用神经模糊系统求解约束非线性优化问题的新方法

I. Silva, A. Souza, M. E. Bordon
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引用次数: 0

摘要

提出了求解有界变量约束非线性优化问题的神经网络模型。具体地说,提出了一种改进的Hopfield网络,并利用有效子空间技术计算了其内部参数。这些参数保证了网络收敛到平衡点。证明了该网络是完全稳定的,并且全局收敛于约束非线性优化问题的解。在网络中加入模糊控制器,使收敛时间最小化。仿真结果验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel approach for solving constrained nonlinear optimization problems using neurofuzzy systems
A neural network model for solving constrained nonlinear optimization problems with bounded variables is presented. More specifically, a modified Hopfield network is developed and its internal parameters are computed using the valid-subspace technique. These parameters guarantee the convergence of the network to the equilibrium points. The network is shown to be completely stable and globally convergent to the solutions of constrained nonlinear optimization problems. A fuzzy logic controller is incorporated in the network to minimize convergence time. Simulation results are presented to validate the proposed approach.
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