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分层/多级模型的应用和报告质量(2010-2020):系统评价。

Application of Hierarchical/Multilevel Models and Quality of Reporting (2010-2020): A Systematic Review.

作者信息

Asampana Asosega Killian, Adebanji Atinuke Olusola, Aidoo Eric Nimako, Owusu-Dabo Ellis

机构信息

Department of Statistics and Actuarial Science, Kwame Nkrumah University of Science and Technology, Kumasi, Ghana.

Department of Mathematics and Statistics, University of Energy and Natural Resources, Sunyani, Ghana.

出版信息

ScientificWorldJournal. 2024 Mar 8;2024:4658333. doi: 10.1155/2024/4658333. eCollection 2024.

Abstract

INTRODUCTION

Multilevel models have gained immense popularity across almost every discipline due to the presence of hierarchy in most data and phenomena. In this paper, we present a systematic review on the adoption and application of multilevel models and the important information reported on the results generated from the use of these models.

METHODS

The review was performed by searching Google Scholar for original research articles on the application of multilevel models published between 2010 and 2020. The search strategy involved topics such as "multilevel models," "hierarchical linear models," and "mixed models with hierarchy." The search placed more emphasis on the application of hierarchical models in any discipline but excluded software methodological development and related articles.

RESULTS

A total of 121 articles were initially obtained from the search results. However, 65 articles met the inclusion criteria for the review. Out of the 65 articles reviewed, 46.2% were related to health/epidemiology, 15.4% to education and psychology, and 16.9% to social life. The majority of the articles (78.5%) were two-level models, and most of these studies modelled univariate responses. However, the few that modelled more than one response modelled them separately. Moreover, 83.1% were cross-sectional design, and 9.2% and 6.2% were longitudinal and repeated measures, respectively. Moreover, a little over half (55.4%) of articles reported on the intraclass correlation measure, and all articles indicated the response variable distribution where most (47.7%) were normally distributed. Only 58.5% of articles reported on the estimation methods used as Bayesian (20%) and MLE (18.5%). Again, model validation measures and statistical software were reported in 70.8% and 90.8% articles, respectively.

CONCLUSION

There is an increase in the utilization of multilevel modelling in the last decade, which could be attributed to the presence of clustered and hierarchically correlated data structures. There is a need for improvement in the area of measurement and reporting on the intraclass correlation, parameter estimation, and variable selection measures to further improve the quality of the application of multilevel models. The integration of spatial effects into multilevel models is very limited and needs to be explored in the future.

摘要

简介

由于大多数数据和现象都存在层次结构,因此多层次模型在几乎所有学科中都得到了广泛的应用。在本文中,我们对多层次模型的采用和应用以及使用这些模型生成的结果报告的重要信息进行了系统回顾。

方法

通过在 Google Scholar 上搜索 2010 年至 2020 年间发表的关于多层次模型应用的原始研究文章,进行了此项回顾。搜索策略涉及到“多层次模型”、“层次线性模型”和“具有层次结构的混合模型”等主题。搜索更侧重于层次模型在任何学科中的应用,但排除了软件方法学开发和相关文章。

结果

从搜索结果中最初获得了 121 篇文章。然而,有 65 篇文章符合审查标准。在这 65 篇文章中,有 46.2%与健康/流行病学有关,15.4%与教育和心理学有关,16.9%与社会生活有关。大多数文章(78.5%)是两水平模型,其中大多数研究对单变量反应进行建模。但是,对多个反应进行建模的模型却很少,并且将它们分别建模。此外,83.1%为横截面设计,9.2%和 6.2%分别为纵向和重复测量设计。此外,超过一半(55.4%)的文章报告了组内相关度量,所有文章都表明了响应变量的分布,其中大多数(47.7%)呈正态分布。只有 58.5%的文章报告了所使用的估计方法,包括贝叶斯(20%)和最大似然估计(18.5%)。同样,70.8%和 90.8%的文章分别报告了模型验证措施和统计软件。

结论

在过去十年中,多层次建模的使用有所增加,这可能归因于聚类和层次相关数据结构的存在。需要改进测量和报告组内相关、参数估计和变量选择措施方面的工作,以进一步提高多层次模型应用的质量。将空间效应纳入多层次模型的研究非常有限,需要在未来进行探索。

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