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1.
Phys Rev Lett ; 96(20): 208103, 2006 May 26.
Artigo em Inglês | MEDLINE | ID: mdl-16803212

RESUMO

Graphical models applying partial coherence to multivariate time series are a powerful tool to distinguish direct and indirect interdependencies in multivariate linear systems. We carry over the concept of graphical models and partialization analysis to phase signals of nonlinear synchronizing systems. This procedure leads to the partial phase synchronization index which generalizes a bivariate phase synchronization index to the multivariate case and reveals the coupling structure in multivariate synchronizing systems by differentiating direct and indirect interactions. This ensures that no false positive conclusions are drawn concerning the interaction structure in multivariate synchronizing systems. By application to the paradigmatic model of a coupled chaotic Roessler system, the power of the partial phase synchronization index is demonstrated.

2.
J Neurosci Methods ; 152(1-2): 210-9, 2006 Apr 15.
Artigo em Inglês | MEDLINE | ID: mdl-16269188

RESUMO

One major challenge in neuroscience is the identification of interrelations between signals reflecting neural activity. When applying multivariate time series analysis techniques to neural signals, detection of directed relationships, which can be described in terms of Granger-causality, is of particular interest. Partial directed coherence has been introduced for a frequency domain analysis of linear Granger-causality based on modeling the underlying dynamics by vector autoregressive processes. We discuss the statistical properties of estimates for partial directed coherence and propose a significance level for testing for nonzero partial directed coherence at a given frequency. The performance of this test is illustrated by means of linear and non-linear model systems and in an application to electroencephalography and electromyography data recorded from a patient suffering from essential tremor.


Assuntos
Neurofisiologia/métodos , Algoritmos , Simulação por Computador , Interpretação Estatística de Dados , Eletroencefalografia/estatística & dados numéricos , Eletromiografia/estatística & dados numéricos , Humanos , Modelos Lineares , Neurofisiologia/estatística & dados numéricos , Dinâmica não Linear , Processos Estocásticos , Tremor/fisiopatologia
3.
Biol Cybern ; 89(4): 289-302, 2003 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-14605893

RESUMO

In this paper, we investigate the use of partial correlation analysis for the identification of functional neural connectivity from simultaneously recorded neural spike trains. Partial correlation analysis allows one to distinguish between direct and indirect connectivities by removing the portion of the relationship between two neural spike trains that can be attributed to linear relationships with recorded spike trains from other neurons. As an alternative to the common frequency domain approach based on the partial spectral coherence we propose a new statistic in the time domain. The new scaled partial covariance density provides additional information on the direction and the type, excitatory or inhibitory, of the connectivities. In simulation studies, we investigated the power and limitations of the new statistic. The simulations show that the detectability of various connectivity patterns depends on various parameters such as connectivity strength and background activity. In particular, the detectability decreases with the number of neurons included in the analysis and increases with the recording time. Further, we show that the method can also be used to detect multiple direct connectivities between two neurons. Finally, the methods of this paper are illustrated by an application to neurophysiological data from spinal dorsal horn neurons.


Assuntos
Potenciais de Ação/fisiologia , Redes Neurais de Computação , Células do Corno Posterior/fisiologia , Sinapses/fisiologia
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