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- W3118335933 abstract "In this article, by using the neural-networks (NNs) separation and approximation technique, an adaptive scheme is presented to deliver the prescribed tracking performance for a class of unknown nonaffine switched nonlinear time-delay systems. The nonaffine terms are indifferentiable and the controllability condition is not required for each subsystem, which allows the considered tracking problem to not be efficiently solved by the traditional adaptive control algorithms. To solve the problem, NNs are utilized to separate and approximate the nonaffine functions, and then the dynamic surface control and convex combination method are utilized to construct a controller and a switching strategy. In addition, an adaptive law is considered for each subsystem to reduce the conservativeness. Under the designed controller and switching strategy, all the signals of the resulting closed-loop system are bounded, and the tracking performance is achieved with a prescribed level." @default.
- W3118335933 created "2021-01-18" @default.
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- W3118335933 date "2022-07-01" @default.
- W3118335933 modified "2023-10-06" @default.
- W3118335933 title "Neural-Networks-Based Prescribed Tracking for Nonaffine Switched Nonlinear Time-Delay Systems" @default.
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- W3118335933 doi "https://doi.org/10.1109/tcyb.2020.3042232" @default.
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