Diagnosis of Out-of-control Signals in Multivariate Statistical Process Control Based on Bagging and Decision Tree
Abstract
In this paper, we propose an ensemble method based on bagging and decision tree to resolve the problem of diagnosing out-of-control signals in multivariate statistical process control. To classify the out-of-control signals, we obtain a series of classifiers through ensemble learning on decision tree. Then we will integrate the classification results of multiple classifiers to determine the final classification. The experimental results show that our method could improve the accuracy of classification and is superior to other methods in terms of diagnosing out-of-control signals in multivariate statistical process control.
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PDFDOI: https://doi.org/10.20849/abr.v2i2.147
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