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A New Delayed Projection Neural Network for Solving Linear Variational Inequalities and Quadratic Optimization Problems

机译:一种新的延迟投影神经网络,用于求解线性变分不等式和二次优化问题

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For solving linear variational inequalities(LVIs) and quadratic optimization problems(QOPs), a new delayed projection neural network is proposed in this paper. And some sufficient conditions ensuring exponential stability are obtained via constructing appropriate Lyapunov functionals. As a special case, a matrix constraint is considered too. In this case, by dividing the network state variables into subgroups according to the character of the activation functions, some more compact sufficient conditions ensuring exponential stability are obtained, and these conditions are only relate to some blocks of the interconnection matrix. One numerical example will be presented, to show the effectiveness of the main results.
机译:为了求解线性变分不等式(LVIS)和二次优化问题(QOPS),本文提出了一种新的延迟投影神经网络。通过构建适当的Lyapunov功能来获得确保指数稳定性的一些充分条件。作为一个特殊情况,也考虑了矩阵约束。在这种情况下,通过根据激活功能的特征将网络状态变量划分为子组,获得了获得指数稳定性的一些更紧凑的充分条件,并且这些条件仅涉及互连矩阵的一些块。将呈现一个数值示例,以显示主要结果的有效性。

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