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The definition and measurement of heterogeneity

机译:异质性的定义和测量

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Heterogeneity is an important concept in psychiatric research and science more broadly. It negatively impacts effect size estimates under case–control paradigms, and it exposes important flaws in our existing categorical nosology. Yet, our field has no precise definition of heterogeneity proper. We tend to quantify heterogeneity by measuring associated correlates such as entropy or variance: practices which are akin to accepting the radius of a sphere as a measure of its volume. Under a definition of heterogeneity as the degree to which a system deviates from perfect conformity, this paper argues that its proper measure roughly corresponds to the size of a system’s event/sample space, and has units known as numbers equivalent. We arrive at this conclusion through focused review of more than 100 years of (re)discoveries of indices by ecologists, economists, statistical physicists, and others. In parallel, we review psychiatric approaches for quantifying heterogeneity, including but not limited to studies of symptom heterogeneity, microbiome biodiversity, cluster-counting, and time-series analyses. We argue that using numbers equivalent heterogeneity measures could improve the interpretability and synthesis of psychiatric research on heterogeneity. However, significant limitations must be overcome for these measures—largely developed for economic and ecological research—to be useful in modern translational psychiatric science.
机译:异质性是更广泛的精神病学研究和科学的重要概念。它对病例控制范例产生负面影响效应规模估计,并且在我们现有的分类危害中暴露了重要缺陷。然而,我们的领域没有精确定义异质性。我们倾向于通过测量诸如熵或方差的相关相关性来量化异质性:类似于接受球体半径的实践作为其体积的量度。在异质性的定义下,系统偏离完美符合性的程度,本文认为其适当的措施大致对应于系统的事件/示例空间的大小,并且具有称为数字等同的单元。我们通过重点审查了超过100年(重新)生态学家,经济学家,统计物理学家和其他人的指数的重点审查来了解了这一结论。我们审查了对量化异质性的精神病方法,包括但不限于研究症状异质性,微生物组生物多样性,聚类和时间序列分析。我们认为,使用数字等价异质性措施可以提高对异质性精神病研究的可解释性和合成。然而,必须克服这些措施的显着限制 - 在很大程度上为经济和生态研究制定 - 在现代平移精神科学中有用。

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