首页> 外文期刊>Behavior Genetics: An International Journal Devoted to Research in the Inheritance of Behavior in Animals and Man >A limited dependent variable model for heritability estimation with non-random ascertained samples.
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A limited dependent variable model for heritability estimation with non-random ascertained samples.

机译:使用非随机确定样本进行遗传力估计的有限因变量模型。

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In a questionnaire study, a random sample of Dutch families was asked whether they suffered from asthma and related symptoms. From these families, a selected sample was invited to come to the hospital for further phenotyping. Families were selected if at least one family member reported a history of asthma and the twins were 18 years of age or older. Not all families that were thus selected volunteered, leaving us with a fraction of the original sample. The aim of this paper is to describe a limited dependent variable model that can be used in such situations in order to obtain estimates that are representative of the population from which the sample was originally drawn. The model is a linear (DeFries-Fulker) regression model corrected for sample selection. This correction is possible when (some of) the characteristics that determine whether subjects volunteer (or not) are known for all subjects, including those that did not volunteer. The questionnaire study is of interest by itself but serves mainly to provide a concrete illustration of our method. The present model is used to analyze the data and the results are compared to those obtained with other methods: raw (or direct) likelihood estimation, multiple imputation, and sample weighting. Throughout, Rubin's general theory of inference with missing data serves as an integrating framework.
机译:在一项问卷调查研究中,随机抽取了一个荷兰家庭样本,询问他们是否患有哮喘和相关症状。从这些家庭中,邀请了一部分样本来医院进行进一步的表型分析。如果至少一名家庭成员有哮喘病史并且双胞胎年龄在18岁或以上,则选择家庭。并非所有如此选择的家庭都自愿参加,只剩下了一部分原始样本。本文的目的是描述可以在这种情况下使用的有限因变量模型,以便获得代表最初从其抽取样本的总体的估计值。该模型是针对样本选择进行校正的线性(DeFries-Fulker)回归模型。当确定所有受试者(包括那些非自愿受试者)都知道是否自愿(或不愿意)受试者的某些特征时,可以进行这种校正。问卷研究本身很有趣,但主要是为我们的方法提供具体说明。本模型用于分析数据,并将结果与​​通过其他方法获得的结果进行比较:原始(或直接)似然估计,多重估算和样本加权。贯穿整个过程,鲁宾关于缺失数据的一般推理理论是一个完整的框架。

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