A Random Forest Based Classifier for Error Prediction of Highly Individualized Products.

Technologien fur die intelligente Automation(2019)

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摘要
This paper presents an application of a random forest based classifier that aims at recognizing flawed products in a highly automated production environment. Within the course of this paper, some data set and application features are highlighted that make the underlying classification problem rather complex and hinders the usage of machine learning algorithms straight out-of-the-box. The findings regarding these features and how to treat the concluded challenges are highlighted in a abstracted and generalized manner.
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关键词
random forest classifier,imbalanced data,complex tree-based models,high peculiarity of data
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