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A New Look at Cross-Country Aggregation in the Global VAR Approach: Theory and Monte Carlo Simulation

Author

Listed:
  • Halil Ibrahim Gunduz

    (Istanbul University
    Maastricht University)

  • Furkan Emirmahmutoglu

    (Ankara Hacı Bayram Veli University)

  • M. Eray Yucel

    (Ihsan Dogramaci Bilkent University)

Abstract

Requirements to understand and forecast the behavior of complex macroeconomic interactions mandate the use of high-dimensional macroeconometric models. The Global Vector Autoregressive (GVAR) modeling technique is very popular among them and it allows researchers and policymakers to take into account both the complex interdependencies that exist between various economic entities and the global economy through the world’s trade and financial channels. However, determining the cross-section unit size while using this approach is not a trivial task. In order to address this issue, we suggest an objective procedure for the detection of the size of the cross-country aggregation in GVAR models. While doing so, we depart from the Akaike Information Criterion (AIC) and propose an analytical modification to it, mainly employing an ad hoc approach without violating Akaike’s main principles. To supplement the theoretical results, small sample performances of those procedures are studied in Monte Carlo experiments as well as implementing our approach on real data. The numerical results suggest that our ad hoc modification of AIC can be used to determine the structure of the cross-section unit dimension in GVAR models, allowing the researchers and policymakers to build parsimonious models.

Suggested Citation

  • Halil Ibrahim Gunduz & Furkan Emirmahmutoglu & M. Eray Yucel, 2025. "A New Look at Cross-Country Aggregation in the Global VAR Approach: Theory and Monte Carlo Simulation," Computational Economics, Springer;Society for Computational Economics, vol. 65(1), pages 21-67, January.
  • Handle: RePEc:kap:compec:v:65:y:2025:i:1:d:10.1007_s10614-024-10569-6
    DOI: 10.1007/s10614-024-10569-6
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