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QUALITY PREDICTION AND CONTROL OF INJECTION MOLDING PROCESS USING MULTISTAGE MWGRNN METHOD

机译:多阶段MWGRNN方法在注塑过程质量预测与控制中的应用

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A multistage moving window generalized regression neural network (GRNN) was demonstrated to injection molding batch process. Firstly analyzing the changes of process correlation can lead to effective division of a process into several "operation" stages, in good agreement with process knowledge. Then the nonlinearly and dynamic relationship between process variables and final qualities was made at different stages, and a multistage on-line quality prediction model was built. In addition, a closed-loop quality control system is proposed. Application has demonstrated that this method can not only give a valid quality prediction, but also effectively carry on quality closed-loop control.
机译:演示了一个多阶段移动窗口广义回归神经网络(GRNN)用于注塑批处理过程。首先,分析过程相关性的变化可以导致将过程有效地划分为几个“操作”阶段,并且与过程知识高度吻合。然后在不同阶段建立了过程变量与最终质量之间的非线性和动态关系,并建立了一个多阶段在线质量预测模型。另外,提出了一种闭环质量控制系统。应用表明,该方法不仅可以给出有效的质量预测,而且可以有效地进行质量闭环控制。

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