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Short-Term Relay Quality Prediction Algorithm Based on Long and Short-Term Memory 被引量:3

Short-Term Relay Quality Prediction Algorithm Based on Long and Short-Term Memory
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摘要 The fraction defective of semi-finished products is predicted to optimize the process of relay production lines, by which production quality and productivity are increased, and the costs are decreased. The process parameters of relay production lines are studied based on the long-and-short-term memory network. Then, the Keras deep learning framework is utilized to build up a short-term relay quality prediction algorithm for the semi-finished product. A simulation model is used to study prediction algorithm. The simulation results show that the average prediction absolute error of the fraction is less than 5%. This work displays great application potential in the relay production lines. The fraction defective of semi-finished products is predicted to optimize the process of relay production lines, by which production quality and productivity are increased, and the costs are decreased. The process parameters of relay production lines are studied based on the long-and-short-term memory network. Then, the Keras deep learning framework is utilized to build up a short-term relay quality prediction algorithm for the semi-finished product. A simulation model is used to study prediction algorithm. The simulation results show that the average prediction absolute error of the fraction is less than 5%. This work displays great application potential in the relay production lines.
出处 《Instrumentation》 2018年第4期46-54,共9页 仪器仪表学报(英文版)
基金 funded by Fujian Science and Technology Key Project(No.2016H6022,2018J01099,2017H0037)
关键词 RELAY Production LINE LONG and SHORT-TERM MEMORY Network Keras DEEP Learning Framework Quality Prediction Relay Production Line Long and Short-Term Memory Network Keras Deep Learning Framework Quality Prediction
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