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On the stability, storage capacity, and design of nonlinear continuous neural networks

机译:非线性连续神经网络的稳定性,存储能力及设计

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摘要

The stability, capacity, and design of a nonlinear continuous neural network are analyzed. Sufficient conditions for existence and asymptotic stability of the network's equilibria are reduced to a set of piecewise-linear inequality relations that can be solved by a feedforward binary network, or by methods such as Fourier elimination. The stability and capacity of the network is characterized by the postsynaptic firing rate function. An N-neuron network with sigmoidal firing function is shown to have up to 3/sup N/ equilibrium points. This offers a higher capacity than the (0.1-0.2)N obtained in the binary Hopfield network. It is shown that by a proper selection of the postsynaptic firing rate function, one can significantly extend the capacity storage of the network.
机译:分析了非线性连续神经网络的稳定性,容量和设计。网络平衡性存在的充分条件和渐近稳定性被简化为一组分段线性不等式关系,可以通过前馈二进制网络或诸如傅立叶消除等方法来解决这些分段不等式关系。网络的稳定性和容量以突触后激发速率函数为特征。具有S型点火功能的N-神经元网络显示具有多达3 / s N /平衡点。这提供了比二进制Hopfield网络中获得的(0.1-0.2)N更高的容量。结果表明,通过适当选择突触后放电速率函数,可以显着扩展网络的容量存储。

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