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Construction of an associative memory using unstable periodic orbits of a chaotic attractor.

机译:使用混沌吸引子的不稳定周期轨道构造联想记忆。

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Unstable periodic orbits are the skeleton of a chaotic attractor. We constructed an associative memory based on the chaotic attractor of an artificial neural network, which associates input patterns to unstable periodic orbits. By processing an input, the system is driven out of the ground state to one of the pre-defined disjunctive areas of the attractor. Each of these areas is associated with a different unstable periodic orbit. We call an input pattern learned if the control mechanism keeps the system on the unstable periodic orbit during the response. Otherwise, the system relaxes back to the ground state on a chaotic trajectory. The major benefits of this memory device are its high capacity and low-energy consumption. In addition, new information can be simply added by linking a new input to a new unstable periodic orbit.
机译:不稳定的周期性轨道是混沌吸引子的骨架。我们基于人工神经网络的混沌吸引子构造了一个联想记忆,该联想记忆将输入模式与不稳定的周期性轨道相关联。通过处理输入,将系统从基态驱动到吸引子的预定分离区域之一。这些区域中的每一个都与一个不同的不稳定周期轨道相关。如果控制机制在响应期间将系统保持在不稳定的周期性轨道上,则我们将其称为学习的输入模式。否则,系统会在混沌轨迹上松弛回到基态。这种存储设备的主要优点是其高容量和低能耗。另外,可以通过将新输入链接到新的不稳定周期轨道来简单地添加新信息。

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