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Marginal versus joint Box-Cox transformation with applications to percentile curve construction for IgG subclasses and blood pressures.

机译:边际与联合Box-Cox变换在IgG亚类和血压的百分曲线构建中的应用。

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摘要

When age-specific percentile curves are constructed for several correlated variables, the marginal method of handling one variable at a time has typically been used. We address the question, frequently asked by practitioners, of whether we can achieve efficiency gains by joint estimation. We focus on a simple but common method of Box-Cox transformation and assess the statistical impact of a joint transformation to multivariate normality on the percentile curve estimation for correlated variables. We find that there is little gain from the joint transformation for estimating percentiles around the median but a noticeable reduction in variances is possible for estimating extreme percentiles that are usually of main interest in medical and biological applications. Our study is motivated by problems in constructing percentile charts for IgG subclasses of children and for blood pressures in adult populations, both of which are discussed in the paper as examples, and yet our general findings are applicable to a wide range of other problems.
机译:当针对几个相关变量构建特定于年龄的百分位数曲线时,通常使用一次处理一个变量的边际方法。我们解决了从业者经常问到的一个问题,即我们是否可以通过联合估算来实现效率提升。我们专注于Box-Cox变换的一种简单但通用的方法,并评估联合变换的多元统计正态性对相关变量的百分曲线估计的统计影响。我们发现,联合变换对于估计中位数附近的百分位数几乎没有好处,但是对于估计在医学和生物学应用中通常最感兴趣的极端百分位数,方差的显着减少是可能的。我们的研究受制于在构建儿童IgG亚类和成年人口血压的百分位图表时遇到的问题,在本文中均以实例为例进行了讨论,但我们的一般发现适用于其他许多问题。

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