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A Boosting-Based Intelligent Model for Stencil Cleaning Prediction in Surface Mount Technology

机译:基于促进基于促进的表面贴装技术模型清洗预测智能模型

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This research proposes a stencil cleaning decision-making model in surface mount technology. Stencil cleaning is a critical process that influences the quality and efficiency of printing circuit boards. Stencil cleaning operation depends on various process variables, such as printing speed, printing pressure, and aperture shape. The objective of this research is to develop an intelligent model to guide stencil cleaning decision-making to reduce process defects. The stencil cleaning process is considered as a sequential detection problem in this study. Based on quality measures of printed historical boards, such as solder paste volume and the number of defects, a novel feature space is proposed by considering both short-term and long-term process trend. A gradient boosting model is applied to make the stencil cleaning decision. To validate the effectiveness of the proposed model, different scenarios are designed in the experimental test. State-of-art data mining models are also compared to the proposed cleaning decision-making model. Experimental results show that the proposed boosting-based intelligent model outperforms other models and can effectively provide the cleaning suggestion even the board design is changed in the future.
机译:该研究提出了一种表面安装技术的模版清洁决策模型。模板清洁是一种影响印刷电路板的质量和效率的关键过程。模版清洁操作取决于各种过程变量,如印刷速度,印刷压力和孔径。本研究的目的是开发一种智能模型,以指导模板清洁决策以降低工艺缺陷。模版清洁过程被认为是该研究中的顺序检测问题。根据印刷历史板的质量措施,如焊膏体积和缺陷的数量,提出了一种新颖的特征空间,通过考虑短期和长期流程趋势。应用梯度升压模型来制造模板清洁决策。为了验证所提出的模型的有效性,在实验测试中设计了不同的场景。还与所提出的清洁决策模型进行比较的最先进的数据挖掘模型。实验结果表明,建议的基于促进的智能模型优于其他型号,也可以有效地提供清洁建议,即使板设计也在未来发生变化。

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