Optimization of periodic input waveforms for global entrainment of weakly forced limit-cycle oscillators

We propose a general method for optimizing periodic input waveforms for global entrainment of weakly forced limit-cycle oscillators based on phase reduction and nonlinear programming. We derive averaged phase dynamics from the mathematical model of a limit-cycle oscillator driven by a weak periodic...

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Published inNonlinear dynamics Vol. 105; no. 3; pp. 2247 - 2263
Main Authors Kato, Yuzuru, Zlotnik, Anatoly, Li, Jr-Shin, Nakao, Hiroya
Format Journal Article
LanguageEnglish
Published Dordrecht Springer Netherlands 01.08.2021
Springer Nature B.V
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Abstract We propose a general method for optimizing periodic input waveforms for global entrainment of weakly forced limit-cycle oscillators based on phase reduction and nonlinear programming. We derive averaged phase dynamics from the mathematical model of a limit-cycle oscillator driven by a weak periodic input and optimize the Fourier coefficients of the input waveform to maximize prescribed objective functions. In contrast to the optimization methods that rely on the calculus of variations, the proposed method can be applied to a wider class of optimization problems including global entrainment objectives. As an illustration, we consider two optimization problems, one for achieving fast global convergence of the oscillator to the entrained state and the other for realizing prescribed global phase distributions in a population of identical uncoupled noisy oscillators. We show that the proposed method can successfully yield optimal input waveforms to realize the desired states in both cases.
AbstractList We propose a general method for optimizing periodic input waveforms for global entrainment of weakly forced limit-cycle oscillators based on phase reduction and nonlinear programming. We derive averaged phase dynamics from the mathematical model of a limit-cycle oscillator driven by a weak periodic input and optimize the Fourier coefficients of the input waveform to maximize prescribed objective functions. In contrast to the optimization methods that rely on the calculus of variations, the proposed method can be applied to a wider class of optimization problems including global entrainment objectives. As an illustration, we consider two optimization problems, one for achieving fast global convergence of the oscillator to the entrained state and the other for realizing prescribed global phase distributions in a population of identical uncoupled noisy oscillators. We show that the proposed method can successfully yield optimal input waveforms to realize the desired states in both cases.
Author Zlotnik, Anatoly
Li, Jr-Shin
Kato, Yuzuru
Nakao, Hiroya
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  surname: Nakao
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Nonlinear oscillation
Nonlinear programming
Synchronization
Optimization
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Snippet We propose a general method for optimizing periodic input waveforms for global entrainment of weakly forced limit-cycle oscillators based on phase reduction...
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SubjectTerms Automotive Engineering
Calculus of variations
Classical Mechanics
Control
Dynamical Systems
Engineering
Entrainment
Mechanical Engineering
Nonlinear programming
Optimization
Original Paper
Oscillators
Vibration
Waveforms
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Title Optimization of periodic input waveforms for global entrainment of weakly forced limit-cycle oscillators
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