Nonlinear dynamic data reconciliation and bias estimation of process measurements in an adiabatic stirred-tank reactor

When process data is taken from the sensors of a plant, errors of varying degrees are inherent. Measured variables will most likely violate dynamic process models. Because of this, large volumes of data may be unreliable for process control, monitoring, and optimization. This paper describes a new m...

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書目詳細資料
發表在:Philippine Engineering Journal 37, 2 (2016(D)).
主要作者: Pilario, Karl Ezra S.
其他作者: Munoz, Jose Co
格式: Article
語言:English
主題:
在線閱讀:Also available online for University of the Philippines Diliman. Click here