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Case selection and causal inferences in qualitative comparative research

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  • Thomas Plümper
  • Vera E Troeger
  • Eric Neumayer

Abstract

Traditionally, social scientists perceived causality as regularity. As a consequence, qualitative comparative case study research was regarded as unsuitable for drawing causal inferences since a few cases cannot establish regularity. The dominant perception of causality has changed, however. Nowadays, social scientists define and identify causality through the counterfactual effect of a treatment. This brings causal inference in qualitative comparative research back on the agenda since comparative case studies can identify counterfactual treatment effects. We argue that the validity of causal inferences from the comparative study of cases depends on the employed case-selection algorithm. We employ Monte Carlo techniques to demonstrate that different case-selection rules strongly differ in their ex ante reliability for making valid causal inferences and identify the most and the least reliable case selection rules.

Suggested Citation

  • Thomas Plümper & Vera E Troeger & Eric Neumayer, 2019. "Case selection and causal inferences in qualitative comparative research," PLOS ONE, Public Library of Science, vol. 14(7), pages 1-18, July.
  • Handle: RePEc:plo:pone00:0219727
    DOI: 10.1371/journal.pone.0219727
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    1. repec:cup:apsrev:v:65:y:1971:i:03:p:682-693_13 is not listed on IDEAS
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    Cited by:

    1. David A. Bateman & Dawn Langan Teele, 2020. "A developmental approach to historical causal inference," Public Choice, Springer, vol. 185(3), pages 253-279, December.
    2. Matthieu Niederhauser, 2026. "Uncovering EU External Multilevel Governance: The Implementation of EU Data Protection Law in Switzerland," Journal of Common Market Studies, Wiley Blackwell, vol. 64(4), pages 1515-1535, July.

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