Quick search Find article
Quick search
Find article
Deutsche Physikalische Gessellschaft IOP Institute of Physics

Detecting event-related time-dependent directional couplings

R G Andrzejak1, A Ledberg1 and G Deco1,2

Show affiliations


Nonlinear interdependence measures can be used to detect directional couplings between stationary dynamical systems from a pair of signals measured from them. For many dynamics, however, intermittent directional couplings arise in causal relation to distinct events on timescales that are often too short to be resolved by nonlinear interdependence measures. On the other hand, in many experimental settings signals are measured for multiple instances of such events. We demonstrate how these multiple realizations can be exploited to reliably detect event-related time-dependent directional couplings. For this purpose, we propose the general concept of time-resolved causal statistics derived from embeddings across multiple realizations of time-dependent dynamics. Surrogates constructed by permuting the order of realizations can be used to test specified null hypotheses. We adapt a conventional nonlinear interdependence measure to serve as a time-resolved causal statistic and apply it to exemplary coupled Lorenz dynamics. This approach allows detecting event-related time-dependent directional couplings based on only a few tens of realizations. Changes of the coupling direction can be detected within one oscillation of the dynamics. Beyond this particular application, any metric bivariate or univariate measure can be adapted to serve as time-resolved causal statistics to characterize various aspects of event-related time-dependent dynamics.


PACS

05.45.Tp Time series analysis

87.19.L- Neuroscience

05.45.Xt Synchronization; coupled oscillators

Subjects

Medical physics

Biological physics

Statistical physics and nonlinear systems

Dates

Issue 1 (January 2006)

Received 18 October 2005

Published 25 January 2006



  1. Detecting event-related time-dependent directional couplings

    R G Andrzejak et al 2006 New J. Phys. 8 6

  2. Dissociative recombination as primary dissociation channel in plasma chemistry

    D C Schram et al 2009 J. Phys.: Conf. Ser. 192 012012

  3. Calibrating Redshift Distributions beyond Spectroscopic Limits with Cross-Correlations

    Jeffrey A. Newman 2008 ApJ 684 88

  4. A new integrable differential-difference system and its explicit solutions

    Yong-Tang Wu and Xing-Biao Hu 1999 J. Phys. A: Math. Gen. 32 1515

  5. Issues in first-principles calculations for defects in semiconductors and oxides

    Risto M Nieminen 2009 Modelling Simul. Mater. Sci. Eng. 17 084001

  6. Time-dependent single-electron transport through quantum dots

    Toshimasa Fujisawa et al 2006 Rep. Prog. Phys. 69 759

  7. Two-way time transfer experiment via the Horizon satellite

    E L Gurevich 1995 Metrologia 32 51

  8. Particle motions in low-Reynolds number pressure-driven flows through converging–diverging microchannels

    Xiangchun Xuan and Dongqing Li 2006 J. Micromech. Microeng. 16 62

  9. Rietveld analysis and superconductivity of compounds

    H-C I Kao et al 1996 Supercond. Sci. Technol. 9 893

  10. Analytic approximation of the Tavis–Cummings ground state via projected states

    Octavio Castaños et al 2009 Phys. Scr. 80 055401

View by subject




Export








Please login to access our web services, or create an account if you don't yet have one.

You must have cookies enabled in your web browser to be able to login.

Username
Password

Forgotten your password? Get a new one here.