局部线性神经模糊技术在部分模拟反应过程中的在线实现

B. Jamali, M. Ghayyem, H. Jazayeri-Rad, M. Shahbazian
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引用次数: 0

摘要

本研究提出了一种在线识别存在测量噪声和不确定度的非线性反应过程的方法,为了准确模拟该过程,作者创建了HYSYS(化学软件)和MATLAB之间的链接。在这一环节中,HYSYS对连续搅拌槽式反应器(CSTR)进行了仿真,并用MATLAB实现了数据采集算法。用于说明本研究的化学过程是丙二醇的生产过程。介绍了局部线性模型树(LOLIMOT)识别算法。为了避免非线性优化技术的应用,非线性模型参数采用启发式的增量树构造算法确定。结果表明,LOLIMOT对列车和测试数据的拟合效果最好。另一方面,局部估计的有限灵活性减少了由于偏差/方差困境造成的方差误差。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Online Implementation of Local Linear Neuro-fuzzy Technique on Partially Simulated Reaction Process
This study presents a methodology for on-line identification of the nonlinear reaction process in presence of measurement noise and uncertainty, for accurate simulation of this process, a link between HYSYS (chemical software) and MATLAB was generated by the author. In this link HYSYS simulates the continuous stirred tank reactor (CSTR) and MATLAB performs the data acquisition algorithm. The chemical process used to illustrate this study is the production process of propylene glycol. The local linear models tree (LOLIMOT) identification algorithm has been introduced. The nonlinear model parameters are determined by an incremental tree construction algorithm in a heuristic manner in order to avoid the application of nonlinear optimization techniques. The results show that the LOLIMOT gives best fitting on the train and test data. On the other hand, the limited flexibility of the local estimation reduces the variance error due to the bias/variance dilemma.
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