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首页> 外文期刊>Bulletin of the Polish Academy of Sciences. Technical Sciences >Particle swarm optimization of an iterative learning controller for the single-phase inverter with sinusoidal output voltage waveform
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Particle swarm optimization of an iterative learning controller for the single-phase inverter with sinusoidal output voltage waveform

机译:具有正弦输出电压波形的单相逆变器迭代学习控制器的粒子群优化

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This paper presents the application of a particle swarm optimization (PSO) to determine iterative learning control (ILC) law gains for an inverter with an LC output filter. Available analytical tuning methods derived for a given type of ILC law are not very straightforward if additional performance requirements of the closed-loop system have to be met. These requirements usually concern the dynamics of a response to a reference signal, the dynamics of a disturbance rejection, the immunity against expected level of system and measurement noise, the robustness to anticipated variations of parameters, etc. An evolutionary optimization approach based on the swarm intelligence is proposed here. It is shown that in the case of the ILC applied to the LC filter, a cost function based on mean squares can produce satisfactory tuning effects. The efficacy of the procedure is illustrated by performing the optimization for various noise levels and various requested dynamics.
机译:本文介绍了粒子群优化(PSO)在确定具有LC输出滤波器的逆变器的迭代学习控制(ILC)定律增益中的应用。如果必须满足闭环系统的其他性能要求,则为给定类型的ILC法则导出的可用分析调整方法不是很简单。这些要求通常涉及对参考信号的响应动力学,干扰抑制的动力学,对系统预期水平和测量噪声的抗扰性,对参数预期变化的鲁棒性等。基于群的进化优化方法在这里提出情报。结果表明,在将ILC应用于LC滤波器的情况下,基于均方的成本函数可以产生令人满意的调谐效果。通过针对各种噪声水平和各种要求的动态进行优化来说明该过程的有效性。

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