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Sliding mode control of a DC/DC PWM converter with PFC implementedby neural networks

机译:由神经网络实现的带PFC的DC / DC PWM转换器的滑模控制

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An experimental neural controller implementing a variable structure control (VSC) algorithm is proposed for a power factor preregulator. VSC control laws yield fast response and a robust behavior against large parameters variations. A multilayer perceptron learns through backpropagation to approximate the desired adaptive control functions. The main advantage of the neural network implementation in comparison to the numerical implementation is that decreases complexity and cost of the controller, and increases the switching frequency. A simple analog electronic realization of this neural network using discrete operational amplifiers is proposed. This implementation possesses all good properties of sliding mode while avoiding the unnecessary discontinuities of the control input signals and thus eliminating chattering. Experimental results are summarized confirming the validity of the neural network approach
机译:针对功率因数预调节器,提出了一种实现可变结构控制(VSC)算法的实验神经控制器。 VSC控制定律可产生快速响应,并能抵抗较大的参数变化。多层感知器通过反向传播学习以近似所需的自适应控制功能。与数值实现相比,神经网络实现的主要优点是降低了控制器的复杂性和成本,并增加了开关频率。提出了使用离散运算放大器对该神经网络进行简单的模拟电子实现。该实施方式具有滑模的所有良好特性,同时避免了控制输入信号的不必要的不​​连续性,从而消除了抖动。总结了实验结果,证实了神经网络方法的有效性

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