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Scaling and complexity-entropy analysis in discriminating traffic dynamics

机译:区分交通动态的标度和复杂度熵分析

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In this paper, the complexity-entropy causality plane approach is applied to analyze traffic data. The R/S analysis and detrended fluctuation analysis (DFA) methods are also used to compare with this approach. Moreover, based on the concept of entropy, we propose to use permutation to calculate the probability distribution of the time series when applying the representation plane. The empirical results indicate that traffic dynamics exhibit different levels of traffic congestion and demonstrate that this statistical method can give a more refined classification of traffic states than the R/S analysis and DFA.
机译:本文采用复杂度-熵因果平面方法分析交通数据。 R / S分析和去趋势波动分析(DFA)方法也用于与此方法进行比较。此外,基于熵的概念,我们建议在应用表示平面时使用置换来计算时间序列的概率分布。实证结果表明,交通动态表现出不同程度的交通拥堵,并表明与R / S分析和DFA相比,这种统计方法可以对交通状态进行更精细的分类。

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