A neural network based on the generalized Fischer-Burmeister function for nonlinear complementarity problems

نویسندگان

  • Jein-Shan Chen
  • Chun-Hsu Ko
  • Shaohua Pan
چکیده

In this paper, we consider a neural network model for solving the nonlinear complementarity problem (NCP). The neural network is derived from an equivalent unconstrained minimization reformulation of the NCP, which is based on the generalized Fischer–Burmeister function /pða; bÞ 1⁄4 kða; bÞkp ðaþ bÞ. We establish the existence and the convergence of the trajectory of the neural network, and study its Lyapunov stability, asymptotic stability as well as exponential stability. It was found that a larger p leads to a better convergence rate of the trajectory. Numerical simulations verify the obtained theoretical results. 2009 Elsevier Inc. All rights reserved.

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عنوان ژورنال:
  • Inf. Sci.

دوره 180  شماره 

صفحات  -

تاریخ انتشار 2010