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Multivariate statistical analysis of continuous processes

机译:连续过程的多元统计分析

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The approach to process monitoring known as multivariate statistical process control (MSPC) has developed as a distinct technology, closely related to the field of fault detection and isolation. A body of technical research and industrial applications indicate a unique applicability to complex large scale processes, but has paid relatively little attention to generic live process issues. In this paper, the impact of various classes of generic abnormality in the operation of continuous process plants on MSPC monitoring is investigated. It is shown how the effectiveness of the MSPC approach may be understood in terms of model and signal-based fault detection methods, and how the multivariate tools may be configured to maximise their effectiveness.
机译:作为多变量统计过程控制(MSPC)的过程监视方法已发展为一项独特的技术,与故障检测和隔离领域密切相关。大量的技术研究和工业应用表明其对复杂的大规模过程具有独特的适用性,但对通用的实时过程问题却很少关注。本文研究了连续过程工厂运行中各种类别的一般异常对MSPC监控的影响。显示了如何通过基于模型和基于信号的故障检测方法来理解MSPC方法的有效性,以及如何配置多变量工具以最大化其有效性。

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