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The Multilayer Network Approach in the Study of Personality Neuroscience

机译:人格神经科学研究中的多层网络方法

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摘要

It has long been understood that a multitude of biological systems, from genetics, to brain networks, to psychological factors, all play a role in personality. Understanding how these systems interact with each other to form both relatively stable patterns of behaviour, cognition and emotion, but also vast individual differences and psychiatric disorders, however, requires new methodological insight. This article explores a way in which to integrate multiple levels of personality simultaneously, with particular focus on its neural and psychological constituents. It does so first by reviewing the current methodology of studies used to relate the two levels, where psychological traits, often defined with a latent variable model are used as higher-level concepts to identify the neural correlates of personality (NCPs). This is known as a top-down approach, which though useful in revealing correlations, is not able to include the fine-grained interactions that occur at both levels. As an alternative, we discuss the use of a novel complex system approach known as a multilayer network, a technique that has recently proved successful in revealing veracious interactions between networks at more than one level. The benefits of the multilayer approach to the study of personality neuroscience follow from its well-founded theoretical basis in network science. Its predictive and descriptive power may surpass that of statistical top-down and latent variable models alone, potentially allowing the discernment of more complete descriptions of individual differences, and psychiatric and neurological changes that accompany disease. Though in its infancy, and subject to a number of methodological unknowns, we argue that the multilayer network approach may contribute to an understanding of personality as a complex system comprised of interrelated psychological and neural features.
机译:很长一开始,从遗传学到脑网络到心理因素的众多生物系统,都在人格中发挥作用。了解这些系统如何互相互动,形成相对稳定的行为模式,认知和情绪,但也有丰富的个体差异和精神疾病需要新的方法洞察力。本文探讨了一种同时整合多个人格级别的方式,特别关注其神经和心理成分。它首先通过审查用于涉及涉及用潜在变量模型定义的心理特征的研究的目前的研究方法,其中用作识别人格(NCPS)的神经相关性的更高级别概念。这被称为自上而下的方法,其虽然可用于揭示相关性,但不能包括在两个层面发生的细粒度相互作用。作为替代方案,我们讨论了一种称为多层网络的新型复杂系统方法的使用,该技术最近证明了在多个级别之间揭示网络之间的严格互动。多层方法对人格神经科学研究的好处,从其网络科学中创立的理论基础遵循。其预测性和描述性能可能超越单独的统计自上而下和潜在的变量模型,可能允许辨别出更完全描述的个体差异,并且伴随疾病的精神病学和神经变化。虽然在其初期,但受到许多方法的未知数,我们认为多层网络方法可能有助于理解人格,作为一种由相互关联的心理和神经特征构成的复杂系统。

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