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- W3114072249 abstract "In this study, the warpage prediction models have been developed for an injection molded PVC component named a drip chamber. Two popular and widely used ensemble machine learning algorithms, namely random forest and gradient boosted regression tree have been used to develop the predictive models. 40 experiments were carried out for various input process parameters to develop the warpage prediction dataset. ANOVA was performed to identify the significant input process parameters. These process parameters were barrel temperature, holding pressure, holding time, mold temperature, and cooling time. The results shows that the mean absolute percentage errors of random forest and gradient boosted regression tree model are 3.25% and 9.37%, respectively. This indicates that random forest ensemble algorithm outperforms gradient boosted model in predicting the warpage of injection molded part. This model allows production managers to monitor injection molding method parameters and regulate the warpage before actual production and with minimum waste." @default.
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- W3114072249 date "2022-01-01" @default.
- W3114072249 modified "2023-09-25" @default.
- W3114072249 title "Warpage prediction of Injection-molded PVC part using ensemble machine learning algorithm" @default.
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- W3114072249 doi "https://doi.org/10.1016/j.matpr.2020.11.463" @default.
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