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A Novel Neural Network for Solving Singular Nonlinear Convex Optimization Problems

机译:求解奇异非线性凸优化问题的新型神经网络

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Singular nonlinear convex optimization problems have been received much attention in recent years. Most existing approaches are in the nature of iteration, which is time-consuming and ineffective. Different approaches to deal with such problems are promising. In this paper, a novel neural network model for solving singular nonlinear convex optimization problems is proposed. By using LaSalle's invariance principle, it is shown that the proposed network is convergent which guarantees the effectiveness of the proposed model for solving singular nonlinear optimization problems. Numerical simulation further verified the effectiveness of the proposed neural network model.
机译:近年来,奇异的非线性凸优化问题已引起广泛关注。大多数现有方法具有迭代的性质,这既耗时又无效。解决这些问题的不同方法很有希望。本文提出了一种新的用于求解奇异非线性凸优化问题的神经网络模型。通过使用LaSalle不变性原理,表明所提出的网络是收敛的,这保证了所提出的模型解决奇异非线性优化问题的有效性。数值模拟进一步验证了所提神经网络模型的有效性。

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