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An Intelligent Metrology Informatics System based on Neural Networks for Multistage Manufacturing Processes

机译:基于神经网络的多级制造过程智能计量信息系统

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The ability to gather manufacturing data from various workstations has been explored for several decades and the advances in sensory and data acquisition techniques have led to the increasing availability of high-dimensional data. This paper presents an intelligent metrology informatics system to extract useful information from Multistage Manufacturing Process (MMP) data and predict part quality characteristics such as true position and circularity using neural networks. The input data include the tempering temperature, material conditions, force and vibration while the output data include comparative coordinate measurements. The effectiveness of the proposed method is demonstrated using experimental data from a MMP.
机译:几十年来探讨了从各种工作站收集制造数据的能力,并且感觉和数据采集技术的进步导致了高维数据的越来越多的可用性。本文提出了一种智能计量信息系统,用于从多级制造过程(MMP)数据(MMP)数据中提取有用信息,并使用神经网络预测诸如真实位置和循环度的部分质量特征。输入数据包括回火温度,材料条件,力和振动,而输出数据包括比较坐标测量。使用来自MMP的实验数据来证明所提出的方法的有效性。

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