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Neurodynamics-based robust pole assignment for synthesizing second-order control systems via output feedback based on a convex feasibility problem reformulation

机译:基于神经动力学的鲁棒杆分配,用于基于凸起可行性问题重构通过输出反馈来合成二阶控制系统

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摘要

A neurodynamic optimization approach is proposed for robust pole assignment problem of second-order control systems via output feedback. With a suitable robustness measure serving as the objective function, the robust pole assignment problem is formulated as a quasi-convex optimization problem with linear constraints. Next, the problem further is reformulated as a convex feasibility problem. Two coupled recurrent neural networks are applied for solving the optimization problem with guaranteed optimality and exact pole assignment. Simulation results are included to substantiate the effectiveness of the proposed approach.
机译:通过输出反馈提出了一种神经动力学优化方法,用于二阶控制系统的鲁棒极分配问题。利用作为目标函数的合适的稳健性度量,强大的极点分配问题被制定为具有线性约束的准凸优化问题。接下来,该问题进一步被重新重新重整为凸起可行性问题。应用了两个耦合的经常性神经网络,用于解决有保证的最优性和精确的极点分配的优化问题。包括仿真结果以证实提出的方法的有效性。

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