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Title: Replication data for: Quantitative Leverage Through Qualitative Knowledge: Augmenting the Statistical Analysis of Complex Causes      
dateReleased:
02-16-2010
downloadURL: http://hdl.handle.net/1902.1/14207
ID:
hdl:1902.1/14207
description:
Social scientific theories frequently posit that multiple causal mechanisms may produce the same outcome. Unfortunately, it is not always possible to observe which mechanism was responsible. For example, IMF scholars conjecture that nations enter IMF agreements both out of economic need and for discretionary domestic political reasons. Typically, though, all we observe is the fact of agreement, not its cause. Partial observability probit models (Poirier 1980, Journal of Econometrics 12:209–217; Braumoeller 2003, Political Analysis 11:209–233) provide one method for the statistical analysis of such phenomena. Unfortunately, they are often plagued by identification and labeling difficulties. Sometimes, however, qualitative studies of particular cases enlighten us about causes when quantitative studies cannot. We propose exploiting this information to lend additional structure to the partial observability approach. Monte Carlo simulation reveals that by anchoring "discernible" causes for a handful of cases about which we possess qualitative information, we obtain greater efficiency. More important, our method proves reliable at recovering unbiased parameter estimates when the partial observability model fails. The paper concludes with an analysis of the determinants of IMF agreements.
description:
Sanford C. Gordon; Alastair Smith, 2010, "Replication data for: Quantitative Leverage Through Qualitative Knowledge: Augmenting the Statistical Analysis of Complex Causes", http://hdl.handle.net/1902.1/14207, Harvard Dataverse, V1
name:
Sanford C. Gordon
Alastair Smith
homePage: http://www.harvard.edu/
name:
Harvard University
ID:
SCR:011273
abbreviation:
DataVerse
homePage: http://thedata.org/
name:
Dataverse Network Project
ID:
SCR:001997