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Equilibrium characterization of dynamical neural networks and a systematic synthesis procedure for associative memories

机译:动态神经网络的平衡表征和联想记忆的系统合成过程

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Several novel results concerning the characterization of the equilibrium conditions of a continuous-time dynamical neural network model and a systematic procedure for synthesizing associative memory networks with nonsymmetrical interconnection matrices are presented. The equilibrium characterization focuses on the exponential stability and instability properties of the network equilibria and on equilibrium confinement, viz., ensuring the uniqueness of an equilibrium in a specific region of the state space. While the equilibrium confinement result involves a simple test, the stability results given obtain explicit estimates of the degree of exponential stability and the regions of attraction of the stable equilibrium points. Using these results as valuable guidelines, a systematic synthesis procedure for constructing a dynamical neural network that stores a given set of vectors as the stable equilibrium points is developed.
机译:提出了一些有关连续时间动态神经网络模型的平衡条件表征的新颖结果,以及利用非对称互连矩阵合成联想存储网络的系统过程。平衡特征集中于网络平衡的指数稳定性和不稳定性,以及平衡约束,即确保状态空间特定区域内平衡的唯一性。虽然平衡限制结果涉及一个简单的测试,但给出的稳定性结果获得了对指数稳定性程度和稳定平衡点吸引区域的明确估计。使用这些结果作为有价值的指导,开发了一种用于构建动态神经网络的系统综合程序,该网络存储给定的一组向量作为稳定的平衡点。

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