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Spatial- and Spatiotemporal-Autoregressive Probit Models of Interdependent Binary Outcomes

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  • Franzese, Robert J.
  • Hays, Jude C.
  • Cook, Scott J.

Abstract

Spatial/spatiotemporal interdependence—that is, that outcomes, actions or choices of some unit-times depend on those of other unit-times—is substantively important and empirically ubiquitous in binary outcomes of interest across the social sciences. Estimating and interpreting binary-outcome models that incorporate such spatial/spatiotemporal dynamics directly is difficult and rarely attempted, however. This article explains the inferential challenges posed by spatiotemporal interdependence in binary-outcome models and recent advances in their estimation. Monte Carlo simulations compare the performance of one of these consistent and asymptotically efficient methods (maximum simulated likelihood, using recursive importance sampling) to estimation strategies naïve about (inter-) dependence. Finally, it shows how to calculate, in terms of probabilities of outcomes, the estimated spatial/spatiotemporal effects of (and response paths to) hypotheticals of substantive interest. It illustrates with an application to civil war in Sub-Saharan Africa.

Suggested Citation

  • Franzese, Robert J. & Hays, Jude C. & Cook, Scott J., 2016. "Spatial- and Spatiotemporal-Autoregressive Probit Models of Interdependent Binary Outcomes," Political Science Research and Methods, Cambridge University Press, vol. 4(1), pages 151-173, January.
  • Handle: RePEc:cup:pscirm:v:4:y:2016:i:01:p:151-173_00
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    Cited by:

    1. Scott J Cook & Cameron G Thies, 2021. "In plain sight? Reconsidering the linkage between brideprice and violent conflict1," Conflict Management and Peace Science, Peace Science Society (International), vol. 38(2), pages 129-146, March.
    2. Mondal, Aupal & Bhat, Chandra R., 2022. "A spatial rank-ordered probit model with an application to travel mode choice," Transportation Research Part B: Methodological, Elsevier, vol. 155(C), pages 374-393.
    3. Bhat, Chandra R. & Astroza, Sebastian & Hamdi, Amin S., 2017. "A spatial generalized ordered-response model with skew normal kernel error terms with an application to bicycling frequency," Transportation Research Part B: Methodological, Elsevier, vol. 95(C), pages 126-148.
    4. Wucherpfennig, Julian & Kachi, Aya & Bormann, Nils-Christian & Hunziker, Philipp, 2018. "Estimating Interdependence Across Space, Time and Outcomes in Binary Choice Models Using Pseudo Maximum Likelihood Estimators," Working papers 2018/11, Faculty of Business and Economics - University of Basel.

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