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Dual-phase evolution in complex adaptive systems

机译:复杂自适应系统中的双相演化

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摘要

Understanding the origins of complexity is a key challenge in many sciences. Although networks are known to underlie most systems, showing how they contribute to well-known phenomena remains an issue. Here, we show that recurrent phase transitions in network connectivity underlie emergent phenomena in many systems. We identify properties that are typical of systems in different connectivity phases, as well as characteristics commonly associated with the phase transitions. We synthesize these common features into a common framework, which we term dual-phase evolution (DPE). Using this framework, we review the literature from several disciplines to show that recurrent connectivity phase transitions underlie the complex properties of many biological, physical and human systems. We argue that the DPE framework helps to explain many complex phenomena, including perpetual novelty, modularity, scale-free networks and criticality. Our review concludes with a discussion of the way DPE relates to other frameworks, in particular, self-organized criticality and the adaptive cycle.
机译:了解复杂性的起源是许多科学中的关键挑战。尽管众所周知网络是大多数系统的基础,但显示网络如何促成众所周知的现象仍然是一个问题。在这里,我们表明网络连接中的周期性相变是许多系统中新兴现象的基础。我们确定了处于不同连接阶段的系统的典型特性,以及与相变通常相关的特性。我们将这些共同特征综合到一个共同框架中,我们称之为双阶段演进(DPE)。使用此框架,我们回顾了几门学科的文献,以表明经常性连通性相变是许多生物,物理和人类系统的复杂特性的基础。我们认为DPE框架有助于解释许多复杂的现象,包括永久性的新颖性,模块化,无标度的网络和关键性。我们的审查以对DPE与其他框架的关系方式进行讨论作为结束,特别是自组织的临界度和自适应周期。

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