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Published January 2007 | public
Journal Article

Measuring synchronization in coupled model systems: A comparison of different approaches

Abstract

The investigation of synchronization phenomena on measured experimental data such as biological time series has recently become an increasing focus of interest. Different approaches for measuring synchronization have been proposed that rely on certain characteristic features of the dynamical system under investigation. For experimental data the underlying dynamics are ususaly not completely known, therefore it is difficult to decide a priori which synchronization measure is most suitable for an analysis. In this study we use three different coupled model systems to create a 'controlled' setting for a comparison of six different measures of synchronization. All measures are compared to each other with respect to their ability to distinguish between different levels of coupling and their robustness against noise. Results show that the measure to be applied to a certain task can not be chosen according to a fixed criterion but rather pragmatically as the measure which most reliably yields plausible information in test applications, although certain dynamical features of a system under investigation (e.g., power spectra, dimension) may render certain measures more suitable than others.

Additional Information

© 2006 Elsevier B.V. Received 8 February 2006, Revised 14 September 2006, Accepted 25 September 2006, Available online 17 November 2006. Many thanks to R. Quian Quiroga for useful discussions. T.K. acknowledges support from the EU Marie Curie Human Resources and Mobility Activity, R.G.A. from the Alexander von Humboldt Foundation, F.M. intramural funding from BONFOR. T.K., F.M., K.L. and P.G. acknowledge support from the Deutsche Forschungsgemeinschaft [SFB TR3].

Additional details

Created:
September 15, 2023
Modified:
October 23, 2023