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Asymptotic Information-Theoretic Detection of Dynamical Organization in Complex Systems

机译:复杂系统中动态组织的渐近信息 - 理论检测

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摘要

The identification of emergent structures in complex dynamical systems is a formidable challenge. We propose a computationally efficient methodology to address such a challenge, based on modeling the state of the system as a set of random variables. Specifically, we present a sieving algorithm to navigate the huge space of all subsets of variables and compare them in terms of a simple index that can be computed without resorting to simulations. We obtain such a simple index by studying the asymptotic distribution of an information-theoretic measure of coordination among variables, when there is no coordination at all, which allows us to fairly compare subsets of variables having different cardinalities. We show that increasing the number of observations allows the identification of larger and larger subsets. As an example of relevant application, we make use of a paradigmatic case regarding the identification of groups in autocatalytic sets of reactions, a chemical situation related to the origin of life problem.
机译:复杂动态系统中的紧急结构的识别是一个强大的挑战。我们提出了一种基于将系统的状态建模为一组随机变量来解决这种挑战的计算有效的方法。具体而言,我们介绍了一个筛分算法来导航所有变量子集的巨大空间,并在不诉诸模拟的情况下将它们的简单索引进行比较。我们通过研究变量之间的信息理论措施的渐近分布来获得如此简单的指标,当没有协调,这使我们能够公平比较具有不同基数的变量的子集。我们表明,增加观察次数允许识别更大和更大的子集。作为相关申请的一个例子,我们利用了关于鉴定自催化反应的群体的范式案例,与生命问题有关的化学形势。

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