proposed models, a sum of independent AR (Anderson and Nielsen, 1998) processes is used to approximate the autocorrelation of the real data, and a Gaussian mixture or lognormal mixture is used to fit the marginal distribution. As a result, the output processes can capture the correlation and the marginal distribution simultaneously. Making use of the fact that at each iteration the parameter increment of the EM algorithm has a positive projection on the gradient of the likelihood, a stochastic approximation-based recursive EM algorithm is proposed to fit the traffic marginal distribution, A cross-validation criterion is used for the model selection. To illustrate the usefulness of the proposed models, several experimental results are provided.
机译:本文使用动态系统模型模拟互联网流量输入流和TCP连接持续时间。提出了一种线性动力学模型,用于互联网流量输入流,并开发了具有混合逻辑输出的线性动力系统来模拟TCP连接持续时间。在所提出的模型中,使用独立的AR(Anderson和Nielsen,1998)过程来近似真实数据的自相关,并且使用高斯混合物或伐诺混合物来适应边际分布。结果,输出过程可以同时捕获相关性和边际分布。利用在每次迭代时,EM算法的参数增量在可能性的梯度上具有正投影,提出了一种随机近似的递归EM算法来适合交通边缘分布,交叉验证标准是用于模型选择。为了说明所提出的模型的有用性,提供了几种实验结果。

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