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Robustness of reinforced gradient-type iterative learning control for batch processes with Gaussian noise

Robustness of reinforced gradient-type iterative learning control for batch processes with Gaussian noise
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摘要 In this paper,a reinforced gradient-type iterative learning control pro file is proposed by making use of system matrices and a proper learning step to improve the tracking performance of batch processes disturbed by external Gaussian white noise.The robustness is analyzed and the range of the step is speci fied by means of statistical technique and matrix theory.Compared with the conventional one,the proposed algorithm is more ef ficient to resist external noise.Numerical simulations of an injection molding process illustrate that the proposed scheme is feasible and effective. In this paper, a reinforced gradient-type iterative learning control profile is proposed by making use of system matrices and a proper learning step to improve the tracking performance of batch processes disturbed by exter- nal Gaussian white noise. The robustness is analyzed and the range of the step is specified by means of statistical technique and matrix theory. Compared with the conventional one, the proposed algorithm is more efficient to resist external noise. Numerical simulations of an injection molding process illustrate that the proposed scheme is feasible and effective.
出处 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2016年第5期623-629,共7页 中国化学工程学报(英文版)
基金 Supported by National Natural Science Foundation of China(F010114-6097414061273135)
关键词 迭代学习控制 高斯噪声 鲁棒性 梯度型 过程强化 间歇 注塑成型过程 白噪声干扰 Batch process lterative learning control Reinforced gradient Gaussian white noise
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