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Process modeling and optimizing control based on sparse nonuniformly sampled data
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作者 倪博溢 Xiao Deyun 《High Technology Letters》 EI CAS 2010年第4期352-358,共7页
In this paper, a process modeling and related optimizing control for nonuniformly sampled (NUS) systems are addressed. By using a proposed nonuniform integration filter and subspace method estimation, an identificat... In this paper, a process modeling and related optimizing control for nonuniformly sampled (NUS) systems are addressed. By using a proposed nonuniform integration filter and subspace method estimation, an identification method of NUS systems is developed, based on which either an output soft sensor or a hidden state estimator is developed. The optimizing control is implemented by replacing the sparsely-mea- sured/immeasurable variable with the estimated one. Examples of optimizing control problem are given. The proposed optimizing control strategy in the simulation examples is verified to be very effeetive. 展开更多
关键词 nonuniformly sampled (NUS) systems nonuniform integration filter optimizing eontrol subspaee method identification (SMI) soft sensor state estimate
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