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Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering)  2007, Vol. 8 Issue (6): 904-909    DOI: 10.1631/jzus.2007.A0904
Information Science & Engineering     
Detection of gross errors using mixed integer optimization approach in process industry
MEI Cong-li, SU Hong-ye, CHU Jian
National Laboratory of Industrial Control Technology, Institute of Advanced Process Control, Zhejiang University, Hangzhou 310027, China
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Abstract  A novel mixed integer linear programming (NMILP) model for detection of gross errors is presented in this paper. Yamamura et al.(1988) designed a model for detection of gross errors and data reconciliation based on Akaike information criterion (AIC). But much computational cost is needed due to its combinational nature. A mixed integer linear programming (MILP) approach was performed to reduce the computational cost and enhance the robustness. But it loses the super performance of maximum likelihood estimation. To reduce the computational cost and have the merit of maximum likelihood estimation, the simultaneous data reconciliation method in an MILP framework is decomposed and replaced by an NMILP subproblem and a quadratic programming (QP) or a least squares estimation (LSE) subproblem. Simulation result of an industrial case shows the high efficiency of the method.

Key wordsBiological macromolecule      Thermal fluctuation      Stationary statistics      Transition time      Stochastic averaging method     
Received: 05 September 2006     
CLC:  TQ021.8  
Cite this article:

MEI Cong-li, SU Hong-ye, CHU Jian. Detection of gross errors using mixed integer optimization approach in process industry. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 2007, 8(6): 904-909.

URL:

http://www.zjujournals.com/xueshu/zjus-a/10.1631/jzus.2007.A0904     OR     http://www.zjujournals.com/xueshu/zjus-a/Y2007/V8/I6/904

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