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Controlling extreme multistability of memristor emulator-based dynamical circuit in flux-charge domain

机译:控制磁通电荷域基于忆耳仿真器的动态电路的极端多功能

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摘要

Memristive circuit with infinitely many equilibrium points can exhibit the special phenomenon of extreme multistability, whose dynamics mechanism and physical control are significant issues deserving in-depth investigations. In this paper, a control strategy for extreme multistability exhibited in an active band pass filter-based memristive circuit is explored in flux-charge domain. To this end, an incremental flux-charge model is established with four additional constant parameters reflecting the initial conditions of all dynamic elements. Thus, the line equilibrium point only related to memristor initial condition in the voltage-current domain is transformed into some determined equilibrium points, whose locations and stabilities are explicitly related to all four initial conditions. Consequently, the initial condition-dependent extreme multistability phenomenon, which has not been quantitatively analyzed in the voltage-current domain, can readily be investigated through evaluating these determined equilibrium points. Most important of all, the initial condition-dependent dynamical behaviors are formulated as the system parameter-dependent behaviors in the newly constructed flux-charge model and thus can be rigorously captured in a hardware equivalent realization circuit. Numerical simulations and experimental measurements reveal that the control of extreme multistability is successfully achieved in flux-charge domain, which is significant for seeking potential engineering applications of multistable memristive circuits.
机译:具有无限均衡点的椎间路电路可以表现出极端多个能力的特殊现象,其动力学机制和物理控制是值得深入的调查的重要问题。在本文中,在磁通电荷域中探讨了基于主动带通滤波器的存储电路中展出的极端多个能力的控制策略。为此,建立增量通量电荷模型,其中四个额外的常数参数反映了所有动态元素的初始条件。因此,仅与电压 - 电流域中的忆阻器初始条件相关的线平衡点被转换成一些确定的平衡点,其位置和稳定性明确地与所有四个初始条件相关。因此,通过评估这些确定的平衡点可以容易地研究尚未定量地分析的初始条件依赖性极多乘现象。最重要的是,初始条件相关的动态行为被配制成新构造的磁通电荷模型中的系统参数相关行为,因此可以在硬件等效的实现电路中严格捕获。数值模拟和实验测量表明,在磁通充电域中成功地实现了极端多个能力的控制,这对于寻求多个存储电路的潜在工程应用是显着的。

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