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Theoretical analysis on sparsely connected associative memory networks with arbitrary degree distribution

机译:任意度分布的稀疏关联联想存储网络的理论分析

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The microcosmic topology structure of a network are known to have great influence on its macroscopic behavior. To go one step closer to biological system which displays sparsely connected architecture and complex network property, we studied a general sparely connected associative memory model using signal-to-noise analysis. Theoretical solutions for the computational performance of this model with arbitrary degree distribution are derived. Numerical simulations are carried out to demonstrate the effectiveness and rationality of the theoretical determinations, and have shown great consistence with them.
机译:已知网络的微观拓扑结构对其宏观行为有很大的影响。为了更接近显示稀疏连接的体系结构和复杂的网络属性的生物系统,我们使用信噪比分析了一种通用的备用连接联想记忆模型。推导了该模型具有任意度分布的计算性能的理论解。数值模拟表明了理论确定的有效性和合理性,并且与它们具有很好的一致性。

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