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Chaotic neural networks with sigmoid function self-feedback and its applications

机译:具有S形函数自反馈的混沌神经网络及其应用

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A Chaotic neural network model with sigmoid function self-feedback is proposed by introducing sigmoid function into self-feedback of chaotic neural network The analyses of the optimization mechanism of the networks suggests that sigmoid function self-feedback affects the original Hopfield energy function in the manner of the sum of the multiplications of sigmoid function to the state, avoiding the network being trapped into the local minima. The energy function is constructed, and the sufficient condition for the networks to reach asymptotical stability is analyzed and is used to instruct the parameter set of the networks for solving traveling salesman problem (TSP). Simulation research on functions' optimization and TSP indicates that the proposed networks can find the optimal solution of combinatorial optimization problems.
机译:通过将S形函数引入混沌神经网络的自反馈中,提出了一种具有S形函数自反馈的混沌神经网络模型。对网络优化机制的分析表明,S形函数自反馈以如下方式影响原始的Hopfield能量函数:将S型函数的和与状态相加,避免网络陷入局部极小值。构造能量函数,分析网络达到渐近稳定性的充分条件,并用于指导网络参数集求解旅行商问题。对功能优化和TSP的仿真研究表明,所提出的网络可以找到组合优化问题的最优解。

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