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Multiresponse optimization of a multistage manufacturing process using a patient rule induction method

机译:使用患者规则诱导方法进行多级制造过程的多态优化

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Most manufacturing industries produce products through a series of sequential stages, known as a multistage process. In a multistage process, each stage affects the stage that follows, and the process often has multiple response variables. In this paper, we suggest a new procedure for optimizing a multistage process with multiple response variables. Our method searches for an optimal setting of input variables directly from operational data according to a patient rule induction method (PRIM) to maximize a desirability function, to which multiple response variables are converted. The proposed method is explained by a step-by-step procedure using a steel manufacturing process as an example. The results of the steel manufacturing process optimization show that the proposed method finds the optimal settings of input variables and outperforms the other PRIM-based methods.
机译:大多数制造业通过一系列连续阶段生产产品,称为多级过程。在多级进程中,每个阶段都会影响所遵循的阶段,并且该过程通常具有多个响应变量。在本文中,我们建议使用多响应变量优化多级进程的新过程。我们的方法根据患者规则诱导方法(PIF),直接从操作数据中搜索输入变量的最佳设置,以最大化转换多个响应变量的期望函数。所提出的方法是通过使用钢制造工艺作为示例的逐步过程来解释。钢制造过程优化的结果表明,该方法发现输入变量的最佳设置,优于其他基于PRI的方法。

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