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首页> 外文期刊>Physica, A. Statistical mechanics and its applications >Strong anticipation and long-range cross-correlation: Application of detrended cross-correlation analysis to human behavioral data
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Strong anticipation and long-range cross-correlation: Application of detrended cross-correlation analysis to human behavioral data

机译:强烈的预期和远距离互相关:去趋势互相关分析在人类行为数据中的应用

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摘要

In this paper, we analyze empirical data, accounting for coordination processes between complex systems (bimanual coordination, interpersonal coordination, and synchronization with a fractal metronome), by using a recently proposed method: detrended crosscorrelation analysis (DCCA). This work is motivated by the strong anticipation hypothesis, which supposes that coordination between complex systems is not achieved on the basis of local adaptations (i.e., correction, predictions), but results from a more global matching of complexity properties. Indeed, recent experiments have evidenced a very close correlation between the scaling properties of the series produced by two coordinated systems, despite a quite weak local synchronization.We hypothesized that strong anticipation should result in the presence of long-range cross-correlations between the series produced by the two systems. Results allow a detailed analysis of the effects of coordination on the fluctuations of the series produced by the two systems. In the long term, series tend to present similar scaling properties, with clear evidence of long-range cross-correlation. Short-term results strongly depend on the nature of the task. Simulation studies allow disentangling the respective effects of noise and short-term coupling processes on DCCA results, and suggest that the matching of long-term fluctuations could be the result of short-term coupling processes.
机译:在本文中,我们使用最近提出的方法:去趋势互相关分析(DCCA),分析了经验数据,考虑了复杂系统之间的协调过程(双向协调,人际协调以及与分形节拍器同步)。这项工作受到强大的预期假设的启发,该假设假设复杂系统之间的协调不是基于局部适应(即校正,预测),而是复杂性属性的更全局匹配。的确,尽管有很弱的局部同步性,最近的实验确实证明了由两个协调系统产生的序列的缩放性质之间非常紧密的相关性。我们假设强烈的预期应该导致该系列之间存在长期的互相关由两个系统产生。结果可以详细分析协调对两个系统产生的序列波动的影响。从长远来看,级数倾向于表现出相似的缩放特性,并具有长期互相关的明确证据。短期结果在很大程度上取决于任务的性质。仿真研究可以消除噪声和短期耦合过程对DCCA结果的影响,并建议长期波动的匹配可能是短期耦合过程的结果。

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