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  Data mining techniques applied to predictive modeling of the knurling process
 
 
Titel: Data mining techniques applied to predictive modeling of the knurling process
Auteur: Feng, Chang-Xue Jack
Wang, Xian-Feng
Verschenen in: IIE transactions
Paginering: Jaargang 36 (2004) nr. 3 pagina's 253-263
Jaar: 2004-03
Inhoud: Knurls are designed into a product to provide the correct frictional force for easy assembly and maintenance and sometimes for decorative purposes. The literature to date has merely studied how to realize a good and consistent knurl, but no predictive models of the knurling process have been presented. This paper applies two competing data mining techniques, regression analysis and artificial neural networks, to develop a predictive model of the knurling process. Fractional factorial design of experiments is used to plan the experiments. Four criteria, namely the PRESS statistic, the adjusted R2, the Cp statistic, and the residual mean square s2, are employed to select the best regression model. Hypothesis testing is conducted to test the effectiveness of each model, and to compare the two data mining schemes. This study demonstrates that for a reasonably large set of data from structurally designed experiments, the two methods produce comparable results in both model construction (or training) and model validation. Due to the explicit nature of a regression model, it is preferred to a neural network model to investigate the process.
Uitgever: Taylor & Francis
Bronbestand: Elektronische Wetenschappelijke Tijdschriften
 
 

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