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Modeling Stochastic Complexity in Complex Adaptive Systems: Non-Kolmogorov Probability and the Process Algebra Approach

机译:复杂自适应系统中的随机复杂性建模:非Kolmogorov概率和过程代数方法

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摘要

Walter Freeman III pioneered the application of nonlinear dynamical systems theories and methodologies in his work on mesoscopic brain dynamics. Sadly, mainstream psychology and psychiatry still cling to linear correlation based data analysis techniques, which threaten to subvert the process of experimentation and theory building. In order to progress, it is necessary to develop tools capable of managing the stochastic complexity of complex biopsychosocial systems, which includes multilevel feedback relationships, nonlinear interactions, chaotic dynamics and adaptability. In addition, however, these systems exhibit intrinsic randomness, non-Gaussian probability distributions, non-stationarity, contextuality, and non-Kolmogorov probabilities, as well as the absence of mean and/or variance and conditional probabilities. These properties and their implications for statistical analysis are discussed. An alternative approach, the Process Algebra approach, is described. It is a generative model, capable of generating non-Kolmogorov probabilities. It has proven useful in addressing fundamental problems in quantum mechanics and in the modeling of developing psychosocial systems.
机译:沃尔特·弗里曼三世(Walter Freeman III)在他的介观脑动力学研究中率先应用了非线性动力学系统的理论和方法。可悲的是,主流心理学和精神病学仍然坚持基于线性相关的数据分析技术,这有可能颠覆实验和理论构建的过程。为了取得进步,有必要开发能够管理复杂生物心理社会系统随机复杂性的工具,其中包括多级反馈关系,非线性相互作用,混沌动力学和适应性。但是,此外,这些系统还表现出固有随机性,非高斯概率分布,非平稳性,上下文性和非Kolmogorov概率,以及均值和/或方差和条件概率的缺失。讨论了这些属性及其对统计分析的影响。描述了一种替代方法,即过程代数方法。它是一个生成模型,能够生成非Kolmogorov概率。它已被证明可用于解决量子力学中的基本问题以及发展中的社会心理系统的建模。

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