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WEIGHTED COMPLEX ORTHOGONAL ESTIMATOR FOR IDENTIFYING LINEAR AND NON-LINEAR CONTINUOUS TIME MODELS FROM GENERALISED FREQUENCY RESPONSE FUNCTIONS

✍ Scribed by A.K. Swain; S.A. Billings


Publisher
Elsevier Science
Year
1998
Tongue
English
Weight
264 KB
Volume
12
Category
Article
ISSN
0888-3270

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✦ Synopsis


A new weighted orthogonal least squares algorithm is derived to estimate linear and non-linear continuous time differential equation models from complex frequency response data. The algorithm combines the properties and advantages of both weighted and orthogonal least squares algorithms. A weighted complex orthogonal estimator, obtained by combining the proposed algorithm with the modified error reduction ratio test provides an effective and robust way of detecting the correct model structure or determining which terms to include in the model and identifying the unknown parameters. Since the estimation procedure does not involve any numerical differentiation of the noisy data, the performance of the estimator under the influence of significant noise is quite satisfactory. The proposed estimator has been applied successfully to a variety of linear and non-linear systems.