Publication | Open Access
Adaptive tracking of linear time-variant systems by extended RLS algorithms
235
Citations
15
References
1997
Year
State EstimationExtended Rls AlgorithmsNonlinear System IdentificationAdaptive TrackingNonlinear FilteringEngineeringAdaptive FilterAerospace EngineeringState ObserverRls AlgorithmAdaptive ControlSystems EngineeringLinear ControlInverse ProblemsExtended Rls AlgorithmSystem IdentificationTracking ControlSignal Processing
We exploit the one-to-one correspondences between the recursive least-squares (RLS) and Kalman variables to formulate extended forms of the RLS algorithm. Two particular forms of the extended RLS algorithm are considered: one pertaining to a system identification problem and the other pertaining to the tracking of a chirped sinusoid in additive noise. For both of these applications, experiments are presented that demonstrate the tracking superiority of the extended RLS algorithms compared with the standard RLS and least-mean-squares (LMS) algorithms.
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