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1篇 您的检索式:作者名="G.N.PILLAI"
    题名 作者 年代 出处 被引量
1Nonlinear model predictive control with relevance vector regression and particle swarm optimization显示文摘In this paper,a nonlinear model predictive control strategy which utilizes a probabilistic sparse kernel learning technique called relevance vector regression(RVR)and particle swarm optimization with controllable random exploration velocity(PSO-CREV)is applied to a catalytic continuous stirred tank reactor(CSTR)process.An accurate reliable nonlinear model is frst identifed by RVR with a radial basis function(RBF)kernel and then the optimization of control sequence is speeded up by PSO-CREV.Additional stochastic behavior in PSO-CREV is omitted for faster convergence of nonlinear optimization.An improved system performance is guaranteed by an accurate sparse predictive model and an effcient and fast optimization algorithm.To compare the performance,model predictive control(MPC)using a deterministic sparse kernel learning technique called Least squares support vector machines(LS-SVM)regression is done on a CSTR.Relevance vector regression shows improved tracking performance with very less computation time which is much essential for real time control.M.GERMIN NISHA G.N.PILLAI 2013控制理论与应用(英文版)2013,11,4:6
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