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生长曲线的对数正态变异带

Log-normal variation belts for growth curves.

作者信息

Jolicoeur P, Heusner A A

出版信息

Biometrics. 1986 Dec;42(4):785-94.

PMID:3814723
Abstract

Prediction (confidence) or tolerance belts compound the uncertainty of sample estimates with the estimated extent of individual variation. The latter is therefore better described by variation belts, in which sample estimates are simply substituted for population parameters. Variation belts can provide valuable graphical indications concerning the goodness of fit of postulated error models. While multiplicative least-squares (MLS) methods appear appropriate in principle for biological growth, they are unsatisfactory in practice when logarithmically transformed data are heteroscedastic. Heteroscedastic multiplicative error models can be fitted by iteratively reweighted multiplicative least squares (IRMLS), but unacceptable negative or infinite residual variance estimates and unreasonably wide variation belts are occasionally obtained. These difficulties can be prevented by constrained iteratively reweighted multiplicative least squares (CIRMLS). Examples are presented concerning the metabolic allometry of white rats, the somatic growth of male elephant seals, and the growth of an experimental population of Paramecium caudatum.

摘要

预测(置信度)带或容忍带将样本估计值的不确定性与个体变异的估计范围结合在一起。因此,变异带能更好地描述后者,在变异带中,样本估计值只是简单地替代总体参数。变异带可以提供有关假定误差模型拟合优度的有价值的图形指示。虽然乘法最小二乘法(MLS)原则上似乎适用于生物生长,但当对数变换后的数据存在异方差时,在实际应用中并不令人满意。异方差乘法误差模型可以通过迭代加权乘法最小二乘法(IRMLS)进行拟合,但偶尔会得到不可接受的负或无穷大的残差方差估计值以及不合理的宽变异带。这些困难可以通过约束迭代加权乘法最小二乘法(CIRMLS)来避免。文中给出了关于白鼠代谢异速生长、雄性海象的躯体生长以及尾草履虫实验种群生长的例子。

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