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Data mining applications for finding golden batch benchmarks and optimizing batch process control

机译:数据挖掘应用程序,用于查找黄金批处理基准并优化批处理过程控制

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This article discusses MPCA (Multi-way Principal Component Analysis) and MPLS (Multi-way Partial Least Squares) have been used to compress the information into low-dimensional spaces and pinpoint the root causes of batch-to-batch difference. From engineering perspective, this paper focuses on applying MPCA and MPLS to data analysis of batch process combining with operation experiences to find “golden batch benchmark” that describes the best operation of historical batches. This work includes data pre-treatment, batch process modelling and chemical reaction initiation status decision. Finally, optimizing control strategies and batch process improvement are also been discussed. Process and control engineers are be able to obtain the valuable data analyzing and control optimization methods for batch process from this study.
机译:本文讨论了MPCA(多路主成分分析)和MPLS(多路偏最小二乘)已用于将信息压缩到低维空间中,并查明批次间差异的根本原因。从工程的角度来看,本文着重于将MPCA和MPLS应用到批处理过程的数据分析中,结合操作经验,以找到描述历史批处理的最佳操作的“黄金批处理基准”。这项工作包括数据预处理,批处理过程建模和化学反应引发状态决策。最后,还讨论了控制策略的优化和批处理过程的改进。过程和控制工程师能够从此研究中获得批处理的有价值的数据分析和控制优化方法。

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