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Recursive Bayesian Algorithm for Identification of Systems with Non-uniformly Sampled Input Data 被引量:1
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作者 shao-xue jing Tian-Hong Pan Zheng-Ming Li 《International Journal of Automation and computing》 EI CSCD 2018年第3期335-344,共10页
To identify systems with non-uniformly sampled input data, a recursive Bayesian identification algorithm with covariance resetting is proposed. Using estimated noise transfer function as a dynamic filter, the system w... To identify systems with non-uniformly sampled input data, a recursive Bayesian identification algorithm with covariance resetting is proposed. Using estimated noise transfer function as a dynamic filter, the system with colored noise is transformed into the system with white noise. In order to improve estimates, the estimated noise variance is employed as a weighting factor in the algorithm. Meanwhile, a modified covariance resetting method is also integrated in the proposed algorithm to increase the convergence rate. A numerical example and an industrial example validate the proposed algorithm. 展开更多
关键词 Parameter estimation discrete time systems Gaussian noise Bayesian algorithm covariance resetting.
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