Concurrent Learning-Based Two-Stage Predefined-Time System Identification
Bojun Liu,
Zhanpeng Zhang,
Yingmin Yi
Abstract:This paper proposes a novel two-stage predefined-time system identification algorithm for uncertain nonlinear systems based on concurrent learning. The main feature of the algorithm is that the convergence time of estimation error is an exact predefined parameter, which can be known and adjusted directly by users. Historic identification data are stored in the first stage to guarantee that a finite-rank condition is satisfied. In the second stage, the estimation error converges to zero for linearly parameteriz… Show more
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