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A new delayed projection neural network for solving quadratic programming problems with equality and inequality constraints

机译:一种新的延迟投影神经网络,用于解决具有相等和不等式约束的二次规划问题

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In this paper, a new delayed projection neural network is presented for solving quadratic programming problems subject to equality and inequality constraints. Compared with the existing neural networks for solving such problems, the proposed neural network has fewer neurons and a one-layer architecture. Further, we demonstrate the existence and uniqueness of the continuous solution. By using differential inequality technique, the new neural network is shown to be globally exponentially convergent to optimal solution. Finally, recurring to the numerical method, simulation results with some applications show the effectiveness of the proposed neural network. (C) 2015 Elsevier B.V. All rights reserved.
机译:在本文中,提出了一种新的延迟投影神经网络,用于解决受等式和不等式约束的二次规划问题。与用于解决此类问题的现有神经网络相比,所提出的神经网络具有更少的神经元和一层结构。此外,我们证明了连续解的存在性和唯一性。通过使用微分不等式技术,新的神经网络显示出全局指数收敛于最优解。最后,回到数值方法,在一些应用中的仿真结果证明了所提出的神经网络的有效性。 (C)2015 Elsevier B.V.保留所有权利。

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