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Objective-oriented optimal sensor allocation strategy for process monitoring and diagnosis by multivariate analysis in a Bayesian network

机译:贝叶斯网络中用于过程监测和诊断的面向目标的最优传感器分配策略

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摘要

Measurement strategy and sensor allocation have a direct impact on the product quality, productivity, and cost. This article studies the couplings or interactions between the optimal design of a sensor system and quality management in a manufacturing system, which can improve cost-effectiveness and production yield by considering sensor cost, process change detection speed, and fault diagnosis accuracy. Based on an established definition of sensor allocation in a Bayesian network, an algorithm named "Best Allocation Subsets by Intelligent Search" (BASIS) is developed in this article to obtain the optimal sensor allocation design at minimum cost under different specified Average Run Length (ARL) requirements. Unlike previous approaches reported in the literature, the BASIS algorithm is developed based on investigating a multivariate T~2 control chart when only partial observations are available. After implementing the derived optimal sensor solution, a diagnosis ranking method is proposed to find the root cause variables by ranking all of the identified potential faults. Two case studies are conducted on a hot forming process and a cap alignment process to illustrate and evaluate the developed methods.
机译:测量策略和传感器分配直接影响产品质量,生产率和成本。本文研究传感器系统的最佳设计与制造系统中的质量管理之间的耦合或相互作用,这可以通过考虑传感器成本,过程更改检测速度和故障诊断准确性来提高成本效益和生产良率。基于贝叶斯网络中传感器分配的既定定义,本文开发了一种名为“智能搜索最佳分配子集”(BASIS)的算法,以在不同的指定平均运行长度(ARL)下以最低成本获得最优传感器分配设计。 ) 要求。与文献中报道的先前方法不同,当仅可获得部分观测值时,基于调查多元T〜2控制图开发BASIS算法。在实施导出的最佳传感器解决方案后,提出了一种诊断排序方法,通过对所有已识别的潜在故障进行排序来找到根本原因变量。在热成型过程和盖对齐过程中进行了两个案例研究,以说明和评估开发的方法。

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