2021
DOI: 10.1155/2021/8847094
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Study on Discrete Manufacturing Quality Control Technology Based on Big Data and Pattern Recognition

Abstract: Aiming at the quality control problems in the discrete manufacturing process of large and superlarge equipment, which cannot meet the urgent needs of production, a quality control method based on big data and pattern recognition is proposed. A large amount of data is collected through the test equipment developed in the discrete manufacturing process; a database of typical working conditions and an information tracking system relying on the cloud platform were formed. The working conditions were divided by the… Show more

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Cited by 7 publications
(2 citation statements)
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“…7 It is difficult to control the quality fluctuation caused by multiple variables in the manufacturing process. Xin-chun et al 8 proposed a quality control method based on big data and pattern recognition. In order to keep the quality of the whole production process continuously stable and consider the mutual influence between multi-correlation parameters.…”
Section: Related Work and Motivationsmentioning
confidence: 99%
“…7 It is difficult to control the quality fluctuation caused by multiple variables in the manufacturing process. Xin-chun et al 8 proposed a quality control method based on big data and pattern recognition. In order to keep the quality of the whole production process continuously stable and consider the mutual influence between multi-correlation parameters.…”
Section: Related Work and Motivationsmentioning
confidence: 99%
“…Based on big data thinking, the Internet of Things, cloud computing and other big data technologies, secure big data generation is regarded as the three main steps of key data resources and risk management (such as risk identification, risk assessment). Establish a model for each model, and thoroughly examine the risk management form optimized by big data in each link of risk management, in order to achieve the research purpose of this article (Chen, 2019;Chen, 2021;Wang, 2016).…”
Section: Risk Management Based On Big Data Analysismentioning
confidence: 99%