Classification of Quality Defects using Multivariate Control Chart with Ensemble Machine Learning Model
Deniz Demircioğlu Diren,
Semra Boran
Abstract:Multivariate control charts enable to monitor processes affected by more than one variable. But, when the process is out of control, it cannot detect which variable is causing it. It is an important requirement to know which variables in the process need corrective actions. In this study, a machine learning-based model is proposed to predict the variable/s that make the process out of control. For this purpose, ensemble algorithms, which are known to have higher prediction performance than single algorithms, w… Show more
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