
The central pattern generator (CPG) is a nonlinear oscillator formed by a group of neurons, providing a fundamental control mechanism underlying rhythmic movements in animal locomotion. We consider a class of CPGs modeled by a set of interconnected identical neurons. Based on the idea of multivariable harmonic balance, we show how the oscillation profile is related to the connectivity matrix that specifies the architecture and strengths of the interconnections. Specifically, the frequency, amplitudes, and phases are essentially encoded in terms of a pair of eigenvalue and eigenvector. This basic principle is used to estimate the oscillation profile of a given CPG model. Moreover, a systematic method is proposed for designing a CPG-based nonlinear oscillator that achieves a prescribed oscillation profile.
Cell biology, Mathematical modelling of systems, oscillators, harmonic balance, nonlinear systems, Neural networks for/in biological studies, artificial life and related topics, pattern generation, neural networks
Cell biology, Mathematical modelling of systems, oscillators, harmonic balance, nonlinear systems, Neural networks for/in biological studies, artificial life and related topics, pattern generation, neural networks
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