一种带有动态误差传递因子的批量过程建模自适应学习方法

Liquan Zhang, Tianhui Zhou, Zhixin Chen
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引用次数: 1

摘要

许多批处理过程可以看作是一类控制仿射非线性系统。本文提出了一种新的批量过程建模的自适应学习方法。该方法通过引入与均方误差相关的动态误差传递因子,并采用扩展递推最小二乘法,提供了一种有效的模糊T-S预测模型,解决了递推最小二乘法存在的收敛速度与社会化矛盾的问题。以半间歇反应器为例,仿真结果表明了该建模方法的有效性和准确性。
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An adaptive learning method with dynamic error transfer factor for batch processes modeling
Many batch processes can be considered as a class of control affine nonlinear systems. In this paper, a novel adaptive learning approach for batch process modeling is developed. By introducing dynamic error transfer factor associated with mean squared error and using extended recursive least squares approach, the proposed approach can offer an effective fuzzy T-S predication model, resolve the conflicting problem of convergence speed and osciallation existed in recursive least squares method. The proposed modeling scheme is illustrated on a semi-batch reactor, and simulation results show its effectiveness and accuracy.
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