4.4 Article

Estimating Smooth Country-Year Panels of Public Opinion

期刊

POLITICAL ANALYSIS
卷 27, 期 1, 页码 1-20

出版社

CAMBRIDGE UNIV PRESS
DOI: 10.1017/pan.2018.32

关键词

latent variables; time series; hierarchical modeling; Bayesian estimation; public opinion; support for democracy

资金

  1. Carnegie Trust for the Universities of Scotland
  2. Adam Smith Research Foundation at the University of Glasgow

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At the microlevel, comparative public opinion data are abundant. But at the macrolevel-the level where many prominent hypotheses in political behavior are believed to operate-data are scarce. In response, this paper develops a Bayesian dynamic latent trait modeling framework for measuring smooth country-year panels of public opinion even when data are fragmented across time, space, and survey item. Six models are derived from this framework, applied to opinion data on support for democracy, and validated using tests of internal, external, construct, and convergent validity. The best model is reasonably accurate, with predicted responses that deviate from the true response proportions in a held-out test dataset by 6 percentage points. In addition, the smoothed country-year estimates of support for democracy have both construct and convergent validity, with spatiotemporal patterns and associations with other covariates that are consistent with previous research.

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