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Continuous attractors of discrete-time recurrent neural networks

机译:离散时间递归神经网络的连续吸引子

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This paper studies the continuous attractors of discrete-time recurrent neural networks. Networks in discrete time can directly provide algorithms for efficient implementation in digital hardware. Continuous attractors of neural networks have been used to store and manipulate continuous stimuli for animals. A continuous attractor is defined as a connected set of stable equilibrium points. It forms a lower dimensional manifold in the original state space. Under some conditions, the complete analytical expressions for the continuous attractors of discrete-time linear recurrent neural networks as well as discrete-time linear-threshold recurrent neural networks are derived. Examples are employed to illustrate the theory.
机译:本文研究了离散时间递归神经网络的连续吸引子。离散时间的网络可以直接提供算法,以在数字硬件中高效实现。神经网络的连续吸引子已被用于存储和操纵动物的连续刺激。连续吸引子定义为一组稳定的平衡点。它在原始状态空间中形成了较低维的流形。在某些条件下,推导了离散线性递归神经网络以及离散线性阈值递归神经网络的连续吸引子的完整解析表达式。举例说明该理论。

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