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A Selective Moving Window Partial Least Squares Method and Its Application in Process Modeling 被引量:1
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作者 徐欧官 傅永峰 +1 位作者 苏宏业 李丽娟 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2014年第7期799-804,共6页
A selective moving window partial least squares(SMW-PLS) soft sensor was proposed in this paper and applied to a hydro-isomerization process for on-line estimation of para-xylene(PX) content. Aiming at the high freque... A selective moving window partial least squares(SMW-PLS) soft sensor was proposed in this paper and applied to a hydro-isomerization process for on-line estimation of para-xylene(PX) content. Aiming at the high frequency of model updating in previous recursive PLS methods, a selective updating strategy was developed. The model adaptation is activated once the prediction error is larger than a preset threshold, or the model is kept unchanged.As a result, the frequency of model updating is reduced greatly, while the change of prediction accuracy is minor.The performance of the proposed model is better as compared with that of other PLS-based model. The compromise between prediction accuracy and real-time performance can be obtained by regulating the threshold. The guidelines to determine the model parameters are illustrated. In summary, the proposed SMW-PLS method can deal with the slow time-varying processes effectively. 展开更多
关键词 SMW-PLS hydro-isomerizafion process Selective updating strategy Soft sensor
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