基于距离的分位数回归模型分析。

Pub Date : 2021-07-01 Epub Date: 2021-03-27 DOI:10.1007/s12561-021-09306-6
Shaoyu Li, Yanqing Sun, Liyang Diao, Xue Wang
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引用次数: 0

摘要

非标准结构化、多变量数据正在许多研究领域出现,包括遗传学和基因组学、生态学和社会科学。在基于距离的分析中,通常使用适当定义的两两距离度量来研究变量之间的关联。在这项工作中,我们考虑了两两距离的线性分位数回归模型。我们研究了未知系数估计量的大样本性质,并提出了相应的统计推断程序。大量的仿真证明了该方法具有令人满意的有限样本特性。最后,我们将该方法应用于微生物组关联研究,以说明其实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Distance-Based Analysis with Quantile Regression Models.

Non-standard structured, multivariate data are emerging in many research areas, including genetics and genomics, ecology, and social science. Suitably defined pairwise distance measures are commonly used in distance-based analysis to study the association between the variables. In this work, we consider a linear quantile regression model for pairwise distances. We investigate the large sample properties of an estimator of the unknown coefficients and propose statistical inference procedures correspondingly. Extensive simulations provide evidence of satisfactory finite sample properties of the proposed method. Finally, we applied the method to a microbiome association study to illustrate its utility.

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