English

Unravelling the origins of anomalous diffusion: from molecules to migrating storks

Data Analysis, Statistics and Probability 2022-06-28 v3 Statistical Mechanics Quantitative Methods

Abstract

Anomalous diffusion or, more generally, anomalous transport, with nonlinear dependence of the mean-squared displacement on the measurement time, is ubiquitous in nature. It has been observed in processes ranging from microscopic movement of molecules to macroscopic, large-scale paths of migrating birds. Using data from multiple empirical systems, spanning 12 orders of magnitude in length and 8 orders of magnitude in time, we employ a method to detect the individual underlying origins of anomalous diffusion and transport in the data. This method decomposes anomalous transport into three primary effects: long-range correlations ("Joseph effect"), fat-tailed probability density of increments ("Noah effect"), and non-stationarity ("Moses effect"). We show that such a decomposition of real-life data allows to infer nontrivial behavioral predictions, and to resolve open questions in the fields of single particle tracking in living cells and movement ecology.

Keywords

Cite

@article{arxiv.2109.04309,
  title  = {Unravelling the origins of anomalous diffusion: from molecules to migrating storks},
  author = {Ohad Vilk and Erez Aghion and Tal Avgar and Carsten Beta and Oliver Nagel and Adal Sabri and Raphael Sarfati and Daniel K. Schwartz and Matthias Weiss and Diego Krapf and Ran Nathan and Ralf Metzler and Michael Assaf},
  journal= {arXiv preprint arXiv:2109.04309},
  year   = {2022}
}

Comments

17 pages, 6 figures + Supplemental Material. To appear in Physical Review Research (2022)