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Uncovering Value Drivers of High Performance Soccer Players

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  • Maribel Serna Rodríguez
  • Andrés Ramírez Hassan
  • Alexander Coad

Abstract

This article tries to uncover the drivers of soccer players’ market value in the five major European soccer leagues taking into account model uncertainty (variable selection) in a framework with 35 billion potential models. For this purpose, we use a hedonic regression framework and implement Bayesian model averaging (BMA) through Markov chain Monte Carlo model composition (MC 3 ). To deal with endogeneity issues, instrumental variable Bayesian model averaging (IVBMA) is implemented as well. We find very strong, and robust evidence, that the most important value drivers are player’s performance, participation in the national team (senior and under-21), age, and age squared.

Suggested Citation

  • Maribel Serna Rodríguez & Andrés Ramírez Hassan & Alexander Coad, 2019. "Uncovering Value Drivers of High Performance Soccer Players," Journal of Sports Economics, , vol. 20(6), pages 819-849, August.
  • Handle: RePEc:sae:jospec:v:20:y:2019:i:6:p:819-849
    DOI: 10.1177/1527002518808344
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    References listed on IDEAS

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    Cited by:

    1. Domenico Campa, 2022. "Exploring the Market of Soccer Player Registrations: An Empirical Analysis of the Difference Between Transfer Fees and Estimated Players’ Inherent Value," Journal of Sports Economics, , vol. 23(4), pages 379-406, May.
    2. Beine, Michel & Peracchi, Silvia & Zanaj, Skerdilajda, 2023. "Ancestral diversity and performance: Evidence from football data," Journal of Economic Behavior & Organization, Elsevier, vol. 213(C), pages 193-214.

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    Keywords

    BMA; IVBMA; MC3; soccer; value drive;
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