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A novel rank-based non-parametric method for longitudinal ordinal data

机译:基于秩的基于秩的基于秩序的非参数化方法

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摘要

Longitudinal ordinal data are common in biomedical research. Although various methods for the analysis of such data have been proposed in the past few decades, they are limited in several ways. For instance, the constraints on parameters in the proportional odds model may result in convergence problems; the rank-based aligned rank transform method imposes constraints on other parameters and the distributional assumptions with parametric model. We propose a novel rank-based non-parametric method that models the profile rather than the distribution of the data to make an effective statistical inference without the constraint conditions. We construct the test statistic of the interaction first, and then construct the test statistics of the main effects separately with or without the interaction, while “adjusted coefficient” for the case of ties is derived. A simulation study is conducted for comparison between rank-based non-parametric and rank-transformed analysis of variance. The results show that type I errors of the two methods are both maintained closer to the priori level, but the statistical power of rank-based non-parametric is greater than that of rank-transformed analysis of variance, suggesting higher efficiency of the former. We then apply rank-based non-parametric to two real studies on acne and osteoporosis, and the results also illustrate the effectiveness of rank-based non-parametric, particularly when the distribution is skewed.
机译:纵向数据在生物医学研究中是常见的。虽然在过去的几十年里提出了分析这些数据的各种方法,但它们以几种方式有限。例如,比例赔率模型中的参数的约束可能导致收敛问题;基于级别的对齐等级变换方法对其他参数和参数模型的分布假设施加了限制。我们提出了一种基于秩的基于秩的非参数方法,该方法模拟了配置文件而不是数据的分布,以在没有约束条件的情况下进行有效的统计推理。我们首先构造相互作用的测试统计,然后分别地构造主要效果的测试统计,或者没有相互作用,而导出用于关系的情况的“调整系数”。进行仿真研究,以进行秩基的非参数和秩转换的方差分析的比较。结果表明,这两种方法的I型错误都保持更接近先验水平,但基于秩的非参数的统计力量大于秩变形的方差分析的统计力量,表明前者的效率更高。然后,我们将基于秩的非参数施加对痤疮和骨质疏松症的两个实际研究,结果还说明了基于秩的非参数的有效性,特别是当分布歪斜时。

著录项

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  • 作者单位

    Department of Biostatistics Guangdong Provincal Key Laboratory of Tropical Disease Research School of Public Health Southern Medical University People’s Republic of China;

    Department of Biostatistics Guangdong Provincal Key Laboratory of Tropical Disease Research School of Public Health Southern Medical University People’s Republic of China;

    Department of Biostatistics Guangdong Provincal Key Laboratory of Tropical Disease Research School of Public Health Southern Medical University People’s Republic of China;

    School of traditional Chinese medicine Southern Medical University People’s Republic of China;

    Department of Biostatistics Guangdong Provincal Key Laboratory of Tropical Disease Research School of Public Health Southern Medical University People’s Republic of China;

    Department of Biostatistics Guangdong Provincal Key Laboratory of Tropical Disease Research School of Public Health Southern Medical University People’s Republic of China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 医用数学;
  • 关键词

    Central limit theorem; longitudinal ordinal data; non-parametric method; profiles; rank;

    机译:中央极限定理;纵序数据;非参数法;档案;等级;
  • 入库时间 2022-08-20 05:46:46

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