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The Modeling and Complexity of Dynamical Systems by Means of Computation and Information Theories

机译:基于计算和信息论的动力学系统建模与复杂性

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We present the modeling of dynamical systems and finding of their complexity indicators by the use of concepts from computation and information theories, within the framework of J. P. Crutchfield's theory of? ε-machines. A short formal outline of the? ε-machines is given. In this approach, dynamical systems are analyzed directly from the time series that is received from a properly adjusted measuring instrument. The binary strings are parsed through the parse tree, within which morphologically and probabilistically unique subtrees or morphs are recognized as system states. The outline and precise interrelation of the information-theoretic entropies and complexities emanating from the model is given. The paper serves also as a theoretical foundation for the future presentation of the DSA program that implements the? ε-machines modeling up to the stochastic finite automata level.
机译:在J. P. Crutchfield的理论基础上,我们通过使用来自计算和信息理论的概念,提出了动力学系统的建模及其复杂性指标的发现。 ε机器。简短的正式大纲?给出了ε-机器。通过这种方法,可以直接从时间序列中分析动态系统,该时间序列是从经过适当调整的测量仪器接收到的。二进制字符串通过解析树进行解析,在解析树中,形态和概率上唯一的子树或变形被识别为系统状态。给出了模型产生的信息理论熵和复杂度的轮廓和精确的相互关系。本文还为将来实施DSA程序的理论基础提供了理论依据。 ε机器建模达到随机有限自动机水平。

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