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Robust pole assignment for synthesizing fractional-order control systems via neurodynamic optimization

机译:通过神经动力学优化合成分数阶控制系统的鲁棒极点分配

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In this paper, a neurodynamic optimization approach is proposed for robust pole assignment of fractional-order control systems. Compared with integral-order systems, the pole assignment of fractional-order systems is more challenging due to variability of stability region. The robust pole assignment is formulated as a constrained optimization problem, and a robustness measure is derived as a pseudoconvex objective function to be minimized. A recurrent neural network is employed for computing optimal solutions in real time. Simulation results are given to substantiate the efficacy and superiority of the proposed neurodynamic optimization approach.
机译:本文提出了一种神经动力学优化方法,用于分数阶控制系统的鲁棒极点分配。与整数阶系统相比,分数阶系统的极点分配由于稳定区域的可变性而更具挑战性。鲁棒极点分配被公式化为约束优化问题,而鲁棒性测度被推导为拟最小化的伪凸目标函数。循环神经网络用于实时计算最佳解决方案。仿真结果证明了所提出的神经动力学优化方法的有效性和优越性。

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