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Equilibrium capacity of analog feedback neural networks

机译:模拟反馈神经网络的平衡能力

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摘要

A method for estimating the equilibrium capacity of a general class of analog feedback neural networks is presented in this brief paper. Some explicit relationships between upper bound of the number of possible stable equilibria and the network parameters such as self-feedback coefficients, weights, and gains of a feedback neural network are obtained. Increasing the equilibrium capacity using multimodal sigmoidal functions is also discussed. Some examples are provided to demonstrate the effectiveness of the analytical results presented.
机译:这篇简短的论文提出了一种估算一般类比反馈神经网络平衡能力的方法。获得了可能的稳定平衡数上限与网络参数(如自反馈系数,权重和反馈神经网络的增益)之间的一些明确关系。还讨论了使用多峰S型函数提高平衡能力。提供了一些示例来证明所提供的分析结果的有效性。

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