4.3 Article

Varying-parameter finite-time zeroing neural network for solving linear algebraic systems

Journal

ELECTRONICS LETTERS
Volume 56, Issue 16, Pages 810-812

Publisher

INST ENGINEERING TECHNOLOGY-IET
DOI: 10.1049/el.2019.4099

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A new recurrent neural network is presented for solving linear algebraic systems with finite-time convergence. The proposed model includes an exponential term in the Zhang neural network dynamical system, which leads to a faster convergence of the error-monitoring function in comparison to previous methods. Theoretical analysis, as well as simulation results, validate the efficacy of the proposed model.

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