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Relative sub-PCA modeling algorithm using iterative within-phase relative analysis for multiphase batch process monitoring

机译:迭代相内相对分析的相对子PCA建模算法用于多相批生产过程监控

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For multiphase batch processes, sub-phase modeling method assumes the underlying process characteristics stay similar within the same phase and represented by one unified phase model. However, the time-varying process variation within each phase has not been addressed. In the present work, relative analysis is iteratively conducted for time-slices within the same phase to capture the relative changes of process variation along time direction. Thus, for each time slice within the same phase, two systematic subspaces are separated, revealing time-independent variation and time-dependent variation respectively. Only the time-independent variation which stays similar with the same phase can be described by a unified phase model. The time-dependent variation reflects time-varying characteristics within each phase which has to be described by different models. For online monitoring, different types of variations can be supervised respectively in which the changes of process variation can be well tracked, providing reliable fault detection performance as well as enhanced process understanding. It is illustrated with a typical multiphase batch process.
机译:对于多阶段批处理,子阶段建模方法假定基本过程特征在同一阶段内保持相似,并由一个统一的阶段模型表示。但是,尚未解决每个阶段中随时间变化的过程变化。在本工作中,针对同一阶段内的时间片迭代地进行了相对分析,以捕获沿时间方向的过程变化的相对变化。因此,对于同一阶段内的每个时间片,两个系统子空间是分开的,分别揭示了时间无关的变化和时间相关的变化。统一的相位模型只能描述与相同相位相似的时间无关的变化。与时间有关的变化反映了每个阶段内的时变特性,必须用不同的模型来描述。对于在线监视,可以分别监督不同类型的变化,在其中可以很好地跟踪过程变化的变化,从而提供可靠的故障检测性能以及增强的过程理解能力。用典型的多相间歇过程进行说明。

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