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Slowing down critical transitions via Gaussian white noise and periodic force 被引量:5

Slowing down critical transitions via Gaussian white noise and periodic force
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摘要 Stochastic perturbations and periodic excitations are generally regarded as sources to induce critical transitions in complex systems. However, we find that they are also able to slow down an imminent critical transition. To illustrate this phenomenon, a periodically driven bistable eutrophication model with Gaussian white noise is introduced as a prototype class of real systems.The residence probability(RP) is presented to measure the possibility that the given system stays in the oligotrophic state versus Gaussian white noise and periodic force. Variations in the mean first passage time(MFPT) and the mean velocity(MV) of the first right-crossing process are also calculated respectively. We show that the frequency of the periodic force can increase the MFPT while reduce the MV under different control parameters. Nevertheless, the noise intensity or the amplitude may result in an increase of the RP only in the case of control parameters approaching the critical values. Furthermore, for an impending critical transition, an increase of the RP appears with the interaction between the amplitude and noise intensity or the combination of the noise intensity and frequency, while the interaction of the frequency and amplitude leads to an extension of the MFPT or a decrease of the MV. As a result, an increase of the RP and MFPT, and a decrease of the MVobtained from our results claim that it is possible to slow down an imminent critical transition via Gaussian white noise and periodic force. Stochastic perturbations and periodic excitations are generally regarded as sources to induce critical transitions in complex systems. However, we find that they are also able to slow down an imminent critical transition. To illustrate this phenomenon, a periodically driven bistable eutrophication model with Gaussian white noise is introduced as a prototype class of real systems.The residence probability(RP) is presented to measure the possibility that the given system stays in the oligotrophic state versus Gaussian white noise and periodic force. Variations in the mean first passage time(MFPT) and the mean velocity(MV) of the first right-crossing process are also calculated respectively. We show that the frequency of the periodic force can increase the MFPT while reduce the MV under different control parameters. Nevertheless, the noise intensity or the amplitude may result in an increase of the RP only in the case of control parameters approaching the critical values. Furthermore, for an impending critical transition, an increase of the RP appears with the interaction between the amplitude and noise intensity or the combination of the noise intensity and frequency, while the interaction of the frequency and amplitude leads to an extension of the MFPT or a decrease of the MV. As a result, an increase of the RP and MFPT, and a decrease of the MVobtained from our results claim that it is possible to slow down an imminent critical transition via Gaussian white noise and periodic force.
出处 《Science China(Technological Sciences)》 SCIE EI CAS CSCD 2019年第12期2144-2152,共9页 中国科学(技术科学英文版)
基金 supported by the National Natural Science Foundation of China(Grant Nos.11772255&11872305) the Fundamental Research Funds for the Central Universities Shaanxi Province Project for Distinguished Young Scholars Innovation Foundation for Doctor Dissertation of Northwestern Polytechnical University the China Postdoctoral Science Foundation
关键词 critical transition slowing down bistable eutrophication model Gaussian white noise periodic force residence probability mean first passage time mean velocity critical transition slowing down bistable eutrophication model Gaussian white noise periodic force residence probability mean first passage time mean velocity
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  • 1MA Jun 1,2, TANG Jun 2 , ZHANG AiHua 3 & JIA Ya 2 1 Department of Physics, Lanzhou University of Technology, Lanzhou 730050, China,2 Department of Physics, Central China Normal University, Wuhan 430079, China,3 College of Electrical and Information Engineering, Lanzhou University of Technology, Lanzhou 730050, China.Robustness and breakup of the spiral wave in a two-dimensional lattice network of neurons[J].Science China(Physics,Mechanics & Astronomy),2010,53(4):672-679. 被引量:6
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