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基于复杂动力系统时间序列的时间延迟和方向相互作用检测

Detection of time delays and directional interactions based on time series from complex dynamical systems.

作者信息

Ma Huanfei, Leng Siyang, Tao Chenyang, Ying Xiong, Kurths Jürgen, Lai Ying-Cheng, Lin Wei

机构信息

School of Mathematical Sciences, Soochow University, Suzhou 215006, China.

Centre for Computational Systems Biology of ISTBI, Fudan University, Shanghai 200433, China.

出版信息

Phys Rev E. 2017 Jul;96(1-1):012221. doi: 10.1103/PhysRevE.96.012221. Epub 2017 Jul 25.

Abstract

Data-based and model-free accurate identification of intrinsic time delays and directional interactions is an extremely challenging problem in complex dynamical systems and their networks reconstruction. A model-free method with new scores is proposed to be generally capable of detecting single, multiple, and distributed time delays. The method is applicable not only to mutually interacting dynamical variables but also to self-interacting variables in a time-delayed feedback loop. Validation of the method is carried out using physical, biological, and ecological models and real data sets. Especially, applying the method to air pollution data and hospital admission records of cardiovascular diseases in Hong Kong reveals the major air pollutants as a cause of the diseases and, more importantly, it uncovers a hidden time delay (about 30-40 days) in the causal influence that previous studies failed to detect. The proposed method is expected to be universally applicable to ascertaining and quantifying subtle interactions (e.g., causation) in complex systems arising from a broad range of disciplines.

摘要

在复杂动力系统及其网络重构中,基于数据且无模型地准确识别内在时间延迟和方向性相互作用是一个极具挑战性的问题。本文提出了一种具有新评分的无模型方法,该方法通常能够检测单个、多个和分布式时间延迟。此方法不仅适用于相互作用的动态变量,还适用于时滞反馈回路中的自相互作用变量。使用物理、生物和生态模型以及真实数据集对该方法进行了验证。特别是,将该方法应用于香港的空气污染数据和心血管疾病住院记录,揭示了主要空气污染物是这些疾病的一个成因,更重要的是,它发现了先前研究未能检测到的因果影响中的一个隐藏时间延迟(约30 - 40天)。预计所提出的方法将普遍适用于确定和量化来自广泛学科的复杂系统中的微妙相互作用(例如因果关系)。

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