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Quality consistency analysis for complex assembly process based on Bayesian networks

机译:基于贝叶斯网络的复杂装配过程质量一致性分析

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In recent years, assembly process has been rapidly pushing the envelope in building complex, optimized products, by taking advantage of big data mining and machine intelligence technologies. Along with such developments, it has become increasingly necessary to strictly control quality consistency level of the assembly activities. However, due to the difficulty of modelling, quality consistency improvement of complex assembly process has always been a challenge for academia and industry. This paper attempts to describe the assembly process by using Bayesian networks and to provide an effective data-based scheme for improving quality consistency. First of all, considering the nonlinear and coupling characteristics, we introduce the maximum information coefficient and network deconvolution method to detect the direct associations in the assembly process and get an undirected graph. Secondly, in order to obtain a complete Bayesian network, we derive the directions of edges based on the independence between causal variable distribution and function mechanism. Thus, the key influence factors on quality consistency and the latent causal mechanism can be analyzed. This data-based scheme is applied to power consistency analysis of a real diesel engine production line, where the effectiveness is further demonstrated from real industrial data. As a result, this study provides theoretical support and technical guarantee for the improvement of assembly process, quality control, product quality and enterprise benefit.
机译:近年来,通过利用大型数据挖掘和机器智能技术,装配过程一直在迅速推动建筑复杂优化的产品的信封。随着这种发展,越来越必要严格控制大会活动的质量一致水平。然而,由于难以建模,质量稠度改善复杂的装配过程一直是学术界和行业的挑战。本文试图通过使用贝叶斯网络来描述装配过程,并提供有效的基于数据的方案,以提高质量一致性。首先,考虑到非线性和耦合特性,我们介绍了最大信息系数和网络解构方法,以检测组装过程中的直接关联并获得一个无向图。其次,为了获得完整的贝叶斯网络,我们基于因果变量分布和功能机制之间的独立性来源的边缘方向。因此,可以分析质量一致性和潜在因果机制的关键影响因素。基于数据的方案应用于真正的柴油发动机生产线的功率一致性分析,其中效果来自真正的工业数据。因此,本研究为提高装配过程,质量控制,产品质量和企业利益提供了理论支持和技术保障。

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