Detecting active Lévy particles using differential dynamic microscopy

Fuente: arXiv
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Main Authors: Li, Mingyang, Li, Yu'an, Zhang, H. P., Zhao, Yongfeng
Format: Preprint
Published: 2025
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author Li, Mingyang
Li, Yu'an
Zhang, H. P.
Zhao, Yongfeng
author_facet Li, Mingyang
Li, Yu'an
Zhang, H. P.
Zhao, Yongfeng
contents Detecting Lévy flights of cells has been a challenging problem in experiments. The challenge lies in accessing data in spatiotemporal scales across orders of magnitude, which is necessary for reliably extracting a power-law scaling. Differential dynamic microscopy has been shown to be a powerful method that allows one to acquire statistics of cell motion across scales, which is a potentially versatile method for detecting Lévy walks in biological systems. In this article, we extend the differential dynamic microscopy method to self-propelled Lévy particles, whose run-time distribution has an algebraic tail. We validate our protocol using synthetic imaging data and show that a reliable detection of active Lévy particles requires accessing length scales of an order of magnitude larger than its persistence length, if the variability in particle speed is moderate. Applying the protocol to experimental data of E. coli and E. gracilis, we find that E. coli does not exhibit a signature of Lévy walks, while E. gracilis is better described as active Lévy particles.
format Preprint
id arxiv_https___arxiv_org_abs_2511_00775
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Detecting active Lévy particles using differential dynamic microscopy
Li, Mingyang
Li, Yu'an
Zhang, H. P.
Zhao, Yongfeng
Soft Condensed Matter
Quantitative Methods
Detecting Lévy flights of cells has been a challenging problem in experiments. The challenge lies in accessing data in spatiotemporal scales across orders of magnitude, which is necessary for reliably extracting a power-law scaling. Differential dynamic microscopy has been shown to be a powerful method that allows one to acquire statistics of cell motion across scales, which is a potentially versatile method for detecting Lévy walks in biological systems. In this article, we extend the differential dynamic microscopy method to self-propelled Lévy particles, whose run-time distribution has an algebraic tail. We validate our protocol using synthetic imaging data and show that a reliable detection of active Lévy particles requires accessing length scales of an order of magnitude larger than its persistence length, if the variability in particle speed is moderate. Applying the protocol to experimental data of E. coli and E. gracilis, we find that E. coli does not exhibit a signature of Lévy walks, while E. gracilis is better described as active Lévy particles.
title Detecting active Lévy particles using differential dynamic microscopy
topic Soft Condensed Matter
Quantitative Methods
url https://arxiv.org/abs/2511.00775