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Inferential process modeling, quality prediction and fault detection using multi-stage data segregation

机译:利用多阶段数据隔离进行推理过程建模,质量预测和故障检测

摘要

A process modeling technique uses a single statistical model, such as a PLS, PRC, MLR, etc. model, developed from historical data for a typical process and uses this model to perform quality prediction or fault detection for various different process states of a process. The modeling technique determines means (and possibly standard deviations) of process parameters for each of a set of product grades, throughputs, etc., compares on-line process parameter measurements to these means and uses these comparisons in a single process model to perform quality prediction or fault detection across the various states of the process. Because only the means and standard deviations of the process parameters of the process model are updated, a single process model can be used to perform quality prediction or fault detection while the process is operating in any of the defined process stages or states. Moreover, the sensitivity (robustness) of the process model may be manually or automatically adjusted for each process parameter to tune or adapt the model over time.
机译:过程建模技术使用从典型过程的历史数据中开发的单个统计模型(例如PLS,PRC,MLR等),并使用该模型对过程的各种不同过程状态执行质量预测或故障检测。建模技术确定一组产品等级,产量等中每一个产品的过程参数的均值(可能还有标准偏差),将在线过程参数测量值与这些均值进行比较,并在单个过程模型中使用这些比较来执行质量跨过程各种状态的预测或故障检测。因为仅更新了过程模型的过程参数的平均值和标准偏差,所以当过程在任何定义的过程阶段或状态下运行时,可以使用单个过程模型来执行质量预测或故障检测。此外,可以针对每个过程参数手动或自动调整过程模型的灵敏度(鲁棒性),以随着时间的推移调整或调整模型。

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