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Multilevel models: Conceptual Framework and Applicability

机译:多层模型:概念框架和适用性

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Individuals and the social or organizational groups they belong to can be viewed as a hierarchical system situated on different levels. Individuals are situated on the first level of the hierarchy and they are nested together on the higher levels. Individuals interact with the social groups they belong to and are influenced by these groups. Traditional methods that study the relationships between data, like simple regression, do not take into account the hierarchical structure of the data and the effects of a group membership and, hence, results may be invalidated. Unlike standard regression modelling, the multilevel approach takes into account the individuals as well as the groups to which they belong. To take advantage of the multilevel analysis it is important that we recognize the multilevel characteristics of the data. In this article we introduce the outlines of multilevel data and we describe the models that work with such data. We introduce the basic multilevel model, the two-level model: students can be nested into classes, individuals into countries and the general two-level model can be extended very easily to several levels. Multilevel analysis has begun to be extensively used in many research areas. We present the most frequent study areas where multilevel models are used, such as sociological studies, education, psychological research, health studies, demography, epidemiology, biology, environmental studies and entrepreneurship. We support the idea that since hierarchies exist everywhere, multilevel data should be recognized and analyzed properly by using multilevel modelling.
机译:个人和他们所属的社会或组织团体可以看作是位于不同级别的等级系统。个体位于层次结构的第一层,它们嵌套在较高层上。个人与他们所属的社会群体互动,并受到这些群体的影响。研究数据之间关系的传统方法(例如简单回归)没有考虑数据的层次结构和组成员身份的影响,因此结果可能无效。与标准回归建模不同,多级方法考虑了个人及其所属的组。为了利用多层次分析,重要的是我们认识到数据的多层次特征。在本文中,我们介绍了多级数据的概述,并描述了处理此类数据的模型。我们介绍了基本的多级模型,即两级模型:学生可以嵌套到班级中,个人可以嵌套到国家中,并且通用的两级模型可以很容易地扩展到几个级别。多级分析已开始在许多研究领域中广泛使用。我们介绍了使用多层次模型的最频繁的研究领域,例如社会学,教育,心理研究,健康研究,人口统计学,流行病学,生物学,环境研究和企业家精神。我们支持这样的想法,因为层次结构无处不在,因此应该使用多级建模来正确识别和分析多级数据。

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