网络调查抽样

D. Rivers
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引用次数: 133

摘要

网络调查通常基于从大量无反应或随机选择的面板中抽取的样本。大规模消费者和选民数据库的可用性为小组成员和人口成员提供了大量的辅助资料。提出了样本匹配,即从总体框架中选择传统的随机样本,并从面板中选择最接近匹配的受访者进行访谈。结果表明,在适当的假设下(主要是在匹配变量的条件下,小组成员的可忽略性),所得的调查估计符合渐近正态分布。仿真结果表明,匹配样本估计量优于对面板中的随机子样本进行加权,抽样分布与从总体中简单随机抽样相似。在涉及2006年美国国会选举的一个示例中,使用来自可选择的Web面板的样本匹配的估计优于基于RDD样本电话访谈的估计。
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Sampling for Web Surveys
Web surveys are frequently based on samples drawn from panels with large amounts of nonresponse or haphazard selection. The availability of large-scale consumer and voter databases provides large amounts of auxilliary information for both panelists and population members. Sample matching, where a conventional random sample is selected from a population frame and the clos- est matching respondent from the panel is selected for interviewing, is proposed. It is shown that under suitable assumptions (primarily ignorability of panel membership conditional upon the match- ing variables), the resulting survey estimates are consistent with an asymptotic normal distribution. Simulation results show that the matched sample estimators are superior to weighting a random sub- sample from the panel and have a similar sampling distribution to simple random sampling from the population. In an example involving the 2006 U.S. Congressional elections, estimates using sample matching from an opt-in Web panel outperformed estimates based on phone interviews with RDD samples.
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