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Information Processing Capacity of Dynamical Systems

机译:动态系统的信息处理能力

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Many dynamical systems, both natural and artificial, are stimulated by time dependent external signals, somehow processing the information contained therein. We demonstrate how to quantify the different modes in which information can be processed by such systems and combine them to define the computational capacity of a dynamical system. This is bounded by the number of linearly independent state variables of the dynamical system, equaling it if the system obeys the fading memory condition. It can be interpreted as the total number of linearly independent functions of its stimuli the system can compute. Our theory combines concepts from machine learning (reservoir computing), system modeling, stochastic processes, and functional analysis. We illustrate our theory by numerical simulations for the logistic map, a recurrent neural network, and a two-dimensional reaction diffusion system, uncovering universal trade-offs between the non-linearity of the computation and the system's short-term memory.. ? 2012 Macmillan Publishers Limited. All rights reserved
机译:时间相关的外部信号会刺激许多自然和人造的动力系统,从而以某种方式处理其中包含的信息。我们演示了如何量化此类系统可以处理信息的不同模式,并将它们组合起来以定义动态系统的计算能力。这由动态系统的线性独立状态变量的数量限制,如果系统遵守衰落的内存条件,则等于该数量。它可以解释为系统可以计算的刺激线性独立函数的总数。我们的理论结合了机器学习(储层计算),系统建模,随机过程和功能分析的概念。我们通过对逻辑图,循环神经网络和二维反应扩散系统的数值模拟来说明我们的理论,从而揭示了计算的非线性与系统的短期记忆之间的普遍权衡。 2012 Macmillan Publishers Limited。版权所有

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