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Homeostatic Plasticity for Single Node Delay-Coupled Reservoir Computing

机译:用于单节点延迟耦合储层计算的稳态可塑性

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摘要

Supplementing a differential equation with delays results in an infinite-dimensional dynamical system. This property provides the basis for a reservoir computing architecture, where the recurrent neural network is replaced by a single nonlinear node, delay-coupled to itself. Instead of the spatial topology of a network, subunits in the delay-coupled reservoir are multiplexed in time along one delay span of the system. The computational power of the reservoir is contingent on this temporal multiplexing. Here, we learn optimal temporal multiplexing by means of a biologically inspired homeostatic plasticity mechanism. Plasticity acts locally and changes the distances between the subunits along the delay, depending on how responsive these subunits are to the input. After analytically deriving the learning mechanism, we illustrate its role in improving the reservoir’s computational power. To this end, we investigate, first, the increase of the reservoir’s memory capacity. Second, we predict a NARMA-10 time series, showing that plasticity reduces the normalized root-mean-square error by more than 20%. Third, we discuss plasticity’s influence on the reservoir’s input-information capacity, the coupling strength between subunits, and the distribution of the readout coefficients.
机译:用时滞补充微分方程会产生无限维的动力学系统。该属性为油藏计算架构提供了基础,其中递归神经网络被延迟耦合到其自身的单个非线性节点所代替。代替网络的空间拓扑,延迟耦合存储库中的子单元沿系统的一个延迟跨度在时间上被多路复用。储层的计算能力取决于该时间复用。在这里,我们通过生物学启发的稳态可塑性机制学习最佳的时间复用。可塑性在局部作用,并沿着延迟改变子单元之间的距离,这取决于这些子单元对输入的响应程度。在分析得出学习机制之后,我们将说明其在提高油藏计算能力方面的作用。为此,我们首先调查存储库的存储容量的增加。其次,我们预测了NARMA-10时间序列,表明可塑性将归一化均方根误差降低了20%以上。第三,我们讨论了可塑性对储层输入信息容量,子单元之间的耦合强度以及读数系数分布的影响。

著录项

  • 来源
    《Neural computation》 |2015年第6期|1159-1185|共27页
  • 作者单位

    Neuroinformatics Department, Institute of Cognitive Science, University of Osnabrück, 49069 Osnabrück, Germany, and Department of Theoretical Neuroscience, Central Institute of Mental Health, Medical Faculty Mannheim of Heidelberg University, 68159 Mannheim, Germany hazem.toutounji@zi-mannheim.de;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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