Literature DB >> 26396646

Robust synchronization of coupled neural oscillators using the derivative-free nonlinear Kalman Filter.

Gerasimos Rigatos1.   

Abstract

A synchronizing control scheme for coupled neural oscillators of the FitzHugh-Nagumo type is proposed. Using differential flatness theory the dynamical model of two coupled neural oscillators is transformed into an equivalent model in the linear canonical (Brunovsky) form. A similar linearized description is succeeded using differential geometry methods and the computation of Lie derivatives. For such a model it becomes possible to design a state feedback controller that assures the synchronization of the membrane's voltage variations for the two neurons. To compensate for disturbances that affect the neurons' model as well as for parametric uncertainties and variations a disturbance observer is designed based on Kalman Filtering. This consists of implementation of the standard Kalman Filter recursion on the linearized equivalent model of the coupled neurons and computation of state and disturbance estimates using the diffeomorphism (relations about state variables transformation) provided by differential flatness theory. After estimating the disturbance terms in the neurons' model their compensation becomes possible. The performance of the synchronization control loop is tested through simulation experiments.

Keywords:  Coupled neural oscillators; Derivative-free nonlinear Kalman Filter; Differential flatness theory; Differential geometric methods; Disturbances compensation; FitzHugh–Nagumo neuron model

Year:  2014        PMID: 26396646      PMCID: PMC4571647          DOI: 10.1007/s11571-014-9299-8

Source DB:  PubMed          Journal:  Cogn Neurodyn        ISSN: 1871-4080            Impact factor:   5.082


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