Given their key position in the process control industry,
process monitoring techniques have been extensively investigated by
industrial practitioners and academic control researchers.
Multivariate statistical process control (MSPC) is one of the most
popular data-based methods for process monitoring and is widely
used in various industrial areas. Effective routines for process
monitoring can help operators run industrial processes efficiently
at the same time as maintaining high product quality.
"Multivariate Statistical Process Control"" "reviews the
developments and improvements that have been made to MSPC over the
last decade, and goes on to propose a series of new MSPC-based
approaches for complex process monitoring. These new methods are
demonstrated in several case studies from the chemical, biological,
and semiconductor industrial areas.
Control and process engineers, and academic researchers in the
process monitoring, process control and fault detection and
isolation (FDI) disciplines will be interested in this book. It can
also be used to provide supplementary material and industrial
insight for graduate and advanced undergraduate students, and
graduate engineers.
Advances in Industrial Control aims to report and encourage the
transfer of technology in control engineering. The rapid
development of control technology has an impact on all areas of the
control discipline. The series offers an opportunity for
researchers to present an extended exposition of new work in all
aspects of industrial control."
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