
Shaojin Feng
Featured in:
mdpi.com
Articles
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Jun 2, 2023 |
mdpi.com | Hang Yi |Wenjun Peng |Xiuchun Xiao |Shaojin Feng
Abstract:The field of position tracking control and communication engineering has been increasingly interested in time-varying quadratic minimization (TVQM). While traditional zeroing neural network (ZNN) models have been effective in solving TVQM problems, they have limitations in adapting their convergence rate to the commonly used convex activation function. To address this issue, we propose an adaptive non-convex activation zeroing neural network (AZNNNA) model in this paper.
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