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NARMA-L2 neural control of a bioreactor

机译:NARMA-L2生物反应器的神经控制

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This paper presents a bioreactor control using a nonlinear autoregressive moving average (NARMA-L2) neural network based feedback-linearization. The NARMA-L2 neural network is trained off-line for forward dynamics of the bioreactor model with redefined output and is then inverted to force the real output to approximately track a command input. The controller has been able to take care of nonlinearly aspect of the system. Simulation results show that the NARMA-L2 neural control strategy has a better trajectory tracking ability than the use of the inverse neural model control strategy, where the control scheme is not very fruitful since the inverse model developed by the neural network is not accurate enough to exercise effective control.
机译:本文提出了一种基于非线性自回归移动平均(NARMA-L2)神经网络的基于反馈线性化的生物反应器控制。对NARMA-L2神经网络进行脱机训练,以使生物反应器模型的前向动力学具有重新定义的输出,然后对其进行反转以强制实际输出大致跟踪命令输入。控制器已经能够处理系统的非线性方面。仿真结果表明,与使用逆神经模型控制策略相比,NARMA-L2神经控制策略具有更好的轨迹跟踪能力,因为神经网络开发的逆模型不够精确,因此控制方案没有取得很好的成果。行使有效控制权。

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