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Controlling chaos in a fast diode resonator using extended time-delay autosynchronization: Experimental observations and theoretical analysis

机译:使用扩展的时延自同步控制快速二极管谐振器中的混沌:实验观察和理论分析

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We stabilize unstable periodic orbits of a fast diode resonator driven at 10.1 MHz (corresponding to a drive period under 100 ns) using extended time-delay autosynchronization. Stabilization is achieved by feedback of an error signal that is proportional to the difference between the value of a state variable and an infinite series of values of the state variable delayed in time by integral multiples of the period of the orbit. The technique is easy to implement electronically and it has an all-optical counterpart that may be useful for stabilizing the dynamics of fast chaotic lasers. We show that increasing the weights given to temporally distant states enlarges the domain of control and reduces the sensitivity of the domain of control on the propagation delays in the feedback loop. We determine the average time to obtain control as a function of the feedback gain and identify the mechanisms that destabilize the system at the boundaries of the domain of control. A theoretical stability analysis of a model of the diode resonator in the presence of time-delay feedback is in good agreement with the experimental results for the size and shape of the domain of control.
机译:我们使用扩展的时延自动同步功能来稳定以10.1 MHz(对应于100 ns以下的驱动周期)驱动的快速二极管谐振器的不稳定周期轨道。通过误差信号的反馈来实现稳定化,该误差信号与状态变量的值和状态变量的值的无限系列之间的差成比例,该无穷系列的时间在时间​​上延迟了轨道周期的整数倍。该技术易于以电子方式实现,并且具有全光学技术,可用于稳定快速混沌激光器的动态。我们表明,增加赋予时间上遥远状态的权重会扩大控制范围,并降低控制范围对反馈环路中传播延迟的敏感性。我们根据反馈增益确定获得控制的平均时间,并确定在控制域边界使系统不稳定的机制。在存在时滞反馈的情况下,二极管谐振器模型的理论稳定性分析与控制域的大小和形状的实验结果非常吻合。

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