2022
DOI: 10.3390/pr10071343
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Critical Procedure Identification Method Considering the Key Quality Characteristics of the Product Manufacturing Process

Abstract: The product’s manufacturing process has an evident influence on product quality. In order to control the quality and identify the critical procedure of the product manufacturing process reasonably and effectively, a method combining genetic back-propagation (BP) neural network algorithm and grey relational analysis is proposed. Firstly, the genetic BP neural network algorithm is used to obtain the key quality characteristics (KQCs) in the product manufacturing process. At the same time, considering the three f… Show more

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Cited by 2 publications
(2 citation statements)
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“…However, due to the obvious differences in the production sectors, industries, and technical standards to which Industrial Internet participants belong, and the data sharing under the Industrial Internet environment is a crossdomain circulation and sharing process involving industrial subjects from different fields and industries [5], which makes the raw data closely related to industrial production become the basis of data sharing. At the same time, because these data can objectively reflect the quality of products, production processes and techniques [6], they should also be regarded as an important category of privacy data.…”
Section: Introductionmentioning
confidence: 99%
“…However, due to the obvious differences in the production sectors, industries, and technical standards to which Industrial Internet participants belong, and the data sharing under the Industrial Internet environment is a crossdomain circulation and sharing process involving industrial subjects from different fields and industries [5], which makes the raw data closely related to industrial production become the basis of data sharing. At the same time, because these data can objectively reflect the quality of products, production processes and techniques [6], they should also be regarded as an important category of privacy data.…”
Section: Introductionmentioning
confidence: 99%
“…Magnanini M C et al [21] proposed a downstream compensation control model, considering the measurement of each machining stage and the disturbance variables in the entire process. Kou Z [22] proposed an association rule mining method based on the chaotic gravity search algorithm, which could be used to discover the hidden relationship between the manufacturing system capability and product characteristics, thereby reducing the development time and cost of new product design and manufacturing. Gao Z [23] et al proposed a method combining a genetic backpropagation (BP) neural network algorithm and gray correlation analysis to effectively control the quality and identify key procedures of the product manufacturing process.…”
Section: Introductionmentioning
confidence: 99%